Lipid conjugation for targeting neurons in the central nervous system

JP2024518564A5Pending Publication Date: 2025-06-19DICERNA PHARMACEUTICALS INC
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
JP2023570192
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2021-11-05
Filing Date
2022-05-11
Publication Date
2025-06-19

AI Technical Summary

Technical Problem

There is a need for effective RNAi oligonucleotides that can modulate gene expression in the central nervous system (CNS) to treat neurological diseases, as existing therapies face challenges in delivering and maintaining efficacy in this complex tissue environment.

Method used

Development of lipid-conjugated RNAi oligonucleotides that specifically target neuronal mRNAs in the CNS, reducing gene expression through conjugation with lipids to enhance delivery and persistence, particularly in hard-to-reach regions like the hippocampus and frontal cortex.

Benefits of technology

The lipid-conjugated RNAi oligonucleotides effectively reduce target gene expression in various CNS regions, including the spinal cord, hippocampus, and frontal cortex, offering a potential therapeutic approach for neurological disorders.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 00000000_0000_ABST
    Figure 00000000_0000_ABST
Patent Text Reader

Abstract

Provided herein is an oligonucleotide conjugate that inhibits or reduces the expression of a target gene in neurons of the central nervous system.Also provided are compositions containing the same and uses thereof, particularly for treating diseases, disorders and / or conditions associated with the expression of neuronal target genes in the CNS.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical field]

[0001] Cross-related Applications This application claims the benefit of U.S. Provisional Patent Application No. 63 / 187,250, filed May 11, 2021, and U.S. Provisional Patent Application No. 63 / 276,404, filed November 5, 2021, the entire contents of which are incorporated herein by reference.

[0002] Sequence Listing Reference This application contains a Sequence Listing that has been submitted electronically in ASCII format via EFS-Web and is incorporated herein by reference in its entirety. The ASCII copy, created on May 9, 2022, is named DICN_007_001WO_SeqList_ST25 and is 47,059 bytes in size.

[0003] The present disclosure relates to oligonucleotides conjugated to lipid moieties that are useful for inhibiting target genes in neurons of the central nervous system.Specifically, the present disclosure relates to oligonucleotide-lipid conjugates, their preparation methods, their chemical compositions, and the method of using the nucleic acid and oligonucleotide conjugated according to the description provided herein to regulate (e.g., inhibit or reduce) the expression of target genes in neurons of the central nervous system (hereinafter abbreviated as "CNS") (e.g., tissue or region of the CNS).The present disclosure also provides pharma-ceutically acceptable compositions comprising the conjugates herein, and the method of using the compositions in the treatment of various diseases or disorders. [Background technology]

[0004] Modulation of gene expression by modified nucleic acids has shown great potential both as a research tool in the laboratory and as a therapeutic approach in the clinic. Several classes of oligonucleotide or nucleic acid-based therapeutics are under clinical investigation, including antisense oligonucleotides (ASOs), short interfering RNAs (siRNAs), double-stranded nucleic acids (dsNAs), aptamers, ribozymes, exon-skipping and splice-altering oligonucleotides, immune-modulating oligonucleotides, mRNAs, and CRISPRs. Chemical modifications in the relevant molecules to enable functionality in various tissues, organs, and / or cell types play a key role in overcoming challenges of oligonucleotide therapeutics, including improving nuclease stability, RNA-binding affinity, and pharmacokinetics. Various chemical modification strategies for oligonucleotides have been developed over the past three decades, including modifications of sugars, nucleobases, and phosphodiester backbones to improve and optimize performance and therapeutic efficacy ( [Non-Patent Document 1] , and [Non-Patent Document 2] ).

[0005] Therapeutic gene silencing mediated by RNAi oligonucleotide-based therapeutics, including siRNA or double-stranded nucleic acid (dsNA), offers the potential for a substantial expansion of the druggable target space and the possibility of treating rare diseases that are therapeutically inaccessible by other drug modalities (e.g., antibodies and / or small molecules). RNAi oligonucleotide-based therapeutics that inhibit or reduce the expression of specific target genes in the liver have been developed and are currently in clinical use ( [Non-Patent Document 3] ). Technical hurdles remain for the development and clinical use of RNAi oligonucleotides in extrahepatic cells, tissues, and organs (e.g., the central nervous system or CNS). Therapeutic gene silencing mediated by RNAi oligonucleotide-based therapeutics in the CNS is of particular interest for treating neurological diseases ( [Non-Patent Document 4] ). Thus, there is a continuing need in the art to successfully develop new and effective RNAi oligonucleotides to regulate the expression of target genes in extrahepatic cells, tissues, and / or organs (e.g., CNS). This is complicated by the variant nature of cell types outside the liver, as well as concerns regarding cell membrane components such as circulation patterns and receptor types. [Prior art documents] [Non-patent literature]

[0006] [Non-Patent Document 1] Deleavey and Darma,CHEM.BIOL.2012,19(8):937-54, Wan and Seth,J.MED.CHEM.2016,59(21):9645-67 [Non-Patent Document 2] Egli and Manoharan,ACC.CHEM RES.2019,54(4):1036-47 [Non-Patent Document 3] Sehgal et al.,(2013)JOURNAL OF HEPATOLOGY 59:1354-59 [Non-Patent Document 4] Boudreau & Davidson(2010)BRAIN RESEARCH 1338:112-21 Summary of the Invention

[0007] The mammalian CNS is a complex system of tissues, including cells, fluids, and chemicals, which work together to interact to enable a wide range of functions, including movement, navigation, cognition, speech, vision, and emotion. Unfortunately, a variety of diseases and disorders of the CNS (e.g., neurological disorders) are known that affect or disrupt some or all of these functions. Typically, treatments for diseases and disorders of the CNS are limited to small molecule drugs, antibodies, and / or adaptive or behavioral therapies. There is a continuing need to develop treatments for diseases and disorders of the CNS associated with inappropriate gene expression.

[0008] The present disclosure is based, at least in part, on the discovery of lipid-conjugated RNAi oligonucleotides that effectively reduce target gene expression in neurons of the CNS. Exemplary lipid-conjugated RNAi oligonucleotides provided herein demonstrate reduction of target gene expression of neuron-specific mRNA in the CNS after a single administration. Furthermore, exemplary lipid-conjugated RNAi oligonucleotides provided herein demonstrate pharmacological activity in multiple regions throughout the CNS, including difficult-to-reach regions such as the hippocampus and frontal cortex. Without being bound by theory, the hydrophobic moiety (e.g., lipid) facilitates delivery and distribution of lipid-conjugated RNAi oligonucleotides to the CNS, thereby increasing the efficacy and persistence of gene knockdown in neurons. Thus, the present disclosure provides a method of treating a disease or disorder by regulating the expression of neuronal genes in the CNS using the lipid-conjugated RNAi oligonucleotides described herein and pharma- ceutically acceptable compositions thereof. The present disclosure further provides a method of using lipid-conjugated RNAi oligonucleotides in the manufacture of medicaments for treating a disease or disorder by regulating the expression of neuronal genes in the CNS.

[0009] Thus, in some embodiments, the disclosure provides double-stranded oligonucleotides comprising an antisense strand 15-30 nucleotides in length and a sense strand 15-50 nucleotides in length, where the antisense strand and the sense strand form a duplex region of 15-30 base pairs, where the antisense strand comprises a region of complementarity to a neuronal mRNA target sequence, and where the sense strand comprises at least one lipid moiety conjugated to the 5' terminal nucleotide of the sense strand.

[0010] The present disclosure is further based in part on the discovery of lipid-conjugated RNAi oligonucleotides with stem-loops that effectively reduce target gene expression in neurons of specific tissues of the CNS. Specifically, exemplary lipid-conjugated RNAi oligonucleotides with stem-loops have demonstrated a reduction in target gene expression of neuron-specific mRNA in the spinal cord after a single administration, without reducing target gene expression to the same level in other tissues of the CNS (e.g., medulla, cerebellum, hippocampus, frontal cortex). Without being bound by theory, the ability of lipid-conjugated RNAi oligonucleotides with stem-loops to preferentially reduce neuronal mRNA expression in the spinal cord indicates that such oligonucleotides are useful for treating spinal cord diseases without affecting other regions of the CNS. Thus, the present disclosure provides a method of treating a disease or disorder by regulating the expression of neuronal genes in the spinal cord using the lipid-conjugated RNAi oligonucleotides described herein and pharma- ceutically acceptable compositions thereof. The present disclosure further provides a method of using lipid-conjugated RNAi oligonucleotides in the manufacture of medicaments for treating a disease or disorder by regulating the expression of neuronal genes in the spinal cord.

[0011] Thus, in some embodiments, the disclosure provides a double-stranded oligonucleotide comprising an antisense strand 15-30 nucleotides in length and a sense strand 15-50 nucleotides in length, wherein the antisense strand and the sense strand form a duplex region of 15-30 base pairs, wherein the antisense strand comprises a region of complementarity to a neuronal mRNA target sequence, and wherein the sense strand comprises (i) at least one lipid moiety conjugated to a nucleotide of the sense strand and (ii) a stem-loop, wherein the stem-loop comprises a nucleotide sequence represented by the formula: 5'-S1-L-S2-3', where S1 is complementary to S2 and L forms a loop between S1 and S2.

[0012] In any of the aforementioned or related aspects, the lipid moiety is selected from: [ka]

[0013] In some embodiments, the lipid moiety is a hydrocarbon chain. In some embodiments, the hydrocarbon chain is a C8-C30 hydrocarbon chain. In some embodiments, the hydrocarbon chain is a C16 hydrocarbon chain. In some embodiments, the C16 hydrocarbon chain is [ka] It is represented by:

[0014] In any of the foregoing or related embodiments, the lipid moiety is conjugated to the 2' carbon of the ribose ring of the 5' terminal nucleotide.

[0015] In any of the foregoing or related embodiments, the oligonucleotide is blunt ended. In some embodiments, the oligonucleotide is blunt ended at the 3' end of the oligonucleotide. In some embodiments, the oligonucleotide comprises a blunt end. In some embodiments, the blunt end constitutes the 3' end of the sense strand.

[0016] In any of the foregoing or related embodiments, the antisense strand comprises a 1-4 nucleotide overhang at the 3' end. In some embodiments, the overhang comprises a purine nucleotide. In some embodiments, the overhang sequence is 2 nucleotides in length. In some embodiments, the overhang is selected from AA, GG, AG, and GA. In some embodiments, the overhang is GG or AA. In some embodiments, the overhang is GG.

[0017] In any of the foregoing or related embodiments, the sense strand is 20-22 nucleotides and the antisense strand is 22-24 nucleotides. In some embodiments, the double-stranded region is 20-22 base pairs. In some embodiments, the sense strand is 20 nucleotides, the antisense strand is 22 nucleotides, and the double-stranded region is 20 base pairs.

[0018] In any of the foregoing or related embodiments, the sense strand is 36-38 nucleotides and the antisense strand is 22-24 nucleotides. In some embodiments, the sense strand is 36 nucleotides and the antisense strand is 22 nucleotides, and the double-stranded region is 20 base pairs.

[0019] In any of the foregoing or related embodiments, the sense strand is 36 nucleotides, including positions 1-36 from 5' to 3', and the lipid moiety is conjugated at position 1, 7, 9, 10, 16, 20, 23, 28, 29, or 30. In some embodiments, the lipid moiety is conjugated at position 28. In some embodiments, the antisense strand is 22 nucleotides and the double-stranded region is 20 base pairs.

[0020] In other aspects, the disclosure provides double-stranded oligonucleotides comprising an antisense strand 22-24 nucleotides in length and a sense strand 20-22 nucleotides in length, wherein the antisense strand and the sense strand form an asymmetric duplex region of 20-22 base pairs having a two nucleotide overhang at the 5' end of the oligonucleotide and a blunt end at the 3' end of the oligonucleotide, wherein the antisense strand comprises a region of complementarity to a neuronal mRNA target sequence, and the sense strand comprises at least one lipid moiety conjugated to the 5' end of the sense strand. In some embodiments, the disclosure provides double-stranded oligonucleotides comprising an antisense strand 22-24 nucleotides in length and a sense strand 20-22 nucleotides in length, where the antisense strand and the sense strand form an asymmetric duplex region of 20-22 base pairs with a two nucleotide overhang at the 3' end of the antisense strand and a blunt end comprising the 3' end of the sense strand and the 5' end of the antisense strand, where the antisense strand comprises a region of complementarity to a neuronal mRNA target sequence, and where the sense strand comprises at least one lipid moiety conjugated to the 5' end of the sense strand.

[0021] In some embodiments, the lipid moiety is a C16 hydrocarbon chain. In some embodiments, the C16 hydrocarbon chain is [ka] In some embodiments, the antisense strand is 22 nucleotides and the sense strand is 20 nucleotides. In some embodiments, the 2-nucleotide overhang comprises a purine. In some embodiments, the overhang is selected from AA, GG, AG, and GA.

[0022] In any of the foregoing or related embodiments, the region of complementarity is fully complementary to at least 15 contiguous nucleotides of the neuronal mRNA target sequence. In some embodiments, the region of complementarity is fully complementary to at least 19 contiguous nucleotides of the neuronal mRNA target sequence.

[0023] In any of the foregoing or related embodiments, the oligonucleotide comprises at least one modified nucleotide. In some embodiments, the modified nucleotide comprises a 2'-modification. In some embodiments, all of the nucleotides in the sense and antisense strands, except for the 5' terminal nucleotide of the sense strand, comprise a 2'-modification. In some embodiments, all of the nucleotides in the sense and antisense strands, except for the nucleotide conjugated to a lipid, comprise a 2'-modification. In some embodiments, the 2'-modification is a modification selected from 2'-aminoethyl, 2'-fluoro, 2'-O-methyl, 2'-O-methoxyethyl, and 2'-deoxy-2'-fluoro-β-d-arabinonucleic acid. In some embodiments, about 10-20%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, or 20% of the nucleotides in the sense strand comprise a 2'-fluoro modification. In some embodiments, about 25-35%, 25%, 26%, 27%, 28%, 29%, 30%, 31%, 32%, 33%, 34%, or 35% of the nucleotides of the antisense strand include a 2'-fluoro modification. In some embodiments, about 25-35%, 25%, 26%, 27%, 28%, 29%, 30%, 31%, 32%, 33%, 34%, or 35% of the nucleotides of the oligonucleotide include a 2'-fluoro modification. In some embodiments, the sense strand includes 20 nucleotides having positions 1-20 from 5' to 3', and each of positions 8-11 includes a 2'-fluoro modification. In some embodiments, the sense strand includes 36 nucleotides having positions 1-36 from 5' to 3', and each of positions 8-11 includes a 2'-fluoro modification. In some embodiments, the sense strand comprises 36 nucleotides having positions 1-36 from 5' to 3', where positions 8, 10, and 11 each comprise a 2'-fluoro modification. In some embodiments, the sense strand comprises 36 nucleotides having positions 1-36 from 5' to 3', where positions 8, 9, and 11 each comprise a 2'-fluoro modification. In some embodiments, the antisense strand comprises 22 nucleotides having positions 1-22 from 5' to 3', where positions 2, 3, 4, 5, 7, 10, and 14 each comprise a 2'-fluoro modification.In some embodiments, except for the 5' terminal nucleotide of the sense strand, the remaining nucleotides comprise a 2'-O-methyl modification. In some embodiments, except for the nucleotide conjugated to a lipid moiety, the remaining nucleotides comprise a 2'-O-methyl modification.

[0024] In any of the foregoing or related embodiments, the oligonucleotide comprises at least one modified internucleotide bond. In some embodiments, the at least one modified internucleotide bond is a phosphorothioate bond. In some embodiments, the antisense strand comprises phosphorothioate bonds (i) between positions 1 and 2 and between positions 2 and 3, or (ii) between positions 1 and 2, between positions 2 and 3, and between positions 3 and 4, the positions being numbered 1 to 4 from 5' to 3'. In some embodiments, the antisense strand is 22 nucleotides in length, the antisense strand comprises phosphorothioate bonds between positions 20 and 21 and between positions 21 and 22, the positions being numbered 1 to 22 from 5' to 3'. In some embodiments, the sense strand comprises phosphorothioate bonds between positions 1 and 2, the positions being numbered 1 to 2 from 5' to 3'. In some embodiments, the sense strand is 20 nucleotides in length, and the sense strand contains phosphorothioate linkages between positions 18 and 19, and between positions 19 and 20, and the positions are numbered 1 to 22 from 5' to 3'.

[0025] In any of the above or related embodiments, the antisense strand comprises a phosphorylated nucleotide at the 5' end, and the phosphorylated nucleotide is selected from uridine and adenosine.In some embodiments, the phosphorylated nucleotide is uridine.In some embodiments, the 4'-carbon of the sugar of the 5'-nucleotide of the antisense strand comprises a phosphate analog.In some embodiments, the phosphate analog is oxymethylphosphonate, vinylphosphonate, or malonylphosphonate.

[0026] In any of the foregoing or related embodiments, the region of complementarity is fully complementary to the neuronal mRNA target sequence at nucleotide positions 2-8 of the antisense strand, where nucleotide positions are numbered from 5' to 3'. In some embodiments, the region of complementarity is fully complementary to the neuronal mRNA target sequence at nucleotide positions 2-11 of the antisense strand, where nucleotide positions are numbered from 5' to 3'.

[0027] In any of the foregoing or related embodiments, the lipid moiety is conjugated to the 2' carbon of the ribose ring of the nucleotide of the sense strand. In some embodiments, the lipid moiety is conjugated to the 2' carbon of the ribose ring of the nucleotide of the loop.

[0028] In any of the foregoing or related embodiments, the oligonucleotide is a Dicer substrate. In some embodiments, the oligonucleotide is a Dicer substrate that upon endogenous Dicer processing produces a double-stranded nucleic acid of 19-21 nucleotides in length that is capable of reducing neuronal mRNA expression in mammalian cells.

[0029] In any of the foregoing or related aspects, the neuronal mRNA target sequence is located within a region of the central nervous system (CNS). In some aspects, the region of the CNS is selected from the lumbar spinal cord, the lumbar dorsal root ganglion, the medulla, the hippocampus, the somatosensory cortex, the frontal cortex, and combinations thereof. In some aspects, the region of the CNS is selected from the spinal cord, the lumbar spinal cord, the lumbar dorsal root ganglion, the cervical spinal cord, the thoracic spinal cord, the medulla, the hippocampus, the somatosensory cortex, the frontal cortex, and combinations thereof. In some embodiments, the region of the CNS is the spinal cord. In some aspects, the region of the CNS is the spinal cord. In some aspects, the spinal cord comprises the lumbar spinal cord, the thoracic spinal cord, and the cervical spinal cord. In some aspects, the region of the CNS is the lumbar spinal cord. In some aspects, the region of the CNS is the lumbar dorsal root ganglion. In some aspects, the region of the CNS is the thoracic spinal cord. In some aspects, the region of the CNS is the cervical spinal cord. In some aspects, the region of the CNS is the medulla. In some embodiments, the region of the CNS is the hippocampus. In some embodiments, the region of the CNS is the somatosensory cortex. In some embodiments, the region of the CNS is the frontal cortex.

[0030] In any of the aforementioned or related aspects, the oligonucleotide comprises: The expression of a target mRNA is reduced in a neuron or population of neurons in vitro and / or in vivo.

[0031] In any of the above or related embodiments, the oligonucleotide reduces the expression of target mRNA in spinal cord neurons or neuronal populations.In some embodiments, the oligonucleotide reduces the expression of target mRNA in spinal cord neurons or neuronal populations compared to the expression of target mRNA in other regions of the CNS.

[0032] In some aspects, the disclosure provides a pharmaceutical composition, an oligonucleotide described herein, and a pharma- ceutically acceptable carrier, delivery agent, or excipient.

[0033] In other aspects, the present disclosure provides a method for treating a subject with a disease, disorder or condition associated with expression of neuronal mRNA, comprising administering a therapeutically effective amount of the oligonucleotide or pharmaceutical composition described herein to the subject, thereby treating the subject.In some aspects, the disease, disorder or condition is acute or chronic pain.In some aspects, the disease, disorder or condition is a neurodegenerative disease.

[0034] In some embodiments, the present disclosure further provides a method for delivering oligonucleotide to a neuron or a neuron population in a subject, the method comprising administering to the subject a pharmaceutical composition as described herein.In some embodiments, the neuron or neuron population is located in a region of the CNS.In some embodiments, the region of the CNS is selected from the lumbar spinal cord, the lumbar dorsal root ganglion, the medulla, the hippocampus, the somatosensory cortex, the frontal cortex, and combinations thereof.In some embodiments, the region of the CNS is selected from the spinal cord, the lumbar spinal cord, the thoracic spinal cord, the cervical spinal cord, the lumbar dorsal root ganglion, the medulla, the hippocampus, the somatosensory cortex, the frontal cortex, and combinations thereof.In some embodiments, the region of the CNS is the spinal cord.In some embodiments, the spinal cord comprises the lumbar spinal cord, the thoracic spinal cord, and the cervical spinal cord.

[0035] In a further aspect, the disclosure provides a method for reducing expression of a neuronal mRNA in a cell, a cell population, or a subject, the method comprising: i. contacting a cell or cell population with an oligonucleotide or pharmaceutical composition described herein, optionally wherein the cell or cell population is a neuron or a neuronal population; or ii. Administering the oligonucleotide or pharmaceutical composition described herein to a subject. In some embodiments, reducing the expression of neuronal mRNA comprises reducing the amount or level of mRNA, the amount or level of protein, or both. In some embodiments, the subject has a disease, disorder, or condition associated with the expression of neuronal mRNA. In some embodiments, the disease, disorder, or condition is acute or chronic pain. In some embodiments, the disease, disorder, or condition is a neurodegenerative disease. In some embodiments, the cell or cell population is located in a region of the CNS. In some embodiments, the region of the CNS is selected from the lumbar spinal cord, the lumbar dorsal root ganglion, the medulla, the hippocampus, the somatosensory cortex, the frontal cortex, and combinations thereof. In some embodiments, the administration is intrathecal. In some embodiments, the region of the CNS is selected from the spinal cord, the lumbar spinal cord, the lumbar dorsal root ganglion, the thoracic spinal cord, the cervical spinal cord, the medulla, the hippocampus, the somatosensory cortex, the frontal cortex, and combinations thereof. In some embodiments, the region of the CNS is the spinal cord. In some embodiments, the spinal cord includes lumbar, thoracic, and cervical spinal cord.

[0036] In other aspects, the present disclosure provides kits comprising the oligonucleotides described herein, optionally a pharma- ceutically acceptable carrier, and a package insert comprising instructions for administration to a subject having a disease, disorder, or condition associated with expression of neuronal mRNA. In some aspects, the package insert comprises instructions for intrathecal administration.

[0037] In a further aspect, the present disclosure provides the use of the oligonucleotide or pharmaceutical composition described herein in the manufacture of a medicament for the treatment of a disease, disorder or condition associated with the expression of neuronal mRNA.In some aspects, the treatment of a disease, disorder or condition associated with the expression of neuronal mRNA.In some aspects, the disease, disorder or condition is acute or chronic pain.In some aspects, the disease, disorder or condition is a neurodegenerative disease. [Brief description of the drawings]

[0038] [Figure 1] Figure 1 provides a schematic diagram of lipid-conjugated RNAi oligonucleotides and the positions for conjugation of lipids onto the sense strand. The arrow indicates the nucleotide position on the sense strand for conjugation of C16 lipid. The conjugation is on position 28 (P28) of the sense strand (referred to herein as "reference oligonucleotide") of (i), and on any one of positions 1 (P1), 7 (P7), 9 (P9), 10 (P10), 16 (P16), or 20 (P20) of the sense strand of (ii). [Fig. 2A-2F] Figures 2A-2F provide graphs showing the percent survival of mouse Tubb3 mRNA in mouse lumbar spinal cord (Figure 2A), lumbar dorsal root ganglion (Figure 2B), medulla (Figure 2C), hippocampus (Figure 2D), somatosensory cortex (Figure 2E), and frontal cortex (Figure 2F) following treatment with lipid-conjugated Tubb3 blunt-ended oligonucleotides or reference oligonucleotides. Mice were administered 500 μg of Tubb3 lipid-conjugated oligonucleotides shown in Table 1 formulated in artificial cerebrospinal fluid (aSCF) intrathecally (it) into the cerebrospinal fluid (CSF). Seven days after administration, levels of Tubb3 mRNA were normalized to ribosomal protein L23 (RPL23) mRNA and compared to control mice treated with (aSCF) to determine global expression across tissue types. [Figure 3A-3B] Figures 3A-3B provide graphs showing the percent persistence of mouse Tubb3 mRNA in different tissues of the central nervous system (CNS) based on the results in Figures 2A-2F, with the tissues furthest from the injection site shown from left to right. [Figure 4A-4B] 4A-4B provide graphs showing tissue concentrations of lipid-conjugated Tubb3 RNAi oligonucleotides in different tissues of the central nervous system (CNS) from mice treated with FIGS. 2A-2F. [Figure 5A-5F]Figures 5A-5F provide graphs showing the relationship between the percentage of Tubb3 mRNA remaining (as shown in Figures 2A-2F) and the concentration (ng / g) of lipid-conjugated Tubb3 RNAi oligonucleotide remaining in the tissue (as shown in Figures 4A-4B) for the lumbar dorsal root ganglion (Figure 5A), lumbar spinal cord (Figure 5B), hippocampus (Figure 5C), and medulla (Figure 5D), frontal cortex (Figure 5E), and somatosensory cortex (Figure 5F). [Figure 6] Figure 6 provides a schematic diagram of lipid-conjugated RNAi oligonucleotides and exemplary positions for lipid conjugation on the sense strand of oligonucleotides with tetraloops. Arrows indicate the nucleotide positions on the sense strand that are conjugated to C16 lipid. Conjugation is on the 1st (P1), 7th (P7), 9th (P9), 10th (P10), 16th (P16), 20th (P20), 23rd (P23), 28th (P28), 29th (P29), or 30th (P30) positions of the sense strand (as indicated by arrows). [Figure 7A-7F] Figures 7A-7F provide graphs showing the percent survival of mouse Tubb3 mRNA in mouse lumbar spinal cord (Figure 7A), lumbar dorsal root ganglion (Figure 7B), medulla (Figure 7C), cerebellum (Figure 7D), hippocampus (Figure 7E), and frontal cortex (Figure 7F) following treatment with lipid-conjugated Tubb3 tetraloop oligonucleotides. Mice were treated with 500 μg of Tubb3 lipid-conjugated tetraloop oligonucleotides shown in Table 2 formulated in artificial cerebrospinal fluid (aSCF) via intrathecal injection into the lumbar spine. Seven days after intrathecal injection, levels of Tubb3 mRNA were normalized to ribosomal protein L23 (RPL23) mRNA and compared to control mice treated with (aCSF) to determine global expression across tissue types. [Figure 8A-8D]Figures 8A-8D provide graphs comparing the percent Tubb3 mRNA remaining in Figures 2A, 2C, 2D, and 2F assessing blunt-ended oligonucleotides with the percent Tubb3 mRNA remaining in Figures 7A, 7C, 7E, and 7F assessing tetraloop oligonucleotides for the lumbar spinal cord (Figure 8A), medulla (Figure 8B), hippocampus (Figure 8C), and frontal cortex (Figure 8D). [Figure 9A-9B] 9A-9B provide graphs showing the concentration response relationship relating to the percent survival of mouse Tubb3 mRNA in Neuro2a cells in vitro 24 hours after treatment with various concentrations of lipid-conjugated Tubb3 oligonucleotides as indicated, ranging from 100 nM to 100 pM. Figure 9A provides the results for lipid-conjugated blunt-ended oligonucleotides (compared to a reference oligonucleotide), and Figure 9B provides the results for lipid-conjugated tetraloop oligonucleotides. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0039] In some aspects, the disclosure provides oligonucleotide-lipid conjugates (e.g., RNAi oligonucleotide-lipid conjugates) that reduce expression of target genes expressed in neurons of the central nervous system (CNS). In other aspects, the disclosure provides methods of treating diseases or disorders associated with expression of neuronal mRNAs (e.g., diseases of the CNS). In other aspects, the disclosure provides methods of treating diseases or disorders associated with expression of neuronal mRNAs (e.g., neurological diseases and / or due to inappropriate gene expression) using lipid-conjugated RNAi oligonucleotides described herein or pharma- ceutically acceptable compositions thereof. In other aspects, the disclosure provides methods of using lipid-conjugated RNAi oligonucleotides described herein in the manufacture of medicaments for treating diseases or disorders associated with expression of neuronal mRNAs. In other aspects, the lipid-conjugated RNAi oligonucleotides provided herein are used to treat neurological diseases or disorders by modulating (e.g., inhibiting or reducing) expression of neuronal target genes associated with neurological diseases or disorders in the CNS. In some aspects, the disclosure provides methods of treating a neurological disease or disorder by reducing expression in the CNS (e.g., in a cell, tissue, or region of the CNS) of a neuronal target gene associated with the neurological disease or disorder.

[0040] Lipid-conjugated RNAi oligonucleotides The present disclosure provides, in particular, lipid-conjugated RNAi oligonucleotides (e.g., RNAi oligonucleotide-lipid conjugates) that reduce the expression of neuronal target genes in the CNS. In some embodiments, the lipid-conjugated RNAi oligonucleotides provided by the present disclosure target the mRNA that encodes the target gene. The messenger RNA (mRNA) that encodes the target gene and is targeted by the lipid-conjugated RNAi oligonucleotides of the present disclosure is referred to herein as "target mRNA". In some embodiments, the lipid-conjugated RNAi oligonucleotides reduce target gene expression in the CNS (e.g., somatosensory cortex (SS cortex), hippocampus (HP), striatum, frontal cortex, cerebellum, medulla, hypothalamus (HY), cervical spinal cord (CSC), thoracic spinal cord (TSC), lumbar dorsal root ganglion (DRG), and / or lumbar spinal cord (LSC). In some embodiments, the lipid-conjugated RNAi oligonucleotides reduce target gene expression in the CNS (e.g., SS cortex, HP, HY, CSC, TSC, DRG, and / or LSC) without reducing expression of the target mRNA outside the CNS. In some embodiments, the lipid-conjugated RNAi oligonucleotides reduce target gene expression in the CNS (e.g., SS cortex, HP, HY, CSC, TSC, and / or LSC) without reducing expression of the target mRNA in the liver. In some embodiments, the lipid-conjugated RNAi oligonucleotides do not reduce expression of the target mRNA in the liver to the same or similar levels as in the CNS.

[0041] In some embodiments, the lipid-conjugated RNAi oligonucleotides reduce target gene expression in the CNS (e.g., somatosensory cortex (SS cortex), hippocampus (HP), frontal cortex, cerebellum, medulla, lumbar dorsal root ganglia (DRG), and / or lumbar spinal cord (LSC). In some embodiments, the lipid-conjugated RNAi oligonucleotides reduce target gene expression in the CNS (e.g., SS cortex, HP, frontal cortex, cerebellum, medulla, DRG, and / or LSC) without reducing expression of the target mRNA outside the CNS. In some embodiments, the lipid-conjugated RNAi oligonucleotides reduce target gene expression in the CNS (e.g., SS cortex, HP, frontal cortex, cerebellum, medulla, DRG, and / or LSC) without reducing expression of the target mRNA in the liver. In some embodiments, the lipid-conjugated RNAi oligonucleotides do not reduce expression of the target mRNA in the liver to the same or similar levels as in the CNS.

[0042] mRNA target sequence In some embodiments, the lipid-conjugated RNAi oligonucleotide targets a target sequence comprising a target neuron mRNA. In some embodiments, the lipid-conjugated RNAi oligonucleotide targets a target sequence within a target neuron mRNA. In some embodiments, the lipid-conjugated RNAi oligonucleotide, or a portion, fragment, or strand thereof (e.g., the antisense strand or guide strand of a double-stranded oligonucleotide) binds or anneals to a target sequence comprising a target neuron mRNA, thereby reducing target gene expression. In some embodiments, the lipid-conjugated RNAi oligonucleotide targets a target sequence comprising a target neuron mRNA for the purpose of reducing expression of a neuron target gene in vivo. In some embodiments, the amount or degree of reduction in target gene expression by a lipid-conjugated RNAi oligonucleotide targeting a particular neuron target sequence correlates with the efficacy of the lipid-conjugated RNAi oligonucleotide. In some embodiments, the amount or degree of reduction in target gene expression by a lipid-conjugated RNAi oligonucleotide targeting a particular neuron target sequence correlates with the amount or degree of therapeutic effect in a subject or patient having a disease, disorder, or condition associated with target gene expression treated with the lipid-conjugated RNAi oligonucleotide.

[0043] Through examination of the nucleotide sequences of mRNAs encoding target genes, including mRNAs from multiple different species (e.g., human, cynomolgus monkey, mouse, and rat), and as a result of in vitro and in vivo testing, it has been discovered that certain nucleotide sequences and certain systematic modifications to those oligonucleotides are more susceptible to RNAi oligonucleotide-mediated reduction than other nucleotide sequences, and therefore are useful as part of oligonucleotides that otherwise target specific gene target sequences. In some embodiments, the sense strand of the lipid-conjugated RNAi oligonucleotide described herein, or a portion or fragment thereof, comprises a nucleotide sequence that is similar (e.g., has no more than four mismatches) or identical to a target sequence that comprises a neuronal target mRNA. In some embodiments, a portion or region of the sense strand of the double-stranded oligonucleotide described herein comprises a target sequence that comprises a neuronal target mRNA.

