Method for stop codon rescue via genetic reassignment using ace-trna

Modified tRNA with enhanced interaction stability addresses nonsense mutations by continuing protein synthesis past stop codons, effectively treating diseases like cystic fibrosis and muscular dystrophy.

JP2026021534AActive Publication Date: 2026-02-10THE UNIVERSITY OF IOWA RESEARCH
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Patent Information

Application Number
JP2025188664
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2018-06-19
Filing Date
2025-11-07
Publication Date
2026-02-10
Estimated Expiration
2038-11-02

AI Technical Summary

Technical Problem

Nonsense mutations in DNA lead to premature termination of protein synthesis, causing diseases like cystic fibrosis, muscular dystrophy, and β-thalassemia by converting amino acid-coding codons into stop codons, resulting in truncated proteins with altered or no function.

Method used

Development of modified transfer RNA (tRNA) with rationally substituted nucleotides, particularly replacing thymidine with uracil, to enhance interaction with elongation factor 1α, allowing continued translation past stop codons, using vectors like viral or plasmid vectors for delivery.

Benefits of technology

The modified tRNA effectively suppresses stop codons, restoring full-length protein production, thereby treating genetic diseases by ensuring complete translation of genetic sequences.

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Abstract

To provide a method for rescuing a termination codon through genetic reassignment using ACE-tRNA.SOLUTION: In certain embodiments, the invention provides a modified transfer RNA (tRNA) comprising a T-arm, a D-arm, an anticodon arm, and an acceptor arm, wherein the T-arm comprises a T-stem having a nucleotide that interacts with elongation factor 1 alpha 1 (EF1 alpha). EF1 alpha recruits aminoacyl-tRNAs to the ribosome and protects the tRNA from being deacylated. Rational nucleotide substitutions result in tuned tRNA: EF1 α interactions that enhance tRNA delivery to the ribosome and protection from de-acylation.SELECTED DRAWING: None
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Description

[Technical Field]

[0001] This application claims priority to U.S. Provisional Application No. 62 / 580,887, filed November 2, 2017, and U.S. Provisional Application No. 62 / 687,015, filed June 19, 2018. The entire contents of the above-cited applications are incorporated herein by reference. STATEMENT REGARDING FEDERALLY SPONSORED RESEARCH

[0002] This invention was made with government support under R01 GM106569 awarded by the National Institutes of Health. The government has certain rights in this invention. [Background technology]

[0003] DNA molecules carry genetic information in the form of sequences of nucleotide bases that make up the DNA polymer. Only four nucleotide bases—adenine, guanine, cytosine, and thymine—are used in DNA. This information, in the form of three consecutive bases called codons, is transcribed into messenger RNA (mRNA), which is then translated by transfer RNA (tRNA) and ribosomes to form proteins. The four nucleotide bases used in RNA are adenine, guanine, cytosine, and uracil. The genetic code is the relationship between triplet codons and specific amino acids. Sixty-four possible codon triplets form the genetic code, and three stop (also called termination) codons signal the translation machinery (the cell's ribosomes) to stop protein production at that codon. The other 61 triplets in a codon correspond to one of the 20 standard amino acids. See Figure 1.

[0004] DNA is translated by ribosomes, which link together amino acids one by one to form polypeptides according to the genetic instructions provided specifically by the DNA. Protein elongation terminates when the ribosome reaches a stop codon. The three stop codons are UAG (amber), UAA (ochre), and UGA (opal). Mutations that change a codon encoding an amino acid into a stop codon are called "nonsense mutations." These nonsense mutations can result in significant truncations / shortening of the polypeptide sequence, potentially causing profound changes in genetic phenotypes. Therefore, when a ribosome reaches a mutant stop signal, it terminates translation, resulting in an incomplete protein; therefore, crucial proteins may not be produced, even if the gene directing their expression is present.

[0005] Transfer RNA translates mRNA into protein on the ribosome. Each tRNA contains an "anticodon" region that hybridizes with a complementary codon on the mRNA. The tRNA that carries that specified amino acid is called a "charged" tRNA. If the tRNA is one of the 61 amino acid-carrying tRNAs (i.e., without a termination signal), it typically attaches that amino acid to a growing peptide. The structural gene for tRNA is approximately 72-90 nucleotides long and folds into a cloverleaf structure. tRNAs contain their own intragenic split promoters that are transcribed by RNA polymerase III and become part of the mature tRNA coding sequence (Sharp SJ, Schaack J., Coolen L., Burke DJ, and Soll D., "Structure and transcription of eukaryotic tRNA genes," Crit. Rev. Biochem, 19:107-144 (1985); Geiduschek EO, and Tocchini-Valentini, "Transcription by RNA polymerase III," Annu. Rev. Biochem. 57:873-914 (1988)).

[0006] "Nonsense suppressors" are alleles of tRNA genes that contain an altered anticodon so that they insert an amino acid in response to a termination codon instead of triggering a "stop" signal. For example, the ochre mutation results in the creation of a UAA codon in the mRNA. Ochre suppressor genes produce tRNAs with an AUU anticodon that inserts an amino acid at the UAA site, thereby allowing continued translation of the mRNA despite the presence of a codon that would normally cause translation to stop.