[0044] In some embodiments, the neuronal mRNA target sequence is associated with acute or chronic pain. In some embodiments, the neuronal mRNA target sequence is associated with neurological disorders. In some embodiments, the neuronal mRNA target sequence is an mRNA expressed in neurons of at least one region of the CNS. In some embodiments, the neuronal mRNA target sequence is an mRNA expressed in neurons of the spinal cord. In some embodiments, the neuronal mRNA target sequence is an mRNA expressed in neurons of the lumbar spinal cord. In some embodiments, the neuronal mRNA target sequence is an mRNA expressed in neurons of the thoracic spinal cord. In some embodiments, the neuronal mRNA target sequence is an mRNA expressed in neurons of the cervical spinal cord. In some embodiments, the neuronal mRNA target sequence is an mRNA expressed in neurons of the lumbar dorsal root ganglion. In some embodiments, the neuronal mRNA target sequence is an mRNA expressed in neurons of the medulla. In some embodiments, the neuronal mRNA target sequence is an mRNA expressed in neurons of the hippocampus. In some embodiments, the neuronal mRNA target sequence is an mRNA expressed in neurons of the somatosensory cortex. In some embodiments, the neuronal mRNA target sequence is an mRNA expressed in neurons of the frontal cortex. In some embodiments, the neuronal mRNA target sequence is an mRNA associated with a CNS disease, disorder, or condition.

[0045] RNAi oligonucleotide targeting sequences In some embodiments, the lipid-conjugated RNAi oligonucleotide provided by the present disclosure comprises a targeting sequence.As used herein, the term "targeting sequence" refers to a nucleotide sequence that has a region of complementarity to a specific nucleotide sequence that comprises an mRNA (e.g., a neuronal targeting mRNA).In some embodiments, the lipid-conjugated RNAi oligonucleotide provided by the present disclosure comprises a gene targeting sequence that has a region of complementarity to a nucleotide sequence that comprises a target sequence of the targeting mRNA.In some embodiments, the targeting sequence is a neuronal mRNA targeting sequence.

[0046] The targeting sequence confers on the lipid-conjugated RNAi oligonucleotide the ability to specifically target an mRNA by binding or annealing to a target sequence, including a target mRNA, by complementary (Watson-Crick) base pairing. In some embodiments, the lipid-conjugated RNAi oligonucleotide herein (or a strand thereof, e.g., the antisense or guide strand of a double-stranded oligonucleotide) comprises a targeting sequence having a region of complementarity that binds or anneals to a target sequence, including a neuronal target mRNA, by complementary (Watson-Crick) base pairing. In some embodiments, the lipid-conjugated RNAi oligonucleotide herein (or a strand thereof, e.g., the antisense or guide strand of a double-stranded oligonucleotide) comprises a targeting sequence having a region of complementarity that binds or anneals to a target sequence in a neuronal target mRNA by complementary (Watson-Crick) base pairing. The targeting sequence is generally of suitable length and base content to allow binding or annealing of the lipid-conjugated RNAi oligonucleotide (or a strand thereof) to a specific target mRNA (e.g., a neuronal mRNA) for the purpose of inhibiting target gene expression. In some embodiments, the targeting sequence is at least about 12, at least about 13, at least about 14, at least about 15, at least about 16, at least about 17, at least about 18, at least about 19, at least about 20, at least about 21, at least about 22, at least about 23, at least about 24, at least about 25, at least about 26, at least about 27, at least about 28, at least about 29, or at least about 30 nucleotides in length. In some embodiments, the targeting sequence is at least about 12, at least about 13, at least about 14, at least about 15, at least about 16, at least about 17, at least about 18, at least about 19, or at least about 20 nucleotides in length. In some embodiments, the targeting sequence is about 12 to about 30 (e.g., 12 to 30, 12 to 22, 15 to 25, 17 to 21, 18 to 27, 19 to 27, or 15 to 30) nucleotides in length.In some embodiments, the targeting sequence is about 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, or 30 nucleotides in length. In some embodiments, the targeting sequence is 18 nucleotides in length. In some embodiments, the targeting sequence is 19 nucleotides in length. In some embodiments, the targeting sequence is 20 nucleotides in length. In some embodiments, the targeting sequence is 21 nucleotides in length. In some embodiments, the targeting sequence is 22 nucleotides in length. In some embodiments, the targeting sequence is 23 nucleotides in length. In some embodiments, the targeting sequence is 24 nucleotides in length.

[0047] In some embodiments, the lipid-conjugated RNAi oligonucleotide herein comprises a targeting sequence that is fully complementary to a target sequence that comprises a neuron target mRNA. In some embodiments, the lipid-conjugated RNAi oligonucleotide herein comprises a targeting sequence that is fully complementary to a target sequence in a neuron target mRNA. In some embodiments, the targeting sequence is partially complementary to a target sequence that comprises a target mRNA. In some embodiments, the targeting sequence is partially complementary to a target sequence in a neuron target mRNA. In some embodiments, the targeting sequence comprises a region of contiguous nucleotides that comprises an antisense strand.

[0048] In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a targeting sequence that is complementary to a contiguous sequence of nucleotides comprising a neuronal target mRNA, the contiguous sequence of nucleotides being about 12 to about 30 nucleotides in length (e.g., 12-30, 12-28, 12-26, 12-24, 12-20, 12-18, 12-16, 14-22, 16-20, 18-20, or 18-19 nucleotides in length). In some embodiments, the lipid-conjugated RNAi oligonucleotides comprise a targeting sequence that is complementary to a contiguous sequence of nucleotides comprising a neuronal target mRNA, the contiguous sequence of nucleotides being 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, or 20 nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotides comprise a targeting sequence that is complementary to a contiguous sequence of nucleotides comprising a target mRNA, the contiguous sequence of nucleotides being 15 nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a targeting sequence that is complementary to a contiguous sequence of nucleotides that comprises a target mRNA, wherein the contiguous sequence of nucleotides is 19 nucleotides in length.

[0049] In some embodiments, lipid-conjugated RNAi oligonucleotide comprises a targeting sequence that is complementary to a contiguous sequence of nucleotides that comprises neuronal target mRNA, and the contiguous sequence of nucleotides is 15 nucleotides in length.In some embodiments, lipid-conjugated RNAi oligonucleotide comprises a targeting sequence that is complementary to a contiguous sequence of nucleotides that comprises neuronal target mRNA, and the contiguous sequence of nucleotides is 19 nucleotides in length.

[0050] In some embodiments, the targeting sequence of the lipid-conjugated RNAi oligonucleotides herein is fully complementary (e.g., has no mismatches) to a target sequence comprising a neuronal target mRNA and includes the entire length of the antisense strand. In some embodiments, the targeting sequence of the lipid-conjugated RNAi oligonucleotides herein is fully complementary (e.g., has no mismatches) to a target sequence comprising a neuronal target mRNA and includes a portion of the entire length of the antisense strand. In some embodiments, the targeting sequence of the lipid-conjugated RNAi oligonucleotides herein is fully complementary (e.g., has no mismatches) to a target sequence comprising a neuronal target mRNA and includes 10-20 nucleotides of the antisense strand. In some embodiments, the targeting sequence of the lipid-conjugated RNAi oligonucleotides herein is fully complementary (e.g., has no mismatches) to a target sequence comprising a neuronal target mRNA and includes 15-19 nucleotides of the antisense strand. In some embodiments, the targeting sequence of the lipid-conjugated RNAi oligonucleotide herein is fully complementary (e.g., has no mismatches) to the target sequence comprising the neuronal target mRNA, and comprises 15 nucleotides, 16 nucleotides, 17 nucleotides, 18 nucleotides, 19 nucleotides, 20 nucleotides, 21 nucleotides, or 22 nucleotides of the antisense strand. In some embodiments, the targeting sequence of the lipid-conjugated RNAi oligonucleotide herein is fully complementary (e.g., has no mismatches) to the target sequence comprising the neuronal target mRNA, and comprises 19 nucleotides of the antisense strand. In some embodiments, the targeting sequence of the lipid-conjugated RNAi oligonucleotide herein is fully complementary (e.g., has no mismatches) to the target sequence comprising the neuronal target mRNA, and comprises 20 nucleotides of the antisense strand.

[0051] In some embodiments, the targeting sequence of the lipid-conjugated RNAi oligonucleotides herein is partially complementary (e.g., has no more than four mismatches) to a target sequence comprising a neuronal target mRNA and comprises the entire length of the antisense strand. In some embodiments, the targeting sequence of the lipid-conjugated RNAi oligonucleotides herein is partially complementary (e.g., has no more than four mismatches) to a target sequence comprising a neuronal target mRNA and comprises a portion of the entire length of the antisense strand. In some embodiments, the targeting sequence of the lipid-conjugated RNAi oligonucleotides herein is partially complementary (e.g., has no more than four mismatches) to a target sequence comprising a neuronal target mRNA and comprises 10-20 nucleotides of the antisense strand. In some embodiments, the targeting sequence of the lipid-conjugated RNAi oligonucleotides herein is partially complementary (e.g., has no more than four mismatches) to a target sequence comprising a neuronal target mRNA and comprises 15-19 nucleotides of the antisense strand. In some embodiments, the targeting sequence of the lipid-conjugated RNAi oligonucleotide herein is partially complementary (e.g., has no more than four mismatches) to a target sequence comprising a neuronal target mRNA, and comprises 15 nucleotides, 16 nucleotides, 17 nucleotides, 18 nucleotides, 19 nucleotides, 20 nucleotides, 21 nucleotides, or 22 nucleotides of the antisense strand. In some embodiments, the targeting sequence of the lipid-conjugated RNAi oligonucleotide herein is partially complementary (e.g., has no more than four mismatches) to a target sequence comprising a neuronal target mRNA, and comprises 19 nucleotides of the antisense strand. In some embodiments, the targeting sequence of the lipid-conjugated RNAi oligonucleotide herein is partially complementary (e.g., has no more than four mismatches) to a target sequence comprising a neuronal target mRNA, and comprises 20 nucleotides of the antisense strand.

[0052] In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a targeting sequence that has one or more base pair (bp) mismatches with the corresponding target sequence comprising a neuronal target mRNA. In some embodiments, the targeting sequence has 1 bp mismatch, 2 bp mismatch, 3 bp mismatch, 4 bp mismatch, or 5 bp mismatch with the corresponding target sequence comprising a neuronal target mRNA, as long as the ability of the targeting sequence to bind or anneal to the target sequence under suitable hybridization conditions and / or the ability of the lipid-conjugated RNAi oligonucleotide to inhibit or reduce target gene expression is maintained (e.g., under physiological conditions). Alternatively, in some embodiments, the targeting sequence comprises no more than 1 bp mismatch, no more than 2 bp mismatch, no more than 3 bp mismatch, no more than 4 bp mismatch, or no more than 5 bp mismatch with the corresponding target sequence comprising a neuronal target mRNA, as long as the ability of the targeting sequence to bind or anneal to the target sequence under suitable hybridization conditions and / or the ability of the lipid-conjugated RNAi oligonucleotide to inhibit or reduce target gene expression is maintained. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a targeting sequence with one mismatch with the corresponding target sequence. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a targeting sequence with two mismatches with the corresponding target sequence. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a targeting sequence with three mismatches with the corresponding target sequence. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a targeting sequence with four mismatches with the corresponding target sequence. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a targeting sequence with five mismatches with the corresponding target sequence.In some embodiments, lipid-conjugated RNAi oligonucleotides comprise targeting sequences with two or more mismatches (e.g., two, three, four, five or more mismatches) with corresponding target sequences, where at least two (e.g., all) mismatches are located consecutively (e.g., two, three, four, five or more mismatches in a row), or where mismatches are interspersed anywhere throughout the targeting sequence. In some embodiments, lipid-conjugated RNAi oligonucleotides comprise targeting sequences with two or more mismatches (e.g., two, three, four, five or more mismatches) with corresponding target sequences, where at least two (e.g., all) mismatches are located consecutively (e.g., two, three, four, five or more mismatches in a row), or where at least one or more non-mismatched base pairs are located between the mismatches, or combinations thereof.

[0053] Oligonucleotide types Various RNAi oligonucleotide types and / or structures are useful for reducing target gene expression in the methods herein (e.g., reducing the expression of the target gene expressed in neurons).Any of the RNAi oligonucleotide types described herein or elsewhere are contemplated for use as a framework for incorporating the targeting sequence herein, for the purpose of inhibiting or reducing the corresponding target gene expression in neurons of CNS.

[0054] In some embodiments, the lipid-conjugated RNAi oligonucleotides herein inhibit target gene expression by participating in the RNA interference (RNAi) pathway upstream or downstream of Dicer intervention. For example, RNAi oligonucleotides have been developed with each strand having a size of about 19-25 nucleotides with at least one 3' overhang of 1-5 nucleotides (see, e.g., U.S. Pat. No. 8,372,968). Longer oligonucleotides have also been developed that are processed by Dicer to generate active RNAi products (see, e.g., U.S. Pat. No. 8,883,996). Further research has produced extended double-stranded oligonucleotides in which at least one end of at least one strand is extended beyond the double-stranded targeting region, with one of the strands comprising a structure that includes a thermodynamically stabilizing tetraloop structure (see, e.g., U.S. Pat. Nos. 8,513,207 and 8,927,705, and International Patent Application Publication No. WO 2010 / 033225). Such structures may contain single-stranded extensions (on either or both sides of the molecule) as well as double-stranded extensions.

[0055] In some embodiments, the RNAi oligonucleotide conjugates herein participate in the RNAi pathway downstream of Dicer intervention (e.g., Dicer cleavage). In some embodiments, the oligonucleotides described herein are Dicer substrates. In some embodiments, endogenous Dicer processing produces a double-stranded nucleic acid of 19-23 nucleotides in length that can reduce expression of a neuronal target mRNA. In some embodiments, the lipid-conjugated RNAi oligonucleotide has an overhang (e.g., 1, 2, or 3 nucleotides in length) at the 3' end of the sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide (e.g., siRNA conjugate) comprises a 21-nucleotide guide strand that is antisense to the neuronal target mRNA, and a complementary passenger strand, both strands annealing to form a 19 bp duplex and a 2-nucleotide overhang at either or both 3' ends. Longer oligonucleotide designs are also contemplated, including oligonucleotides with 23 nucleotides of guide strand and 21 nucleotides of passenger strand, with blunt end (3' end of passenger strand / 5' end of guide strand) on the right side of the molecule, and 2 nucleotides of 3'-guide strand overhang (5' end of passenger strand / 3' end of guide strand) on the left side of the molecule.In such molecules, there is a 21bp double-stranded region.See, for example, U.S. Patent Nos. 9,012,138, 9,012,621, and 9,193,753.

[0056] In some embodiments, the RNAi oligonucleotide conjugates disclosed herein comprise a sense strand and an antisense strand that are both in the range of about 17-26 (e.g., 17-26, 20-25, or 21-23) nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotides disclosed herein comprise a sense strand and an antisense strand that are both in the range of about 19-22 nucleotides in length. In some embodiments, the sense strand and the antisense strand are of equal length. In some embodiments, the lipid-conjugated RNAi oligonucleotides disclosed herein comprise a sense strand and an antisense strand such that there is a 3' overhang on either the sense strand or the antisense strand, or on both the sense strand and the antisense strand. In some embodiments, for lipid-conjugated RNAi oligonucleotides having a sense strand and an antisense strand that are both in the range of about 21-23 nucleotides in length, the 3' overhang on the sense strand, the antisense strand, or on both the sense strand and the antisense strand is 1 or 2 nucleotides in length. In some embodiments, lipid-conjugated RNAi oligonucleotide has a guide strand of 22 nucleotides and a passenger strand of 20 nucleotides, with a blunt end (3' end of passenger strand / 5' end of guide strand) on the right side of the molecule, and a 3'-guide strand overhang of 2 nucleotides on the left side of the molecule (5' end of passenger strand / 3' end of guide strand).In such a molecule, there is a double-stranded region of 20bp.

[0057] Other RNAi oligonucleotide designs for use with the compositions and methods herein include 16-mer siRNAs (see, e.g., Nucleic Acids in Chemistry and Biology, Blackburn (ed.), ROYAL SOCIETY OF CHEMISTRY, 2006), shRNAs (e.g., with stems of 19 bp or shorter; see, e.g., Moore et al. (2010) METHODS MOL. BIOL. 629:141-58), blunt siRNAs (e.g., 19 bp in length; see, e.g., Kraynack & Baker (2006) RNA 12:163-76), asymmetric siRNAs (aiRNAs; see, e.g., Sun et al. (2008) NAT. BIOTECHNOL. 26:1379-82), asymmetric short double-stranded siRNAs (see, e.g., Chang et al. (2008) NAT. BIOTECHNOL. 26:1379-82), and siRNAs with short double strands (see, e.g., Chang et al. (2008) NAT. BIOTECHNOL. 26:1379-82). (see, e.g., Hamilton et al. (2002) EMBO J. 21:4671-79; see also U.S. Patent Application Publication No. 2009 / 0099115). Additional non-limiting examples of oligonucleotide structures that may be used in some embodiments to reduce or inhibit expression of target genes are microRNAs (miRNAs), short hairpin RNAs (shRNAs), and short siRNAs (see, e.g., Hamilton et al. (2002) EMBO J. 21:4671-79; see also U.S. Patent Application Publication No. 2009 / 0099115).

[0058] Antisense strand In some embodiments, the antisense strand of lipid-conjugated RNAi oligonucleotide is called "guide strand".For example, antisense strand participates in RNA-induced silencing complex (RISC), binds to Argonaute protein such as Ago2, or participates in or binds to one or more similar factors, and directs the silencing of target gene, and antisense strand is called guide strand.In some embodiments, the sense strand that is complementary to guide strand is called "passenger strand".

[0059] In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise an antisense strand of up to about 50 nucleotides in length (e.g., up to 50, up to 40, up to 35, up to 30, up to 27, up to 25, up to 21, up to 19, up to 17, up to 15, or up to 12 nucleotides in length). In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise an antisense strand of at least about 12 nucleotides in length (e.g., at least 12, at least 15, at least 19, at least 21, at least 22, at least 25, at least 27, at least 30, at least 35, or at least 38 nucleotides in length). In some embodiments, the present disclosure includes antisense strands ranging in length from about 12 to about 40 nucleotides (e.g., 12-40, 12-36, 12-32, 12-28, 15-40, 15-36, 15-32, 15-30, 15-28, 17-22, 17-25, 19-27, 19-30, 20-40, 22-40, 25-40, or 32-40). In some embodiments, the lipid-conjugated RNAi oligonucleotides herein include ... 15 to 30 nucleotides. In some embodiments, the antisense strand of any one of the lipid-conjugated RNAi oligonucleotides disclosed herein is 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, or 40 nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand 19-23 nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand 19 nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand 20 nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand 21 nucleotides in length.In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand that is 22 nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand that is 23 nucleotides in length.

[0060] Sense strand In some embodiments, the lipid-conjugated RNAi oligonucleotides disclosed herein comprise a sense strand (or passenger strand) of up to about 50 nucleotides in length (e.g., up to 50, up to 40, up to 36, up to 30, up to 27, up to 25, up to 21, up to 19, up to 17, or up to 12 nucleotides in length). In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a sense strand of at least about 12 nucleotides in length (e.g., at least 12, at least 15, at least 19, at least 21, at least 25, at least 27, at least 30, at least 36, or at least 38 nucleotides in length). In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a sense strand ranging in length from about 12 to about 50 (e.g., 12-50, 12-40, 12-36, 12-32, 12-28, 15-40, 15-36, 15-32, 15-28, 17-21, 17-25, 19-27, 19-30, 20-40, 22-40, 25-40, or 32-40) nucleotides. In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a sense strand ranging in length from about 12 to about 50 nucleotides. In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a sense strand ranging in length from 18 to 36 nucleotides. In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a sense strand that is 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, or 50 nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a sense strand that is 17-21 nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a sense strand that is 17 nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a sense strand that is 18 nucleotides in length.In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a sense strand that is 19 nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a sense strand that is 20 nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a sense strand that is 21 nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a sense strand that is 22 nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a sense strand that is 23 nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a sense strand that is 24 nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a sense strand that is 25 nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a sense strand that is 26 nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a sense strand that is 27 nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a sense strand that is 28 nucleotides in length. In some embodiments, the lipid-conjugated RNAi oligonucleotide herein comprises a sense strand that is 29 nucleotides long. In some embodiments, the lipid-conjugated RNAi oligonucleotide herein comprises a sense strand that is 30 nucleotides long. In some embodiments, the lipid-conjugated RNAi oligonucleotide herein comprises a sense strand that is 31 nucleotides long. In some embodiments, the lipid-conjugated RNAi oligonucleotide herein comprises a sense strand that is 32 nucleotides long. In some embodiments, the lipid-conjugated RNAi oligonucleotide herein comprises a sense strand that is 33 nucleotides long.In some embodiments, the lipid-conjugated RNAi oligonucleotide herein comprises a sense strand that is 34 nucleotides in length.In some embodiments, the lipid-conjugated RNAi oligonucleotide herein comprises a sense strand that is 35 nucleotides in length.In some embodiments, the lipid-conjugated RNAi oligonucleotide herein comprises a sense strand that is 36 nucleotides in length.

[0061] In some embodiments, the sense strand comprises a stem-loop structure at its 3' end. In some embodiments, the stem-loop is formed by intrastrand base pairing. In some embodiments, the sense strand comprises a stem-loop structure at its 5' end. In some embodiments, the stem is a duplex that is 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, or 14 nucleotides in length. In some embodiments, the stem of the stem-loop comprises a duplex that is 2 nucleotides in length. In some embodiments, the stem of the stem-loop comprises a duplex that is 3 nucleotides in length. In some embodiments, the stem of the stem-loop comprises a duplex that is 4 nucleotides in length. In some embodiments, the stem of the stem-loop comprises a duplex that is 5 nucleotides in length. In some embodiments, the stem of the stem-loop comprises a duplex that is 6 nucleotides in length. In some embodiments, the stem of the stem-loop comprises a duplex that is 7 nucleotides in length. In some embodiments, the stem of the stem-loop comprises a duplex that is 8 nucleotides in length. In some embodiments, the stem of the stem-loop comprises a duplex that is 9 nucleotides in length. In some embodiments, the stem of the stem-loop comprises a duplex that is 10 nucleotides in length. In some embodiments, the stem of the stem-loop comprises a duplex that is 11 nucleotides in length. In some embodiments, the stem of the stem-loop comprises a duplex that is 12 nucleotides in length. In some embodiments, the stem of the stem-loop comprises a duplex that is 13 nucleotides in length. In some embodiments, the stem of the stem-loop comprises a duplex that is 14 nucleotides in length.

[0062] In some embodiments, the stem-loop provides lipid-conjugated RNAi oligonucleotide protection against degradation (e.g., enzymatic degradation), and promotes or improves targeting and / or delivery to target cells, tissues, or organs, or both.For example, in some embodiments, the loop of the stem-loop provides a nucleotide that includes one or more modifications that promote, improve, or increase targeting to target mRNA (e.g., target mRNA expressed in the CNS), inhibiting target gene expression, and / or delivery to target cells, tissues, or organs (e.g., CNS), or a combination thereof.In some embodiments, the stem-loop itself or modifications to the stem-loop do not substantially affect the intrinsic gene expression inhibitory activity of the lipid-conjugated RNAi oligonucleotide, but promote, improve, or increase the stability (e.g., provide protection against degradation), and / or delivery of the lipid-conjugated RNAi oligonucleotide to target cells, tissues, or organs (e.g., CNS). In certain embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a sense strand comprising a stem-loop (e.g., at its 3' end) designated as S1-L-S2, where S1 is complementary to S2, and L forms a single-stranded loop between S1 and S2 up to about 10 nucleotides in length (e.g., 3, 4, 5, 6, 7, 8, 9, or 10 nucleotides in length). In some embodiments, the loop (L) is 3 nucleotides in length. In some embodiments, the loop (L) is 4 nucleotides in length. In some embodiments, the loop (L) is 5 nucleotides in length. In some embodiments, the loop (L) is 6 nucleotides in length. In some embodiments, the loop (L) is 7 nucleotides in length. In some embodiments, the loop (L) is 8 nucleotides in length. In some embodiments, the loop (L) is 9 nucleotides in length. In some embodiments, the loop (L) is 10 nucleotides in length.

[0063] In some embodiments, the tetraloop comprises the sequence 5'-GAAA-3'. In some embodiments, the stem loop comprises the sequence 5'-GCAGCCGAAAGGCUGC-3' (SEQ ID NO:21).

[0064] In some embodiments, the loop (L) of the stem-loop having the structure S1-L-S2 described above is a tri-loop, hi some embodiments, the tri-loop comprises ribonucleotides, deoxyribonucleotides, modified nucleotides, delivery ligands, and combinations thereof.

[0065] In some embodiments, the loop (L) of the stem-loop having the structure S1-L-S2 described above is a tetraloop (e.g., in a nicked tetraloop structure). In some embodiments, the tetraloop comprises ribonucleotides, deoxyribonucleotides, modified nucleotides, delivery ligands, and combinations thereof.

[0066] In some embodiments, the loop (L) of the stem-loop having the structure S1-L-S2 described above is a tetraloop (e.g., in a nicked tetraloop structure) as described in U.S. Pat. No. 10,131,912, which is incorporated herein by reference.

[0067] Length of the double strand In some embodiments, the duplex formed between the sense strand and the antisense strand is at least 12 (e.g., at least 15, at least 16, at least 17, at least 18, at least 19, at least 20, or at least 21) nucleotides in length. In some embodiments, the duplex formed between the sense strand and the antisense strand is in the range of 12-30 nucleotides in length (e.g., 12-30, 12-27, 12-22, 15-25, 18-30, 18-22, 18-25, 18-27, 18-30, 19-30, or 21-30 nucleotides in length). In some embodiments, the duplex formed between the sense strand and the antisense strand is 12, 13, 14, 15, 16, 17, 18, 19, 29, 21, 22, 23, 24, 25, 26, 27, 28, 29, or 30 nucleotides in length. In some embodiments, the duplex formed between the sense strand and the antisense strand is 15-30 base pairs in length. In some embodiments, the duplex formed between the sense strand and the antisense strand is 17-21 base pairs in length. In some embodiments, the duplex formed between the sense strand and the antisense strand is 17 base pairs in length. In some embodiments, the duplex formed between the sense strand and the antisense strand is 18 base pairs in length. In some embodiments, the duplex formed between the sense strand and the antisense strand is 19 base pairs in length. In some embodiments, the duplex formed between the sense strand and the antisense strand is 20 base pairs in length. In some embodiments, the duplex formed between the sense strand and the antisense strand is 21 base pairs in length. In some embodiments, the duplex formed between the sense strand and the antisense strand does not span the entire length of the sense strand and / or the antisense strand. In some embodiments, the duplex formed between the sense strand and the antisense strand spans the entire length of either the sense strand or the antisense strand. In some embodiments, the duplex between the sense and antisense strand spans the entire length of both the sense and antisense strands.

[0068] In some embodiments, there are one or more (e.g., 1, 2, 3, 4, or 5) mismatches between the sense strand and the antisense strand. When there are two or more mismatches between the sense strand and the antisense strand, they can be located consecutively (e.g., 2, 3, or more side by side) or can be scattered throughout the region of complementarity. In some embodiments, the 3' end of the sense strand contains one or more mismatches. In one embodiment, two mismatches are incorporated into the 3' end of the sense strand. In some embodiments, base mismatches or destabilization of the segment at the 3' end of the sense strand of the oligonucleotide-ligand conjugate herein improves or increases the potency and / or efficacy of the oligonucleotide-ligand conjugate.

[0069] Oligonucleotide End In some embodiments, the lipid-conjugated RNAi oligonucleotides disclosed herein comprise a sense strand and an antisense strand, such that there is a 3'-overhang on either the sense strand or the antisense strand, or on both the sense strand and the antisense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotides herein have one 5' end that is thermodynamically less stable than the other 5' end. In some embodiments, asymmetric lipid-conjugated RNAi oligonucleotides are provided that comprise a blunt end on the 3' end of the sense strand and an overhang on the 3' end of the antisense strand. In some embodiments, the 3' overhang on the antisense strand is about 1-4 nucleotides in length (e.g., 1, 2, 3, or 4 nucleotides in length).

[0070] In some embodiments, the 3' overhang is about one (1) to twenty (20) nucleotides in length (e.g., about 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, or about 20 nucleotides in length). In some embodiments, the 3' overhang is about 1-19, 1-18, 1-17, 1-16, 1-15, 1-14, 1-13, 1-12, 1-11, 1-10, 1-9, 1-8, 1-7, 1-6, 1-5, 1-4, 1-3, or about 1-2 nucleotides in length. In some embodiments, the 3'-overhang is one (1) nucleotide in length. In some embodiments, the 3'-overhang is two nucleotides in length. In some embodiments, the 3'-overhang is three nucleotides in length. In some embodiments, the 3'-overhang is 4 nucleotides in length. In some embodiments, the 3'-overhang is 5 nucleotides in length. In some embodiments, the 3'-overhang is 6 nucleotides in length. In some embodiments, the 3'-overhang is 7 nucleotides in length. In some embodiments, the 3'-overhang is 8 nucleotides in length. In some embodiments, the 3'-overhang is 9 nucleotides in length. In some embodiments, the 3'-overhang is 10 nucleotides in length. In some embodiments, the 3'-overhang is 11 nucleotides in length. In some embodiments, the 3'-overhang is 12 nucleotides in length. In some embodiments, the 3'-overhang is 13 nucleotides in length. In some embodiments, the 3'-overhang is 14 nucleotides in length. In some embodiments, the 3'-overhang is 15 nucleotides in length. In some embodiments, the 3'-overhang is 16 nucleotides in length. In some embodiments, the 3'-overhang is 17 nucleotides in length. In some embodiments, the 3'-overhang is 18 nucleotides in length.In some embodiments, the 3'-overhang is 19 nucleotides in length. In some embodiments, the 3'-overhang is 20 nucleotides in length.

[0071] Typically, RNAi oligonucleotides have a 2-nucleotide overhang on the 3' end of the antisense (guide) strand. However, other overhangs are possible. In some embodiments, the overhang is a 3' overhang comprising 1-4 nucleotides, optionally 1-4, 1-3, 1-2, 2-4, 2-3, or 1, 2, 3, or 4 nucleotides in length. In some embodiments, the overhang is a 5' overhang comprising 1-4 nucleotides, optionally 1-4, 1-3, 1-2, 2-4, 2-3, or 1, 2, 3, or 4 nucleotides in length.

[0072] In some embodiments, the oligonucleotides herein comprise a sense strand and an antisense strand, and the 5' end of either or both strands comprises a 5'-overhang comprising one or more nucleotides. In some embodiments, the oligonucleotides herein comprise a sense strand and an antisense strand, and the sense strand comprises a 5'-overhang comprising one or more nucleotides. In some embodiments, the oligonucleotides herein comprise a sense strand and an antisense strand, and the antisense strand comprises a 5'-overhang comprising one or more nucleotides. In some embodiments, the oligonucleotides herein comprise a sense strand and an antisense strand, and both the sense strand and the antisense strand comprise a 5'-overhang comprising one or more nucleotides.

[0073] In some embodiments, the 5' overhang is about one (1) to twenty (20) nucleotides in length (e.g., about 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, or about 20 nucleotides in length). In some embodiments, the 5' overhang is about 1-19, 1-18, 1-17, 1-16, 1-15, 1-14, 1-13, 1-12, 1-11, 1-10, 1-9, 1-8, 1-7, 1-6, 1-5, 1-4, 1-3, or about 1-2 nucleotides in length. In some embodiments, the 5'-overhang is one (1) nucleotide in length. In some embodiments, the 5'-overhang is two nucleotides in length. In some embodiments, the 5'-overhang is three nucleotides in length. In some embodiments, the 5'-overhang is 4 nucleotides in length. In some embodiments, the 5'-overhang is 5 nucleotides in length. In some embodiments, the 5'-overhang is 6 nucleotides in length. In some embodiments, the 5'-overhang is 7 nucleotides in length. In some embodiments, the 5'-overhang is 8 nucleotides in length. In some embodiments, the 5'-overhang is 9 nucleotides in length. In some embodiments, the 5'-overhang is 10 nucleotides in length. In some embodiments, the 5'-overhang is 11 nucleotides in length. In some embodiments, the 5'-overhang is 12 nucleotides in length. In some embodiments, the 5'-overhang is 13 nucleotides in length. In some embodiments, the 5'-overhang is 14 nucleotides in length. In some embodiments, the 5'-overhang is 15 nucleotides in length. In some embodiments, the 5'-overhang is 16 nucleotides in length. In some embodiments, the 5'-overhang is 17 nucleotides in length. In some embodiments, the 5'-overhang is 18 nucleotides in length.In some embodiments, the 5'-overhang is 19 nucleotides in length. In some embodiments, the 5'-overhang is 20 nucleotides in length.

[0074] In some embodiments, one or more (e.g., 2, 3, or 4) terminal nucleotides at the 3'-end or 5'-end of the sense strand and / or antisense strand are modified. For example, in some embodiments, one or two terminal nucleotides at the 3'-end of the antisense strand are modified. In some embodiments, the last nucleotide at the 3'-end of the antisense strand is modified, e.g., includes a 2' modification, e.g., 2'-O-methoxyethyl. In some embodiments, the last one or two terminal nucleotides at the 3'-end of the antisense strand are complementary to the target. In some embodiments, the last one or two nucleotides at the 3'-end of the antisense strand are not complementary to the target.