[0007] Numerous nonsense suppressor tRNA alleles have been identified in prokaryotes and eukaryotes such as yeast and C. elegans. Different suppressor tRNAs vary in their suppression efficiency. In E. coli and other systems, amber suppressors are relatively more efficient, ochre suppressors are less efficient, and opal is the least efficient, suggesting that amber codons are used less frequently to terminate protein synthesis, whereas ochre and opal codons are more frequently used as natural termination signals.

[0008] Unwanted errors in DNA blueprints can cause disease. For example, an unexpected "stop" signal occurring in the middle of a protein rather than at the end of the blueprint can result in the production of a truncated or shortened protein with altered or no function. Many human diseases, such as cystic fibrosis, muscular dystrophy, β-thalassemia, and Liddle's syndrome, are caused by undesired termination signals in DNA reading frames for proteins important for proper lung, blood, muscle, or kidney function, respectively.

[0009] Thus, there is a need to provide novel modified nonsense suppressor tRNAs that are stabilized relative to the corresponding unmodified nonsense suppressor tRNAs and that have increased activity in suppressing the termination of genes associated with cystic fibrosis. [Prior art documents] [Non-patent literature]

[0010] [Non-Patent Document 1] Sharp SJ, Schaack J., Coolen L., Burke DJ and Soll D., “Structure and transcription of eukaryotic tRNA genes”, Crit.Rev.Biochem, 19:107-144 (1985) [Non-patent document 2] Geiduschek EO, and Tocchini-Valentini, “Transcription by RNA polymerase III, Annu.Rev.Biochem.57:873-914 (1988) Summary of the Invention [Means for solving the problem]

[0011] In one embodiment, the present invention provides a modified transfer RNA (tRNA) comprising a T arm, a D arm, an anticodon arm, and an acceptor arm, wherein the T arm comprises a T stem having a nucleotide that interacts with elongation factor 1α1 (EF1α). EF1α recruits aminoacyl-tRNA to the ribosome and protects the tRNA from deacylation. Rational nucleotide substitution results in a tuned tRNA:EF1α interaction that enhances delivery of the tRNA to the ribosome and protection from deacylation.

[0012] In one embodiment, the present invention provides a modified transfer RNA (tRNA) of SEQ ID NO: 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, 36, 37, 38, 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, 49, 50, 51, 52, 53, 54 or 55, wherein thymidine is replaced with uracil.

[0013] In one embodiment, the present invention provides a modified transfer RNA (tRNA) of any one of SEQ ID NOs: 1 to 538, in which thymidine is substituted with uracil.

[0014] In some embodiments, the modified tRNA is selected from the group consisting of SEQ ID NOs: 56-60, 62-66, 84-86, 90-111, 113, 128-143, 147-149, 153-156, 161-174, 176, 178, 181, 184-186, 192, 196-197, 199-201, 205, 213-240, 246, 255-256, 258-285, 299, 305-312, 314, 318-332, 335-344, 346, 350-354, 357-36 any one of 0, 362, 365-370, 372-383, 388-390, 392, 394-401, 403-407, 414-416, 418, 422, 425, 428-433, 437, 444-445, 452, 455, 459-463, 470, 472-474, 476, 487-492, 525, 530-539, 545-550, 553-555, 561-563 and 567-579, wherein thymidine is substituted with uracil.

[0015] In one embodiment, the present invention provides a modified transfer RNA (tRNA) comprising a T stem, a D stem, an anticodon loop, and an acceptor stem, wherein: (a) the anticodon arm comprises a trinucleotide anticodon, wherein the anticodon is 5'-UCA-3' and recognizes a TGA stop codon, and the acceptor arm is operably linked to arginine, tryptophan, or glycine; (b) the anticodon arm comprises a trinucleotide anticodon, wherein the anticodon is 5'-UUA-3' and recognizes a TAA stop codon, and the acceptor arm is operably linked to glutamine or glutamic acid; or (c) the anticodon arm comprises a trinucleotide anticodon, wherein the anticodon is 5'-CUA-3' and recognizes a TAG stop codon, and the acceptor arm is operably linked to tryptophan, glutamic acid, or glutamine. In one embodiment, the T arm comprises a rationally modified nucleotide sequence that modulates its interaction with EF1α, enhancing its suppression activity and thereby increasing its therapeutic potential. tRNAs with modulated interaction with EF1α have increased nonsense suppression, conferring enhanced therapeutic properties.

[0016] In one embodiment, the present invention provides an oligonucleotide sequence encoding the above-described modified tRNA, wherein the oligonucleotide has a total length of less than 150 nucleotides. In one embodiment, the oligonucleotide is DNA.

[0017] In one embodiment, the present invention provides an oligonucleotide comprising a first oligonucleotide sequence and a second oligonucleotide sequence, wherein the first and second oligonucleotide sequences independently encode the modified tRNA described above, the first and second oligonucleotides independently have a total length of less than 150 nucleotides, and the two sequences are in tandem.