[0075] In some embodiments, the RNAi oligonucleotide conjugate disclosed herein comprises a stem-loop structure at the 3' end of the sense strand and comprises two terminal overhanging nucleotides at the 3' end of the antisense strand.In some embodiments, the RNAi oligonucleotide conjugate disclosed herein comprises a nicked tetraloop structure, the 3' end of the sense strand comprises a stem-tetraloop structure and comprises two terminal overhanging nucleotides at the 3' end of the antisense strand.

[0076] In some embodiments, the overhang is selected from AA, GG, AG, and GA. In some embodiments, the overhang is AA. In some embodiments, the overhang is AG. In some embodiments, the overhang is GA. In some embodiments, the two terminal overhang nucleotides are GG. Typically, one or both of the two terminal GG nucleotides of the antisense strand are not complementary to the target.

[0077] In some embodiments, the 5' and / or 3' end of the sense or antisense strand has an inverted cap nucleotide.

[0078] In some embodiments, one or more (e.g., 2, 3, 4, 5, 6) modified internucleotide linkages are provided between the terminal nucleotides at the 3' or 5' ends of the sense and / or antisense strands. In some embodiments, modified internucleotide linkages are provided between the overhanging nucleotides at the 3' or 5' ends of the sense and / or antisense strands.

[0079] Oligonucleotide Modification In some embodiments, the RNAi oligonucleotide conjugate disclosed herein comprises one or more modifications.Oligonucleotide (e.g., RNAi oligonucleotide) can be modified in various ways to improve or control specificity, stability, delivery, bioavailability, resistance to nuclease degradation, immunogenicity, base pairing properties, RNA distribution and cellular uptake, and other characteristics related to therapeutic research applications.

[0080] In some embodiments, the modification is a modified sugar. In some embodiments, the modification is a 5'-terminal phosphate group. In some embodiments, the modification is a modified internucleoside linkage. In some embodiments, the modification is a modified base. In some embodiments, the oligonucleotides described herein can include any one of the modifications described herein or any combination thereof. For example, in some embodiments, the oligonucleotides described herein include at least one modified sugar, a 5'-terminal phosphate group, at least one modified internucleoside linkage, and at least one modified base.

[0081] The number of modifications in an oligonucleotide (e.g., an RNAi oligonucleotide) and the location of those nucleotide modifications can affect the properties of the oligonucleotide. For example, oligonucleotides can be delivered in vivo by conjugating them with or surrounding them with lipid nanoparticles (LNPs) or similar carriers. However, if the oligonucleotide is not protected by an LNP or similar carrier, it may be advantageous for at least some of the nucleotides to be modified. Thus, in some embodiments, all or substantially all nucleotides of the oligonucleotide are modified. In some embodiments, more than half of the nucleotides are modified. In some embodiments, less than half of the nucleotides are modified. In some embodiments, the sugar moieties of all nucleotides comprising the oligonucleotide are modified at the 2' position. In some embodiments, the sugar moieties of all nucleotides comprising the oligonucleotide are modified at the 2' position, except for the nucleotides conjugated to lipids (e.g., the 5' terminal nucleotide of the sense strand). The modifications can be reversible or irreversible. In some embodiments, the oligonucleotides disclosed herein have a sufficient number and type of modified nucleotides to cause the desired characteristics (e.g., protection from enzymatic degradation, ability to target desired cells after in vivo administration, and / or thermodynamic stability).

[0082] sugar modification In some embodiments, the nucleotide modification at the sugar comprises a 2' modification. In some embodiments, the 2'-modification may be 2'-O-propargyl, 2'-O-propylamine, 2'-amino, 2'-ethyl, 2'-fluoro (2'-F), 2'-aminoethyl (EA), 2'-O-methyl (2'-OMe), 2'-O-methoxyethyl (2'-MOE), 2'-O-[2-(methylamino)-2-oxoethyl] (2'-O-NMA), or 2'-deoxy-2'-fluoro-β-d-arabinonucleic acid (2'-FANA). In some embodiments, the modification is 2'-F, 2'-OMe, or 2'-MOE. In some embodiments, the modification at the sugar comprises a modification of the sugar ring, which may include a modification of one or more carbons of the sugar ring. For example, modifications of the sugar of a nucleotide may include the 2'-oxygen of the sugar being linked to the 1'- or 4'-carbon of the sugar, or the 2'-oxygen being linked to the 1'- or 4'-carbon via an ethylene or methylene bridge. In some embodiments, the modified nucleotide has an acyclic sugar that lacks a 2'-carbon to 3'-carbon bond. In some embodiments, the modified nucleotide has a thiol group, for example, at the 4' position of the sugar.

[0083] In some embodiments, the lipid-conjugated RNAi oligonucleotides described herein contain at least about one modified nucleotide (e.g., at least 1, at least 5, at least 10, at least 15, at least 20, at least 25, at least 30, at least 35, at least 40, at least 45, at least 50, at least 55, at least 60, or more). In some embodiments, the sense strand of the lipid-conjugated RNAi oligonucleotide contains at least about one modified nucleotide (e.g., at least 1, at least 5, at least 10, at least 15, at least 20, at least 25, at least 30, at least 35, or more). In some embodiments, the antisense strand of the lipid-conjugated RNAi oligonucleotide contains at least about one modified nucleotide (e.g., at least 1, at least 5, at least 10, at least 15, at least 20, or more).

[0084] In some embodiments, all nucleotides of the sense strand of lipid-conjugated RNAi oligonucleotide are modified. In some embodiments, all nucleotides of the antisense strand of lipid-conjugated RNAi oligonucleotide are modified. In some embodiments, all nucleotides of lipid-conjugated RNAi oligonucleotide (i.e., both sense strand and antisense strand) are modified. In some embodiments, modified nucleotides include 2'-modification (e.g., 2'-F or 2'-OMe, 2'-MOE, and 2'-deoxy-2'-fluoro-β-d-arabinonucleic acid).

[0085] In some embodiments, the present disclosure provides lipid conjugate RNAi oligonucleotide with different modification patterns.In some embodiments, modified lipid conjugate RNAi oligonucleotide comprises the sense strand sequence with modification patterns shown in examples and sequence listing, and the antisense strand with modification patterns shown in examples and sequence listing.

[0086] In some embodiments, the lipid-conjugated RNAi oligonucleotides disclosed herein comprise an antisense strand with 2'-F modified nucleotides. In some embodiments, the lipid-conjugated RNAi oligonucleotides disclosed herein comprise an antisense strand with 2'-F and 2'-OMe modified nucleotides. In some embodiments, the lipid-conjugated RNAi oligonucleotides disclosed herein comprise a sense strand with 2'-F modified nucleotides. In some embodiments, the lipid-conjugated RNAi oligonucleotides disclosed herein comprise a sense strand with 2'-F and 2'-OMe modified nucleotides.

[0087] In some embodiments, the oligonucleotides described herein comprise a sense strand in which about 10-25%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, or 20% of the nucleotides of the sense strand comprise a 2'-fluoro modification. In some embodiments, about 11% of the nucleotides of the sense strand comprise a 2-fluoro modification. In some embodiments, about 20% of the nucleotides of the sense strand comprise a 2-fluoro modification. In some embodiments, the oligonucleotides described herein comprise an antisense strand in which about 25-35%, 25%, 26%, 27%, 28%, 29%, 30%, 31%, 32%, 33%, 34%, or 35% of the nucleotides of the antisense strand comprise a 2'-fluoro modification. In some embodiments, about 32% of the nucleotides of the antisense strand comprise a 2'-fluoro modification. In some embodiments, the oligonucleotide has about 15-25%, 15%, 16%, 17%, 18%, 19%, 20%, 21%, 22%, 23%, 24%, or 25% of its nucleotides containing a 2'-fluoro modification. In some embodiments, about 19% of the nucleotides in the oligonucleotide contain a 2'-fluoro modification. In some embodiments, about 26% of the nucleotides in the oligonucleotide contain a 2'-fluoro modification.

[0088] In some embodiments, for these oligonucleotides, one or more of positions 8, 9, 10, or 11 of the sense strand are modified with a 2'-F group. In some embodiments, for these oligonucleotides, the sugar moiety of each of the nucleotides in the sense strand that are not modified with a 2'-F group or conjugated to a lipid is modified with 2'-OMe. In some embodiments, for these oligonucleotides, the sugar moiety of each of the nucleotides in positions 1-7 and 12-20 of the sense strand is modified with 2'-OMe. In some embodiments, for these oligonucleotides, the sugar moiety of each of the nucleotides in positions 2-7 and 12-20 of the sense strand is modified with 2'-OMe. In some embodiments, for these oligonucleotides, the sugar moiety of each of the nucleotides in positions 1-6 and 12-20 of the sense strand is modified with 2'-OMe. In some embodiments, for these oligonucleotides, the sugar moiety of each of the nucleotides in positions 1-7 and 12-36 of the sense strand is modified with 2'-OMe. In some embodiments, for these oligonucleotides, the sugar moieties at each of the nucleotides at positions 2-7 and 12-36 in the sense strand are modified with 2'-OMe. In some embodiments, for these oligonucleotides, the sugar moieties at each of the nucleotides at positions 1-6 and 12-36 in the sense strand are modified with 2'-OMe. In some embodiments, for these oligonucleotides, the sugar moieties at each of the nucleotides at positions 1-7, 12-15 and 17-36 in the sense strand are modified with 2'-OMe. In some embodiments, for these oligonucleotides, the sugar moieties at each of the nucleotides at positions 1-7, 12-19 and 21-36 in the sense strand are modified with 2'-OMe. In some embodiments, for these oligonucleotides, the sugar moieties at each of the nucleotides at positions 1-7, 12-22 and 24-36 in the sense strand are modified with 2'-OMe.In some embodiments, for these oligonucleotides, the sugar moieties at each of the nucleotides at positions 1-7, 12-27, and 29-36 in the sense strand are modified with 2'-OMe. In some embodiments, for these oligonucleotides, the sugar moieties at each of the nucleotides at positions 1-7, 12-28, and 30-36 in the sense strand are modified with 2'-OMe. In some embodiments, for these oligonucleotides, the sugar moieties at each of the nucleotides at positions 1-7, 12-29, and 31-36 in the sense strand are modified with 2'-OMe.

[0089] In some embodiments, the sense strand comprises at least one 2'-F modified nucleotide, and the remaining nucleotides that are not modified with a 2'-F group or conjugated to a lipid are modified with 2'-OMe.

[0090] In some embodiments, the antisense strand has 7 nucleotides modified at the 2' position of the sugar moiety with 2'-F. In some embodiments, the sugar moieties at positions 2, 3, 4, 5, 7, 10, and 14 of the antisense strand are modified with 2'-F. In some embodiments, the antisense strand has 14 nucleotides modified at the 2' position of the sugar moiety with 2'-OMe. In some embodiments, the sugar moieties at positions 6, 8, 9, 11, 12, 13, 15, 16, 17, 18, 19, 20, 21, and 22 of the antisense strand are modified with 2'-OMe.

[0091] In some embodiments, the sense strand has 4 nucleotides modified with 2'-F at the 2' position of the sugar moiety. In some embodiments, the sugar moieties at positions 2, 3, 8, 9, 10, and 11 of the sense strand are modified with 2'-F. In some embodiments, the sense strand has 15 nucleotides modified with 2'-OMe at the 2' position of the sugar moiety. In some embodiments, the sugar moieties at positions 6, 8, 9, 11, 12, 13, 15, 16, 17, 18, 19, 20, 21, and 22 of the antisense strand are modified with 2'-OMe.

[0092] In some embodiments, the antisense strand has three nucleotides modified with 2'-F at the 2' position of the sugar moiety. In some embodiments, the sugar moieties at positions 2, 5, and 14, and optionally up to three of the nucleotides at positions 1, 3, 7, and 10 of the antisense strand are modified with 2'-F. In some embodiments, the sugar moieties at each of positions 2, 5, and 14 of the antisense strand are modified with 2'-F. In other embodiments, the sugar moieties at each of positions 1, 2, 5, and 14 of the antisense strand are modified with 2'-F. In other embodiments, the sugar moieties at each of positions 2, 4, 5, and 14 of the antisense strand are modified with 2'-F. In some embodiments, the sugar moieties at each of positions 1, 2, 3, 5, 7, and 14 of the antisense strand are modified with 2'-F. In some embodiments, the sugar moieties at each of positions 2, 3, 4, 5, 7, and 14 of the antisense strand are modified with 2'-F. In some embodiments, the sugar moieties at each of positions 1, 2, 3, 5, 10, and 14 of the antisense strand are modified with 2'-F. In some embodiments, the sugar moieties at each of positions 2, 3, 4, 5, 10, and 14 of the antisense strand are modified with 2'-F. In some embodiments, the sugar moieties at each of positions 2, 3, 5, 7, 10, and 14 of the antisense strand are modified with 2'-F. In some embodiments, the sugar moieties at each of positions 2, 3, 4, 5, 7, 10, and 14 of the antisense strand are modified with 2'-F. In some embodiments, the antisense strand has 9 nucleotides modified with 2'-F at the 2' position of the sugar moiety. In some embodiments, the sugar moieties at each of positions 2, 3, 4, 5, 7, 10, 14, 16, and 19 of the antisense strand are modified with 2'-F.

[0093] In some embodiments, lipid-conjugated RNAi oligonucleotides provided herein comprise an antisense strand having the sugar moiety of each of the nucleotides at positions 2, 5, and 14 of the antisense strand modified with 2'-F, and the sugar moiety of each of the remaining nucleotides of the antisense strand modified with a modification selected from the group consisting of 2'-O-propargyl, 2'-O-propylamine, 2'-amino, 2'-ethyl, 2'-aminoethyl (EA), 2'-O-methyl (2'-OMe), 2'-O-methoxyethyl (2'-MOE), 2'-O-[2-(methylamino)-2-oxoethyl] (2'-O-NMA), and 2'-deoxy-2'-fluoro-β-d-arabinonucleic acid (2'-FANA).

[0094] In some embodiments, lipid-conjugated RNAi oligonucleotides provided herein comprise an antisense strand having the sugar moiety of each of the nucleotides at positions 2, 3, 4, 5, 7, 10, 14, 16, and 19 of the antisense strand modified with 2'-F, and the sugar moiety of each of the remaining nucleotides of the antisense strand modified with a modification selected from the group consisting of 2'-O-propargyl, 2'-O-propylamine, 2'-amino, 2'-ethyl, 2'-aminoethyl (EA), 2'-O-methyl (2'-OMe), 2'-O-methoxyethyl (2'-MOE), 2'-O-[2-(methylamino)-2-oxoethyl] (2'-O-NMA), and 2'-deoxy-2'-fluoro-β-d-arabinonucleic acid (2'-FANA).

[0095] In some embodiments, lipid-conjugated RNAi oligonucleotides provided herein comprise an antisense strand having the sugar moiety of each of the nucleotides at positions 1, 2, 5, and 14 of the antisense strand modified with 2'-F, and the sugar moiety of each of the remaining nucleotides of the antisense strand modified with a modification selected from the group consisting of 2'-O-propargyl, 2'-O-propylamine, 2'-amino, 2'-ethyl, 2'-aminoethyl (EA), 2'-O-methyl (2'-OMe), 2'-O-methoxyethyl (2'-MOE), 2'-O-[2-(methylamino)-2-oxoethyl] (2'-O-NMA), and 2'-deoxy-2'-fluoro-β-d-arabinonucleic acid (2'-FANA).

[0096] In some embodiments, lipid-conjugated RNAi oligonucleotides provided herein comprise an antisense strand having the sugar moiety of each of the nucleotides at positions 1, 2, 3, 5, 7, and 14 of the antisense strand modified with 2'-F, and the sugar moiety of each of the remaining nucleotides of the antisense strand modified with a modification selected from the group consisting of 2'-O-propargyl, 2'-O-propylamine, 2'-amino, 2'-ethyl, 2'-aminoethyl (EA), 2'-O-methyl (2'-OMe), 2'-O-methoxyethyl (2'-MOE), 2'-O-[2-(methylamino)-2-oxoethyl] (2'-O-NMA), and 2'-deoxy-2'-fluoro-β-d-arabinonucleic acid (2'-FANA).

[0097] In some embodiments, lipid-conjugated RNAi oligonucleotides provided herein comprise an antisense strand having the sugar moiety of each of the nucleotides at positions 1, 2, 3, 5, 10, and 14 of the antisense strand modified with 2'-F, and the sugar moiety of each of the remaining nucleotides of the antisense strand modified with a modification selected from the group consisting of 2'-O-propargyl, 2'-O-propylamine, 2'-amino, 2'-ethyl, 2'-aminoethyl (EA), 2'-O-methyl (2'-OMe), 2'-O-methoxyethyl (2'-MOE), 2'-O-[2-(methylamino)-2-oxoethyl] (2'-O-NMA), and 2'-deoxy-2'-fluoro-β-d-arabinonucleic acid (2'-FANA).

[0098] In some embodiments, lipid-conjugated RNAi oligonucleotides provided herein comprise an antisense strand having the sugar moiety of each of the nucleotides at positions 2, 3, 5, 7, 10, and 14 of the antisense strand modified with 2'-F, and the sugar moiety of each of the remaining nucleotides of the antisense strand modified with a modification selected from the group consisting of 2'-O-propargyl, 2'-O-propylamine, 2'-amino, 2'-ethyl, 2'-aminoethyl (EA), 2'-O-methyl (2'-OMe), 2'-O-methoxyethyl (2'-MOE), 2'-O-[2-(methylamino)-2-oxoethyl] (2'-O-NMA), and 2'-deoxy-2'-fluoro-β-d-arabinonucleic acid (2'-FANA).

[0099] In some embodiments, lipid-conjugated RNAi oligonucleotides provided herein comprise an antisense strand having the sugar moiety of each of the nucleotides at positions 2, 3, 4, 5, 7, 10, 14, 16, and 19 of the antisense strand modified with 2'-F, and the sugar moiety of each of the remaining nucleotides of the antisense strand modified with a modification selected from the group consisting of 2'-O-propargyl, 2'-O-propylamine, 2'-amino, 2'-ethyl, 2'-aminoethyl (EA), 2'-O-methyl (2'-OMe), 2'-O-methoxyethyl (2'-MOE), 2'-O-[2-(methylamino)-2-oxoethyl] (2'-O-NMA), and 2'-deoxy-2'-fluoro-β-d-arabinonucleic acid (2'-FANA).

[0100] In some embodiments, lipid-conjugated RNAi oligonucleotides provided herein comprise an antisense strand having the sugar moiety of each of the nucleotides at positions 2, 3, 4, 5, 7, 10, and 14 of the antisense strand modified with 2'-F, and the sugar moiety of each of the remaining nucleotides of the antisense strand modified with a modification selected from the group consisting of 2'-O-propargyl, 2'-O-propylamine, 2'-amino, 2'-ethyl, 2'-aminoethyl (EA), 2'-O-methyl (2'-OMe), 2'-O-methoxyethyl (2'-MOE), 2'-O-[2-(methylamino)-2-oxoethyl] (2'-O-NMA), and 2'-deoxy-2'-fluoro-β-d-arabinonucleic acid (2'-FANA).

[0101] In some embodiments, the lipid-conjugated RNAi oligonucleotides provided herein comprise an antisense strand having a sugar moiety at position 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, or 22 that is modified with 2'-F.

[0102] In some embodiments, the lipid-conjugated RNAi oligonucleotides provided herein comprise an antisense strand having a sugar moiety at position 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, or 22 that is 2'-OMe modified.

[0103] In some embodiments, lipid-conjugated RNAi oligonucleotides provided herein comprise an antisense strand having a sugar moiety at position 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, or 22 modified with a modification selected from the group consisting of 2'-O-propargyl, 2'-O-propylamine, 2'-amino, 2'-ethyl, 2'-aminoethyl (EA), 2'-O-methyl (2'-OMe), 2'-O-methoxyethyl (2'-MOE), 2'-O-[2-(methylamino)-2-oxoethyl] (2'-O-NMA), and 2'-deoxy-2'-fluoro-β-d-arabinonucleic acid (2'-FANA).

[0104] In some embodiments, the lipid-conjugated RNAi oligonucleotides provided herein comprise a sense strand having sugar moieties at positions 8-11 modified with 2'-F. In some embodiments, the lipid-conjugated RNAi oligonucleotides provided herein comprise a sense strand having sugar moieties at positions 3, 5, 8, 10, 12, 13, 15, and 17 modified with 2'-F. In some embodiments, the lipid-conjugated RNAi oligonucleotides provided herein comprise a sense strand having sugar moieties at positions 1-7 and 12-17 or 12-20 modified with 2'OMe. In some embodiments, the lipid-conjugated RNAi oligonucleotides provided herein comprise a sense strand having sugar moieties at positions 2-7 and 12-17 or 12-20 modified with 2'OMe. In some embodiments, the lipid-conjugated RNAi oligonucleotides provided herein comprise a sense strand having sugar moieties at positions 1-6 and 12-17 or 12-20 modified with 2'OMe. In some embodiments, lipid-conjugated RNAi oligonucleotides provided herein comprise a sense strand having sugar moieties at positions 1, 2, 4, 6, 7, 9, 11, 14, 16, and 18-20 modified with 2'OMe. In some embodiments, lipid-conjugated RNAi oligonucleotides provided herein comprise a sense strand having sugar moieties at each of the nucleotides at positions 1-7 and 12-17 or 12-20 of the sense strand modified with a modification selected from the group consisting of 2'-O-propargyl, 2'-O-propylamine, 2'-amino, 2'-ethyl, 2'-aminoethyl (EA), 2'-O-methyl (2'-OMe), 2'-O-methoxyethyl (2'-MOE), 2'-O-[2-(methylamino)-2-oxoethyl] (2'-O-NMA), and 2'-deoxy-2'-fluoro-β-d-arabinonucleic acid (2'-FANA).In some embodiments, the lipid-conjugated RNAi oligonucleotides provided herein comprise a sense strand having the sugar moiety of each of the nucleotides at positions 2-7 and 12-17 or 12-20 of the sense strand modified with a modification selected from the group consisting of 2'-O-propargyl, 2'-O-propylamine, 2'-amino, 2'-ethyl, 2'-aminoethyl (EA), 2'-O-methyl (2'-OMe), 2'-O-methoxyethyl (2'-MOE), 2'-O-[2-(methylamino)-2-oxoethyl] (2'-O-NMA), and 2'-deoxy-2'-fluoro-β-d-arabinonucleic acid (2'-FANA). In some embodiments, the lipid-conjugated RNAi oligonucleotides provided herein comprise a sense strand having the sugar moiety of each of the nucleotides at positions 1-6 and 12-17 or 12-20 of the sense strand modified with a modification selected from the group consisting of 2'-O-propargyl, 2'-O-propylamine, 2'-amino, 2'-ethyl, 2'-aminoethyl (EA), 2'-O-methyl (2'-OMe), 2'-O-methoxyethyl (2'-MOE), 2'-O-[2-(methylamino)-2-oxoethyl] (2'-O-NMA), and 2'-deoxy-2'-fluoro-β-d-arabinonucleic acid (2'-FANA). In some embodiments, the lipid-conjugated RNAi oligonucleotides provided herein comprise a sense strand having sugar moieties at positions 1, 2, 4, 6, 7, 9, 11, 14, 16, and 18-20 of the sense strand modified with a modification selected from the group consisting of 2'-O-propargyl, 2'-O-propylamine, 2'-amino, 2'-ethyl, 2'-aminoethyl (EA), 2'-O-methyl (2'-OMe), 2'-O-methoxyethyl (2'-MOE), 2'-O-[2-(methylamino)-2-oxoethyl] (2'-O-NMA), and 2'-deoxy-2'-fluoro-β-d-arabinonucleic acid (2'-FANA).

[0105] In some embodiments, lipid-conjugated RNAi oligonucleotides provided herein comprise a sense strand having a sugar moiety at position 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, or 36 that is modified with 2'-F.

[0106] In some embodiments, lipid-conjugated RNAi oligonucleotides provided herein comprise a sense strand having a sugar moiety at position 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, or 36 that is 2'-OMe modified.

[0107] In some embodiments, the lipid-conjugated RNAi oligonucleotides provided herein include 2'-O-propargyl, 2'-O-propylamine, 2'-amino, 2'-ethyl, 2'-aminoethyl (EA), 2'-O-methyl (2'-OMe), 2'-O-methoxyethyl (2'-MOE), 2'-O-[2-(methylamino)-2-oxoethyl] (2'-O-NMA), and 2'-deoxy-2'-fluoro-β -d-arabinonucleic acid (2'-FANA), and / or a sense strand having a sugar moiety at positions 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, or 36 modified with a modification selected from the group consisting of:

[0108] 5'-Terminal Phosphate In some embodiments, the lipid-conjugated RNAi oligonucleotides described herein include a 5'-terminal phosphate. In some embodiments, the 5'-terminal phosphate group of the lipid-conjugated RNAi oligonucleotide enhances interaction with Ago2. However, oligonucleotides that include a 5'-phosphate group may be susceptible to degradation via phosphatases or other enzymes, which may limit their bioavailability in vivo. In some embodiments, the lipid-conjugated RNAi oligonucleotides herein include an analog of the 5' phosphate that is resistant to such degradation. In some embodiments, the phosphate analog is an oxymethylphosphonate, vinylphosphonate, or malonylphosphonate, or a combination thereof. In some embodiments, the 5' end of the lipid-conjugated RNAi oligonucleotide chain is attached to a chemical moiety ("phosphate mimic") that mimics the electrostatic and steric properties of the natural 5'-phosphate group.

[0109] In some embodiments, the lipid conjugates herein have a phosphate analog at the 4'-carbon position of the sugar (referred to as a "4'-phosphate analog"). See, for example, International Patent Application Publication No. 2018 / 045317. In some embodiments, the lipid conjugates herein have a 4'-phosphate analog at the 5'-terminal nucleotide. In some embodiments, the phosphate analog is an oxymethylphosphonate, in which the oxygen atom of the oxymethyl group is attached to the sugar moiety or its analog (e.g., at its 4'-carbon). In other embodiments, the 4'-phosphate analog is a thiomethylphosphonate or aminomethylphosphonate, in which the sulfur atom of the thiomethyl group or the nitrogen atom of the aminomethyl group is attached to the 4'-carbon of the sugar moiety or its analog. In some embodiments, the 4'-phosphate analog is an oxymethylphosphonate. In some embodiments, the oxymethylphosphonate is represented by the formula -O-CH2-PO(OH)2, -O-CH2-PO(OR)2, or -O-CH2-POOH(R), where R is independently selected from H, CH3, an alkyl group, CH2CH2CN, CH2OCOC(CH3)3, CHOCH2CH2Si(CH3)3, or a protecting group. In some embodiments, the alkyl group is CH2CH3. More typically, R is independently selected from H, CH3, or CH2CH3. In some embodiments, R is CH3. In some embodiments, the 4'-phosphate analog is 5'-methoxyphosphonate-4'-oxy. In some embodiments, the 4'-phosphate analog is 4'-oxymethylphosphonate.

[0110] In some embodiments, the lipid-conjugated RNAi oligonucleotides provided herein comprise an antisense strand that comprises a 4'-phosphate analog at the 5'-terminal nucleotide, wherein the 5'-terminal nucleotide comprises the following structure: [ka]

[0111] Modified internucleotide linkages In some embodiments, the lipid-conjugated RNAi oligonucleotides provided herein contain modified internucleoside linkages. In some embodiments, the phosphate modifications or substitutions result in an oligonucleotide containing at least about one (e.g., at least one, at least two, at least three, or at least five) modified internucleoside linkages. In some embodiments, any one of the oligonucleotides disclosed herein contains about one to about ten (e.g., 1-10, 2-8, 4-6, 3-10, 5-10, 1-5, 1-3, or 1-2) modified internucleoside linkages. In some embodiments, any one of the oligonucleotides disclosed herein contains 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10 modified internucleoside linkages.

[0112] The modified internucleotide bond can be a phosphorodithioate bond, a phosphorothioate bond, a phosphotriester bond, a thionoalkylphosphonate bond, a thionoalkylphosphonate bond, a phosphoramidite bond, a phosphonate bond or a boranophosphate bond. In some embodiments, at least one modified internucleotide bond of any one of the oligonucleotides disclosed herein is a phosphorothioate bond.

[0113] In some embodiments, the lipid-conjugated RNAi oligonucleotides provided herein have phosphorothioate bonds between one or more of positions 1 and 2 of the sense strand, positions 1 and 2 of the antisense strand, positions 2 and 3 of the antisense strand, positions 3 and 4 of the antisense strand, positions 20 and 21 of the antisense strand, and positions 21 and 22 of the antisense strand. In some embodiments, the oligonucleotides described herein have phosphorothioate bonds between positions 1 and 2 of the sense strand, positions 1 and 2 of the antisense strand, positions 2 and 3 of the antisense strand, positions 20 and 21 of the antisense strand, and positions 21 and 22 of the antisense strand. In some embodiments, the oligonucleotides described herein have phosphorothioate bonds between positions 1 and 2 of the sense strand, positions 1 and 2 of the antisense strand, positions 2 and 3 of the antisense strand, positions 3 and 4 of the antisense strand, positions 20 and 21 of the antisense strand, and positions 21 and 22 of the antisense strand. In some embodiments, the oligonucleotides described herein have phosphorothioate linkages between each of positions 1 and 2 of the sense strand, positions 18 and 19 of the sense strand, positions 19 and 20 of the sense strand, positions 1 and 2 of the antisense strand, positions 2 and 3 of the antisense strand, positions 3 and 4 of the antisense strand, positions 20 and 21 of the antisense strand, and positions 21 and 22 of the antisense strand.

[0114] In some embodiments, the oligonucleotide conjugates described herein comprise peptide nucleic acids (PNAs). PNAs are oligonucleotide mimics in which the sugar-phosphate backbone is replaced by a pseudopeptide backbone composed of N-(2-aminoethyl)glycine units. Nucleobases are linked to this backbone via diatomic carboxymethyl spacers. In some embodiments, the oligonucleotide conjugates described herein comprise morpholino oligomers (PMOs) that comprise an internucleotide linkage backbone of methylene morpholine rings linked via phosphorodiamidate groups.

[0115] Base Modification In some embodiments, the lipid-conjugated RNAi conjugate herein comprises one or more modified nucleobases. In some embodiments, the modified nucleobase (also referred to herein as base analog) is attached to the 1' position of the nucleotide sugar moiety. In some embodiments, the modified nucleobase is a nitrogenous base. In some embodiments, the modified nucleobase does not contain a nitrogen atom. See, for example, US Patent Application Publication No. 2008 / 0274462. In some embodiments, the modified nucleotide comprises a universal base. In some embodiments, the modified nucleotide does not contain a nucleobase (abasic).

[0116] In some embodiments, a universal base is a heterocyclic moiety located at the 1' position of a nucleotide sugar moiety in a modified nucleotide, or at an equivalent position in a nucleotide sugar moiety substitution, and when present in a duplex, can be positioned opposite more than one type of base without substantially altering the structure of the duplex. In some embodiments, compared to a reference single-stranded nucleic acid (e.g., an oligonucleotide) that is fully complementary to a target nucleic acid, a single-stranded nucleic acid containing a universal base has a lower T than a duplex formed with a complementary nucleic acid. m In some embodiments, when compared to a reference single-stranded nucleic acid in which the universal base is replaced with a base that creates a single mismatch, the single-stranded nucleic acid containing the universal base has a higher T than the duplex formed with the nucleic acid containing the mismatched base. m The nucleic acid forms a duplex with the target nucleic acid.

[0117] Non-limiting examples of universal binding nucleotides include, but are not limited to, inosine, 1-β-D-ribofuranosyl-5-nitroindole, and / or 1-β-D-ribofuranosyl-3-nitropyrrole (see, e.g., U.S. Patent Application Publication No. 2007 / 0254362, Van Aerschot et al. (1995) NUCLEIC ACIDS RES. 23:4363-4370, Loakes et al. (1995) NUCLEIC ACIDS RES. 23:2361-66, and Loakes & Brown (1994) NUCLEIC ACIDS RES. 22:4039-43).

[0118] reversible modification Certain modifications can be made to protect oligonucleotide from the in vivo environment before reaching target cells, but they can reduce the efficacy or activity of oligonucleotide when it reaches the cytosol of target cells.Reversible modifications can be made so that the molecule retains desirable properties outside the cell, and then is removed when it enters the cytoplasmic environment of the cell.Reversible modifications can be removed, for example, by the action of intracellular enzymes or by intracellular chemical conditions (e.g., through reduction by intracellular glutathione).

[0119] In some embodiments, the reversibly modified nucleotide comprises a glutathione-sensitive moiety.Typically, nucleic acid molecules are chemically modified with cyclic disulfide moieties to mask the negative charge created by internucleotide diphosphate bonds and improve cellular uptake and nuclease resistance.See US Patent Application Publication No. 2011 / 0294869, International Patent Application Publication No. 2014 / 088920 and International Patent Application Publication No. 2015 / 188197, and Meade et al., (2014) NAT.BIOTECHNOL.32:1256-63.This reversible modification of internucleotide diphosphate bonds is designed to be cleaved intracellularly by the reducing environment of cytosol (e.g., glutathione). Previous examples include neutralizing phosphotriester modifications that have been reported to be cleavable intracellularly (see Dellinger et al., (2003) J. AM. CHEM. SOC. 125:940-50).