[0018] In one embodiment, the present invention provides an expression cassette comprising a promoter and a nucleic acid encoding a modified tRNA or the above-described oligonucleotide.

[0019] In certain embodiments, the present invention provides a vector comprising the above-described oligonucleotide or expression cassette.

[0020] In certain embodiments, the vector is a viral vector or a plasmid vector.

[0021] In certain embodiments, the present invention provides a composition comprising the above-described modified tRNA, oligonucleotide, or vector and a pharmaceutically acceptable carrier.

[0022] In certain embodiments, the carrier is a liposome.

[0023] In certain embodiments, the present invention provides a cell comprising the above-described vector.

[0024] The present invention provides a method for treating a stop codon-associated genetic disease, comprising administering to a patient in need of treatment for the stop codon-associated genetic disease the modified tRNA composition described above.

[0025] In certain embodiments, the genetic disease associated with a premature stop codon is cystic fibrosis, muscular dystrophy, β-thalassemia, or Liddle's syndrome.

[0026] In one embodiment, the present invention provides a method for restoring translation of a nucleotide sequence containing a nonsense mutation in a cell, the method comprising introducing into said cell the composition described above.

[0027] In one embodiment, the present invention provides a method for identifying anti-codon edited (ACE) tRNAs by high-throughput cloning and screening using suppression of nonsense codons in luciferase enzymes, such as NanoLuc. [Brief explanation of the drawings]

[0028] [Figure 1] Figure 1. Genetic code table.

[0029] [Figure 2] Figure 2. tRNAs have a general four-arm structure, including a T arm, a D arm, an anticodon arm, and an acceptor arm. These arms are also referred to as "loops" throughout this specification.

[0030] [Figure 3] Figure 3. ACE-tRNA (Homo sapiens tRNATrp TGA) for nonsense suppression.

[0031] [Figure 4] Figure 4. Anticodon-edited (ACE)-tRNA encoded in a vector used to identify functional ACE tRNA sequences. This vector sequence contains a nanoluciferase reporter system. The illustrated vector was used to identify ACE tRNAs with TGA suppression. For suitable tRNA screening, TAA and TAG variants were used (see Figures 14-17).

[0032] [Figure 5] Figure 5. Schematic of suppressor tRNA-mediated rescue of proteins and ion channels with stop codons.

[0033] [Figure 6]Figures 6A and 6B. Nonsense codon rescue using human ACE-tRNA. Figure 6A. Schematic diagram of anticodon editing (ACE) Trp tRNA and the Cherry-TGA-eGFP-HA construct. Figure 6B. Rescue of the Cherry-TGA eGFP-HA construct by ACE tryptophan tRNA#4.

[0034] [Figure 7] Figure 7. Rationale and frequency of nonsense codons observed in human disease. 20 naturally occurring amino acid codons are ranked for their contribution to human disease, with the darkly shaded codons most frequently occurring (TGG, TAC, TAT, TCA, and TTA) and the stippled codons least frequently occurring. All shaded codon sequences require a single nucleotide mutation to convert the intended amino acid to a stop codon. Right panel: The most common disease-causing nonsense codon in the cystic fibrosis transmembrane conductance regulator (CFTR). Herein, novel tRNA sequences were discovered to repair the indicated mutations.

[0035] [Figure 8] Figure 8. Identification of tRNA sequences for the repair of tryptophan-TGA and glycine-TGA. The left axis indicates fold over background luciferase activity. The majority of tRNAs with mutant anticodon loops lack rescue activity.

[0036] [Figure 9] Figure 9. Rescue of CFTR1282x using Trpchr17.trna39 and Glychr19.trna2 ACE-tRNAs. Biochemical Western blot data of CFTR W1282X channels coexpressed in HEK cells with the indicated tRNAs. Expression vectors containing four copies of the indicated tRNAs show higher rescue of CFTR protein. The "C" band indicates rescue of fully mature, glycosylated CFTR protein. The antibody used was M3A7 at a 1:1000 dilution from Cystic Fibrosis Therapeutics.

[0037] [Figure 10-1] Figures 10A and 10B. Expression of ACE-tRNATrp and ACE-tRNAGly results in the specific incorporation of the cognate amino acid into the nonsense codon. Figure 10A) Coexpression of the model protein histidinol dehydrogenase (HDH)-His-Strep N94-TGA and ACE-tRNATrp (left) and ACE-tRNAGly (right) results in full-length HDH protein (asterisk) detectable by silver staining after affinity purification. Figure 10B) Spectra of WT HDH (top), HDH-N94 + ACE-tRNAGly (middle), and HDH-N94 + ACE-tRNATrp (bottom). The spectra reveal an amino acid mass difference at position N94 that specifically matches glycine (-57 Da) and tryptophan (+72 Da), indicating the insertion of the cognate amino acid into the ACE-tRNA. [Figure 10-2] Figures 10A and 10B. Expression of ACE-tRNATrp and ACE-tRNAGly results in the specific incorporation of the cognate amino acid into the nonsense codon. Figure 10A) Coexpression of the model protein histidinol dehydrogenase (HDH)-His-Strep N94-TGA and ACE-tRNATrp (left) and ACE-tRNAGly (right) results in full-length HDH protein (asterisk) detectable by silver staining after affinity purification. Figure 10B) Spectra of WT HDH (top), HDH-N94 + ACE-tRNAGly (middle), and HDH-N94 + ACE-tRNATrp (bottom). The spectra reveal an amino acid mass difference at position N94 that specifically matches glycine (-57 Da) and tryptophan (+72 Da), indicating the insertion of the cognate amino acid into the ACE-tRNA.