[0120] In some embodiments, such reversible modifications allow protection during in vivo administration (e.g., passage through the blood and / or lysosomal / endosomal compartments of cells), where the oligonucleotide is exposed to nucleases and other harsh environmental conditions (e.g., pH). Upon release into the cytosol of cells, where the level of glutathione is higher compared to the extracellular space, the modification is reversed, resulting in a cleaved oligonucleotide. Compared to the options available using irreversible chemical modifications, it is possible to introduce sterically larger chemical groups into the oligonucleotide of interest using reversible glutathione-sensitive moieties. This is because these larger chemical groups are removed in the cytosol and therefore should not interfere with the biological activity of the oligonucleotide inside the cytosol of the cell. As a result, these larger chemical groups can be engineered to confer various advantages to the nucleotide or oligonucleotide, such as nuclease resistance, lipophilicity, charge, thermal stability, specificity, and reduced immunogenicity. In some embodiments, the structure of the glutathione-sensitive moiety can be engineered to modify the kinetics of its release.

[0121] In some embodiments, the glutathione-sensitive moiety is attached to the sugar of the nucleotide. In some embodiments, the glutathione-sensitive moiety is attached to the 2'-carbon of the sugar of the modified nucleotide. In some embodiments, the glutathione-sensitive moiety is located at the 5'-carbon of the sugar, especially when the modified nucleotide is the 5'-terminal nucleotide of the oligonucleotide. In some embodiments, the glutathione-sensitive moiety is located at the 3'-carbon of the sugar, especially when the modified nucleotide is the 3'-terminal nucleotide of the oligonucleotide. In some embodiments, the glutathione-sensitive moiety comprises a sulfonyl group. See, e.g., U.S. Provisional Patent Application No. 62 / 378,635, filed August 23, 2016, entitled Compositions Comprising Reversibly Modified Oligonucleotides and Uses Thereof.

[0122] Targeting Ligands In some embodiments, it is desirable to target the oligonucleotides (e.g., lipid-conjugated RNAi oligonucleotides) of the present disclosure to one or more cells or tissues of the central nervous system (CNS). Such a strategy can help to avoid undesirable effects in other organs or to avoid unnecessary loss of oligonucleotides to cells, tissues or organs that would not benefit from the oligonucleotide. Thus, in some embodiments, the lipid-conjugated RNAi oligonucleotides disclosed herein are modified to facilitate targeting and / or delivery to specific tissues, cells or organs (e.g., to facilitate delivery of the conjugate to the CNS). In some embodiments, the lipid-conjugated RNAi oligonucleotides comprise at least one nucleotide (e.g., 1, 2, 3, 4, 5, 6, or more nucleotides) conjugated to one or more targeting ligands.

[0123] In some embodiments, one or more (e.g., 1, 2, 3, 4, 5, or 6) nucleotides of the lipid-conjugated RNAi oligonucleotide disclosed herein are each conjugated to a separate targeting ligand. In some embodiments, one nucleotide of the lipid-conjugated RNAi oligonucleotide disclosed herein is conjugated to a separate targeting ligand. In some embodiments, 2-4 nucleotides of the lipid-conjugated RNAi oligonucleotide disclosed herein are each conjugated to a separate targeting ligand. In some embodiments, the targeting ligand is conjugated to 2-4 nucleotides at either end of the sense or antisense strand (e.g., the targeting ligand is conjugated to an overhang or extension of 2-4 nucleotides on the 5' or 3' end of the sense or antisense strand) such that the targeting ligand resembles a toothbrush bristles and the lipid-conjugated RNAi oligonucleotide resembles a toothbrush. For example, lipid-conjugated RNAi oligonucleotide can comprise a stem-loop at either the 5' or 3' end of sense strand, and 1, 2, 3 or 4 nucleotides of the stem loop can be individually conjugated to targeting ligand.In some embodiments, lipid-conjugated RNAi oligonucleotide provided by the present disclosure comprises a stem-loop at the 3' end of sense strand, and the stem-loop loop comprises a triloop or tetraloop, and the 3 or 4 nucleotides of the triloop or tetraloop are individually conjugated to targeting ligand respectfully.

[0124] GalNAc is a high affinity ligand for ASGPR, which is mainly expressed on the sinusoidal surface of hepatocytes and plays a major role in binding, internalization, and subsequent removal of circulating glycoproteins that contain terminal galactose or GalNAc residues (asialoglycoproteins).Conjugation of GalNAc moieties (either indirectly or directly) to the oligonucleotides of the present disclosure can be used to target these oligonucleotides to ASGPR expressed on cells.In some embodiments, the oligonucleotides of the present disclosure are conjugated with at least one or more GalNAc moieties, and the GalNAc moieties target the oligonucleotides to ASGPR expressed on human liver cells (e.g., human hepatocytes).In some embodiments, the GalNAc moieties target the oligonucleotides to the liver.

[0125] In some embodiments, the oligonucleotide of the present disclosure is directly or indirectly conjugated with monovalent GalNAc moiety.In some embodiments, the oligonucleotide is directly or indirectly conjugated with more than one monovalent GalNAc moiety (i.e., is conjugated with 2, 3 or 4 monovalent GalNAc moieties, typically is conjugated with 3 or 4 monovalent GalNAc moieties).In some embodiments, the oligonucleotide is conjugated with one or more divalent GalNAc, trivalent GalNAc or tetravalent GalNAc moieties.

[0126] In some embodiments, one or more (e.g., 1, 2, 3, 4, 5, or 6) nucleotides of the oligonucleotide are each conjugated to a GalNAc moiety. In some embodiments, 2-4 nucleotides of the tetraloop are each conjugated to a separate GalNAc. In some embodiments, 1-3 nucleotides of the triloop are each conjugated to a separate GalNAc. In some embodiments, the targeting ligand is conjugated to 2-4 nucleotides at both ends of the sense or antisense strand (e.g., the ligand is conjugated to an overhang or extension of 2-4 nucleotides on the 5' or 3' end of the sense or antisense strand) such that the GalNAc moieties resemble toothbrush bristles and the oligonucleotide resembles a toothbrush. In some embodiments, the GalNAc moiety is conjugated to a nucleotide of the sense strand. For example, 4 GalNAc moieties can be conjugated to nucleotides in the tetraloop of the sense strand, with each GalNAc moiety being conjugated to one nucleotide.

[0127] In some embodiments, the tetraloop is any combination of adenine and guanine nucleotides.

[0128] In some embodiments, the tetraloop (L) has a monovalent GalNAc moiety attached to any one or more guanine nucleotides of the tetraloop via any linker described herein, as shown below (X=heteroatom). [ka]

[0129] In some embodiments, the tetraloop (L) has a monovalent GalNAc attached to any one or more adenine nucleotides of the tetraloop via any linker described herein, as shown below (X=heteroatom). [ka]

[0130] In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a monovalent GalNAc attached to a guanine nucleotide referred to as [ademG-GalNAc] or 2'-aminodiethoxymethanol-guanine-GalNAc, as shown below. [ka]

[0131] In some embodiments, the lipid-conjugated RNAi oligonucleotides herein comprise a monovalent GalNAc moiety attached to an adenine nucleotide, referred to as [ademA-GalNAc] or 2'-aminodiethoxymethanol-adenine-GalNAc, as shown below. [ka]

[0132] An example of such a conjugation is shown below for a loop comprising the nucleotide sequence GAAA (L=linker, X=heteroatom) from 5' to 3'. Such a loop may be, for example, at positions 27-30 of the sense strand. In the formula: [ka] is used to describe the point of attachment to the oligonucleotide chain. [ka]

[0133] The targeting ligand can be attached to the nucleotide using a suitable method or chemistry (e.g., click chemistry). In some embodiments, the targeting ligand is conjugated to the nucleotide using a click linker. In some embodiments, the targeting ligand is conjugated to any one of the nucleotides of the oligonucleotides described herein using an acetal-based linker. Acetal-based linkers are disclosed, for example, in International Patent Application Publication No. 2016 / 100401. In some embodiments, the linker is a labile linker. However, in other embodiments, the linker is stable. An example is shown below for a loop containing the nucleotide GAAA from 5' to 3', with a GalNAc moiety attached to the nucleotide of the loop using an acetal linker. Such a loop can be, for example, at positions 27-30 of the sense strand. In the chemical formula: [ka] is the point of attachment to the oligonucleotide chain. [ka]

[0134] As mentioned above, the targeting ligand can be attached to the nucleotide using various suitable methods or chemical synthesis techniques (e.g., click chemistry). In some embodiments, the targeting ligand is conjugated to the nucleotide using a click linker. In some embodiments, the targeting ligand is conjugated to any one of the nucleotides of the oligonucleotides described herein using an acetal-based linker. Acetal-based linkers are disclosed, for example, in International Patent Application Publication No. 2016 / 100401. In some embodiments, the linker is an unstable linker. However, in other embodiments, the linker is a stable linker.

[0135] In some embodiments, a double-stranded extension (e.g., up to 3, 4, 5, or 6 bp in length) is provided between the targeting ligand (e.g., GalNAc moiety) and the lipid-conjugated RNAi oligonucleotide.In some embodiments, the lipid-conjugated RNAi oligonucleotide herein does not have GalNAc conjugated thereto.

[0136] Lipid conjugates In some embodiments, any of the lipid moieties described herein are conjugated to the nucleotide of the sense strand of the oligonucleotide.In some embodiments, the lipid moiety is conjugated to the terminal position of the oligonucleotide.In some embodiments, the lipid moiety is conjugated to the 5'-terminal nucleotide of the sense strand.In some embodiments, the lipid moiety is conjugated to the 3'-terminal nucleotide of the sense strand.

[0137] In some embodiments, the lipid moiety is conjugated to an internal nucleotide on the sense strand. An internal position is any nucleotide position other than the two terminal positions from each end of the sense strand. In some embodiments, the lipid moiety is conjugated to one or more internal positions of the sense strand. In some embodiments, the lipid moiety is conjugated to the 1st, 2nd, 3rd, 4th, 5th, 6th, 7th, 8th, 9th, 10th, 11th, 12th, 13th, 14th, 15th, 16th, 17th, 18th, 19th, or 20th position of the sense strand. In some embodiments, the lipid moiety is conjugated to position 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30, 31, 32, 33, 34, 35, or 36 of the sense strand. In some embodiments, the lipid moiety is conjugated to position 1 of the sense strand. In some embodiments, the lipid moiety is conjugated to position 7 of the sense strand. In some embodiments, the lipid moiety is conjugated to position 16 of the sense strand. In some embodiments, the lipid moiety is conjugated to position 20 of the sense strand. In some embodiments, the lipid moiety is conjugated to position 23 of the sense strand. In some embodiments, the lipid moiety is conjugated to position 28 of the sense strand. In some embodiments, the lipid moiety is conjugated to position 29 of the sense strand. In some embodiments, the lipid moiety is conjugated to position 30 of the sense strand.

[0138] In some embodiments, the lipid-conjugated RNAi oligonucleotide described herein comprises at least one oligonucleotide conjugated with one or more lipid moieties.In some embodiments, one or more lipid moieties are conjugated to the same nucleotide.In some embodiments, one or more lipid moieties are conjugated to different nucleotides.In some embodiments, one, two, three, four, five or six lipid moieties are conjugated to the oligonucleotide.

[0139] In some embodiments, the lipid moiety is a hydrocarbon chain. In some embodiments, the hydrocarbon chain is saturated. In some embodiments, the hydrocarbon chain is unsaturated. In some embodiments, the hydrocarbon chain is branched. In some embodiments, the hydrocarbon chain is linear. In some embodiments, the lipid moiety is a C8-C30 hydrocarbon chain. In some embodiments, the lipid moiety is C8:0, C10:0, C11:0, C12:0, C14:0, C16:0, C17:0, C18:0, C18:1, C18:2, C22:5, C22:0, C24:0, C26:0, C22:6, C24:1, diacyl C16:0, or diacyl C18:1.

[0140] In some embodiments, the lipid moiety is a C16 hydrocarbon chain.

[0141] In some embodiments, the lipid-conjugated RNAi oligonucleotides described herein comprise a nucleotide sequence and one or more targeting ligands, wherein the nucleotide sequence is represented by Formula II-a: [ka] or a pharma- ceutically acceptable salt thereof During the ceremony, B is a nucleobase or hydrogen; R 1 and R 2 are independently hydrogen, halogen, R A, -CN, -S(O)R, -S(O)2R, -Si(OR)2R, -Si(OR)R2, or -SiR3, or R on the same carbon 1 and R 2 together with their intervening atoms form a 3-7 membered saturated or partially unsaturated ring having 0-3 heteroatoms independently selected from nitrogen, oxygen, and sulfur; Each R A is independently 1-6 an optionally substituted group selected from aliphatic; phenyl; a 4-7 membered saturated or partially unsaturated heterocyclic ring having 1-2 heteroatoms independently selected from nitrogen, oxygen, and sulfur; and a 5-6 membered heteroaryl ring having 1-4 heteroatoms independently selected from nitrogen, oxygen, and sulfur; Each R is independently hydrogen, a suitable protecting group, or C 1-6 an optionally substituted group selected from aliphatic; phenyl; a 4-7 membered saturated or partially unsaturated heterocycle having 1-2 heteroatoms independently selected from nitrogen, oxygen, and sulfur; and a 5-6 membered heteroaryl ring having 1-4 heteroatoms independently selected from nitrogen, oxygen, and sulfur; or two R groups on the same atom together with their intervening atoms form a 4-7 membered saturated, partially unsaturated, or heteroaryl ring having 0-3 heteroatoms independently selected from nitrogen, oxygen, silicon, and sulfur; Each LC is a lipid-conjugated moiety, and each LC may independently be a saturated or unsaturated, linear or branched C 1-50 a lipid conjugate moiety comprising a hydrocarbon chain, wherein 0 to 10 methylene units of the hydrocarbon chain are independently replaced by -Cy-, -O-, -C(O)NR-, -NR-, -S-, -C(O)-, -C(O)O-, -S(O)-, -S(O)2-, -P(O)-OR-, -P(S)OR-; Each -Cy- is independently selected from phenylenyl; 8-10 membered bicyclic arylenyl; 4-7 membered saturated or partially unsaturated carbocyclylenyl; 4-11 membered saturated or partially unsaturated spirocarbocyclylenyl; 8-10 membered bicyclic saturated or partially unsaturated carbocyclylenyl; 4-7 membered saturated or partially unsaturated heterocyclylenyl having 1-3 heteroatoms independently selected from nitrogen, oxygen, and sulfur; 4-11 membered saturated or partially unsaturated heterocyclylenyl having 1-2 heteroatoms independently selected from nitrogen, oxygen, and sulfur. an optionally substituted bivalent ring selected from: a saturated or partially unsaturated spiroheterocyclylenyl; an 8-10 membered bicyclic saturated or partially unsaturated heterocyclylenyl having 1-2 heteroatoms independently selected from nitrogen, oxygen, and sulfur; a 5-6 membered heteroarylenyl having 1-4 heteroatoms independently selected from nitrogen, oxygen, and sulfur, or an 8-10 membered bicyclic heteroarylenyl having 1-5 heteroatoms independently selected from nitrogen, oxygen, or sulfur; n is 1 to 10; L is a covalent bond or a divalent saturated or unsaturated, linear or branched C 1-50 a hydrocarbon chain, wherein 0 to 10 methylene units of the hydrocarbon chain are independently selected from the group consisting of -Cy-, -O-, -C(O)NR-, -NR-, -S-, -C(O)-, -C(O)O-, S(O)-, -S(O)2-, -P(O)OR-, -P(S)OR-, -V 1 CR 2 W 1 -or [ka] is replaced by m is 1 to 50; X 1 , V 1 , and W 1 are independently -C(R)2-, -OR, -O-, -S-, -Se-, or -NR-; Y is hydrogen, a suitable hydroxyl protecting group, [ka] and R 3 is hydrogen, a suitable protecting group, a suitable prodrug, or C 1-6 an optionally substituted group selected from a 4-7 membered saturated or partially unsaturated heterocyclic ring having 1-2 heteroatoms independently selected from aliphatic, phenyl, nitrogen, oxygen, and sulfur, and a 5-6 membered heteroaryl ring having 1-4 heteroatoms independently selected from nitrogen, oxygen, and sulfur; X 2 is O, S, or NR; X 3 is -O-, -S-, -BH2-, or a covalent bond, Y 1 is a linking group attached to the 2' or 3' end of a nucleoside, nucleotide, or oligonucleotide, Y 2 is hydrogen, a suitable protecting group, a phosphoramidite analog; an internucleotide linkage attached to the 5' end of a nucleoside, nucleotide, or oligonucleotide, or a linkage attached to a solid support; Z comprises one or more nucleosides (nucleic acids) conjugated to one or more targeting ligands, represented by -O-, -S-, -NR-, or -CR2-.

[0142] In some embodiments, the lipid moiety is conjugated to the oligonucleotide via a linker.

[0143] In some embodiments, the lipid-conjugated oligonucleotide has the formula II-b or II-c: [ka] or a pharma- ceutically acceptable salt thereof, L 1 is a covalent bond, monovalent or divalent, saturated or unsaturated, linear or branched C 1-50a hydrocarbon chain, 0 to 10 methylene units of which are independently -Cy-, -O-, -C(O)NR-, -NR-, -S-, -C(O)-, -C(O)O-, -S(O)-, -S(O)2-, -P(O)OR-, -P(S)OR-, or [ka] has been replaced by R 4 is hydrogen, R A or a suitable amine protecting group, R 5 is adamantyl or saturated or unsaturated, linear or branched C 1-50 It is a hydrocarbon chain, in which 0 to 10 methylene units of the hydrocarbon chain are independently replaced by -O-, -C(O)NR-, -NR-, -S-, -C(O)-, -C(O)O-, -S(O)-, -S(O)2-, -P(O)OR-, or -P(S)OR.

[0144] In some embodiments of the lipid-conjugated RNAi oligonucleotide, R 5 is selected from the following: [ka]

[0145] In certain embodiments of the lipid-conjugated RNAi oligonucleotides, R 5 is selected from the following: [ka]

[0146] In some embodiments, R 5 teeth [ka] It is.

[0147] In some embodiments, R5 teeth [ka] It is.

[0148] In some embodiments, the lipid-conjugated RNAi oligonucleotide has the formula II-Ib or II-Ic: [ka] or a pharma- ceutically acceptable salt thereof, B is a nucleobase or hydrogen; m is 1 to 50; X 1 is -O- or -S-; Y is hydrogen, [ka] and R 3 is hydrogen or a suitable protecting group, X 2 is O or S, X 3 is -O-, -S-, or a covalent bond; Y 1 is a linking group attached to the 2' or 3' end of a nucleoside, nucleotide, or oligonucleotide, Y 2 is hydrogen, a phosphoramidite analog; an internucleotide linkage attached to the 5' end of a nucleoside, nucleotide, or oligonucleotide, or a linkage attached to a solid support; R 5 is adamantyl or saturated or unsaturated, linear or branched C 1-50 a hydrocarbon chain in which 0 to 10 methylene units are independently replaced by -O-, -C(O)NR-, -NR-, -S-, -C(O)-, -C(O)O-, -S(O)-, -S(O)2-, -P(O)OR-, or -P(S)OR-; R is hydrogen, a suitable protecting group, or C1-6 aliphatic; phenyl; a 4-7 membered saturated or partially unsaturated heterocycle having 1-2 heteroatoms independently selected from nitrogen, oxygen, and sulfur; and a 5-6 membered heteroaryl ring having 1-4 heteroatoms independently selected from nitrogen, oxygen, and sulfur, which are optionally substituted groups selected from the group consisting of:

[0149] In some embodiments, the lipid is selected from the following: [ka]

[0150] In some embodiments, R 5 teeth [ka] It is.

[0151] In some embodiments, the oligonucleotide of the oligonucleotide-ligand conjugate is a double-stranded molecule. In some embodiments, the oligonucleotide is an RNAi molecule. In some embodiments, the double-stranded oligonucleotide comprises a stem-loop. In some embodiments, the stem-loop is shown as S1-L-S2, where S1 is complementary to S2, and L forms a loop between S1 and S2. In some embodiments, the ligand is conjugated to any of the nucleotides in the loop of the stem-loop. In some embodiments, the ligand is conjugated to any of the nucleotides in the stem of the stem-loop. In some embodiments, the ligand is conjugated to the first nucleotide 5' to 3' in the loop. In some embodiments, the ligand is conjugated to the second nucleotide 5' to 3' in the loop. In some embodiments, the ligand is conjugated to the third nucleotide 5' to 3' in the loop. In some embodiments, the ligand is conjugated to the fourth nucleotide 5' to 3' in the loop. In some embodiments, the ligand is conjugated to 1, 2, 3, or 4 of the nucleotides in the loop. In some embodiments, the ligand is conjugated to three of the nucleotides in the stem loop.

[0152] In some embodiments, the stem loop is 16 nucleotides in length. In some embodiments, the ligand is conjugated to the third nucleotide 5' to 3' of the stem loop. In some embodiments, the ligand is conjugated to the eighth nucleotide 5' to 3' of the stem loop. In some embodiments, the ligand is conjugated to the ninth nucleotide 5' to 3' of the stem loop. In some embodiments, the ligand is conjugated to the tenth nucleotide 5' to 3' of the stem loop. In some embodiments, the ligand is conjugated to 1, 2, 3, or 4 of the nucleotides in the stem loop. In some embodiments, the ligand is conjugated to 3 of the nucleotides in the stem loop.

[0153] In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a 20 nucleotide sense strand having positions numbered 1 to 20 from 5' to 3'. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a lipid conjugated to position 1 of the 20 nucleotide sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a lipid conjugated to position 7 of the 20 nucleotide sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a 36 nucleotide sense strand having positions numbered 1 to 36 from 5' to 3'. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a lipid conjugated to position 1 of the 36 nucleotide sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a lipid conjugated to position 7 of the 36 nucleotide sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a lipid conjugated to position 16 of the 36 nucleotide sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a lipid conjugated to position 20 of the 36 nucleotide sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a lipid conjugated to position 23 of the 36 nucleotide sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a lipid conjugated to position 28 of the 36 nucleotide sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a lipid conjugated to position 29 of the 36 nucleotide sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a lipid conjugated to position 30 of the 36 nucleotide sense strand.

[0154] Exemplary Oligonucleotides In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an oligonucleotide conjugated to a fatty acid. In some embodiments, the fatty acid is a saturated fatty acid. In some embodiments, the fatty acid is an unsaturated fatty acid. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a nucleotide conjugated to a lipid. In some embodiments, the lipid is a carbon chain. In some embodiments, the carbon chain is saturated. In some embodiments, the carbon chain is unsaturated. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a nucleotide conjugated to a 16-carbon (C16) lipid. In some embodiments, the C16 lipid comprises at least one double bond.

[0155] In some embodiments, the oligonucleotide of the lipid-conjugated RNAi oligonucleotide is conjugated to a C16 lipid as shown below. [ka]

[0156] In some embodiments, lipid-conjugated RNAi oligonucleotide comprises a sense strand that is 20 nucleotides long.In some embodiments, lipid-conjugated RNAi oligonucleotide comprises an antisense strand that is 22 nucleotides long.In some embodiments, the sense strand is 20 nucleotides long, and the antisense strand is 22 nucleotides long.In some embodiments, lipid-conjugated RNAi oligonucleotide comprises a sense strand that is 20 nucleotides long, and an antisense strand that is 22 nucleotides long, and the sense strand and the antisense strand form a double-stranded region of 20 base pairs.

[0157] In some embodiments, the 3' end of the sense strand is blunt-ended. In some embodiments, the 5' end of the antisense strand is blunt-ended. In some embodiments, the 3' end of the antisense strand comprises an overhang. In some embodiments, the overhang is 2 nucleotides in length. In some embodiments, the overhang is GG.

[0158] In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises one or more 2' modifications. In some embodiments, the 2' modifications are selected from 2'-fluoro and 2'-methyl.

[0159] In some embodiments, lipid-conjugated RNAi oligonucleotides comprise antisense strands and sense strands as described herein, and the sense strand comprises at least one hydrocarbon chain conjugated to the 5'-terminal nucleotide of the sense strand.In some embodiments, lipid-conjugated RNAi oligonucleotides comprise antisense strands and sense strands as described herein, and the sense strand comprises at least one C16 hydrocarbon chain conjugated to the 5'-terminal nucleotide of the sense strand.

[0160] In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand of 22-24 nucleotides as described herein, and a sense strand of 20-22 nucleotides, wherein the antisense strand and the sense strand form a double-stranded region of 20-22 base pairs, and the sense strand comprises at least one hydrocarbon chain conjugated to the 5'-terminal nucleotide of the sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand of 22-24 nucleotides as described herein, and a sense strand of 20-22 nucleotides, wherein the antisense strand and the sense strand form a double-stranded region of 20-22 base pairs, and the sense strand comprises at least one C16 hydrocarbon chain conjugated to the 5'-terminal nucleotide of the sense strand.

[0161] In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand of 22-24 nucleotides as described herein, and a sense strand of 20-22 nucleotides, wherein the antisense strand and the sense strand form an asymmetric duplex region of 20-22 base pairs with an overhang at the 3' end of the antisense strand and a blunt end at the 3' end of the oligonucleotide, and the sense strand comprises at least one hydrocarbon chain conjugated to the 5'-terminal nucleotide of the sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand of 22-24 nucleotides as described herein, and a sense strand of 20-22 nucleotides, wherein the antisense strand and the sense strand form an asymmetric duplex region of 20-22 base pairs with an overhang at the 3' end of the antisense strand and a blunt end at the 3' end of the oligonucleotide, and the sense strand comprises at least one C16 hydrocarbon chain conjugated to the 5'-terminal nucleotide of the sense strand.

[0162] In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand and a sense strand as described herein, wherein the sense strand comprises at least one hydrocarbon chain conjugated to an internal nucleotide (e.g., the nucleotide at position 7) of the sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand and a sense strand as described herein, wherein the sense strand comprises at least one C16 hydrocarbon chain conjugated to an internal nucleotide (e.g., the nucleotide at position 7) of the sense strand. In some embodiments, not all internal nucleotides are suitable for lipid conjugation for delivery of RNAi oligonucleotides to neurons of the CNS. For example, in some embodiments, conjugation at positions 9 or 10 of the sense strand numbered from 5' to 3' is not suitable for delivery of RNAi oligonucleotides to neurons of the CNS. In some embodiments, lipid conjugation at internal positions of the sense strand numbered from 5' to 3' excludes positions 9 and 10.

[0163] In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand of 22-24 nucleotides as described herein, and a sense strand of 20-22 nucleotides, wherein the antisense strand and the sense strand form a double-stranded region of 20-22 base pairs, and the sense strand comprises at least one hydrocarbon chain conjugated to an internal nucleotide (e.g., the 7th nucleotide) of the sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand of 22-24 nucleotides as described herein, and a sense strand of 20-22 nucleotides, wherein the antisense strand and the sense strand form a double-stranded region of 20-22 base pairs, and the sense strand comprises at least one C16 hydrocarbon chain conjugated to an internal nucleotide (e.g., the 7th nucleotide) of the sense strand.

[0164] In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand of 22-24 nucleotides as described herein, and a sense strand of 20-22 nucleotides, where the antisense strand and the sense strand form an asymmetric duplex region of 20-22 base pairs with an overhang at the 3' end of the antisense strand and a blunt end at the 3' end of the oligonucleotide, and the sense strand comprises at least one hydrocarbon chain conjugated to an internal nucleotide (e.g., the 7th nucleotide) of the sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand of 22-24 nucleotides as described herein, and a sense strand of 20-22 nucleotides, where the antisense strand and the sense strand form an asymmetric duplex region of 20-22 base pairs with an overhang at the 3' end of the antisense strand and a blunt end at the 3' end of the oligonucleotide, and the sense strand comprises at least one C16 hydrocarbon chain conjugated to an internal nucleotide (e.g., the 7th nucleotide) of the sense strand.

[0165] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'-[ademX-Ls][mX][mX][mX][mX][mX][mX][fX][fX][fX][fX][mX][mX][mX][mX][mX][mX][mXs][mXs][mX]-3' This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to an adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to an adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to an adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to an adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, [ademX-Ls] is a lipid attached to a nucleotide phosphorothioate linked to an adjacent nucleotide, and [ademX-L] is a lipid attached to a nucleotide.

[0166] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'-[mXs][mX][mX][mX][mX][mX][ademX-L][fX][fX][fX][fX][mX][mX][mX][mX][mX][mX][mXs][mXs][mX]-3' This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to the adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to the adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to the adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to the adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, and [ademX-L] is a lipid attached to the nucleotide.

[0167] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'[mXs][mX][mX][mX][mX][mX][mX][fX][fX][fX][fX][mX][mX][mX][mX][mX][mX][mXs][mXs][ademX-L]-3' This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to the adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to the adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to the adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to the adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, and [ademX-L] is a lipid attached to the nucleotide.

[0168] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'-[ademX-C16s][mX][mX][mX][mX][mX][mX][fX][fX][fX][fX][mX][mX][mX][mX][mX][mX][mXs][mXs][mX]-3' This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to the adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to the adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to the adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to the adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, [ademX-C16s] is a C16 lipid attached to a nucleotide phosphorothioate linked to the adjacent nucleotide, and [ademX-C16] is a C16 lipid attached to a nucleotide.

[0169] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'-[mXs][mX][mX][mX][mX][mX][ademX-C16][fX][fX][fX][fX][mX][mX][mX][mX][mX][mX][mXs][mXs][mX]-3' This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to the adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to the adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to the adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to the adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, and [ademX-C16] is a C16 lipid attached to the nucleotide.

[0170] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'-[mXs][mX][mX][mX][mX][mX][mX][fX][fX][fX][fX][mX][mX][mX][mX][mX][mX][mXs][mXs][ademX-C16]-3' This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to the adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to the adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to the adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to the adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, and [ademX-C16] is a C16 lipid attached to the nucleotide.

[0171] In some embodiments, lipid-conjugated RNAi oligonucleotide comprises a sense strand that is 36 nucleotides long.In some embodiments, lipid-conjugated RNAi oligonucleotide comprises an antisense strand that is 22 nucleotides long.In some embodiments, the sense strand is 36 nucleotides long, and the antisense strand is 22 nucleotides long.In some embodiments, lipid-conjugated RNAi oligonucleotide comprises a sense strand that is 36 nucleotides long, and an antisense strand that is 22 nucleotides long, and the sense strand and the antisense strand form a double-stranded region of 20 base pairs.

[0172] In some embodiments, the 3' end of the sense strand comprises a stem-loop. In some embodiments, the 3' end of the sense strand comprises a tetraloop. In some embodiments, the 3' end of the sense strand comprises a stem-loop comprising the sequence of SEQ ID NO: 21. In some embodiments, the 3' end of the antisense strand comprises an overhang. In some embodiments, the overhang is 2 nucleotides in length. In some embodiments, the overhang is GG.

[0173] In some embodiments, lipid-conjugated RNAi oligonucleotides comprising a sense strand comprising a stem-loop at its 3' end and at least one hydrocarbon chain conjugated to the nucleotides of the sense strand reduce the expression of neuronal mRNA in the spinal cord. In some embodiments, lipid-conjugated RNAi oligonucleotides comprising a sense strand comprising a stem-loop at its 3' end and at least one hydrocarbon chain conjugated to the nucleotides of the sense strand reduce the expression of neuronal mRNA in the lumbar spinal cord. In some embodiments, lipid-conjugated RNAi oligonucleotides comprising a sense strand comprising a stem-loop at its 3' end and at least one hydrocarbon chain conjugated to the nucleotides of the sense strand reduce the expression of neuronal mRNA in the thoracic spinal cord. In some embodiments, lipid-conjugated RNAi oligonucleotides comprising a sense strand comprising a stem-loop at its 3' end and at least one hydrocarbon chain conjugated to the nucleotides of the sense strand reduce the expression of neuronal mRNA in the cervical spinal cord.

[0174] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing the expression of neuronal mRNA in the spinal cord comprises a sense strand comprising a stem-loop at its 3' end and at least one hydrocarbon chain conjugated to the nucleotides of the sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing the expression of neuronal mRNA in the lumbar spinal cord comprises a sense strand comprising a stem-loop at its 3' end and at least one hydrocarbon chain conjugated to the nucleotides of the sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing the expression of neuronal mRNA in the thoracic spinal cord comprises a sense strand comprising a stem-loop at its 3' end and at least one hydrocarbon chain conjugated to the nucleotides of the sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing the expression of neuronal mRNA in the cervical spinal cord comprises a sense strand comprising a stem-loop at its 3' end and at least one hydrocarbon chain conjugated to the nucleotides of the sense strand.

[0175] In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a sense strand comprising a stem-loop at its 3' end and at least one hydrocarbon chain conjugated to the 5'-terminal nucleotide of the sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a sense strand comprising a stem-loop at its 3' end and at least one hydrocarbon chain conjugated to the nucleotide of the sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a sense strand comprising a stem-loop at its 3' end and at least one C16 hydrocarbon chain conjugated to the 5'-terminal nucleotide of the sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises a sense strand comprising a tetraloop and at least one C16 hydrocarbon chain conjugated to the nucleotide of the tetraloop.