[0038] [Figure 11] Figure 11. Cloning workflow for tRNA library construction.

[0039] [Figure 12-1]Figures 12A-12B. Targeted mutation of nucleotides within the t-stem region further enhances ACE-tRNA rescue function. Figure 12A. Trpchr17.tRNA39 was systematically mutagenized within the t-stem region. These efforts identified ACE tRNA TS-10 52-62 GC (Figure 12B), represented by the hatched bar in the plot, which exhibits an approximately 250% increase in biological activity. [Figure 12-2] Figures 12A-12B. Targeted mutation of nucleotides within the t-stem region further enhances ACE-tRNA rescue function. Figure 12A. Trpchr17.tRNA39 was systematically mutagenized within the t-stem region. These efforts identified ACE tRNA TS-10 52-62 GC (Figure 12B), represented by the hatched bar in the plot, which exhibits an approximately 250% increase in biological activity.

[0040] [Figure 13-1] Figures 13A-13F. ACE-tRNA is selective for nonsense codons and more efficient than aminoglycoside nonsense suppression. Figure 13A) ACE-tRNATrp#5 and Figure 13B) ACE-tRNAGly#16 were cloned into NanoLuc reporter plasmids containing the TGA, TAA, or TAG nonsense codon. Nonsense suppression was measured only in the NanoLuc-TGA construct after transfection. Figures 13C and 13D) Suppression of NanoLuc-TGA by the addition of gentimicin (40 μM) and G418 (150 μM) and co-transfection with ACE-tRNATrp#5 and ACE-tRNAGly#16 was measured in HEK293 cells at 24 h (Figure 13C) and 48 h (Figure 13D). (Figures 13E and 13F) HEK293 cells stably expressing NanoLuc-TGA were treated with gentimycin (40 μM) and G418 (150 μM) and transfected with ACE-tRNATrp#5 and ACE-tRNAGly#16. Nonsense suppression was measured 24 hours (Figure 13E) and 48 hours (Figure 13F) after treatment. [Figure 13-2]Figures 13A-13F. ACE-tRNA is selective for nonsense codons and more efficient than aminoglycoside nonsense suppression. Figure 13A) ACE-tRNATrp#5 and Figure 13B) ACE-tRNAGly#16 were cloned into NanoLuc reporter plasmids containing the TGA, TAA, or TAG nonsense codon. Nonsense suppression was measured only in the NanoLuc-TGA construct after transfection. Figures 13C and 13D) Suppression of NanoLuc-TGA by the addition of gentimicin (40 μM) and G418 (150 μM) and co-transfection with ACE-tRNATrp#5 and ACE-tRNAGly#16 was measured in HEK293 cells at 24 h (Figure 13C) and 48 h (Figure 13D). (Figures 13E and 13F) HEK293 cells stably expressing NanoLuc-TGA were treated with gentimycin (40 μM) and G418 (150 μM) and transfected with ACE-tRNATrp#5 and ACE-tRNAGly#16. Nonsense suppression was measured 24 hours (Figure 13E) and 48 hours (Figure 13F) after treatment.

[0041] [Figure 14] Figure 14. ACE-tRNA-Arg-TGA. Identification of ACE-tRNA for repair of the arginine-TGA nonsense codon.

[0042] [Figure 15] Figure 15. ACE-tRNA-Gln TAG. Identification of ACE-tRNA for repair of the glutamine TAG nonsense codon.

[0043] [Figure 16] Figure 16. ACE-tRNA-Gln TAA Identification of ACE-tRNA for repair of glutamine TAA nonsense codon.

[0044] [Figure 17]Figure 17. ACE tRNA-Glu TAG Identification of ACE-tRNA for repair of glutamic acid-TAG nonsense codon.

[0045] [Figure 18] Figure 18. ACE-tRNA-Gln TAA Identification of ACE-tRNA for repair of glutamic acid TAA nonsense codon.

[0046] [Figure 19] Figure 19. Identification of ACE-tRNA-Trp TAG ACE tRNA for repair of tryptophan TAG nonsense codon.

[0047] [Figure 20-1] Figures 20A-20D. Delivery of ACE-tRNA as small RNA supports robust suppression of G542X and W1282X nonsense mutations. Figure 20A) CFTR cRNA harboring the G542X or W1282X cystic fibrosis-causing nonsense mutation was co-injected into Xenopus oocytes with serial dilutions of prefolded ACE-tRNAGly and ACE-tRNATrp, respectively. Two-electrode voltage-clamp recordings of CFTR Cl- current were performed 36 hours later. Current-voltage relationships show that increasing amounts of prefolded RNA (Figure 20B) ACE-tRNATrp and Figure 20C) ACE-tRNAGly resulted in increased CFTR function (measured CFTR Cl- current) achieved in the ACE-tRNAGly experiments, as well as in WT CFTR. Figure 20D) Dose response of G542X ACE-tRNAGly (closed circles) and W1282X ACE-tRNATrp (open squares) rescue (CFTR Cl- currents evoked at +40 mV were normalized to WT CFTR Cl- currents at +40 mV.) The dose dependence of ACE-tRNAGly (EC50 = ∼20 ng; Hill coefficient ∼1.4) shows clear saturation at WT CFTR levels, whereas ACE-tRNATrp is right-shifted (EC50 = ∼94 ng; Hill coefficient 1.24). [Figure 20-2]Figures 20A-20D. Delivery of ACE-tRNA as small RNA supports robust suppression of G542X and W1282X nonsense mutations. Figure 20A) CFTR cRNA harboring the G542X or W1282X cystic fibrosis-causing nonsense mutation was co-injected into Xenopus oocytes with serial dilutions of prefolded ACE-tRNAGly and ACE-tRNATrp, respectively. Two-electrode voltage-clamp recordings of CFTR Cl- current were performed 36 hours later. Current-voltage relationships show that increasing amounts of prefolded RNA (Figure 20B) ACE-tRNATrp and Figure 20C) ACE-tRNAGly resulted in increased CFTR function (measured CFTR Cl- current) achieved in the ACE-tRNAGly experiments, as well as in WT CFTR. Figure 20D) Dose response of G542X ACE-tRNAGly (closed circles) and W1282X ACE-tRNATrp (open squares) rescue (CFTR Cl- currents evoked at +40 mV were normalized to WT CFTR Cl- currents at +40 mV.) The dose dependence of ACE-tRNAGly (EC50 = ∼20 ng; Hill coefficient ∼1.4) shows clear saturation at WT CFTR levels, whereas ACE-tRNATrp is right-shifted (EC50 = ∼94 ng; Hill coefficient 1.24).

[0048] [Figure 21]Figures 21A-21B. Nonsense suppression screen to identify candidate anticodon-editing tRNAs (ACE-tRNAs). Figure 21A, Schematic diagram illustrates the essential interaction of ACE-tRNA with the translation machinery. After delivery, ACE-tRNA is recognized by endogenous aminoacyl-tRNA synthetases and filled with its cognate amino acid (aminoacylated). The aminoacylated ACE-tRNA is recognized by endogenous elongation factor 1α, which protects the ACE-tRNA from deacylation and delivers the aminoacyl-ACE-tRNA to the ribosome for suppression of the premature termination codon (UGA in this case). Figure 21B, Individual ACE-tRNAs were cloned into the High Throughput Cloning Nonsense Reporter plasmid using Golden Gate in combination with CcdB negative selection. This all-in-one plasmid contains the NLuc luciferase reporter with either a UGA, UAG or UAA PTC at p.162 between the large part of the enzyme and the essential C-terminal small part.

[0049] [Figure 22] Figure 22. Screening of the ACE-tRNA gene family using a high-throughput cloning nonsense mutation reporter platform. The indicated anticodon-edited PTC sequences, one nucleotide away from the endogenous anticodon sequence, were tested for each ACE-tRNA family, Figure 25. Multiple high-performance suppressor tRNAs were identified for each class. Data are shown on a Log10 scale with respect to normalized NLuc luminescence. Each tRNA dataset was acquired in triplicate and displayed with SEM, along with the corresponding ANOVA statistical analysis in Table 2. The coded identities and corresponding tRNA sequences are shown in Figure 26 and Table 9, respectively.

[0050] [Figure 23-1]Figures 23A-23C. Cognate encoding and high-fidelity suppression by engineered tRNAs. Figure 23A. Tryptic digest fragments of histidinol dehydrogenase (HDH). "X" indicates the suppressed PTC codon. MS / MS spectra of tryptic digest fragments with the indicated y and b ion masses for WT (top), N94G (middle), and N94W (bottom) HDH. The b9 ion mass is shifted by -57 Da and +72 Da from the predicted mass of WT asparagine, indicating that the cognate amino acids glycine and tryptophan are encoded by ACE-tRNAGly and ACE-tRNATrp, respectively. Figure 23B. ACE-TGA-tRNAGly(Glychr19.t2) selectively suppresses the UGA stop codon in transiently transfected HEK293 cells. FIG. 23C) ACE-tRNAGly transfection outperforms both gentamicin (40 μM) and G418 (140 μM) after 48 h of incubation in Hek293 cells stably expressing NLuc-UGA. [Figure 23-2] Figures 23A-23C. Cognate encoding and high-fidelity suppression by engineered tRNAs. Figure 23A. Tryptic digest fragments of histidinol dehydrogenase (HDH). "X" indicates the suppressed PTC codon. MS / MS spectra of tryptic digest fragments with the indicated y and b ion masses for WT (top), N94G (middle), and N94W (bottom) HDH. The b9 ion mass is shifted by -57 Da and +72 Da from the predicted mass of WT asparagine, indicating that the cognate amino acids glycine and tryptophan are encoded by ACE-tRNAGly and ACE-tRNATrp, respectively. Figure 23B. ACE-TGA-tRNAGly(Glychr19.t2) selectively suppresses the UGA stop codon in transiently transfected HEK293 cells. FIG. 23C) ACE-tRNAGly transfection outperforms both gentamicin (40 μM) and G418 (140 μM) after 48 h of incubation in Hek293 cells stably expressing NLuc-UGA.