[0176] In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand of 22-24 nucleotides as described herein, and a sense strand of 20-36 nucleotides, where the antisense strand and the sense strand form a double-stranded region of 20-22 base pairs, and the sense strand comprises at least one C16 hydrocarbon chain conjugated to the first nucleotide (position 1, 5' to 3') of the sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand of 22-24 nucleotides as described herein, and a sense strand of 20-36 nucleotides, where the antisense strand and the sense strand form a double-stranded region of 20-22 base pairs, and the sense strand comprises at least one C16 hydrocarbon chain conjugated to the seventh nucleotide (position 7, 5' to 3') of the sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand of 22-24 nucleotides as described herein, and a sense strand of 20-36 nucleotides, wherein the antisense strand and the sense strand form a double-stranded region of 20-22 base pairs, and the sense strand comprises at least one C16 hydrocarbon chain conjugated to the 16th nucleotide (position 16, 5' to 3') of the sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand of 22-24 nucleotides as described herein, and a sense strand of 20-36 nucleotides, wherein the antisense strand and the sense strand form a double-stranded region of 20-22 base pairs, and the sense strand comprises at least one C16 hydrocarbon chain conjugated to the 20th nucleotide (position 20, 5' to 3') of the sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand of 22-24 nucleotides as described herein, and a sense strand of 20-36 nucleotides, wherein the antisense strand and the sense strand form a double-stranded region of 20-22 base pairs, and the sense strand comprises at least one C16 hydrocarbon chain conjugated to the 23rd nucleotide (position 23 from 5' to 3') of the sense strand.In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand of 22-24 nucleotides as described herein, and a sense strand of 20-36 nucleotides, wherein the antisense strand and the sense strand form a double-stranded region of 20-22 base pairs, and the sense strand comprises at least one C16 hydrocarbon chain conjugated to the 28th nucleotide (position 28, 5' to 3') of the sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand of 22-24 nucleotides as described herein, and a sense strand of 20-36 nucleotides, wherein the antisense strand and the sense strand form a double-stranded region of 20-22 base pairs, and the sense strand comprises at least one C16 hydrocarbon chain conjugated to the 29th nucleotide (position 29, 5' to 3') of the sense strand. In some embodiments, the lipid-conjugated RNAi oligonucleotide comprises an antisense strand of 22-24 nucleotides as described herein, and a sense strand of 20-36 nucleotides, wherein the antisense strand and the sense strand form a double-stranded region of 20-22 base pairs, and the sense strand comprises at least one C16 hydrocarbon chain conjugated to the 30th nucleotide (position 30 from 5' to 3') of the sense strand.

[0177] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'-[ademX-Ls][mX][mX][mX][mX][mX][mX][fX][fX][fX][fX][mX][mX][mX][mX][mX][m X][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX]-3' This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to an adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to an adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to an adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to an adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, [ademX-Ls] is a lipid attached to a nucleotide phosphorothioate linked to an adjacent nucleotide, and [ademX-L] is a lipid attached to a nucleotide.

[0178] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'-[mXs][mX][mX][mX][mX][mX][ademX-L][fX][fX][fX][fX][mX][mX][mX][mX][mX][m [mX] This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to an adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to an adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to an adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to an adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, [ademX-Ls] is a lipid attached to a nucleotide phosphorothioate linked to an adjacent nucleotide, and [ademX-L] is a lipid attached to a nucleotide.

[0179] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'-[mXs][mX][mX][mX][mX][mX][mX][fX][fX][fX][fX][mX][mX][mX][mX][ademX-L][m X][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX]-3' This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to an adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to an adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to an adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to an adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, [ademX-Ls] is a lipid attached to a nucleotide phosphorothioate linked to an adjacent nucleotide, and [ademX-L] is a lipid attached to a nucleotide.

[0180] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'-[mXs][mX][mX][mX][mX][mX][mX][fX][fX][fX][fX][mX][mX][mX][mX][mX][mX][mX ][mX][ademX-L][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX]-3' This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to an adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to an adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to an adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to an adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, [ademX-Ls] is a lipid attached to a nucleotide phosphorothioate linked to an adjacent nucleotide, and [ademX-L] is a lipid attached to a nucleotide.

[0181] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'-[mXs][mX][mX][mX][mX][mX][mX][fX][fX][fX][fX][mX][mX][mX][mX][mX][mX][mX ][mX][mX][mX][mX][ademX-L][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX]-3' This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to an adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to an adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to an adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to an adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, [ademX-Ls] is a lipid attached to a nucleotide phosphorothioate linked to an adjacent nucleotide, and [ademX-L] is a lipid attached to a nucleotide.

[0182] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'-[mXs][mX][mX][mX][mX][mX][mX][fX][fX][fX][fX][mX][mX][mX][mX][mX][mX][mX ][mX][mX][mX][mX][mX][mX][mX][mX][mX][ademX-L][mX][mX][mX][mX][mX][mX][mX][mX]-3' This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to an adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to an adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to an adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to an adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, [ademX-Ls] is a lipid attached to a nucleotide phosphorothioate linked to an adjacent nucleotide, and [ademX-L] is a lipid attached to a nucleotide.

[0183] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'-[mXs][mX][mX][mX][mX][mX][mX][fX][fX][fX][fX][mX][mX][mX][mX][mX][mX][mX ][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][ademX-L][mX][mX][mX][mX][mX][mX][mX]-3' This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to an adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to an adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to an adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to an adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, [ademX-Ls] is a lipid attached to a nucleotide phosphorothioate linked to an adjacent nucleotide, and [ademX-L] is a lipid attached to a nucleotide.

[0184] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'-[mXs][mX][mX][mX][mX][mX][mX][fX][fX][fX][fX][mX][mX][mX][mX][mX][mX][mX ][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][ademX-L][mX][mX][mX][mX][mX][mX]-3' This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to an adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to an adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to an adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to an adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, [ademX-Ls] is a lipid attached to a nucleotide phosphorothioate linked to an adjacent nucleotide, and [ademX-L] is a lipid attached to a nucleotide.

[0185] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'-[ademX-C16s][mX][mX][mX][mX][mX][mX][fX][fX][fX][fX][mX][mX][mX][mX][mX][ mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX]-3' This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to the adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to the adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to the adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to the adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, and [ademX-C16s] is a C16 lipid attached to a nucleotide phosphorothioate linked to the adjacent nucleotide.

[0186] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'-[mXs][mX][mX][mX][mX][mX][ademX-C16][fX][fX][fX][fX][mX][mX][mX][mX][mX][ mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX]-3' This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to the adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to the adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to the adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to the adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, and [ademX-C16] is a C16 lipid attached to the nucleotide.

[0187] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'-[mXs][mX][mX][mX][mX][mX][mX][fX][fX][fX][fX][mX][mX][mX][mX][ademX-C16][ mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX]-3' This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to the adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to the adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to the adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to the adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, and [ademX-C16] is a C16 lipid attached to the nucleotide.

[0188] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'-[mXs][mX][mX][mX][mX][mX][mX][fX][fX][fX][fX][mX][mX][mX][mX][mX][mX][mX] [mX][ademX-C16][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX]-3' This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to the adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to the adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to the adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to the adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, and [ademX-C16] is a C16 lipid attached to the nucleotide.

[0189] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'-[mXs][mX][mX][mX][mX][mX][mX][fX][fX][fX][fX][mX][mX][mX][mX][mX][mX][mX] [mX][mX][mX][mX][ademX-C16][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][mX]-3' This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to the adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to the adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to the adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to the adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, and [ademX-C16] is a C16 lipid attached to the nucleotide.

[0190] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'-[mXs][mX][mX][mX][mX][mX][mX][fX][fX][fX][fX][mX][mX][mX][mX][mX][mX][mX] [mX][mX][mX][mX][mX][mX][mX][mX][mX][ademX-C16][mX][mX][mX][mX][mX][mX][mX][mX]-3' This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to the adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to the adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to the adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to the adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, and [ademX-C16] is a C16 lipid attached to the nucleotide.

[0191] In some embodiments, the lipid-conjugated RNAi oligonucleotide for reducing expression of a neuronal target gene comprises the following modification pattern: Sense strand: 5'-[mXs][mX][mX][mX][mX][mX][mX][fX][fX][fX][fX][mX][mX][mX][mX][mX][mX][mX] [mX][mX][mX][mX][mX][mX][mX][mX][mX][mX][ademX-C16][mX][mX][mX][mX][mX][mX][mX]-3' This hybridizes to: Antisense strand: 5'-[Mephosphonate-4O-mXs][fXs][fXs][fX][fX][mX][fX][mX][fX][mX][mX][fX][mX][mX][mX][mX][mX][mXs][mXs][mXs][mX]-3' In the formula, [mXs] is a 2'-O-methyl modified nucleotide phosphorothioate linked to the adjacent nucleotide, [fXs] is a 2'-fluoro modified nucleotide phosphorothioate linked to the adjacent nucleotide, [mX] is a 2'-O-methyl modified nucleotide phosphodiester linked to the adjacent nucleotide, [fX] is a 2'-fluoro modified nucleotide phosphodiester linked to the adjacent nucleotide, [Mephosphonate-4O-mX] is a 4'-O-monomethylphosphonate-2'-O-methyl modified nucleotide, and [ademX-C16] is a C16 lipid attached to the nucleotide.

[0192] General Methods for Providing Nucleic Acids and Their Analogues The nucleic acid and its analogs comprising lipid conjugates described herein can be produced using various synthesis methods known in the art, including standard phosphoramidite methods.Any phosphoramidite synthesis method can be used to synthesize the nucleic acid provided in the present disclosure.In certain embodiments, phosphoramidites are used in solid-phase synthesis to obtain reactive intermediate phosphite compounds, which are then oxidized using known methods to produce phosphonate-modified oligonucleotides, typically with phosphodiester or phosphorothioate internucleotide linkages.The oligonucleotide synthesis of the present disclosure is carried out in either 5' to 3' or 3' to 5' direction, using known methods in the art.

[0193] In certain embodiments, a method for synthesizing a nucleic acid is provided, comprising: (a) attaching a nucleoside or analog thereof to a solid support via a covalent bond; (b) coupling a nucleoside phosphoramidite or analog thereof to a reactive hydroxyl group on the nucleoside or analog of step (a) to form an internucleotide bond therebetween, wherein any uncoupled nucleosides or analogs on the solid support are capped with a capping reagent; (c) oxidizing the internucleotide bond with an oxidizing agent; and (d) iteratively repeating steps (b)-(c) with a subsequent nucleoside phosphoramidite or analog thereof to form a nucleic acid or analog thereof, wherein at least one of the nucleoside or analog thereof of step (a), the nucleoside phosphoramidite or analog thereof of step (b), or the subsequent nucleoside phosphoramidite or analog thereof of step (d) comprises a lipid-conjugated moiety as described herein. Typically, the coupling, capping / oxidation, and optionally deprotection steps are repeated until the oligonucleotide reaches the desired length and / or sequence, and is then cleaved from the solid support. In certain embodiments, oligonucleotides are prepared that contain 1-3 nucleic acids or analogs thereof that contain lipid-conjugated units on a tetraloop.

[0194] In Scheme A below, certain protecting groups, leaving groups, or transformation conditions are depicted, however, one of skill in the art will understand that other protecting groups, leaving groups, and transformation conditions are suitable and contemplated. Certain reactive functional groups envisioned in the genus of Scheme A (e.g., -N(H)-, -OH, etc.) that require additional protecting group strategies are also contemplated and will be understood by those of skill in the art. Such groups and transformations are described in March's Advanced Organic Chemistry: Reactions, Mechanisms, and Structure, M.B. Smith and J. March, 5 thEdition, John Wiley & Sons, 2001, COMPREHENSIVE ORGANIC TRANSFORMATIONS, (RCLarock, 2 nd Edition, John Wiley & Sons, 1999), and PROTECTING GROUPS IN ORGANIC SYNTHESIS, (TW Greene and PG M Huts, 3 rd , edition, John Wiley & Sons, 1999), each of which is incorporated herein by reference in its entirety.

[0195] In certain embodiments, the nucleic acids and analogs thereof of the present disclosure are generally prepared according to Scheme A, Scheme A1, and Scheme B, as described below. Scheme A: Synthesis of ligand-conjugated oligonucleotides of the present disclosure [ka] Scheme A1: Synthesis of lipid-conjugated oligonucleotides of the present disclosure [ka]

[0196] As shown in Scheme A and Scheme A1 above, the nucleic acid of formula I-1 or its analogue is conjugated with one or more ligands / lipophilic compounds to form a compound of formula I or Ia that includes one or more ligands / lipid conjugates.Typically, the conjugation is carried out in series or in parallel via esterification or amidation reaction between the nucleic acid of formula I-1 or I-1a or its analogue and one or more adamantyl compounds and / or lipophilic compounds (e.g., fatty acids) by techniques known in the art.The nucleic acid of formula I or Ia or its analogue can then be deprotected to form a compound of formula I-2 or I-2a, and protected with a suitable hydroxyl protecting group (e.g., DMTr) to form a compound of formula I-3 or I-3a. In one embodiment, the nucleic acid-ligand conjugate of formula I-3 or I-3a can be covalently attached (e.g., via a succinic acid linking group) to a solid support to form a solid support nucleic acid-ligand conjugate of formula I-4 or I-4a or its analogue, which contains one or more adamantyl and / or lipid conjugates. In another embodiment, the nucleic acid-ligand conjugate of formula I-3 or I-3a can be reacted with a P(III)-forming reagent (e.g., 2-cyanoethyl N,N-di-isopropylchlorophosphoramidite) to form a nucleic acid of formula I-5 or I-5a or its analogue, which contains a P(III) group. The nucleic acid-ligand conjugate of formula I-5 or I-5a or its analogue can then be subjected to oligomerization forming conditions, which are preformed using known and commonly applied processes for preparing oligonucleotides in the art. For example, the compound of formula I-5 or I-5a is attached to a solid-supported nucleic acid-ligand conjugate or its analogue, which has a 5'-hydroxyl group. Further steps may include one or more of deprotection, coupling, phosphite oxidation, and / or cleavage from the solid support to provide oligonucleotides of various nucleotide lengths comprising one or more lipid-conjugated nucleotide units represented by the compound of formula II-1 or II-Ia. B, E, L, Ligand, LC, n, PG 1 , P.G. 2 , P.G. 4, R 1 , R 2 , R 3 , X, X 1 , X 2 , X 3 Each of Z is as defined above and described herein.

[0197] Scheme B: Post-synthetic lipid conjugation of oligonucleotides of the present disclosure. [ka]

[0198] As shown in Scheme B above, the nucleic acid of formula I-1 or its analogue can be deprotected to form a compound of formula I-6, protected with a suitable hydroxyl protecting group (e.g., DMTr) to form a compound of formula I-7, and reacted with a P(III)-forming reagent (e.g., 2-cyanoethyl N,N-di-isopropylchlorophosphoramidite) to form a nucleic acid of formula I-8 or its analogue containing a P(III) group. The nucleic acid of formula I-8 or its analogue can then be subjected to preformed oligomerization conditions using known and commonly applied processes for preparing oligonucleotides in the art. For example, the compound of formula I-8 is coupled to a solid-supported nucleic acid or its analogue bearing a 5'-hydroxyl group. Further steps can include one or more of deprotection, coupling, phosphite oxidation, and / or cleavage from the solid support to provide oligonucleotides of various nucleotide lengths, represented by the compound of formula II-2. The oligonucleotide of formula II-2 can then be conjugated with one or more ligands, such as adamantyl, or lipophilic compounds (e.g., fatty acids) to form a compound of formula II-1 containing one or more ligand conjugates. Typically, the conjugation is carried out in series or in parallel via esterification or amidation reaction between the nucleic acid of formula II-2 or its analog and one or more adamantyl compounds or fatty acids by techniques known in the art. B, E, L, ligand, LC, n, PG 1 , P.G.2 , P.G. 4 , R 1 , R 2 , R 3 , X, X 1 , X 2 , X 3 Each of Z is as defined above and described herein.

[0199] In certain embodiments, the nucleic acids and analogs thereof of the present disclosure are prepared according to Scheme C and Scheme D described below. Scheme C: Synthesis of lipid-conjugated oligonucleotides of the present disclosure. [ka]

[0200] As depicted in Scheme C above, the nucleic acid of formula C1 or its analogue is protected to form a compound of formula C2. The nucleic acid of formula C2 or its analogue is then alkylated (e.g., using DMSO and acetic acid via Pummerer rearrangement) to form a monothioacetal compound of formula C3. The nucleic acid of formula C3 or its analogue is then combined with C4 under appropriate conditions (e.g., mild oxidizing conditions) to form a nucleic acid of formula C5 or its analogue. The nucleic acid of formula C5 or its analogue can then be deprotected to form a compound of formula C6, which can be combined with a ligand of formula C7 (adamantyl or a lipophilic compound (e.g., fatty acid)) under appropriate amide forming conditions (e.g., HATU, DIPEA) to form a nucleic acid-ligand conjugate of formula Ib or its analogue, including lipid conjugates of the present disclosure. The nucleic acid-ligand conjugate of formula Ib or its analogue can then be deprotected to form a compound of formula C8, which can then be protected with a suitable hydroxyl protecting group (e.g., DMTr) to form a compound of formula C9. In one embodiment, the nucleic acid of formula C9 or its analogue can be covalently attached (e.g., via a succinic acid linking group) to a solid support to form a solid support nucleic acid-ligand conjugate of formula C10 or its analogue, which contains the ligand conjugate (adamantyl or lipid moiety) of the present disclosure. In another embodiment, the nucleic acid-ligand conjugate of formula C9 or its analogue can be reacted with a P(III)-forming reagent (e.g., 2-cyanoethyl N,N-di-isopropylchlorophosphoramidite) to form a nucleic acid-ligand conjugate of formula C11 or its analogue, which contains a P(III) group. The nucleic acid-ligand conjugate of formula C11 or its analogue can then be subjected to oligomerization forming conditions, which are preformed using known and commonly applied processes for preparing oligonucleotides in the art. For example, the compound of formula C11 is attached to a solid-supported nucleic acid-ligand conjugate or its analogue, which has a 5'-hydroxyl group.Further steps may include one or more of deprotection, coupling, phosphite oxidation, and / or cleavage from the solid support to provide oligonucleotides of various nucleotide lengths containing one or more adamantyl and / or lipid-conjugated nucleotide units represented by compounds of formula II-b-3, B, E, L. 2 , P.G. 1 , P.G. 2 , P.G. 3 , P.G. 4 , R 1 , R 2 , R 3 , R 4 , R 5 , X 1 , X 2 , X 3 Each of V, W, and Z is as defined above and described herein.

[0201] Scheme D: Post-synthetic lipid conjugation of oligonucleotides of the present disclosure. [ka]

[0202] B, E, L 2 , P.G. 1 , P.G. 2 , P.G. 3 , P.G. 4 , R 1 , R 2 , R 3 , R 4 , R 5 , X 1 , X 2 , X 3Each of , V, W, and Z is as defined above and described herein. As shown in Scheme D above, the nucleic acid of formula C5 or its analogue can be selectively deprotected to form a compound of formula D1, protected with a suitable hydroxyl protecting group (e.g., DMTr) to form a compound of formula D2, and reacted with a P(III)-forming reagent (e.g., 2-cyanoethyl N,N-di-isopropylchlorophosphoramidite) to form a nucleic acid of formula D3 or its analogue. The nucleic acid of formula D3 or its analogue can then be subjected to preformed oligomerization conditions using known and commonly applied processes for preparing oligonucleotides in the art. For example, the compound of formula D3 is coupled to a solid-supported nucleic acid or its analogue bearing a 5'-hydroxyl group. Further steps can include one or more of deprotection, coupling, phosphite oxidation, and / or cleavage from the solid support to provide oligonucleotides of various nucleotide lengths, represented by compounds of formula D4. The oligonucleotide of formula D4 can then be deprotected to form a compound of formula D5 and coupled with a hydrophobic ligand (e.g., adamantyl or a lipophilic moiety) to form a compound of formula C7 (e.g., adamantyl or fatty acid) under appropriate amide forming conditions (e.g., HATU, DIPEA) to form an oligonucleotide of formula II-b-3 containing a ligand (e.g., fatty acid) conjugate of the present disclosure.

[0203] Those skilled in the art will appreciate that the various functional groups present in the nucleic acids or analogs thereof of the present disclosure, such as aliphatic groups, alcohols, carboxylic acids, esters, amides, aldehydes, halogens, and nitriles, can be interconverted by techniques well known in the art, including, but not limited to, reduction, oxidation, esterification, hydrolysis, partial oxidation, partial reduction, halogenation, dehydration, partial hydration, and hydration. See, e.g., "MARCH'S ADVANCED ORGANIC CHEMISTRY", (5 thEd., Ed.: Smith, MB and March, J., John Wiley & Sons, New York: 2001), each of which is incorporated herein by reference in its entirety. Such interconversions may require one or more of the techniques described above, and particular methods for synthesizing the nucleic acids provided in this disclosure are described below by way of example.

[0204] In some embodiments, the present disclosure provides a method for preparing an oligonucleotide comprising one or more lipid conjugates, wherein the lipid conjugate unit is represented by formula II-a-1 or: [ka] or a pharma- ceutically acceptable salt thereof, and the method comprises: (a) a nucleic acid of formula I-5a or an analog thereof, [ka] or a salt thereof; (b) oligomerizing said compound of formula I-5a to form a compound of formula II-1a, wherein B, E, L, LC, n, PG 4 , R 1 , R 2 , R 3 , X, X 1 , X 2 , X 3 Each of A, E, and Z is as defined above and described herein.

[0205] In the above step (b), oligomerization refers to preforming oligomerization conditions using known and commonly applied processes for preparing oligonucleotides in the art.For example, the compound of formula I-5a is bound to the solid-supported nucleic acid or its analogue with 5'-hydroxyl group.Further steps can include one or more of deprotection, coupling, phosphite oxidation, and cleavage from solid support to provide oligonucleotides of various nucleotide lengths, represented by the compound of formula II-1a with lipid conjugate of the present disclosure.

[0206] In some embodiments, the present disclosure provides a method for preparing an oligonucleotide comprising one or more lipid conjugates, the method comprising: [ka] or a salt thereof, (a) a nucleic acid of formula Ia or an analog thereof, [ka] or a salt thereof; (b) deprotecting the nucleic acid of formula Ia or its analogue to give a compound of formula I-2a, [ka] or a salt thereof; (c) protecting the nucleic acid of formula I-2 or its analogue to give a compound of formula I-3a, [ka] or a salt thereof; (d) treating said nucleic acid of formula I-3a or analog thereof with a P(III)-forming reagent to form a nucleic acid of formula I-5a or analog thereof, wherein B, E, L, LC, n, PG 4 , R 1 , R 2 , R3 , X, X 1 , X 2 , X 3 Each of A, E, and Z is as defined above and described herein.

[0207] In step (b) above, the PG of the compound of formula Ia 1 and P.G. 2 contains silyl ethers or cyclic silylene derivatives that can be removed under acidic conditions or with fluoride anions. Examples of reagents that provide fluoride anions for the removal of silicon-based protecting groups include hydrofluoric acid, hydrogen fluoride pyridine, triethylamine trihydrofluoride, tetra-N-butylammonium fluoride, and the like.

[0208] In step (c) above, the compound of formula I-2a is protected with a suitable hydroxyl protecting group. In certain embodiments, the protecting group PG is used to protect the 5'-hydroxyl group of the compound of formula I-2a. 4 include acid labile protecting groups such as trityl, 4-methyoxytrityl, 4,4'-dimethyoxytrityl, 4,4',4''-trimethyoxytrityl, 9-phenyl-xanthen-9-yl, 9-(p-tolyl)xanthen-9-yl, pixyl, 2,7-dimethylpixyl, and the like. In certain embodiments, the acid labile protecting groups are suitable for deprotection in both solution and solid phase synthesis of acid sensitive nucleic acids or analogs thereof, e.g., using dichloroacetic acid or trichloroacetic acid.

[0209] In step (d) above, the compound of formula I-3a is treated with a P(III)-forming reagent to obtain a compound of formula I-5a. In the context of the present disclosure, the P(III)-forming reagent is a phosphorus reagent that reacts to obtain a phosphorus(III) compound. In some embodiments, the P(III)-forming reagent is 2-cyanoethyl N,N-diisopropylchlorophosphoramidite or 2-cyanoethyl phosphorodichloridate. In certain embodiments, the P(III)-forming reagent is 2-cyanoethyl N,N-diisopropylchlorophosphoramidite. Those skilled in the art will be able to easily determine the X of the compound of formula I-3a. 1 It will be appreciated that the displacement of the leaving group in the P(III)-forming reagent by is accomplished in the presence or absence of a suitable base. Such suitable bases are well known in the art and include organic and inorganic bases. In certain embodiments, the base is a tertiary amine, such as triethylamine or diisopropylethylamine. In other embodiments, step (d) above is preformed using N,N-dimethylphosphoramic dichloride as the P(V)-forming reagent.

[0210] In some embodiments, the present disclosure provides a method for preparing an oligonucleotide comprising one or more lipid conjugates, the method comprising: [ka] or a salt thereof, (a) a nucleic acid of formula I-1 or an analog thereof; [ka] or a salt thereof; (b) conjugating one or more lipophilic compounds to the nucleic acid of formula I-1 or its analogue to form a nucleic acid of formula Ia or its analogue comprising one or more lipid conjugates, wherein B, E, L, LC, n, PG 1 , P.G. 2 , R1, R 2 , X, X 1Each of Z is as defined above and described herein.

[0211] In the above step (b), the nucleic acid of formula I-1a or its analogue is conjugated with one or more lipophilic compounds to form a compound of formula Ia comprising one or more lipid conjugates of the present disclosure. Typically, the conjugation is carried out in series or in parallel via esterification or amidation reaction between the nucleic acid of formula I-1a or its analogue and one or more fatty acids by techniques known in the art. In certain embodiments, the conjugation is carried out under suitable amide forming conditions to obtain a compound of formula I comprising one or more lipid conjugates. Suitable amide forming conditions can include, but are not limited to, the use of amide coupling reagents known in the art, such as HATU, PyBOP, DCC, DIC, EDC, HBTU, HCTU, PyAOP, PyBrOP, BOP, BOP-Cl, DEPBT, T3P, TATU, TBTU, TNTU, TOTU, TPTU, TSTU, or TDBTU. Alternatively, conjugation of the lipophilic compound can be achieved by any one of the cross-coupling techniques described in Table A herein.

[0212] In some embodiments, the present disclosure provides a method for preparing an oligonucleotide comprising one or more lipid conjugates, wherein the lipid conjugate unit is represented by formula II-1 or: [ka] or a pharma- ceutically acceptable salt thereof, and the method comprises: (a) an oligonucleotide of formula II-2, [ka] or a salt thereof; (b) one or more lipophilic compounds are conjugated to the oligonucleotide of formula II-2 to form the oligonucleotide of formula II-1 comprising one or more lipid conjugates. In the above step (b), the oligonucleotide of formula II-2 is conjugated to one or more lipophilic compounds to form the oligonucleotide of formula II-1 comprising one or more lipid conjugates of the present disclosure. Typically, the conjugation is carried out in series or in parallel through esterification or amidation reaction between the oligonucleotide of formula II-2 and one or more fatty acids by techniques known in the art. In certain embodiments, the conjugation is carried out under suitable amide forming conditions to obtain the oligonucleotide of formula II-1 comprising one or more lipid conjugates. Suitable amide forming conditions can include, but are not limited to, the use of amide coupling reagents known in the art, such as HATU, PyBOP, DCC, DIC, EDC, HBTU, HCTU, PyAOP, PyBrOP, BOP, BOP-Cl, DEPBT, T3P, TATU, TBTU, TNTU, TOTU, TPTU, TSTU, or TDBTU. Alternatively, conjugation of the lipophilic compound can be accomplished by any one of the cross-coupling techniques described in Table A herein.

[0213] In some embodiments, the present disclosure provides a unit represented by formula II-2: [ka] or a pharma- ceutically acceptable salt thereof, the method comprising: (a) a nucleic acid of formula I-8 or an analog thereof, [ka] or a salt thereof; (b) oligomerizing said compound of formula I-8 to form a compound of formula II-2.

[0214] In the above step (b), oligomerization refers to preforming oligomerization conditions using known and commonly applied processes for preparing oligonucleotides in the art.For example, the compound of formula I-8 is bound to the solid-supported nucleic acid or its analogue with 5'-hydroxyl group.Further steps can include one or more of deprotection, coupling, phosphite oxidation, and cleavage from solid support to provide oligonucleotides of various nucleotide lengths, represented by the compound of formula II-2.

[0215] In some embodiments, the present disclosure provides a method for preparing a nucleic acid or analog thereof comprising one or more lipid conjugates, the method comprising: [ka] or a salt thereof, (a) a nucleic acid of formula I-1 or an analog thereof, [ka] or a salt thereof; (b) deprotecting the nucleic acid of formula I-1 or its analogue to obtain a compound of formula I-6, [ka] or a salt thereof; (c) protecting the nucleic acid of formula I-6 or its analogue to give a compound of formula I-7, [ka] or a salt thereof; (d) treating said nucleic acid of formula I-7 or its analogue with a P(III)-forming agent to form a nucleic acid of formula I-8 or its analogue, wherein in the above step (b), PG of the compound of formula I-1 is 1 and P.G. 2contains silyl ethers or cyclic silylene derivatives that can be removed under acidic conditions or with fluoride anions. Examples of reagents that provide fluoride anions for the removal of silicon-based protecting groups include hydrofluoric acid, hydrogen fluoride pyridine, triethylamine trihydrofluoride, tetra-N-butylammonium fluoride, and the like.

[0216] In step (c) above, the compound of formula I-6 is protected with a suitable hydroxyl protecting group. In certain embodiments, the protecting group PG is used to protect the 5'-hydroxyl group of the compound of formula I-6. 4 include acid labile protecting groups such as trityl, 4-methyoxytrityl, 4,4'-dimethyoxytrityl, 4,4',4''-trimethyoxytrityl, 9-phenyl-xanthen-9-yl, 9-(p-tolyl)xanthen-9-yl, pixyl, 2,7-dimethylpixyl, and the like. In certain embodiments, the acid labile protecting groups are suitable for deprotection in both solution and solid phase synthesis of acid sensitive nucleic acids or analogs thereof, e.g., using dichloroacetic acid or trichloroacetic acid.

[0217] In step (d) above, the compound of formula I-7 is treated with a P(III)-forming reagent to obtain a compound of formula I-8. In the context of the present disclosure, the P(III)-forming reagent is a phosphorus reagent that reacts to obtain a phosphorus(III) compound. In some embodiments, the P(III)-forming reagent is 2-cyanoethyl N,N-diisopropylchlorophosphoramidite or 2-cyanoethyl phosphorodichloridate. In certain embodiments, the P(III)-forming reagent is 2-cyanoethyl N,N-diisopropylchlorophosphoramidite. Those skilled in the art will be able to easily determine the X of the compound of formula I-7. 1It will be appreciated that the displacement of the leaving group in the P(III)-forming reagent by is accomplished in the presence or absence of a suitable base. Such suitable bases are well known in the art and include organic and inorganic bases. In certain embodiments, the base is a tertiary amine, such as triethylamine or diisopropylethylamine. In other embodiments, step (d) above is preformed using N,N-dimethylphosphoramic dichloride as the P(V)-forming reagent.

[0218] In some embodiments, the present disclosure provides methods for preparing oligonucleotide-ligand conjugates comprising one or more adamantyl and / or lipid moieties, wherein said conjugate units are represented by formula II-b-3 or: [ka] or a pharma- ceutically acceptable salt thereof, and the method comprises: (a) a nucleic acid-ligand conjugate of formula C11 or an analog thereof; [ka] or a salt thereof; (b) oligomerizing the compound of formula C11 to form a compound of formula II-b-3, where in the above step (b), oligomerization refers to preforming oligomerization conditions using known and commonly applied processes for preparing oligonucleotides in the art.For example, the compound of formula C11 is bound to a solid-supported nucleic acid or its analogue with a 5'-hydroxyl group.Further steps include one or more of deprotection, coupling, phosphite oxidation, and cleavage from solid support to provide oligonucleotide-ligand conjugates of various nucleotide lengths with one or more nucleic acid-ligand conjugate units, each unit being represented by the compound of formula II-b-3 containing adamantyl or lipid moiety of the present disclosure.

[0219] In some embodiments, the method for preparing an oligonucleotide of formula II-b-3 comprising one or more lipid conjugates comprises the step of: [ka] or a salt thereof, (a) a nucleic acid-ligand conjugate of formula Ib or an analog thereof; [ka] or a salt thereof; (b) deprotecting the nucleic acid-ligand conjugate of formula Ib above or an analog thereof to obtain a compound of formula C8, [ka] or a salt thereof; (c) deprotecting the nucleic acid-ligand conjugate of formula C8 or analog thereof to give a compound of formula C9, [ka] or a salt thereof; (d) treating the nucleic acid-ligand conjugate of formula C9 or its analog with a P(III)-forming reagent to form a nucleic acid of formula C11 or its analog. In the above step (b), the PG of the compound of formula Ib is 1 and P.G. 2 contains silyl ethers or cyclic silylene derivatives that can be removed under acidic conditions or with fluoride anions. Examples of reagents that provide fluoride anions for the removal of silicon-based protecting groups include hydrofluoric acid, hydrogen fluoride pyridine, triethylamine trihydrofluoride, tetra-N-butylammonium fluoride, and the like.