[0051] [Figure 24-1] Figures 24A-24B. Ribosome profiling of ACE-tRNA at the 3' UTR across the transcriptome. Figure 24A: Ribosome footprint density on the 3' UTR is plotted as log2 fold change for reads from cells treated as described in Materials and Methods compared to the control (puc57GG empty vector). Transcripts were grouped by their endogenous TAA, TAG, and TGA stop codons. Each point represents the average of two replicates for a transcript. Error bars indicate the mean log2 fold change ± standard deviation. Figure 24B: The average log2 fold change in normalized ribosome footprint occupancy was plotted for each nucleotide from -50 to +50 nt surrounding the stop codon across the transcriptome (18,101 sequences). The illustration represents an approximately 15-nucleotide offset from the 5' end of the ribosome footprint to the first base position of the stop codon in the ribosomal A site. [Figure 24-2] Figures 24A-24B. Ribosome profiling of ACE-tRNA at the 3' UTR across the transcriptome. Figure 24A: Ribosome footprint density on the 3' UTR is plotted as log2 fold change for reads from cells treated as described in Materials and Methods compared to the control (puc57GG empty vector). Transcripts were grouped by their endogenous TAA, TAG, and TGA stop codons. Each point represents the average of two replicates for a transcript. Error bars indicate the mean log2 fold change ± standard deviation. Figure 24B: The average log2 fold change in normalized ribosome footprint occupancy was plotted for each nucleotide from -50 to +50 nt surrounding the stop codon across the transcriptome (18,101 sequences). The illustration represents an approximately 15-nucleotide offset from the 5' end of the ribosome footprint to the first base position of the stop codon in the ribosomal A site.

[0052] [Figure 25]Figure 25. Codon usage of common PTCs. The diagonal lines indicate the most common codons and corresponding amino acid types that can be converted to stop codons through nucleotide substitution. For each type, an engineered tRNA was developed.

[0053] [Figure 26-1] Figure 26. ACE-tRNA activity plots referenced by number. [Figure 26-2] Same as above. [Figure 26-3] Same as above. [Figure 26-4] Same as above. [Figure 26-5] Same as above. [Figure 26-6] Same as above. [Figure 26-7] Same as above. [Figure 26-8] Same as above. [Figure 26-9] Same as above. [Figure 26-10] Same as above. [Figure 26-11] Same as above. [Figure 26-12] Same as above. [Figure 26-13] Same as above. [Figure 26-14] Same as above.

[0054] [Figure 27] Figure 27. Alignment of glycine tRNA sequences. The 21 tRNAGly human sequences show high sequence homology across tRNA clades. The patterns in the tRNA diagram correspond to the patterned boxes in the sequences.

[0055] [Figure 28] Figure 28. The type of side chain at p.162 in Nanoluciferase does not affect activity. For each mutation at the site, the total luminescence activity is shown.

[0056] [Figure 29A-1]Figures 29A-29C. Analysis of ACE-tRNATrp sequences derived from multiple species and suppressor tRNA mutations. Figures 29A-29B. Sequence alignment. Figure 29C. NLuc-UGA + ACE-tRNATrp / NLuc-UGA. [Figure 29A-2] Same as above. [Figure 29B-1] Figures 29A-29C. Analysis of ACE-tRNATrp sequences derived from multiple species and suppressor tRNA mutations. Figures 29A-29B. Sequence alignment. Figure 29C. NLuc-UGA + ACE-tRNATrp / NLuc-UGA. [Figure 29B-2] Same as above.

[0057] [Figure 30] Figures 30A-30C. Histidinol dehydrogenase (HDH) His(8)-streptactin expression constructs allow efficient one-step isolation of proteins from HEK293 cells. Figure 30A) Protein sequence of the HDH expression construct. The underlined sequence represents the area covered by mass spectrometry. The bold underlined asparagine (amino acid position 94) is the residue that was mutated to a TGA PTC to determine the fidelity of ACE-tRNA. The dual affinity tag is shown in bold italics. Figure 30B) Silver staining of HDH protein after PTC suppression with Trpchr17.trna39 and Figure 30C) Glychr19.trna2.

[0058] [Figure 31] Figure 31. Stop codon specificity is maintained for ACE-tRNATrp. Suppression activity against the best-performing TrpTGA suppressor tRNA, tRNA TrpTGATrpchr17.trna39 (Figure 22). This tRNA was coexpressed with the indicated pNano-STOP plasmid.