[0220] In step (c) above, the compound of formula C8 is protected with a suitable hydroxyl protecting group. In certain embodiments, the protecting group PG is used to protect the 5'-hydroxyl group of the compound of formula C8. 4 include acid labile protecting groups such as trityl, 4-methyoxytrityl, 4,4'-dimethyoxytrityl, 4,4',4''-trimethyoxytrityl, 9-phenyl-xanthen-9-yl, 9-(p-tolyl)xanthen-9-yl, pixyl, 2,7-dimethylpixyl, and the like. In certain embodiments, the acid labile protecting groups are suitable for deprotection in both solution and solid phase synthesis of acid sensitive nucleic acids or analogs thereof, e.g., using dichloroacetic acid or trichloroacetic acid.

[0221] In step (d) above, the compound of formula C9 is treated with a P(III)-forming reagent to obtain a compound of formula C11. In the context of the present disclosure, the P(III)-forming reagent is a phosphorus reagent that reacts to obtain a phosphorus(III) compound. In some embodiments, the P(III)-forming reagent is 2-cyanoethyl N,N-diisopropylchlorophosphoramidite or 2-cyanoethyl phosphorodichloridate. In certain embodiments, the P(III)-forming reagent is 2-cyanoethyl N,N-diisopropylchlorophosphoramidite. Those skilled in the art will be able to easily determine the X of the compound of formula C9. 1 It will be appreciated that the displacement of the leaving group in the P(III)-forming reagent by is accomplished in the presence or absence of a suitable base. Such suitable bases are well known in the art and include organic and inorganic bases. In certain embodiments, the base is a tertiary amine, such as triethylamine or diisopropylethylamine. In other embodiments, step (d) above is preformed using N,N-dimethylphosphoramic dichloride as the P(V)-forming reagent.

[0222] In some embodiments, the disclosure provides a method for preparing an oligonucleotide-ligand conjugate of formula II-b-3, comprising one or more nucleic acid-ligand conjugate units each comprising one or more adamantyl or lipid moieties, the method comprising preparing a nucleic acid-ligand conjugate of formula Ib or an analog thereof: [ka] or a salt thereof, (a) a nucleic acid-ligand conjugate of formula C6 or an analog thereof; [ka] or a salt thereof; (b) conjugating a lipophilic compound to the nucleic acid-ligand conjugate of formula C6 or its analogue to form a nucleic acid-ligand conjugate of formula Ib or its analogue, comprising one or more adamantyl and / or lipid conjugates. In the above step (b), conjugation is carried out under suitable amide forming conditions to obtain a compound of formula Ib comprising adamantyl and / or lipid conjugates. Suitable amide forming conditions can include, but are not limited to, the use of amide coupling reagents known in the art, such as HATU, PyBOP, DCC, DIC, EDC, HBTU, HCTU, PyAOP, PyBrOP, BOP, BOP-Cl, DEPBT, T3P, TATU, TBTU, TNTU, TOTU, TPTU, TSTU, or TDBTU. In certain embodiments, the amide forming conditions include HATU and DIPEA or TEA.

[0223] In certain embodiments, the nucleic acid-ligand conjugate of formula C6 or an analog thereof is provided in a salt form (e.g., a fumarate salt) and is first converted to the free base (e.g., using sodium bicarbonate) prior to preforming the conjugation step.

[0224] In some embodiments, the present disclosure provides a method for preparing an oligonucleotide-ligand conjugate of formula II-b-3 comprising one or more nucleic acid-ligand conjugate units, the method comprising preparing a nucleic acid-ligand conjugate of formula C6 or an analog thereof: [ka] or a salt thereof, (a) a nucleic acid of formula C1 or an analogue thereof, [ka] or a salt thereof; (b) protecting the nucleic acid of formula C1 or an analog thereof to give a compound of formula C2, [ka] or a salt thereof; (c) alkylating the nucleic acid of formula C2 or an analog thereof to give a compound of formula C3, [ka] or a salt thereof; (d) converting a nucleic acid or analogue thereof of formula C3 into a compound of formula C4, [ka] or a salt thereof, [ka] or a salt thereof; (e) deprotecting the nucleic acid of formula C5 or its analogue to form a nucleic acid-ligand conjugate of formula C6 or its analogue. 1 and P.G. 2The groups, together with their intervening atoms, form a cyclic diol protecting group, such as a cyclic acetal or ketal. Such groups include methylene, ethylidene, benzylidene, isopropylidene, cyclohexylidene, and cyclopentylidene, silylene derivatives, such as di-t-butylsilylene and 1,1,3,3-tetraisopropyldisiloxanilidene, cyclic carbonates, cyclic boronates, and cyclic monophosphate derivatives based on cyclic adenosine monophosphate (i.e., cAMP). In certain embodiments, the cyclic diol protecting group is 1,1,3,3-tetraisopropyldisiloxanilidene prepared from the reaction of a diol of formula C1 with 1,3-dichloro-1,1,3,3-tetraisopropyldisiloxane under basic conditions.

[0225] In step (c) above, the nucleic acid of formula C2 or its analogue is alkylated under acidic conditions using a mixture of DMSO and acetic anhydride. In certain embodiments, when -VH is a hydroxyl group, the mixture of DMSO and acetic anhydride forms methyl (methylthio)acetate in situ via Pummerer rearrangement in the presence of acetic acid, which then reacts with the hydroxyl group of the nucleic acid of formula C2 or its analogue to provide a monothioacetal-functionalized fragment nucleic acid of formula C3 or its analogue.

[0226] In step (d) above, the replacement of the thiomethyl group of the nucleic acid of formula C3 or its analog with a nucleic acid of formula C4 or its analog results in a nucleic acid of formula C4 or its analog. In certain embodiments, the replacement occurs under mildly oxidizing and / or acidic conditions. In some embodiments, V is oxygen. In some embodiments, the mild oxidizing reagent includes a mixture of elemental iodine and hydrogen peroxide, urea hydrogen peroxide complex, silver nitrate / silver sulfate, sodium bromate, ammonium peroxodisulfate, tetrabutylammonium peroxodisulfate, Oxone®, Chloramine T, Selectfluor®, Selectfluor® II, sodium hypochlorite, or potassium iodide / sodium periodate. In certain embodiments, the mild oxidizing agent includes N-iodosuccinimide, N-bromosuccinimide, N-chlorosuccinimide, 1,3-diiodo-5,5-dimethylhydantoin, pyridinium tribromide, iodine monochloride or complexes thereof, and the like. Commonly used acids under mild oxidation conditions include sulfuric acid, p-toluenesulfonic acid, trifluoromethanesulfonic acid, methanesulfonic acid, and trifluoroacetic acid. In certain embodiments, the mild oxidation reagent comprises a mixture of N-iodosuccinimide and trifluoromethanesulfonic acid.

[0227] In step (e) above, the PG of the nucleic acid-ligand conjugate of formula C5 or its analogue is 3 and optionally R 4 Removal of (R 4 is a suitable amine protecting group) to provide a nucleic acid-ligand conjugate of formula C6 or an analog thereof or a salt thereof. In some embodiments, PG 3 and / or R 4 includes a carbamate derivative that can be removed under acidic or basic conditions. In certain embodiments, the protecting group of the nucleic acid-ligand conjugate of formula C5 or its analog (e.g., PG 3 and R 4 Both, or PG 3 or R 4(independently) is removed by acid hydrolysis. Of course, acid hydrolysis of the protecting group of the nucleic acid-ligand conjugate of formula C5 or its analogue forms its salt of formula C6. For example, when the acid labile protecting group of the nucleic acid-ligand conjugate of formula C5 or its analogue is removed by treatment with an acid such as hydrochloric acid, the resulting amine compound is formed as its hydrochloride salt. Those skilled in the art will recognize that a wide variety of acids are useful for removing acid labile amino protecting groups, and therefore a wide variety of salt forms of the nucleic acid of formula C6 or its analogue are contemplated.

[0228] In other embodiments, the protecting group of the nucleic acid of formula C5 or its analogue (e.g., PG 3 and R 4 Both, or PG 3 Or R 4 (either independently) is removed by base hydrolysis. For example, Fmoc and trifluoroacetyl protecting groups can be removed by treatment with base. Those skilled in the art will recognize that a wide variety of bases are useful for removing amino protecting groups that are base labile. In some embodiments, the base is piperidine. In some embodiments, the base is 1,8-diazabicyclo[5.4.0]undec-7-ene (DBU). In certain embodiments, the nucleic acid-ligand conjugate of formula C5 or its analog is deprotected under basic conditions and subsequently treated with acid to form a salt of formula C6. In certain embodiments, the acid is fumaric acid and the salt of formula C6 is a fumarate salt.

[0229] In some embodiments, the present disclosure provides a method for preparing an oligonucleotide-ligand conjugate comprising one or more nucleic acid-ligand conjugates, wherein the nucleic acid-ligand conjugate units are represented by formula II-b-3 or: [ka] or a pharma- ceutically acceptable salt thereof, and the method comprises: (a) an oligonucleotide of formula D5, [ka] or a salt thereof; (b) one or more adamantyl compounds or lipophilic compounds are conjugated to the oligonucleotide of formula D5 to form an oligonucleotide-ligand conjugate of formula II-b-3, which comprises one or more nucleic acid-ligand conjugate units. In the above step (b), conjugation is carried out under suitable amide forming conditions to obtain a compound of formula D5, which comprises an adamantyl or lipid conjugate. Suitable amide forming conditions can include, but are not limited to, the use of amide coupling reagents known in the art, such as HATU, PyBOP, DCC, DIC, EDC, HBTU, HCTU, PyAOP, PyBrOP, BOP, BOP-Cl, DEPBT, T3P, TATU, TBTU, TNTU, TOTU, TPTU, TSTU, or TDBTU. In certain embodiments, the amide forming conditions include HATU and DIPEA or TEA.

[0230] In some embodiments, the present disclosure provides an oligonucleotide-ligand conjugate comprising a unit represented by formula D5: [ka] or a salt thereof, the method comprising: (a) a nucleic acid-ligand conjugate of formula D4 or an analog thereof; [ka] or a salt thereof; (b) deprotecting the compound of formula D4 to form a compound of formula D5. In the above step (b), the PG of the oligonucleotide of formula D4 is 3 and optionally R 4 Removal of (R 4is a suitable amine protecting group) to provide an oligonucleotide-ligand conjugate of formula D5, or a salt thereof. In some embodiments, PG 3 and / or R 4 comprises a carbamate derivative that can be removed under acidic or basic conditions. In certain embodiments, the protecting group of the oligonucleotide-ligand conjugate of formula D4 (e.g., PG 3 and R 4 Both, or PG 3 or R 4 (either independently) is removed by acid hydrolysis. Of course, the acid hydrolysis of the protecting group of the oligonucleotide-ligand conjugate of formula D4 forms its salt of formula D5. For example, when the acid labile protecting group of the oligonucleotide of formula D4 is removed by treating with an acid such as hydrochloric acid, the resulting amine compound is formed as its hydrochloride salt. Those skilled in the art will recognize that a wide variety of acids are useful for removing acid labile amino protecting groups, and therefore a wide variety of salt forms of the nucleic acid-ligand conjugate unit of formula D5 or its analogs are contemplated.

[0231] In other embodiments, the protecting group of the oligonucleotide-ligand conjugate of formula D4 (e.g., PG 3 and R 4 Both, or PG 3 Or R 4 (either independently) are removed by base hydrolysis. For example, Fmoc and trifluoroacetyl protecting groups can be removed by treatment with base. One of skill in the art will recognize that a wide variety of bases are useful for removing amino protecting groups that are base labile. In some embodiments, the base is piperidine. In some embodiments, the base is 1,8-diazabicyclo[5.4.0]undec-7-ene (DBU).

[0232] In some embodiments, the present disclosure provides a method for preparing an oligonucleotide-ligand conjugate comprising one or more nucleic acid-ligand conjugate units having one or more adamantyl and / or lipid moieties, said conjugate units being represented by formula D4 or: [ka] or a pharma- ceutically acceptable salt thereof, and the method comprises: (a) a nucleic acid of formula D3 or an analog thereof, [ka] or a salt thereof; (b) oligomerizing said compound of formula D3 to form a compound of formula D4,

[0233] In the above step (b), oligomerization refers to preforming oligomerization conditions using known and commonly applied processes for preparing oligonucleotides in the art.For example, the nucleic acid or its analog of formula D3 is bound to the solid-supported nucleic acid or its analog with 5'-hydroxyl group.Further steps can include one or more of deprotection, coupling, phosphite oxidation, and cleavage from solid support to provide oligonucleotides of various nucleotide lengths, represented by the compound of formula D4 that includes adamantyl or lipid conjugate of the present disclosure.

[0234] In some embodiments, the present disclosure provides a method for preparing a nucleic acid or analog thereof comprising one or more lipid conjugates, the method comprising: [ka] or a salt thereof, (a) a nucleic acid of formula C5 or an analog thereof, [ka] or a salt thereof; (b) deprotecting the nucleic acid of formula C5 or an analog thereof to give a compound of formula D1, [ka] or a salt thereof; (c) protecting the nucleic acid of formula D1 or its analogue to obtain a nucleic acid of formula D2 or its analogue, [ka] or a salt thereof; (d) treating the nucleic acid or analogue of formula D2 with a P(III)-forming reagent to form a nucleic acid or analogue of formula D3. In the above step (b), the PG of the nucleic acid or analogue of formula C5 is 1 and P.G. 2 contains silyl ethers or cyclic silylene derivatives that can be removed under acidic conditions or with fluoride anions. Examples of reagents that provide fluoride anions for the removal of silicon-based protecting groups include hydrofluoric acid, hydrogen fluoride pyridine, triethylamine trihydrofluoride, tetra-N-butylammonium fluoride, and the like.

[0235] In step (c) above, the nucleic acid of formula D1 or its analogue is protected with a suitable hydroxyl protecting group. In certain embodiments, the protecting group PG is used to protect the 5'-hydroxyl group of the compound of formula D1. 4 include acid labile protecting groups such as trityl, 4-methyoxytrityl, 4,4'-dimethyoxytrityl, 4,4',4''-trimethyoxytrityl, 9-phenyl-xanthen-9-yl, 9-(p-tolyl)xanthen-9-yl, pixyl, 2,7-dimethylpixyl, and the like. In certain embodiments, the acid labile protecting groups are suitable for deprotection in both solution and solid phase synthesis of acid sensitive nucleic acids or analogs thereof, e.g., using dichloroacetic acid or trichloroacetic acid.

[0236] In step (d) above, the nucleic acid of formula D2 or its analogue is treated with a P(III)-forming reagent to obtain a compound of formula D3. In the context of the present disclosure, the P(III)-forming reagent is a phosphorus reagent that reacts to obtain a phosphorus(III) compound. In some embodiments, the P(III)-forming reagent is 2-cyanoethyl N,N-diisopropylchlorophosphoramidite or 2-cyanoethyl phosphorodichloridate. In certain embodiments, the P(III)-forming reagent is 2-cyanoethyl N,N-diisopropylchlorophosphoramidite. Those skilled in the art will be able to easily determine the X of the compound of formula D2. 1 It will be appreciated that the displacement of the leaving group in the P(III)-forming reagent by is accomplished in the presence or absence of a suitable base. Such suitable bases are well known in the art and include organic and inorganic bases. In certain embodiments, the base is a tertiary amine, such as triethylamine or diisopropylethylamine. In other embodiments, step (d) above is preformed using N,N-dimethylphosphoramic dichloride as the P(V)-forming reagent.

[0237] formulation Various formulations have been developed to facilitate the use of oligonucleotides. For example, oligonucleotides (e.g., lipid-conjugated RNAi oligonucleotides) can be delivered to a subject or cellular environment using a formulation that minimizes degradation, facilitates delivery and / or uptake, or provides another beneficial property to the oligonucleotide in the formulation. In some embodiments, compositions are provided herein that include oligonucleotides (e.g., lipid-conjugated RNAi oligonucleotides) that reduce the expression of target mRNAs (e.g., target mRNAs expressed in neurons of the CNS). Such compositions can be suitably formulated so that when administered to a subject, either within the environment surrounding the target cells or systemically, a sufficient portion of the oligonucleotides enters the cells and reduces target gene expression. Any of a variety of suitable oligonucleotide formulations can be used to deliver oligonucleotides for reducing neuronal target gene expression as disclosed herein. In some embodiments, oligonucleotides are formulated in buffers such as phosphate-buffered saline, liposomes, micellar structures, and capsids.

[0238] In some embodiments, the formulation herein includes an excipient. In some embodiments, the excipient confers improved stability, improved absorption, improved solubility, and / or therapeutic enhancement of the active ingredient to the composition. In some embodiments, the excipient is a buffer (e.g., sodium citrate, sodium phosphate, Tris base, or sodium hydroxide) or a vehicle (e.g., buffer solution, petrolatum, dimethyl sulfoxide, or mineral oil). In some embodiments, the oligonucleotide is lyophilized to extend its shelf life, and then put into solution before use (e.g., administration to a subject). Thus, the excipient in a composition comprising any one of the oligonucleotides described herein can be a cryoprotectant (e.g., mannitol, lactose, polyethylene glycol, or polyvinylpyrrolidone), or a disintegration temperature regulator (e.g., dextran, Ficoll™, or gelatin). Similarly, the oligonucleotides herein can be provided in their free acid form.

[0239] In some embodiments, the pharmaceutical composition is formulated to be compatible with its intended route of administration. Examples of routes of administration include parenteral (e.g., intravenous, intramuscular, intraperitoneal, intradermal, subcutaneous, intrathecal), oral (e.g., inhalation), transdermal (e.g., topical), transmucosal, and rectal administration. In some embodiments, the pharmaceutical composition is formulated for delivery to the central nervous system (e.g., intrathecal, epidural). In some embodiments, the pharmaceutical composition is formulated for delivery to the eye (e.g., ocular, intraocular, subconjunctival, intravitreal, retrobulbar, intracameral).

[0240] Pharmaceutical compositions suitable for injectable use include sterile aqueous solutions (if water soluble) or dispersions, and sterile powders for extemporaneous preparation of sterile injectable solutions or dispersions. For intravenous administration, suitable carriers include physiological saline, bacteriostatic water, Cremophor EL™ (BASF, Parsippany, NJ), or phosphate buffered saline (PBS). The carrier can be, for example, a solvent or dispersion medium, including water, ethanol, polyol (e.g., glycerol, propylene glycol, and liquid polyethylene glycol, and the like), and suitable mixtures thereof. In many cases, it will be preferable to include an isotonic agent, for example, sugars, polyalcohols, such as mannitol, sorbitol, sodium chloride, in the composition. Sterile injectable solutions can be prepared by incorporating the required amount of oligonucleotide in a selected solvent, including one or a combination of the above-listed ingredients as needed, followed by filtered sterilization.

[0241] In some embodiments, the composition may contain at least about 0.1% of a therapeutic agent (e.g., a lipid-conjugated RNAi oligonucleotide herein) or more, although the percentage of active ingredient may be from about 1% to about 80% or more by weight or volume of the total composition. Factors such as solubility, bioavailability, biological half-life, route of administration, product shelf life, and other pharmacological considerations will be contemplated by those skilled in the art of preparing such pharmaceutical formulations, and therefore various dosages and treatment regimens may be desirable.

[0242] How to use Reduction of target gene expression In some embodiments, the present disclosure provides a method for contacting or delivering an effective amount of any of the lipid-conjugated RNAi oligonucleotides herein to a cell or cell population to reduce the expression of target genes in neurons of the CNS.In some embodiments, the expression of neuronal target genes is reduced in regions of the CNS.In some embodiments, the regions of the CNS include, but are not limited to, cerebrum, prefrontal cortex, frontal cortex, motor cortex, temporal cortex, parietal cortex, occipital cortex, somatosensory cortex, hippocampus, caudate nucleus, striatum, globus pallidus, thalamus, midbrain, tegmentum, substantia nigra, pons, brainstem, cerebellar white matter, cerebellum, dentate nucleus, medulla, cervical spinal cord, thoracic spinal cord, lumbar spinal cord, cervical dorsal root ganglion, thoracic dorsal root ganglion, lumbar dorsal root ganglion, sacral dorsal root ganglion, nodose ganglion, femoral nerve, sciatic nerve, sural nerve, amygdala, hypothalamus, putamen, corpus callosum, and cranial nerve. In some embodiments, the region of the CNS is selected from the lumbar spinal cord, the lumbar dorsal root ganglion, the medulla, the hippocampus, the somatosensory cortex, the frontal cortex, and combinations thereof. In some embodiments, the region of the CNS is selected from the spinal cord, the lumbar spinal cord, the lumbar dorsal root ganglion, the thoracic spinal cord, the cervical spinal cord, the medulla, the hippocampus, the somatosensory cortex, the frontal cortex, and combinations thereof. In some embodiments, the lipid-conjugated RNAi oligonucleotides described herein reduce the expression of a target gene in neurons of the spinal cord. In some embodiments, the lipid-conjugated RNAi oligonucleotides described herein reduce the expression of a target gene in neurons of the lumbar spinal cord. In some embodiments, the lipid-conjugated RNAi oligonucleotides described herein reduce the expression of a target gene in neurons of the thoracic spinal cord. In some embodiments, the lipid-conjugated RNAi oligonucleotides described herein reduce the expression of a target gene in neurons of the cervical spinal cord. In some embodiments, the lipid-conjugated RNAi oligonucleotides described herein reduce the expression of a target gene in neurons of the lumbar dorsal root ganglion. In some embodiments, the lipid-conjugated RNAi oligonucleotides described herein reduce expression of a target gene in neurons of the medulla.In some embodiments, the lipid-conjugated RNAi oligonucleotide described herein reduces the expression of target genes in neurons of the hippocampus.In some embodiments, the lipid-conjugated RNAi oligonucleotide described herein reduces the expression of target genes in neurons of the somatosensory cortex.In some embodiments, the lipid-conjugated RNAi oligonucleotide described herein reduces the expression of target genes in neurons of the frontal cortex.

[0243] In some embodiments, lipid-conjugated RNAi oligonucleotides comprising stem-loops as described herein reduce the expression of target genes in neurons of the spinal cord. In some embodiments, lipid-conjugated RNAi oligonucleotides comprising stem-loops as described herein reduce the expression of target genes in neurons of the lumbar spinal cord. In some embodiments, lipid-conjugated RNAi oligonucleotides comprising stem-loops as described herein reduce the expression of target genes in neurons of the thoracic spinal cord. In some embodiments, lipid-conjugated RNAi oligonucleotides comprising stem-loops as described herein reduce the expression of target genes in neurons of the cervical spinal cord. In some embodiments, lipid-conjugated RNAi oligonucleotides comprising stem-loops as described herein reduce the expression of target genes in neurons of the lumbar dorsal root ganglion.

[0244] In some embodiments, lipid-conjugated RNAi oligonucleotides comprising stem-loops as described herein reduce the expression of target genes in neurons of only the spinal cord. In some embodiments, lipid-conjugated RNAi oligonucleotides comprising stem-loops as described herein reduce the expression of target genes in neurons of only the lumbar spinal cord. In some embodiments, lipid-conjugated RNAi oligonucleotides comprising stem-loops as described herein reduce the expression of target genes in neurons of only the thoracic spinal cord. In some embodiments, lipid-conjugated RNAi oligonucleotides comprising stem-loops as described herein reduce the expression of target genes in neurons of only the cervical spinal cord. In some embodiments, lipid-conjugated RNAi oligonucleotides comprising stem-loops as described herein reduce the expression of target genes in neurons of only the lumbar dorsal root ganglion.

[0245] In some embodiments, lipid-conjugated RNAi oligonucleotides comprising stem-loops as described herein reduce the expression of target genes at least in neurons of the spinal cord. In some embodiments, lipid-conjugated RNAi oligonucleotides comprising stem-loops as described herein reduce the expression of target genes at least in neurons of the lumbar spinal cord. In some embodiments, lipid-conjugated RNAi oligonucleotides comprising stem-loops as described herein reduce the expression of target genes at least in neurons of the thoracic spinal cord. In some embodiments, lipid-conjugated RNAi oligonucleotides comprising stem-loops as described herein reduce the expression of target genes at least in neurons of the cervical spinal cord. In some embodiments, lipid-conjugated RNAi oligonucleotides comprising stem-loops as described herein reduce the expression of target genes at least in neurons of the lumbar dorsal root ganglion.

[0246] In some embodiments, lipid-conjugated RNAi oligonucleotides comprising stem-loops as described herein reduce the expression of target genes in neurons of the spinal cord compared to other tissues of the CNS (e.g., medulla, hippocampus, and frontal cortex). In some embodiments, lipid-conjugated RNAi oligonucleotides comprising stem-loops as described herein reduce the expression of target genes in neurons of the lumbar spinal cord compared to other tissues of the CNS (e.g., medulla, hippocampus, and frontal cortex). In some embodiments, lipid-conjugated RNAi oligonucleotides comprising stem-loops as described herein reduce the expression of target genes in neurons of the thoracic spinal cord compared to other tissues of the CNS (e.g., medulla, hippocampus, and frontal cortex). In some embodiments, lipid-conjugated RNAi oligonucleotides comprising stem-loops as described herein reduce the expression of target genes in neurons of the cervical spinal cord compared to other tissues of the CNS (e.g., medulla, hippocampus, and frontal cortex). In some embodiments, lipid-conjugated RNAi oligonucleotides comprising the stem-loop described herein reduce expression of a target gene in neurons of the lumbar dorsal root ganglion relative to other tissues of the CNS (e.g., medulla, hippocampus, and frontal cortex).

[0247] In some embodiments, expression of a neuronal target gene in the spinal cord of a subject is reduced by at least about 30%, about 35%, about 40%, about 45%, about 50%, about 55%, about 60%, about 65%, about 70%, about 75%, about 80%, about 85%, about 90%, about 95%, about 99%, or greater than 99% compared to target gene expression in other CNS tissues.

[0248] In some embodiments, lipid-conjugated RNAi oligonucleotides comprising a stem-loop as described herein reduce target gene expression in neurons of the spinal cord by about 1%, about 5%, about 10%, about 15%, about 20%, about 25%, about 30%, about 35%, about 40%, about 45%, about 50%, or about 55%, about 60%, about 70%, about 80%, or about 90% compared to gene expression reduced by lipid-conjugated RNAi oligonucleotides in one or more tissues of the CNS.

[0249] In some embodiments, expression of a neuronal target gene in the lumbar spinal cord of a subject is reduced by at least about 30%, about 35%, about 40%, about 45%, about 50%, about 55%, about 60%, about 65%, about 70%, about 75%, about 80%, about 85%, about 90%, about 95%, about 99%, or greater than 99% compared to target gene expression in other CNS tissues.

[0250] In some embodiments, lipid-conjugated RNAi oligonucleotides comprising a stem-loop as described herein reduce target gene expression in neurons of the lumbar spinal cord by about 1%, about 5%, about 10%, about 15%, about 20%, about 25%, about 30%, about 35%, about 40%, about 45%, about 50%, or about 55%, about 60%, about 70%, about 80%, or about 90% compared to gene expression reduced by lipid-conjugated RNAi oligonucleotides in one or more tissues of the CNS.

[0251] In some embodiments, expression of a neuronal target gene in the subject's cervical spinal cord is reduced by at least about 30%, about 35%, about 40%, about 45%, about 50%, about 55%, about 60%, about 65%, about 70%, about 75%, about 80%, about 85%, about 90%, about 95%, about 99%, or greater than 99% compared to target gene expression in other CNS tissues.

[0252] In some embodiments, lipid-conjugated RNAi oligonucleotides comprising a stem-loop as described herein reduce target gene expression in neurons of the cervical spinal cord by about 1%, about 5%, about 10%, about 15%, about 20%, about 25%, about 30%, about 35%, about 40%, about 45%, about 50%, or about 55%, about 60%, about 70%, about 80%, or about 90% compared to gene expression reduced by lipid-conjugated RNAi oligonucleotides in one or more tissues of the CNS.

[0253] In some embodiments, expression of a neuronal target gene in the thoracic spinal cord of a subject is reduced by at least about 30%, about 35%, about 40%, about 45%, about 50%, about 55%, about 60%, about 65%, about 70%, about 75%, about 80%, about 85%, about 90%, about 95%, about 99%, or greater than 99% compared to target gene expression in other CNS tissues.

[0254] In some embodiments, lipid-conjugated RNAi oligonucleotides comprising a stem-loop as described herein reduce target gene expression in neurons of the thoracic spinal cord by about 1%, about 5%, about 10%, about 15%, about 20%, about 25%, about 30%, about 35%, about 40%, about 45%, about 50%, or about 55%, about 60%, about 70%, about 80%, or about 90% compared to gene expression reduced by lipid-conjugated RNAi oligonucleotides in one or more tissues of the CNS.

[0255] In some embodiments, the reduction in target gene expression is determined by measuring the reduction in the amount or level of target mRNA, the protein encoded by the target mRNA, or target gene (mRNA or protein) activity in the cell, including methods described herein and known to those of skill in the art.

[0256] The methods provided herein are useful for any suitable cell type. In some embodiments, the cell is any cell that expresses a neuronal target mRNA. In some embodiments, the cell is a primary neuronal cell obtained from a subject. In some embodiments, the primary cell has undergone a limited number of passages so that the cell substantially maintains its native phenotypic characteristics. In some embodiments, the cell to which the oligonucleotide is delivered is ex vivo or in vitro (i.e., the cell can be delivered to a cell in culture or to an organism in which the cell resides).

[0257] In some embodiments, the lipid-conjugated RNAi oligonucleotide disclosed herein is delivered to cells or cell populations (e.g., neurons) using nucleic acid delivery methods known in the art, including but not limited to injection of a solution or pharmaceutical composition containing lipid-conjugated RNAi oligonucleotide, bombardment with particles covered with lipid-conjugated RNAi oligonucleotide, exposure of cells or cell populations to a solution containing lipid-conjugated RNAi oligonucleotide, or electroporation of cell membrane in the presence of lipid-conjugated RNAi oligonucleotide.Other methods known in the art for delivering oligonucleotides to cells can be used, such as lipid-mediated carrier transport, chemical-mediated transport, and cationic liposome transfection such as calcium phosphate, and others.

[0258] In some embodiments, the reduction of target gene expression is determined by an assay or technique that evaluates one or more molecules, characteristics, or features of a cell or cell population that are associated with target gene expression, or by an assay or technique that evaluates a molecule (e.g., a target mRNA or protein) that directly indicates target gene expression in a cell or cell population. In some embodiments, the extent to which the lipid-conjugated RNAi oligonucleotides provided herein reduce target gene expression in neurons is assessed by comparing target gene expression in a neuron or neuronal population contacted with the lipid-conjugated RNAi oligonucleotide to a control cell or cell population (e.g., a neuron or neuronal population that has not been contacted with the lipid-conjugated RNAi oligonucleotide or that has been contacted with a control lipid-conjugated RNAi oligonucleotide). In some embodiments, the control amount or level of target gene expression in a control cell or cell population is predetermined so that it is not necessary to measure the control amount or level in every instance in which the assay or technique is performed. The predetermined level or value can take a variety of forms. In some embodiments, the predetermined level or value can be a single cutoff value, such as a median or mean value.

[0259] In some embodiments, contacting or delivering the lipid-conjugated RNAi oligonucleotides described herein to a neuron or neuronal population results in a reduction in the expression of neuronal target genes. In some embodiments, the reduction in target gene expression is relative to a control amount or level of target gene expression in a cell or cell population that has not been contacted with the lipid-conjugated RNAi oligonucleotide or that has been contacted with a control lipid-conjugated RNAi oligonucleotide. In some embodiments, the reduction in target gene expression is about 1% or less, about 5% or less, about 10% or less, about 15% or less, about 20% or less, about 25% or less, about 30% or less, about 35% or less, about 40% or less, about 45% or less, about 50% or less, about 55% or less, about 60% or less, about 70% or less, about 80% or less, or about 90% or less compared to the control amount or level of target gene expression. In some embodiments, the control amount or level of target gene expression is the amount or level of target mRNA and / or protein in a cell or cell population that has not been contacted with the lipid-conjugated RNAi oligonucleotides described herein. In some embodiments, the effect of the lipid-conjugated RNAi oligonucleotides of the present invention delivered to cells or cell populations by the methods of the present invention is evaluated after any finite period or amount of time (e.g., minutes, hours, days, weeks, months).For example, in some embodiments, target gene expression is determined in cells or cell populations at least about 4 hours, about 8 hours, about 12 hours, about 18 hours, about 24 hours, or at least about 1 day, about 2 days, about 3 days, about 4 days, about 5 days, about 6 days, about 7 days, about 8 days, about 9 days, about 10 days, about 11 days, about 12 days, about 13 days, about 14 days, about 21 days, about 28 days, about 35 days, about 42 days, about 49 days, about 56 days, about 63 days, about 70 days, about 77 days, or about 84 days or more after the lipid-conjugated RNAi oligonucleotides are contacted or delivered to the cells or cell populations.In some embodiments, target gene expression is determined in a cell or cell population at least about 1 month, about 2 months, about 3 months, about 4 months, about 5 months, or about 6 months or more after contacting or delivering a lipid-conjugated RNAi oligonucleotide to the cell or cell population.

[0260] Tissue-specific regulation of gene expression In some embodiments, the present disclosure provides a method for contacting or delivering lipid-conjugated RNAi oligonucleotides described herein to cells or cell populations, and the cells or cell populations are present in one or more target tissues of a subject.In some embodiments, the method comprises administering lipid-conjugated RNAi oligonucleotides described herein to a subject, and the conjugate is distributed to one or more target tissues of the subject, and the conjugate is contacted or delivered to cells or cell populations in one or more target tissues.