[0059] [Figure 32]Figures 32A-32D. ACE-tRNA is more efficient than aminoglycoside PTC inhibition. Figure 32A) Raw and Figure 32B) normalized luminescence measured 24 hours after addition of gentamicin (40 μM), G418 (150 μM), and transfection of Trpchr17.trna39 and Glychr19.trna2 in HEK293 cells stably expressing the PTC reporter Nluc-UGA. Figure 32C) Raw and Figure 32D) normalized luminescence measured 24 hours after addition of gentamicin (40 μM), G418 (150 μM), and co-transfection of Trpchr17.trna39 and Glychr19.trna2 in HEK293 cells.

[0060] [Figure 33] Figure 33. Comparison of the time course of ACE-tRNA activity after delivery as RNA or cDNA. ACE-tRNA was delivered to HEK293 cells stably expressing pNanoLuc-UGA; however, to reduce the effect of the transfection reagent on cell viability, only 5 μL of the reaction mixture was added to the cells. ACE-tRNA delivered as RNA (open symbols) was more rapid in rescuing expression of the PTC reporter than the cDNA construct (filled circles). However, when expressed from cDNA, ACE-tRNA activity continued to increase over 48 hours and decreased with RNA delivery. DETAILED DESCRIPTION OF THE INVENTION

[0061] Over the years, researchers have identified hundreds of unique point mutations that result in established nonsense codons in human genes. These types of mutations result in, for example, muscular dystrophy, xeroderma pigmentosum, cystic fibrosis, hemophilia, anemia, hypothyroidism, p53 squamous cell carcinoma, p53 hepatocellular carcinoma, p53 ovarian cancer, esophageal cancer, bone cancer, ovarian cancer, esophageal cancer, hepatocellular carcinoma, breast cancer, hepatocellular carcinoma, fibrous histiocytoma, ovarian cancer, SRY sex reversal, triosephosphate isomerase anemia, diabetes, and rickets. The BRACA-1 and BRACA-2 genes, which are associated with breast cancer, also contain similar mutations.

[0062] Nucleotide sequences encoding hundreds of human tRNAs are known and are generally available to those skilled in the art through sources such as Genbank. tRNA structures are highly conserved, and tRNAs often function across species. For this reason, bacterial or other eukaryotic tRNA sequences are also potential sources for the stabilized tRNA oligonucleotides of the present invention. Whether a particular tRNA sequence functions in a desired mammalian cell can be confirmed through routine experimental procedures. Additional potential tRNA sequences that are unknown can be modified as described herein for stabilization through routine experimental procedures.

[0063] tRNA genes have strong promoters that are active in all cell types. The promoter for eukaryotic tRNA genes is contained within the structural sequence encoding the tRNA molecule itself. Although elements that control transcriptional activity exist within the 5' upstream region, the length of the active transcription unit can be significantly less than 500 base pairs, making it easy to accommodate within a delivery vector. Once transcribed and processed, tRNA has a low degradation rate. Finally, gene therapy using nonsense suppressors maintains the endogenous physiological regulation of target genes containing nonsense codons. Nonsense mutation

[0064] Transfer RNA (tRNA) is a type of RNA molecule that functions in decoding messenger RNA (mRNA) sequences into proteins. tRNAs function at specific sites in ribosomes during translation, synthesizing proteins from mRNA molecules. Nonsense mutations, also known as premature termination codons (PTCs), account for approximately 10–15% of single-base-pair mutations that cause human diseases, including cystic fibrosis (CFS) (Peltz et al., Annu Rev Med., 64:407–25, 2013). Nonsense mutations generally have more severe ramifications than missense mutations due to the near-complete loss of gene expression and activity and the potential for dominant-negative effects of truncated products. PTCs result in premature translation termination and accelerated mRNA transcript decay via the nonsense-mediated decay (NMD) pathway.

[0065] Current research shows that through molecular editing of the anticodon sequence within tRNA, the specific site within an RNA transcript to which the tRNA delivers its amino acid can be altered. This approach allows for the effective and therapeutic reversion of premature termination codons (PTCs) to the original missing amino acid. Anticodon-edited tRNAs (ACE-tRNAs) form a new class of biological therapeutics.

[0066] Engineered tRNAs allow for the "reediting" of disease-causing nonsense codons into specific amino acids. These engineered tRNAs target only one type of stop codon, such as TGA rather than TAC or TAA. The small size of these tRNA molecules allows for ready expression, as the tRNA promoter is only about 300 bp. Briefly, oligonucleotides are synthesized containing structural components of tRNA genes that function in human cells. The sequence of the oligonucleotide is designed based on a known sequence with substitutions made in the anticodon region of the tRNA that allow that particular tRNA to recognize a nonsense or other specific mutation.

[0067] Several small molecules have been screened to suppress nonsense stop codons through interactions with the ribosome, the most notable being G418, gentamicin, and PTC124. PTC124, or ataluren, recently completed phase III clinical trials for use as a cystic fibrosis treatment. Ataluren and aminoglycosides promote readthrough of each of the three nonsense codons by incorporating a near-cognate amino acid, converting the nonsense mutation to a missense mutation (Roy et al., PNAS 2016 Nov 1;113(44):12508-12513). Anticodon-editing tRNA (ACE-tRNA)

[0068] tRNA has a general four-arm structure, including a T arm, a D arm, an anticodon arm, and an acceptor arm (Figure 2).