[0261] As used herein, "target tissue" refers to a tissue of a subject in which the reduction of expression of a target gene by a cell or cell population in the tissue results in one or more desirable physiological outcomes. In some embodiments, the target gene has aberrant expression in a cell or cell population in one or more target tissues, and the aberrant expression is responsible for the pathology of a disease or disorder in a subject. In some embodiments, the reduction of expression of the target gene by a cell or cell population in the target tissue serves to treat, alleviate, prevent, or alleviate a disease or disorder in a subject.

[0262] The distribution and / or function of lipid-conjugated RNAi oligonucleotides in target tissues is desirable for reducing target gene expression in cells or cell populations present in target tissues, while the distribution and / or function of conjugates in non-target tissues may cause adverse effects.For example, the distribution of conjugates in non-target tissues may limit their availability for distribution to target tissues, thereby limiting the efficacy and / or activity of conjugates for reducing target gene expression in cells or cell populations present in target tissues.As another example, target tissues may have abnormal expression of target genes, and it is beneficial to reduce target gene expression to restore normal physiological function, while non-target tissues may require expression of target genes for normal physiological function.Under these circumstances, the distribution and / or function of conjugates in non-target tissues impairs the expression of target genes in a manner that results in undesirable or harmful pathology.Therefore, for many in vivo therapeutic situations, it is beneficial to distribute lipid-conjugated RNAi oligonucleotides in target tissues in a subject, while limiting their distribution and / or function in one or more non-target tissues (e.g., liver) in the subject.

[0263] In some embodiments, the present disclosure provides a method for reducing or inhibiting the expression of a target gene in a cell population associated with one or more target tissues in a subject, comprising administering a lipid-conjugated RNAi oligonucleotide or a pharmaceutical composition thereof described herein.In some embodiments, the method comprises distributing the RNAi oligonucleotide conjugate to one or more target tissues of the subject with minimal distribution to one or more non-target tissues of the subject.In some embodiments, the lipid-conjugated RNAi oligonucleotide contacts or is delivered to a cell or cell population present in one or more target tissues of the subject with minimal contact or delivery to a cell or cell population present in one or more non-target tissues of the subject.In some embodiments, the expression of the target gene is reduced in one or more target tissues without being reduced to the same or similar level in one or more non-target tissues.

[0264] In some embodiments, the method results in (i) a reduction in expression of the target gene by a cell or cell population in one or more target tissues compared to a control expression of the target gene, and (ii) a substantially equivalent expression of the target gene by a cell or cell population in one or more non-target tissues relative to the control expression of the target gene. In some embodiments, the control expression of the target gene corresponds to the amount or level of expression of the target gene in a cell or cell population from a comparable tissue that has not been contacted with a lipid-conjugated RNAi oligonucleotide or that has been contacted with a control RNAi oligonucleotide conjugate. In some embodiments, the reduction in target gene expression is measured as a reduction in the amount or level of target mRNA transcribed from the target gene, or the amount or level of protein encoded by the target gene. In some embodiments, the method results in (i) a reduction in expression of the target mRNA in one or more target tissues compared to a control, and (ii) a substantially equivalent expression of the target mRNA in one or more non-target tissues compared to a control. In some embodiments, the method results in (i) a reduction in the level of the target protein in one or more target tissues compared to a control, and (ii) a substantially equivalent level of the target protein in one or more non-target tissues compared to a control.

[0265] In some embodiments, the present disclosure provides a method for reducing or inhibiting the expression of a target gene in a cell population associated with the CNS in a subject, comprising administering a lipid-conjugated RNAi oligonucleotide or a pharmaceutical composition thereof described herein. In some embodiments, the method comprises distributing the RNAi oligonucleotide conjugate to the CNS in a subject with minimal distribution to one or more non-target tissues (e.g., liver) of the subject. In some embodiments, the lipid-conjugated RNAi oligonucleotide contacts or is delivered to a cell or cell population present in the CNS of a subject with minimal contact or delivery to a cell or cell population present in one or more non-target tissues (e.g., liver) of the subject. In some embodiments, the expression of the target gene is reduced in the CNS of a subject without being reduced to a similar level in one or more non-target tissues (e.g., liver).

[0266] In some embodiments, the expression of the target gene is reduced in the CNS without being reduced to a similar level in one or more non-target tissues. In some embodiments, the one or more non-target tissues include liver tissue. In some embodiments, the method results in (i) a reduction in the expression of the target gene in a cell or cell population of the CNS compared to the control expression of the target gene, and (ii) a substantially equivalent expression of the target gene in a cell or cell population of one or more non-target tissues compared to the control expression of the target gene. In some embodiments, the control expression of the target gene corresponds to the amount or level of expression of the target gene in a cell or cell population from a comparable tissue that is not contacted with lipid-conjugated RNAi oligonucleotide or is contacted with a control RNAi oligonucleotide conjugate. In some embodiments, the method results in (i) reduced expression of the target gene in a cell or cell population of the CNS compared to a control expression of the target gene (e.g., expression of the target gene in a cell or cell population of the CNS that has not been contacted with a lipid-conjugated RNAi oligonucleotide or that has been contacted with a control lipid-conjugated RNAi oligonucleotide), and (ii) substantially equivalent expression of the target gene in a cell or cell population of the liver compared to a control expression of the target gene (e.g., expression of the target gene in a cell or cell population of the liver that has not been contacted with a lipid-conjugated RNAi oligonucleotide or that has been contacted with a control lipid-conjugated RNAi oligonucleotide). In some embodiments, the method results in expression of the target gene in a cell or cell population of the CNS that is about 1% or less, about 5% or less, about 10% or less, about 15% or less, about 20% or less, about 25% or less, about 30% or less, about 35% or less, about 40% or less, about 45% or less, about 50% or less, about 55% or less, about 60% or less, about 70% or less, about 80% or less, or about 90% or less compared to the control expression of the target gene. In some embodiments, expression of the target gene in the liver is comparable to the control expression of the target gene (e.g., has a difference of about ±30%, about ±25%, about ±20%, about ±15%, about ±10%, about ±5%, about ±4%, about ±3%, about ±2%, or about ±1% or less).In some embodiments, a reduction in target gene expression in the CNS is measured as a reduction in the amount or level of target mRNA transcribed from the target gene, or the amount or level of a protein encoded by the target gene.

[0267] Treatment method The present disclosure provides oligonucleotides for use as medicines, particularly for use in methods for treating diseases, disorders, and conditions associated with the CNS. The present disclosure also provides lipid-conjugated RNAi oligonucleotides for use or adapted for use in treating subjects (e.g., humans) with diseases, disorders, or conditions associated with the expression of neuronal target genes that would benefit from reducing the expression of neuronal target genes. In some embodiments, the present disclosure provides lipid-conjugated RNAi oligonucleotides for use or adapted for use in the manufacture of medicines or pharmaceutical compositions for treating diseases, disorders, or conditions associated with the expression of neuronal target genes. In some embodiments, the lipid-conjugated RNAi oligonucleotides for use or adapted for use target mRNA and reduce the expression of neuronal target genes (e.g., via the RNAi pathway). In some embodiments, the lipid-conjugated RNAi oligonucleotides for use or adapted for use target mRNA and reduce the amount or level of neuronal target mRNA, protein, and / or activity.

[0268] In addition, in some embodiments of the methods herein, subjects having or susceptible to a disease, disorder, or condition associated with expression of a neuronal target gene are selected for treatment with lipid-conjugated RNAi oligonucleotides provided herein. In some embodiments, the method includes selecting an individual having or susceptible to a marker (e.g., biomarker) of a disease, disorder, or condition associated with expression of a neuronal target gene, such as, but not limited to, a target mRNA, protein, or combination thereof. Similarly, as described in detail below, some embodiments of the methods provided by the present disclosure include, for example, measuring or obtaining a baseline value of a marker of expression of a neuronal target gene, and then comparing the value thus obtained with one or more other baseline values, or values ​​obtained after administering lipid-conjugated RNAi oligonucleotides to the subject to evaluate the effectiveness of the treatment.

[0269] The present disclosure also provides a method of treating a subject having, suspected of having, or at risk of developing a disease, disorder, or condition associated with the expression of neuronal target genes with lipid-conjugated RNAi oligonucleotides provided herein.In some embodiments, the present disclosure provides a method of treating or mitigating the onset or progression of a disease, disorder, or condition associated with the expression of neuronal target genes using lipid-conjugated RNAi oligonucleotides provided herein.In some embodiments, the present disclosure provides a method of using lipid-conjugated RNAi oligonucleotides provided herein to achieve one or more therapeutic benefits in a subject having a disease, disorder, or condition associated with the expression of neuronal target genes.

[0270] In some embodiments of the method herein, the subject is treated by administering a therapeutically effective amount of any one or more of the lipid-conjugated RNAi oligonucleotides provided herein.In some embodiments, the treatment comprises reducing the expression of neuronal target genes (e.g., in the CNS).In some embodiments, the subject is treated therapeutically.In some embodiments, the subject is treated prophylactically.

[0271] In some embodiments of the method herein, the lipid-conjugated RNAi oligonucleotide provided herein or the pharmaceutical composition comprising lipid-conjugated RNAi oligonucleotide is administered to a subject having a disease, disorder or condition associated with the expression of neuronal target genes, so that the target gene expression is reduced in the subject, thereby treating the subject.In some embodiments, the amount or level of target mRNA is reduced in the subject.In some embodiments, the amount or level of the protein encoded by the target mRNA is reduced in the subject.

[0272] In some embodiments of the methods herein, a lipid-conjugated RNAi oligonucleotide, or a pharmaceutical composition comprising a lipid-conjugated RNAi oligonucleotide provided herein, is administered to a subject having a disease, disorder, or condition associated with expression of a neuronal target gene such that target gene expression is reduced in the subject by at least about 30%, about 35%, about 40%, about 45%, about 50%, about 55%, about 60%, about 65%, about 70%, about 75%, about 80%, about 85%, about 90%, about 95%, about 99%, or greater than 99% compared to target gene expression prior to administration of the lipid-conjugated RNAi oligonucleotide or pharmaceutical composition. In some embodiments, expression of a neuronal target gene is reduced by at least about 30%, about 35%, about 40%, about 45%, about 50%, about 55%, about 60%, about 65%, about 70%, about 75%, about 80%, about 85%, about 90%, about 95%, about 99%, or greater than 99% in a subject compared to target gene expression in a subject (e.g., a reference or control subject) that has not received a lipid-conjugated RNAi oligonucleotide or pharmaceutical composition or that has received a control lipid-conjugated RNAi oligonucleotide, pharmaceutical composition, or treatment.

[0273] In some embodiments of the methods herein, a lipid-conjugated RNAi oligonucleotide, or a pharmaceutical composition comprising a lipid-conjugated RNAi oligonucleotide, herein is administered to a subject having a disease, disorder, or condition associated with expression of a neuronal target gene such that the amount or level of the target mRNA is reduced in the subject by at least about 30%, about 35%, about 40%, about 45%, about 50%, about 55%, about 60%, about 65%, about 70%, about 75%, about 80%, about 85%, about 90%, about 95%, about 99%, or greater than 99% compared to the amount or level of the target mRNA prior to administration of the lipid-conjugated RNAi oligonucleotide or pharmaceutical composition. In some embodiments, the amount or level of target mRNA is reduced by at least about 30%, about 35%, about 40%, about 45%, about 50%, about 55%, about 60%, about 65%, about 70%, about 75%, about 80%, about 85%, about 90%, about 95%, about 99%, or greater than 99% in a subject compared to the amount or level of target mRNA in a subject (e.g., a reference or control subject) that has not received a lipid-conjugated RNAi oligonucleotide or pharmaceutical composition or that has received a control lipid-conjugated RNAi oligonucleotide, pharmaceutical composition, or treatment.

[0274] In some embodiments of the methods herein, a lipid-conjugated RNAi oligonucleotide, or a pharmaceutical composition comprising a lipid-conjugated RNAi oligonucleotide, herein is administered to a subject having a disease, disorder, or condition associated with expression of a neuronal target gene such that the amount or level of protein encoded by the neuronal target gene is reduced in the subject by at least about 30%, about 35%, about 40%, about 45%, about 50%, about 55%, about 60%, about 65%, about 70%, about 75%, about 80%, about 85%, about 90%, about 95%, about 99%, or greater than 99% compared to the amount or level of protein encoded by the target gene prior to administration of the lipid-conjugated RNAi oligonucleotide or pharmaceutical composition. In some embodiments, the amount or level of protein encoded by a neuronal target gene is reduced by at least about 30%, about 35%, about 40%, about 45%, about 50%, about 55%, about 60%, about 65%, about 70%, about 75%, about 80%, about 85%, about 90%, about 95%, about 99%, or greater than 99% in a subject compared to the amount or level of protein encoded by the target gene in a subject (e.g., a reference or control subject) that has not received the lipid-conjugated RNAi oligonucleotide or pharmaceutical composition or that has received a control lipid-conjugated RNAi oligonucleotide, pharmaceutical composition, or treatment.

[0275] In some embodiments of the methods herein, a lipid-conjugated RNAi oligonucleotide, or a pharmaceutical composition comprising a lipid-conjugated RNAi oligonucleotide, herein is administered to a subject having a disease, disorder, or condition associated with expression of a neuronal target gene such that the amount or level of target gene activity is reduced in the subject by at least about 30%, about 35%, about 40%, about 45%, about 50%, about 55%, about 60%, about 65%, about 70%, about 75%, about 80%, about 85%, about 90%, about 95%, about 99%, or greater than 99% compared to the amount or level of target gene activity prior to administration of the lipid-conjugated RNAi oligonucleotide or pharmaceutical composition. In some embodiments, the amount or level of target gene activity is reduced by at least about 30%, about 35%, about 40%, about 45%, about 50%, about 55%, about 60%, about 65%, about 70%, about 75%, about 80%, about 85%, about 90%, about 95%, about 99%, or greater than 99% in a subject compared to the amount or level of target gene activity in a subject (e.g., a reference or control subject) that has not received the lipid-conjugated RNAi oligonucleotide or pharmaceutical composition or that has received a control lipid-conjugated RNAi oligonucleotide, pharmaceutical composition, or treatment.

[0276] Suitable methods for determining target gene expression, the amount or level of target mRNA, the amount or level of a protein encoded by a target gene, and / or the amount or level of target gene activity in a subject or in a sample from a subject are known in the art. Additionally, the examples described herein illustrate exemplary methods for determining target gene expression.

[0277] In some embodiments, target gene expression, the amount or level of target gene mRNA, the amount or level of protein encoded by the target gene, the amount or level of target gene activity, or any combination thereof, is reduced in a cell (e.g., a neuron), a cell population or group (e.g., an organoid), an organ (e.g., the CNS), blood or a fraction thereof (e.g., plasma), a tissue (e.g., brain tissue), a sample (e.g., a CSF sample or a brain biopsy sample), or any other biological material obtained or isolated from a subject. In some embodiments, expression of a neuronal target gene, the amount or level of target gene mRNA, the amount or level of protein encoded by the target gene, the amount or level of target gene activity, or any combination thereof, is reduced in two or more types of cells (e.g., neurons), two or more groups of cells, two or more organs (e.g., the brain and one or more other organs), two or more fractions of blood (e.g., plasma and one or more other blood fractions), two or more types of tissue (e.g., brain tissue and one or more other types of tissue), two or more types of samples obtained or isolated from a subject (e.g., a brain biopsy sample and one or more other types of biopsy sample).

[0278] In some embodiments, expression of the neuronal target gene is reduced in one or more of the lumbar spinal cord, the lumbar dorsal root ganglion (DRG), the medulla, the hippocampus, the somatosensory cortex, or the frontal cortex. In some embodiments, expression of the neuronal target gene is reduced in one or more of the spinal cord, the lumbar spinal cord, the thoracic spinal cord, the cervical spinal cord, the lumbar dorsal root ganglion (DRG), the medulla, the hippocampus, the somatosensory cortex, or the frontal cortex. In some embodiments, expression of the neuronal target gene is reduced in the spinal cord. In some embodiments, expression of the neuronal target gene is reduced in the lumbar spinal cord. In some embodiments, expression of the neuronal target gene is reduced in the thoracic spinal cord. In some embodiments, expression of the neuronal target gene is reduced in the cervical spinal cord. In some embodiments, expression of the neuronal target gene is reduced in the lumbar dorsal root ganglion. In some embodiments, expression of the neuronal target gene is reduced in the medulla. In some embodiments, expression of the neuronal target gene is reduced in the hippocampus. In some embodiments, expression of the neuronal target gene is reduced in the somatosensory cortex. In some embodiments, expression of the neuronal target gene is reduced in the frontal cortex.

[0279] Examples of diseases, disorders, or conditions associated with expression of neuronal target genes include progressive supranuclear palsy (PSP), corticobasal degeneration (CBD), argyrophilic granulopathy (AGD), glioglobular tauopathy (GGT), age-related tau astrogliopathy (ARTAG), familial frontotemporal dementia 17 (FTD-17), tauopathy with respiratory failure, dementia with seizures, Pick's disease, myotonic dystrophy 1, or 2 (MD1 or MD2), Down syndrome, spastic paraplegia (SP), Niemann-Pick disease type C, Dementia with Lewy bodies (DLB), Lewy body dysphagia, Lewy body disease, Olivopontocerebellar atrophy, Striatonigral degeneration, Shy-Drager syndrome, Spinal muscular atrophy V (SMAV), Huntington's disease (HD), Alzheimer's disease, SCA1, SCA2, SCA3, SCA7, SCA10 (Spinocerebellar ataxia type 1, 2 Type 3, 7, or 10), Multiple System Atrophy (MSA), Spinal-bulbar Muscular Atrophy (SBMA, Kennedy's disease), Friedreich's Ataxia, Fragile X-associated Tremor / Ataxia Syndrome (FXTAS), Fragile X Syndrome (FRAXA), X-linked Mental Retardation (XLMR), Parkinson's Disease, Dystonia, SBMA (Spinal-bulbar Muscular Atrophy), Neuropathic Pain Disorders, Spinal Cord Injury, Dentatorubral-Pallidoluysian Atrophy (DRPLA), These include, but are not limited to, recessive CNS disorders, ALS (amyotrophic lateral sclerosis), M2DS (MECP2 duplication syndrome), FTD (frontotemporal dementia), prion diseases, adult-onset leukodystrophies, Alexander disease, Krabbe disease, chronic traumatic encephalopathy, Pelizaeus-Merzbach disease (PMD), Lafora disease, stroke, cerebral amyloid angiopathy (CAA), and metachromatic leukodystrophy (MLD).

[0280] In some embodiments, expression of the neuronal target gene is reduced in the DRG sufficiently to treat a pain disorder associated with aberrant expression of the neuronal target gene.

[0281] In some embodiments, the disease, disorder, or condition associated with expression of a neuronal target gene is a neurodegenerative disease.

[0282] In some embodiments, the neuronal target gene may be a target gene from any mammal, such as a human. Any neuronal gene may be silenced according to the methods described herein.

[0283] The method described herein typically comprises administering to subject a therapeutically effective amount of the lipid-conjugated RNAi oligonucleotide herein, i.e., the amount that can produce desired therapeutic results.The therapeutically acceptable amount can be the amount that can treat disease or disorder therapeutically.The appropriate dose for any one subject will depend on certain factors, including subject's size, body surface area, age, composition administered, active ingredient in the composition, time and route of administration, general health condition, and other drugs administered at the same time.

[0284] In some embodiments, a subject is administered any one of the compositions herein either enterally (e.g., orally, by a gastric feeding tube, by a duodenal feeding tube, via a gastrostomy, or rectally), parenterally (e.g., subcutaneous injection, intravenous injection or infusion, intraarterial injection or infusion, intraosseous injection, intramuscular injection, intracerebral injection, intraventricular injection, intrathecal injection), locally (e.g., transdermally, inhalation, via eye drops, or via a mucosa), or by direct injection into a target organ (e.g., the subject's brain).

[0285] In some embodiments, the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, are administered intrathecally into the cerebrospinal fluid (CSF) (e.g., injection or infusion into the fluid in the subarachnoid space). In some embodiments, the intrathecal administration of the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, is performed as a bolus injection into the subarachnoid space. In some embodiments, the intrathecal administration of the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, is performed as an infusion into the subarachnoid space. In some embodiments, the intrathecal administration of the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, is performed into the subarachnoid space via a catheter. In some embodiments, the intrathecal administration of the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, is performed via a pump. In some embodiments, the intrathecal administration of the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, is performed via an implantable pump. In some embodiments, the administration is performed via an implantable device that operates or functions as a reservoir.

[0286] In some embodiments, the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, are administered intrathecally into the cerebellomedullary cistern (also called the cisterna magna). Intrathecal administration into the cisterna magna is referred to as "intracisternal administration" or "intracisternal magna (icm) administration." In some embodiments, the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, are administered intrathecally into the subarachnoid space of the lumbar spinal cord. Intrathecal administration into the subarachnoid space of the lumbar spinal cord is referred to as "lumbar intrathecal (it) administration." In some embodiments, the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, are administered intrathecally into the subarachnoid space of the cervical spinal cord. Intrathecal administration into the subarachnoid space of the cervical spinal cord is referred to as "cervical intrathecal (it) administration." In some embodiments, the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, are administered intrathecally into the subarachnoid space of the thoracic spinal cord. Intrathecal administration into the subarachnoid space of the thoracic spinal cord is referred to as "thoracic intrathecal (it) administration". In some embodiments, the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, are administered by intraventricular injection or infusion into the ventricle. Intraventricular administration into the ventricle space is referred to as "intraventricular (icv) administration". In some embodiments, an Ommaya reservoir is used to administer the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, by intraventricular injection or infusion.

[0287] In some embodiments, the lipid-conjugated RNAi oligonucleotides or compositions thereof herein are administered via ocular, intraocular, subconjunctival, intravitreal, retrobulbar, or intracameral administration.

[0288] In some embodiments, the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, are administered via epidural administration.

[0289] In some embodiments, the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, are administered annually, every 6 months, every 4 months, quarterly (every 3 months), bimonthly (every 2 months), monthly, or weekly. In some embodiments, the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, are administered weekly, or at 2-week or 3-week intervals. In some embodiments, the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, are administered daily. In some embodiments, the subject is administered one or more loading doses of the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, followed by one or more maintenance doses of the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof.

[0290] In some embodiments, the subject to be treated is a human or non-human primate or other mammalian subject. Other exemplary subjects include domesticated animals such as dogs and cats, farm animals such as horses, cows, pigs, sheep, goats, and chickens, and animals such as mice, rats, guinea pigs, and hamsters.

[0291] kit In some embodiments, the present disclosure provides a kit comprising the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, as described herein, and instructions for use. In some embodiments, the kit comprises the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, as described herein, and a package insert comprising instructions for use of the kit and / or any of its components. In some embodiments, the kit comprises the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, as described herein, one or more controls, and various buffers, reagents, enzymes, and other standard components known in the art in a suitable container. In some embodiments, the container comprises at least one vial, well, test tube, flask, bottle, syringe, or other container means into which the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, are placed, and in some cases, suitably aliquoted. In some embodiments where additional components are provided, the kit comprises an additional container into which the components are placed. The kit can also comprise a means for containing the lipid-conjugated RNAi oligonucleotides herein, or compositions thereof, and any other reagents in close confinement for commercial sale. Such containers may include injection or blow molded plastic containers into which the desired vials are held. The containers and / or kits may include a label bearing instructions and / or warnings for use.

[0292] In some embodiments, the kit comprises a lipid-conjugated RNAi oligonucleotide as described herein, or a composition thereof, and a pharma- ceutically acceptable carrier, or a pharmaceutical composition comprising the lipid-conjugated RNAi oligonucleotide, and instructions for treating or delaying the progression of a disease, disorder, or condition associated with expression of a neuronal target gene in a subject in need thereof.

[0293] definition As used herein, the term "and / or" includes any and all combinations of one or more of the associated listed items. Furthermore, the singular form and the articles "a," "an," and "the" are intended to include the plural, unless expressly specified otherwise. Furthermore, it is to be understood that as used herein, the terms "includes," "comprises," "including," and / or "comprising" specify the presence of stated features, integers, steps, operations, elements, and / or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and / or groups thereof. Furthermore, it is to be understood that when an element, including a component or subsystem, is referred to and / or shown as being connected or coupled to another element, it may be directly connected or coupled to the other element, or there may be intervening elements.

[0294] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs. Although methods and materials similar or equivalent to those described herein can be used in the practice of the methods and compositions of the present disclosure, exemplary methods and materials are described herein.

[0295] General texts describing molecular biology techniques useful herein, including the use of vectors, promoters, and many other related topics include Berger and Kimmel, GUIDE TO MOLECULAR CLONING TECHNIQUES, METHODS IN ENZYMOLOGY, volume 152, (Academic Press, Inc., San Diego, Calif.) ("Berger"), Sambrook et al., MOLECULAR CLONING--A LABORATORY MANUAL, 2d ed., Vol. 1-3, Cold Spring Harbor Laboratory, Cold Spring Harbor, 1989 ("Sambrook"), and CURRENT PROTOCOLS IN MOLECULAR BIOLOGY, FMAusubel et al., eds., CURRENT PROTOCOLS, A JOINT VENTURE BETWEEN GREENE PUBLISHING ASSOCIATES, INC. AND JOHN WILEY AND SONS, INC. (supplemented through 1999) (“Ausubel”).Examples of protocols sufficient to instruct one of skill in the art through in vitro amplification methods, including polymerase chain reaction (PCR), ligase chain reaction (LCR), Q. beta.-replicase amplification, and other RNA polymerase-mediated techniques (e.g., NASBA), for the production of homologous nucleic acids of the present disclosure, can be found in Berger, Sambrook, and Ausubel, as well as in Mullis et al., (1987) U.S. Pat. No. 4,683,202, Innis et al., eds. (1990), PCR PROTOCOLS: A GUIDE TO METHODS AND APPLICATIONS (Academic Press Inc. San Diego, Calif.) ("Innis"), Arnheim and Levinson (Oct. 1, 1990) CandEN 36-47, J. NIH RES. (1991) 3:81-94, Kwoh et al. al.,(1989)PROC.NATL.ACAD.SCI.USA 86:1173, Guatelliet al(1990)PROC.NAT'L.ACAD.SCI.USA 87:1874, Lomell et al.,(1989)J.CLIN.CHEM 35:1826, Landegren et al.,(1988)SCIENCE 241:1077-80, Van Brunt (1990) BIOTECHNOLOGY 8:291-94, Wu and Wallace (1989) GENE 4:560, Barringer et al., (1990) GENE 89:117, and Sooknanan and Malek (1995) BIOTECHNOLOGY Found in 13:563-564. Improved methods for cloning in vitro amplified nucleic acids are described in Wallace et al., U.S. Patent No. 5,426,039. Improved methods for amplifying large nucleic acids by PCR are summarized in Cheng et al., (1994) NATURE 369:684-85, and references cited therein, where PCR amplicons of up to 40 kb are generated.

[0296] As used in this specification and the appended claims, the singular forms "a," "an," and "the" include plural referents unless the context clearly dictates otherwise. Thus, for example, reference to a "pharmaceutical carrier" includes mixtures of two or more such carriers, and the like.

[0297] Ranges may be expressed herein as from "about" one value and / or to "about" another value. When such a range is expressed, another embodiment includes from the one value and / or to the other value. Similarly, it will be understood that when values ​​are expressed as approximations, the use of the preceding "about" causes the value to form another embodiment. Further, it will be understood that each endpoint of a range is significant both in relation to the other endpoint and independently of the other endpoint. It is also understood that there are several values ​​disclosed herein, and that each value is also disclosed herein as "about" that value in addition to the value itself. For example, when the value "10" is disclosed, "about 10" is also disclosed. It is also understood that when a value is disclosed, "less than or equal to," "greater than or equal to," and possible ranges between the values ​​are also disclosed, as would be well understood by one of ordinary skill in the art. For example, when the value "10" is disclosed, "less than or equal to 10" as well as "greater than or equal to 10" are also disclosed. It is also understood that throughout the application, data is provided in several different formats, and that this data represents endpoints and starting points, as well as ranges of any combination of data points. For example, if a specific data point "10" and a specific data point 15 are disclosed, then 10 and greater than 15, greater than or equal to 10 and 15, less than 10 and 15, less than or equal to 10 and 15, and equal to 10 and 15 are considered to be disclosed as well as 10 to 15. It is also understood that each unit between two specific units is also disclosed. For example, if 10 and 15 are disclosed, then 11, 12, 13, and 14 are also disclosed.

[0298] As used herein, "complementary" refers to a structural relationship between two nucleotides (e.g., on two opposing nucleic acids or on opposing regions of a single nucleic acid strand) that allows the two nucleotides to base pair with each other. For example, purine nucleotides of one nucleic acid that are complementary to pyrimidine nucleotides of an opposing nucleic acid may base pair together by forming hydrogen bonds with each other. In some embodiments, complementary nucleotides may base pair by Watson-Crick or any other method that allows the formation of a stable duplex. In some embodiments, two nucleic acids may have a region of multiple nucleotides that are complementary to each other and form a region of complementarity, as described herein.

[0299] As used herein, "deoxyribonucleotide" refers to a nucleotide that, compared to a ribonucleotide, has a hydrogen instead of a hydroxyl at the 2' position of its pentose sugar. Modified deoxyribonucleotides are deoxyribonucleotides that have one or more modifications or substitutions of atoms other than the 2' position, including in or modifications or substitutions of the sugar, phosphate group, or base.

[0300] As used herein, "double-stranded RNA", "dsRNA", or "dsRNAi" refers to an RNA oligonucleotide that is in a substantially double-stranded form. In some embodiments, the complementary base pairing of the double-stranded region of the dsRNA oligonucleotide is formed between the antiparallel sequence of nucleotides of the covalently separated nucleic acid strands. In some embodiments, the complementary base pairing of the double-stranded region of the dsRNA oligonucleotide is formed between the antiparallel sequence of nucleotides of the covalently linked nucleic acid strands. In some embodiments, the complementary base pairing of the double-stranded region of the dsRNA is formed from a single nucleic acid strand that folds back (e.g., via a hairpin) to provide a complementary antiparallel sequence of nucleotides that base pair together. In some embodiments, the dsRNA comprises two covalently separated nucleic acid strands that are fully double-stranded with each other. However, in some embodiments, the dsRNA comprises two covalently separated nucleic acid strands that are partially double-stranded (e.g., with an overhang at one or both ends). In some embodiments, the dsRNA comprises antiparallel sequences of nucleotides that are partially complementary and thus may have one or more mismatches, which may include internal or terminal mismatches.

[0301] As used herein, "duplex" with respect to a nucleic acid (eg, an oligonucleotide) refers to the structure formed through complementary base pairing of two antiparallel sequences of nucleotides.

[0302] As used herein, "excipient" refers to a non-therapeutic agent that may be included in a composition, for example, to provide or contribute a desired consistency or stabilizing effect.

[0303] As used herein, a "loop" refers to an unpaired region of a nucleic acid (e.g., an oligonucleotide) that is flanked by two antiparallel regions of the nucleic acid that are sufficiently complementary to each other such that under appropriate hybridization conditions (e.g., intracellularly, in phosphate buffer), the two antiparallel regions flanking the unpaired regions hybridize to form a duplex (called a "stem").

[0304] As used herein, "modified internucleotide bond" refers to an internucleotide bond that has one or more chemical modifications compared to a reference internucleotide bond that includes a phosphodiester bond. In some embodiments, the modified nucleotide is a non-naturally occurring bond. Typically, the modified internucleotide bond confers one or more desirable properties to the nucleic acid in which the modified internucleotide bond is present. For example, the modified nucleotide may improve thermal stability, resistance to degradation, nuclease resistance, solubility, bioavailability, biological activity, reduced immunogenicity, etc.

[0305] As used herein, "modified nucleotide" refers to a nucleotide that has one or more chemical modifications compared to a corresponding reference nucleotide selected from adenine ribonucleotide, guanine ribonucleotide, cytosine ribonucleotide, uracil ribonucleotide, adenine deoxyribonucleotide, guanine deoxyribonucleotide, cytosine deoxyribonucleotide, and thymidine deoxyribonucleotide. In some embodiments, the modified nucleotide is a non-naturally occurring nucleotide. In some embodiments, the modified nucleotide has one or more chemical modifications in its sugar, nucleobase, and / or phosphate group. In some embodiments, the modified nucleotide has one or more chemical moieties conjugated to the corresponding reference nucleotide. Typically, the modified nucleotide confers one or more desirable properties to the nucleic acid in which the modified nucleotide is present. For example, the modified nucleotide may improve thermal stability, resistance to degradation, nuclease resistance, solubility, bioavailability, biological activity, reduced immunogenicity, etc.

[0306] As used herein, "neuronal mRNA" and "neuronal gene" refer to any gene, mRNA, and / or protein encoded / expressed by a gene in a neuron of the central nervous system. Neurons are the primary cells of the nervous system and function to transmit signals to different cells in the body.

[0307] As used herein, "nicked tetraloop structure" refers to a structure of an RNAi oligonucleotide characterized by separate sense (passenger) and antisense (guide) strands, where the sense strand has a region complementary to the antisense strand, and at least one of the strands, typically the sense strand, has a tetraloop configured to stabilize an adjacent stem region formed in at least one strand.

[0308] As used herein, "oligonucleotide" refers to a short nucleic acid (e.g., less than about 100 nucleotides in length). An oligonucleotide can be single-stranded (ss) or double-stranded (ds). An oligonucleotide may or may not have a double-stranded region. An oligonucleotide can contain deoxyribonucleotides, ribonucleosides, or a combination of both. In some embodiments, a double-stranded oligonucleotide containing ribonucleotides is referred to as "dsRNA". As a set of non-limiting examples, an oligonucleotide can be, but is not limited to, a small interfering RNA (siRNA), a microRNA (miRNA), a short hairpin RNA (shRNA), a dicer substrate interfering RNA (dsiRNA), an antisense oligonucleotide, a short siRNA, or a ss siRNA. In some embodiments, the double-stranded RNA (dsRNA) is an RNAi oligonucleotide.

[0309] The terms "lipid-conjugated RNAi oligonucleotide" and "oligonucleotide-ligand conjugate" are used interchangeably and refer to an oligonucleotide comprising one or more nucleotides conjugated to one or more targeting ligands (e.g., lipids).

[0310] As used herein, "overhang" refers to the terminal unpaired nucleotides that originate from one strand or region that extends beyond the end of the complementary strand that forms a duplex.In some embodiments, the overhang comprises one or more unpaired nucleotides that extend from the duplex region at the 5'-end or 3'-end of the dsRNA.In some embodiments, the overhang is the 3'- or 5'-overhang on the antisense strand or the sense strand of the dsRNA.

[0311] As used herein, "phosphate analog" refers to a chemical moiety that mimics the electrostatic and / or steric properties of a phosphate group. In some embodiments, the phosphate analog is located at the 5'-terminal nucleotide of an oligonucleotide in place of the 5'-phosphate, which is often susceptible to enzymatic removal. In some embodiments, the 5' phosphate analog comprises a phosphatase-resistant linkage. Examples of phosphate analogs include, but are not limited to, 5' phosphonates, such as 5' methylene phosphonate (5'-MP) and 5'-(E)-vinyl phosphonate (5'-VP). In some embodiments, an oligonucleotide has a phosphate analog at the 4' carbon position of the sugar (referred to as a "4' phosphate analog") at the 5'-terminal nucleotide. An example of a 4'-phosphate analog is an oxymethyl phosphonate, in which the oxygen atom of the oxymethyl group is attached to the sugar moiety (e.g., its 4' carbon) or an analog thereof. See, e.g., U.S. Provisional Patent Application Nos. 62 / 383,207, filed September 2, 2016, and 62 / 393,401, filed September 12, 2016. Other modifications to the 5' end of oligonucleotides have been developed (see, e.g., International Patent Application No. 2011 / 133871, U.S. Patent No. 8,927,513, and Prakash et al., (2015) NUCLEIC ACIDS RES. 43:2993-3011).

[0312] As used herein, "reducing expression" of a target gene refers to a reduction in the amount or level of RNA transcript (e.g., target mRNA) or protein encoded by the target gene, and / or a reduction in the amount or level of the activity of the gene in a cell, cell population, sample, or subject, when compared to an appropriate reference (e.g., a reference cell, a reference cell population, a reference sample, or a reference subject). For example, the act of contacting a cell with the oligonucleotide or conjugate herein (e.g., a lipid RNAi oligonucleotide conjugate comprising an antisense strand having a nucleotide sequence that is complementary to a nucleotide sequence that comprises a target mRNA) can result in a reduction in the amount or level of the target mRNA, the amount or level of the protein encoded by the target gene, and / or the amount or level of the target gene activity, compared to a cell that is not treated with the double-stranded oligonucleotide (e.g., by inactivating and / or degrading the target mRNA by the RNAi pathway). Similarly, as used herein, "reducing expression" refers to an action that results in a reduction in the expression of a target gene.

[0313] As used herein, "region of complementarity" refers to a nucleotide sequence of a nucleic acid (e.g., dsRNA) that is sufficiently complementary to an antiparallel sequence of nucleotides to allow hybridization between the two sequences of nucleotides under suitable hybridization conditions (e.g., in a phosphate buffer, in a cell, etc.). In some embodiments, the oligonucleotide herein comprises a target sequence that has a region that is complementary to an mRNA target sequence.

[0314] As used herein, "ribonucleotide" refers to a nucleotide having ribose as its pentose sugar containing a hydroxyl group at its 2' position. A modified ribonucleotide is a ribonucleotide that has one or more modifications or substitutions of atoms other than the 2' position, including in or modifications or substitutions of the ribose, phosphate group, or base.

[0315] As used herein, "RNAi oligonucleotide" refers to either (a) a dsRNA having a sense strand (passenger) and an antisense strand (guide), where the antisense strand, or a portion of the antisense strand, is used by Argonaute 2 (Ago2) endonuclease in cleaving a target mRNA, or (b) a ss oligonucleotide having a single antisense strand, where the antisense strand (or a portion of the antisense strand) is used by Ago2 endonuclease in cleaving a target mRNA.

[0316] As used herein, a "strand" refers to a single, contiguous sequence of nucleotides linked together through internucleotide bonds (e.g., phosphodiester or phosphorothioate bonds). In some embodiments, a strand has two free ends (e.g., a 5' end and a 3' end).

[0317] As used herein, "subject" refers to any mammal, including mice, rabbits, and humans. In one embodiment, the subject is a human or a non-human primate (NHP). Furthermore, "individual" or "patient" may be used interchangeably with "subject."

[0318] As used herein, "synthetic" refers to a nucleic acid or other molecule that is artificially synthesized (e.g., using a machine (e.g., a solid-state nucleic acid synthesizer)) or is not otherwise derived from a natural source (e.g., a cell or organism) that normally produces the molecule.

[0319] As used herein, a "targeting ligand" refers to a molecule or "moiety" (e.g., carbohydrate, amino sugar, cholesterol, polypeptide, or lipid) that selectively binds to a cognate molecule (e.g., a receptor) of a tissue or cell of interest and / or can be conjugated to another substance for the purpose of targeting other substances to the tissue or cell of interest. For example, in some embodiments, a targeting ligand can be conjugated to an oligonucleotide for the purpose of targeting the oligonucleotide to a particular tissue or cell of interest. In some embodiments, a targeting ligand selectively binds to a cell surface receptor. Thus, in some embodiments, a targeting ligand, when conjugated to an oligonucleotide, facilitates delivery of an oligonucleotide to a particular cell through selective binding to a receptor expressed on the surface of the cell and endosomal internalization by the cell of a complex comprising the oligonucleotide, the targeting ligand, and the receptor. In some embodiments, the targeting ligand is conjugated to the oligonucleotide via a linker that is cleaved after cellular internalization or during cellular internalization, such that the oligonucleotide is released from the targeting ligand within the cell.

[0320] As used herein, a "loop," "triloop," or "tetraloop" refers to a loop that increases the stability of adjacent duplexes formed by hybridization of adjacent sequences of nucleotides. The increase in stability is measured by the increase in the average expected melting temperature (T) of adjacent stem duplexes from a set of loops of equivalent length composed of randomly selected sequences of nucleotides. m ) higher than the T of the adjacent stem duplex m For example, the loop can be detected as an increase in T of at least about 50° C., at least about 55° C., at least about 56° C., at least about 58° C., at least about 60° C., at least about 65° C., or at least about 75° C. in 10 mM NaHPO4, in a hairpin comprising a duplex of at least 2 base pairs (bp) in length. mIn some embodiments, the loop (e.g., tetraloop) can stabilize the bp of the adjacent stem duplex by stacking interactions. Additionally, interactions between nucleotides in the tetraloop include, but are not limited to, non-Watson-Crick base pairing, stacking interactions, hydrogen bonds, and contact interactions (Cheong et al., (1990) NATURE 346:680-82, Heus and Pardi (1991) SCIENCE 253:191-94). In some embodiments, the loop comprises or consists of 3-6 nucleotides, typically 4-5 nucleotides. In certain embodiments, the loop comprises or consists of 3, 4, 5, or 6 nucleotides, which may or may not be modified (e.g., conjugated to a targeting moiety). In some embodiments, the tetraloop comprises or consists of 3-6 nucleotides, typically 4-5 nucleotides. In some embodiments, the tetraloop comprises or consists of 3, 4, 5, or 6 nucleotides, which may or may not be modified (e.g., conjugated to a targeting moiety). In one embodiment, the tetraloop consists of 4 nucleotides. Any nucleotide may be used for the tetraloop, and the standard IUPAC-IUB symbols for such nucleotides may be used as described in Cornish-Bowden ((1985) NUCLEIC ACIDS RES. 13:3021-3030). For example, the letter "N" may be used to mean that any base may be at that position, the letter "R" may be used to indicate that A (adenine) or G (guanine) may be at that position, and "B" may be used to indicate that C (cytosine), G (guanine), or T (thymine) may be at that position.Examples of tetraloops include the UNCG family of tetraloops (e.g., UUCG), the GNRA family of tetraloops (e.g., GAAA), and the CUUG tetraloop (Woese et al., (1990) PROC. NATL. ACAD. SCI. USA 87:8467-71; Antao et al., (1991) NUCLEIC ACIDS RES. 19:5901-05). Examples of DNA tetraloops include the d(GNNA) family of tetraloops (e.g., d(GTTA), d(GNRA)) family of tetraloops, the d(GNAB) family of tetraloops, the d(CNNG) family of tetraloops, and the d(TNCG) family of tetraloops (e.g., d(TTCG)). (See, e.g., Nakano et al., (2002) BIOCHEM. 41:4281-92; Shinji et al., (2000) NIPPON KAGAKKAI KOEN YOKOSHU 78:731.) In some embodiments, the tetraloop is contained within a nicked tetraloop structure.

[0321] As used herein, "treat" or "treating" refers to the act of providing care to a subject in need of treatment, for example, by administering a therapeutic agent (e.g., an oligonucleotide herein) to the subject for the purpose of improving the health and / or well-being of the subject with respect to an existing condition (e.g., disease, disorder) or preventing or reducing the likelihood of the occurrence of a condition. In some embodiments, treatment involves reducing the frequency or severity of at least one sign, symptom, or contributing factor of a condition (e.g., disease, disorder) experienced by the subject. EXAMPLES

[0322] [Example 1] A general method for preparing double-stranded RNAi oligonucleotides Oligonucleotide synthesis and purification The double-stranded RNAi (dsRNAi) oligonucleotides described in the preceding examples are chemically synthesized using the methods described herein. In general, dsRNAi oligonucleotides can be synthesized using phosphoramidite synthesis methods known in the art (see, for example, Hughes and Ellington (2017) COLD SPRING HARB PERSPECT BIOL. 9(1):a023812; Beaucage SL, Caruthers MH STUDIES ON NUCLEOTIDE CHEMISTRY V: Deoxynucleoside Phosphoramidites-A New Class of Key Intermediates for Deoxypolynucleotide Synthesis. TETRAHEDRON LETT. (1981);22:1859-62. doi:10.1016 / S0040-4039(01)90461-7, U.S. Provisional Application No. 63 / 142,877, and PCT Application No. PCT / US2021 / 42469, each of which is incorporated herein by reference), and are synthesized using solid-phase oligonucleotide synthesis methods described for 19-23 mer RNAi oligonucleotides (e.g., Scaringe et al. (1990) NUCLEIC ACIDS RES. 18:5433-41, and Usman et al. (1987) J. AM. CHEM. Soc. 109:7845-7845. See also U.S. Patent Nos. 5,804,683, 5,831,071, 5,998,203, 6,008,400, 6,111,086, 6,117,657, 6,353,098, 6,362,323, 6,437,117, and 6,469,158.

[0323] Individual RNA strands were synthesized and HPLC purified according to standard methods (Integrated DNA Technologies; Coralville, IA). For example, RNA oligonucleotides were synthesized using solid-phase phosphoramidite chemistry, deprotected and desalted on a NAP-5 column (Amersham Pharmacia Biotech, Piscataway, NJ) using standard techniques (Damha & Olgivie (1993) METHODS MOL. BIOL. 20:81-114, Wincott et al. (1995) NUCLEIC ACIDS RES. 23:2677-2684), and phosphoramidite synthesis is as shown below. Synthesis of 2-(2-((((6aR,8R,9R,9aR)-8-(6-benzamido-9H-purin-9-yl)-2,2,4,4-tetraisopropyltetrahydro-6H-fluoro[3,2-f][1,3,5,2,4]trioxadiphenylsiloxane-9-yl)oxy)methoxy)ethoxy)ethane-1-ammonium formate (1-6) [ka]

[0324] A solution of compound 1-1 (25.00 g, 67.38 mmol) in 20 mL of DMF was treated with pyridine (11 mL, 134.67 mmol) and tetraisopropyldisiloxane dichloride (22.63 mL, 70.75 mmol) at 10° C. The resulting mixture was stirred at 25° C. for 3 h and quenched with 20% citric acid (50 mL). The aqueous layer was extracted with EtOAc (3×50 mL) and the combined organic layers were concentrated in vacuo. The crude residue was recrystallized from a mixture of MTBE and n-heptane (1:15, 320 mL) to give compound 1-2 (37.20 g, 90%) as a white oily solid.

[0325] A solution of compound 1-2 (37.00 g, 60.33 mmol) in 20 mL of DMSO was treated with AcOH (20 mL, 317.20 mmol) and Ac2O (15 mL, 156.68 mmol). The mixture was stirred at 25 °C for 15 h. The reaction was diluted with EtOAc (100 mL) and quenched with saturated K2CO3 (50 mL). The aqueous layer was extracted with EtOAc (3 x 50 mL). The combined organic layers were concentrated and recrystallized with ACN (30 mL) to give compound 1-3 (15.65 g, 38.4%) as a white solid.

[0326] A solution of compound 1-3 (20.00 g, 29.72 mmol) in 120 mL of DCM was treated with Fmoc-amino-ethoxyethanol (11.67 g, 35.66 mmol) at 25° C. The mixture was stirred to obtain a clear solution and then treated with 4 Å molecular sieves (20.0 g), N-iodosuccinimide (8.02 g, 35.66 mmol), and TfOH (5.25 mL, 59.44 mmol). The mixture was stirred at 30° C. until HPLC analysis showed >95% consumption of compound 1-3. The reaction was quenched with TEA (6 mL) and filtered. The filtrate was diluted with EtOAc, washed with saturated NaHCO3 (2 x 100 mL), saturated Na2SO3 (2 x 100 mL), and water (2 x 100 mL), and concentrated in vacuo to give crude compound 1-4 (26.34 g, 93.9%) as a yellow solid, which was used directly in the next step without further purification.

[0327] A solution of compound 1-4 (26.34 g, 27.62 mmol) in a mixture of DCM / water (10:7, 170 mL) was treated with DBU (7.00 mL, 45.08 mmol) at 5 °C. The mixture was stirred at 5-25 °C for 1 h. The organic layer was then separated, washed with water (100 mL) and diluted with DCM (130 mL). The solution was treated with fumaric acid (7.05 g, 60.76 mmol) and 4 Å molecular sieves (26.34 g) in four portions. The mixture was stirred for 1 h, concentrated and recrystallized from a mixture of MTBE and DCM (5:1) to give compound 1-6 (14.74 g, 62.9%) as a white solid. 1H NMR(400MHz,d6-DMSO)8.73(s,1H),8.58(s,1H),8.15-8.02(m,2H),7.65-7.60(m,1H),7.59-7.51(m,2H),6.52(s,2H),6.15 (s,1H),5.08-4.90(m,3H),4.83-4.78(m,1H),4.15-3.90(m,3H),3.79-3.65(m,2H),2.98-2.85(m,6H),1.20-0.95(m,28H).

[0328] Synthesis of (2R,3R,4R,5R)-5-(6-benzamido-9H-purin-9-yl)-2-((bis(4-methoxyphenyl)(phenyl)methoxy)methyl)-4-((2-(2-[lipid]-amidoethoxy)ethoxy)methoxy)tetrahydrofuran-3-yl(2-cyanoethyl)diisopropylphosphoramidite (2-4a to 2-4e) [ka]

[0329] A solution of compound 1-6 (50.00 g, 59.01 mmol) in 150 mL of 2-methyltetrahydrofuran was washed with ice-cold aqueous K2HPO4 (6%, 100 mL) and brine (20%, 2 x 100 mL). The organic layer was separated and treated with hexanoic acid (10.33 mL, 82.61 mmol), HATU (33.66 g, 88.52 mmol), and DMAP (10.81 g, 147.52 mmol) at 0 °C. The resulting mixture was warmed to 25 °C and stirred for 1 h. The solution was washed with water (2 x 100 mL), brine (100 mL), and concentrated in vacuo to give a crude residue. Flash chromatography on silica gel (1:1 hexane / acetone) afforded compound 2-1a (34.95 g, 71.5%) as a white solid.

[0330] A mixture of compound 2-1a (34.95 g, 42.19 mmol) and TEA (9.28 mL, 126.58 mmol) in 80 mL of THF was treated with triethylamine trihydrofluoride (20.61 mL, 126.58 mmol) dropwise at 10° C. The mixture was warmed to 25° C. and stirred for 2 h. The reaction was concentrated, dissolved in DCM (100 mL), and washed with saturated NaHCO3 (5×20 mL), and brine (50 mL). The organic layer was concentrated in vacuo to give crude compound 2-2a (24.72 g, 99%), which was used directly in the next step without further purification.

[0331] A solution of compound 2-2a (24.72 g, 42.18 mmol) in 50 mL of DCM was treated with N-methylmorpholine (18.54 mL, 168.67 mmol) and DMTr-Cl (15.69 g, 46.38 mmol). The mixture was stirred at 25° C. for 2 h and quenched with saturated NaHCO3 (50 mL). The organic layer was separated, washed with water, and concentrated to give a crude slurry. Flash chromatography on silica gel (1:1 hexane / acetone) afforded compound 2-3a (30.05 g, 33.8 mmol, 79.9%) as a white solid.

[0332] A solution of compound 2-3a (25.00 g, 28.17 mmol) in 50 mL of DCM was treated with N-methylmorpholine (3.10 mL, 28.17 mmol) and tetrazole (0.67 mL, 14.09 mmol) under nitrogen atmosphere. Bis(diisopropylamino)chlorophosphine (9.02 g, 33.80 mmol) was added dropwise to the solution and the resulting mixture was stirred at 25 °C for 4 h. The reaction was quenched with water (15 mL) and the aqueous layer was extracted with DCM (3 x 50 mL). The combined organic layers were washed with saturated NaHCO3 (50 mL) and concentrated to give a crude solid, which was recrystallized from a mixture of DCM / MTBE / n-hexane (1:4:40) to give compound 2-4a (25.52 g, 83.4%) as a white solid. 1H NMR(400MHz,d6-DMSO)11.25(s,1H),8.65-8.60(m,2H),8.09-8.02(m,2H),7.71(s,1H),7.67-7.60(m,1H),7.59-7.51(m,2H) ),7.38-7.34(m,2H),7.30-7.25(m,7H),6.85-6.79(m,4H),6.23-6.20(m,1H),5.23-5.14(m,1H),4.80-4.69(m,3H),4.33-4 .23(m,2H),3.90-3.78(m,1H),3.75(s,6H),3.74-3.52(m,3H),3.50-3.20(m,6H),3.14-3.09(m,2H),3.09(s,1H),2.82-2.8 0(m,1H),2.65-2.60(m,1H),2.05-1.96(m,2H),1.50-1.39(m,2H),1.31-1.10(m,14H),1.08-1.05(m,2H),0.85-0.79(m,3H); 31 P NMR (162MHz, d6-DMSO) 149.43,149.18.

[0333] Compounds 2-4b, 2-4c, 2-4d, and 2-4e were prepared using a procedure similar to that described above for compound 2-4a. Compound 2-4b was obtained as a white solid (25.50 g, 85.4%). 1H NMR(400MHz,d6-DMSO)11.23(s,1H),8.65-8.60(m,2H),8.05-8.02(m,2H),7.73-7.70(m,1H),7.67-7.60(m,1H),7.59-7.51( m,2H),7.38-7.34(m,2H),7.30-7.25(m,7H),6.89-6.80(m,4H),6.21-6.15(m,1H),5.23-5.17(m,1H),4.80-4.69(m,3H),4.40 -4.21(m,2H),3.91-3.80(m,1H),3.74(s,6H),3.74-3.52(m,3H),3.50-3.20(m,6H),3.14-3.09(m,2H),3.09(s,1H),2.83-2. 79(m,1H),2.68-2.62(m,1H),2.05-1.97(m,2H),1.50-1.38(m,2H),1.31-1.10(m,18H),1.08-1.05(m,2H),0.85-0.78(m,3H); 31 P NMR(162MHz,d6-DMSO)149.43,149.19.

[0334] Compound 2-4c was obtained as a solid product (36.60 g, 66.3%). 1 H NMR(400MHz,d6-DMSO)11.22(s,1H),8.64-8.59(m,2H),8.05-8.00(m,2H),7.73-7.70(m,1H),7.67-7.60(m,1H),7.59-7.51( m,2H),7.38-7.34(m,2H),7.30-7.25(m,7H),6.89-6.80(m,4H),6.21-6.15(m,1H),5.25-5.17(m,1H),4.80-4.69(m,3H),4.40 -4.21(m,2H),3.91-3.80(m,1H),3.74(s,6H),3.74-3.50(m,3H),3.50-3.20(m,6H),3.14-3.09(m,2H),3.09(s,1H),2.83-2. 79(m,1H),2.68-2.62(m,1H),2.05-1.99(m,2H),1.50-1.38(m,2H),1.33-1.12(m,38H),1.08-1.05(m,2H),0.86-0.80(m,3H); 31P NMR(162MHz,d6-DMSO)149.42,149.17.

[0335] Compound 2-4d was obtained as a solid product (26.60 g, 72.9%). 1 H NMR(400MHz,d6-DMSO)11.22(s,1H),8.64-8.59(m,2H),8.05-8.00(m,2H),7.73-7.70(m,1H),7.67-7.60(m,1H),7.59-7.51( m,2H),7.38-7.33(m,2H),7.30-7.25(m,7H),6.89-6.80(m,4H),6.21-6.15(m,1H),5.22-5.17(m,1H),4.80-4.69(m,3H),4.40 -4.21(m,2H),3.91-3.80(m,1H),3.74(s,6H),3.74-3.52(m,3H),3.50-3.20(m,6H),3.14-3.09(m,2H),3.09(s,1H),2.83-2. 79(m,1H),2.68-2.62(m,1H),2.05-1.99(m,2H),1.50-1.38(m,2H),1.35-1.08(m,38H),1.08-1.05(m,2H),0.85-0.79(m,3H); 31 P NMR(162MHz,d6-DMSO)149.47,149.22.

[0336] Compound 2-4e was obtained as a white solid (38.10 g, 54.0%). 1H NMR(400MHz,d6-DMSO)11.21(s,1H),8.64-8.59(m,2H),8.05-8.00(m,2H),7.73-7.70(m,1H),7.67-7.60(m,1H),7.59-7.51( m,2H),7.38-7.34(m,2H),7.30-7.25(m,7H),6.89-6.80(m,4H),6.21-6.15(m,1H),5.23-5.17(m,1H),4.80-4.69(m,3H),4.40 -4.21(m,2H),3.91-3.80(m,1H),3.73(s,6H),3.74-3.52(m,3H),3.47-3.22(m,6H),3.14-3.09(m,2H),3.09(s,1H),2.83-2. 79(m,1H),2.68-2.62(m,1H),2.05-1.99(m,2H),1.50-1.38(m,2H),1.35-1.06(m,46H),1.08-1.06(m,2H),0.85-0.77(m,3H); 31 P NMR (162MHz, d6-DMSO) 149.41,149.15.

[0337] Oligomers were purified using ion-exchange high performance liquid chromatography (IE-HPLC) on an Amersham Source 15Q column (1.0 cm x 25 cm; Amersham Pharmacia Biotech) using a 15 min step linear gradient. The gradient varied from 90:10 buffer A:B to 52:48 buffer A:B, where buffer A was 100 mM Tris pH 8.5 and buffer B was 100 mM Tris pH 8.5, 1 M NaCl. Samples were monitored at 260 nm and peaks corresponding to full-length oligonucleotide species were collected, pooled, desalted on a NAP-5 column, and lyophilized.

[0338] The purity of each oligomer was determined by capillary electrophoresis (CE) on a Beckman PACE 5000 (Beckman Coulter, Inc.; Fullerton, CA). The CE capillary has an inner diameter of 100 μm and contains ssDNA 100R Gel (Beckman-Coulter). Typically, about 0.6 nmol of oligonucleotide was injected into the capillary, run at an electric field of 444 V / cm, and detected by UV absorbance at 260 nm. Denaturing Tris-borate-7M-urea running buffer was purchased from Beckman-Coulter. Oligoribonucleotides that were at least 90% pure as assessed by CE for use in the experiments described below were obtained. Compound identity was confirmed by matrix-assisted laser desorption ionization time-of-flight (MALDI-TOF) mass spectrometry on a Voyager DE™ Biospectometry Work Station (Applied Biosystems; Foster City, CA) following the manufacturer's recommended protocol. The relative molecular masses of all oligomers were obtained, in most cases within 0.2% of the predicted molecular mass.

[0339] Preparation of double strands Single-stranded RNA oligomers were resuspended (e.g., at 100 μM concentration) in duplex buffer consisting of 100 mM potassium acetate, 30 mM HEPES, pH 7.5. Complementary sense and antisense strands were mixed in equimol...

Claims

1. A double-stranded oligonucleotide comprising an antisense strand 15 to 30 nucleotides in length and a sense strand 15 to 50 nucleotides in length, wherein the antisense strand and the sense strand form a double-stranded region of 15 to 30 base pairs, the antisense strand contains a region complementary to the neuron mRNA target sequence, the sense strand contains at least one lipid moiety, and the lipid moiety is a C16 hydrocarbon chain conjugated to the 2'-carbon of the ribose ring of the 5'-terminal nucleotide of the sense strand.

2. The C16 hydrocarbon chain is 【Chemical Formula 1】 The double-stranded oligonucleotide according to claim 1, represented by

3. The double-stranded oligonucleotide according to claim 1, wherein the double-stranded oligonucleotide has blunt ends, and the blunt ends include the 3'-end of the sense strand and the 5'-end of the antisense strand.

4. The double-stranded oligonucleotide according to claim 1, wherein the sense strand is 20 to 22 nucleotides, the antisense strand is 22 to 24 nucleotides, and the double-stranded region is 20 to 22 base pairs.

5. The double-stranded oligonucleotide further comprises a stem-loop, and the stem-loop contains a nucleotide sequence represented by the formula: 5'-S1-L-S2-3', where S1 is complementary to S2, and L forms a loop between S1 and S2. The double-stranded oligonucleotide according to claim 1.

6. The double-stranded oligonucleotide according to claim 5, wherein the sense strand is 36 to 38 nucleotides, the antisense strand is 22 to 24 nucleotides, and the double-stranded region is 20 base pairs.

7. The sense strand is 36 nucleotides, including positions 1 to 36 from 5' to 3', the lipid moiety is conjugated at position 1, and the double-stranded region is 20 base pairs. The oligonucleotide according to claim 5.

8. Each of the nucleotides of the sense strand and the antisense strand contains a 2'-modification, except for the 5'-terminal nucleotide of the sense strand. The 2'-modification is selected from 2'-aminoethyl, 2'-fluoro, 2'-O-methyl, 2'-O-methoxyethyl, and 2'-deoxy-2'-fluoro-β-d-arabinonucleic acid. The double-stranded oligonucleotide according to claim 1.

9. The sense strand contains 20 nucleotides numbered 1 to 20 from 5' to 3', and each of positions 8 to 11 contains a 2'-fluoro modification. The double-stranded oligonucleotide according to claim 1.

10. The sense strand contains 36 nucleotides numbered 1 to 36 from 5' to 3', and each of positions 8 to 11 contains a 2'-fluoro modification. The double-stranded oligonucleotide according to claim 1.

11. The antisense strand contains 22 nucleotides numbered 1 to 22 from 5' to 3', and each of positions 2, 3, 4, 5, 7, 10, and 14 contains a 2'-fluoro modification. The double-stranded oligonucleotide according to claim 1.

12. The double-stranded oligonucleotide contains at least one phosphorothioate bond. The double-stranded oligonucleotide according to claim 1.

13. The antisense strand is (i) between positions 1 and 2, and between positions 2 and 3; (ii) between positions 1 and 2, between positions 2 and 3, and between positions 3 and 4; (iii) between positions 1 and 2; and / or (iv) between positions 20 and 21, and between positions 21 and 22 The double-stranded oligonucleotide according to claim 12, which contains phosphorothioate bonds and is numbered 1 to 22 from 5' to 3'.

14. The double-stranded oligonucleotide according to claim 1, wherein the sense strand is 20 nucleotides in length and contains phosphorothioate bonds between the 18th and 19th positions and between the 19th and 20th positions, and is numbered 1 to 20 from 5' to 3'.

15. The double-stranded oligonucleotide according to claim 1, wherein the antisense strand contains phosphorylated nucleotides at the 5'-end, and the phosphorylated nucleotides include uridine and adenosine.

16. The double-stranded oligonucleotide according to claim 1, wherein the 4'-carbon of the sugar of the 5'-nucleotide of the antisense strand contains a phosphate analog.

17. The double-stranded oligonucleotide according to claim 1, which reduces the expression of target mRNA in neurons or neuron populations in the spinal cord as compared to the expression of target mRNA in other regions of the central nervous system (CNS).

18. A pharmaceutical composition comprising the double-stranded oligonucleotide according to claim 1 and a pharmaceutically acceptable carrier, delivery agent, or excipient.

19. The pharmaceutical composition according to claim 18, which is a pharmaceutical composition for use in a method for treating a subject having a disease, disorder, or condition associated with the expression of neuronal mRNA, the method comprising administering a therapeutically effective amount of the double-stranded oligonucleotide to the subject thereby treating the subject.

20. A composition for use in a method for reducing the expression of neuronal mRNA in a cell, cell population, or subject, comprising the double-stranded oligonucleotide according to claim 1, wherein the method i. contacting the cell or the cell population with the double-stranded oligonucleotide, or ii. A step of administering the double-stranded oligonucleotide to the subject, wherein the administration is intrathecal administration and includes A composition in which the method results in a reduction in the expression of neuronal mRNA, including a reduction in the amount or level of mRNA, the amount or level of protein, or both.

21. A double-stranded oligonucleotide comprising an antisense strand 22 to 24 nucleotides in length and a sense strand 20 to 22 nucleotides in length, wherein the antisense strand and the sense strand form an asymmetric double-stranded region of 20 to 22 base pairs, the double-stranded oligonucleotide comprises blunt ends including the 3'-end of the sense strand and the 5'-end of the antisense strand, the antisense strand comprises a region complementary to at least 15 consecutive nucleotides of a neuronal mRNA target sequence, the sense strand comprises at least one lipid moiety conjugated to the 2'-carbon of the ribose ring of the 5'-terminal nucleotide of the sense strand, and the lipid moiety is [Chemical Formula 2] a C16 hydrocarbon chain represented by, and the antisense strand comprises a 2-nucleotide overhang at the 3'-end, the double-stranded oligonucleotide.

22. The double-stranded oligonucleotide according to claim 21, wherein each of the nucleotides of the sense strand and the antisense strand, except for the 5'-terminal nucleotide of the sense strand, comprises a 2'-modification, and the 2'-modification is selected from 2'-aminoethyl, 2'-fluoro, 2'-O-methyl, 2'-O-methoxyethyl, and 2'-deoxy-2'-fluoro-β-d-arabinonucleic acid.

23. The double-stranded oligonucleotide according to claim 21, wherein the sense strand comprises 20 nucleotides at positions 1 to 20 from 5' to 3', and each of positions 8 to 11 comprises a 2'-fluoro modification. **Claim 24**: The double-stranded oligonucleotide according to claim 21, wherein the antisense strand comprises 22 nucleotides numbered 1 to 22 from 5' to 3', and each of the 2nd, 3rd, 4th, 5th, 7th, 10th, and 14th positions comprises a 2'-fluoro modification. **Claim 25**: The double-stranded oligonucleotide according to claim 21, wherein the double-stranded oligonucleotide comprises at least one phosphorothioate bond. **Claim 26**: The antisense strand is (i) between the 1st and 2nd positions and between the 2nd and 3rd positions; (ii) between the 1st and 2nd positions, between the 2nd and 3rd positions, and between the 3rd and 4th positions; (iii) between the 1st and 2nd positions; and / or (iv) between the 20th and 21st positions and between the 21st and 22nd positions contains a phosphorothioate bond, and the positions are numbered 1 to 22 from 5' to 3'. The double-stranded oligonucleotide according to claim 25. **Claim 27**: The double-stranded oligonucleotide according to claim 21, wherein the sense strand is 20 nucleotides in length, and the sense strand contains phosphorothioate bonds between the 18th and 19th positions and between the 19th and 20th positions, and the positions are numbered 1 to 20 from 5' to 3'. **Claim 28**: The double-stranded oligonucleotide according to claim 21, wherein the antisense strand contains phosphorylated nucleotides at the 5' end, and the phosphorylated nucleotides include uridine and adenosine. **Claim 29**: The double-stranded oligonucleotide according to claim 21, wherein the 4'-carbon of the sugar of the 5'-nucleotide of the antisense strand contains a phosphate analog. **Claim 30**: The double-stranded oligonucleotide according to claim 21, which reduces the expression of target mRNA in neurons or neuron populations in the spinal cord as compared to the expression of target mRNA in other regions of the central nervous system (CNS). A double-stranded oligonucleotide comprising an antisense strand having a length of 15 to 30 nucleotides and a sense strand having a length of 15 to 50 nucleotides, wherein the antisense strand and the sense strand form a double-stranded region of 15 to 30 base pairs, the antisense strand contains a region complementary to a neuronal mRNA target sequence, the sense strand contains at least one lipid moiety, and the lipid moiety is a hydrocarbon chain.