[0069] The T arm is composed of a "T stem" and a "TψC loop." In some embodiments, the T stem is modified to increase the stability of the tRNA. In some embodiments, the ACE-tRNA has a modified T stem that increases the biological activity of suppressing the termination site compared to the endogenous T stem sequence.

[0070] In one embodiment, the present invention includes a composition containing stabilized tRNA, which can be used with increased effectiveness to treat a wide variety of nonsense mutation-associated diseases. The following sequences in Tables 1 to 8 are written as DNA, but as RNA (transcribed DNA), "T: thymidine" is "U: uracil." Therefore, all tRNAs transcribed from the following sequences contain uracil instead of thymidine.

[0071] In one embodiment, the tRNA has the following sequence (in which thymidine is replaced by uracil): [ka]

[0072] Table 1 Table 1-1 Table 1-2

[0073] Table 2 Table 2

[0074] Table 3 Table 3-1 Table 3-2

[0075] Table 4 Table 4

[0076] Table 5 Table 5

[0077] Table 6 Table 6

[0078] Table 7 Table 7-1 Table 7-2

[0079] Table 8 [Table 8]

[0080] In one embodiment, the ACE-tRNA for nonsense suppression is as illustrated in Figure 3 (Homo sapiens tRNA Trp TGA ).

[0081] According to the present invention, human UAA, UAG, and UGA suppressor tRNAs were designed. Through screening, codon-editing tRNAs for repairing Trp-TGA, Trp-TAG, Arg-TGA, Gln-TAG, Gln-TA, Glu-TAG, and Glu-TAA were identified. The tRNAs are approximately 100 nucleotides in length and can be introduced into cells to suppress nonsense codon mutations where the wild-type amino acid would otherwise be present. The oligonucleotides can be introduced directly into recipient cells or tandemly ligated to increase the efficacy of the oligonucleotides. Expression cassettes and vectors

[0082] In one embodiment, the ACT-tRNA is encoded by an expression cassette. In yet another embodiment, the suppressor tRNA of the present invention can be introduced into a cell using standard conventional genetic engineering techniques through the use of a vector. Due to the internal promoter sequence of the tRNA coding sequence, the tRNA sequence does not need to be included in a separate transcription unit, although this may be provided.

[0083] In one embodiment of the present invention, the nucleotide expression system of the present invention is then included in a suitable gene transfer vehicle, which is used to transduce cells to express the suppressor tRNA. The gene delivery vehicle can be any delivery vehicle known in the art, including naked DNA and any of a number of vectors facilitated by receptor- and / or lipid-mediated transfection. Such vectors include, but are not limited to, eukaryotic vectors, prokaryotic vectors (e.g., bacterial vectors), and viral vectors, including, but not limited to, retroviral vectors, adenoviral vectors, adeno-associated viral vectors, lentiviral vectors (human and other, including porcine), herpesvirus vectors, Epstein-Barr virus vectors, SV40 viral vectors, poxvirus vectors, and pseudotyped viral vectors.

[0084] In one embodiment, the ACT-tRNA(PTC) is encoded in a vector. Figure 4. In one embodiment, the viral vector is a retroviral or adenoviral vector. Examples of retroviral vectors that can be used include, but are not limited to, vectors derived from retroviruses such as Moloney murine leukemia virus, spleen necrosis virus, Rous sarcoma virus, Harvey sarcoma virus, avian leukosis virus, human immunodeficiency virus, myeloproliferative sarcoma virus, and mammary tumor virus. Retrovirus; Retroviral vector

[0085] The term "retrovirus" is used to refer to RNA viruses that use reverse transcriptase during their replication cycle. The genomic RNA of retroviruses is converted into double-stranded DNA by reverse transcriptase. This double-stranded DNA form of the virus can integrate into the chromosomes of infected cells; once integrated, it is called a "provirus." The provirus serves as a template for RNA polymerase II, inducing the expression of RNA molecules encoding the structural proteins and enzymes required to produce new virus particles. At each end of the provirus is a structure called a "long terminal repeat" or "LTR." The LTR contains multiple regulatory signals, including transcriptional regulatory elements, polyadenylation signals, and sequences required for replication and integration of the viral genome. The Retroviridae family includes several genera, including Cisternavirus A, Oncovirus A, Oncovirus B, Oncovirus C, Oncovirus D, Lentivirus, and Spumavirus. Some retroviruses are oncogenic (i.e., tumorigenic), while others are not. Oncoviruses induce sarcomas, leukemias, lymphomas, and breast cancer in susceptible species. Retroviruses can infect a wide variety of species and can be transmitted horizontally and vertically. Retroviruses can integrate into host DNA and transmit host DNA sequences from cell to cell. This has led to the development of retroviruses as vectors for a variety of purposes, including gene therapy.

[0086] Retroviruses, including human foamy virus (HFV) and human immunodeficiency virus (HIV), have attracted considerable attention in recent years because their target cells are not restricted to dividing cells and their restricted host cell tropism can be readily expanded through pseudotyping with the vesicular stomatitis virus G (VSV-G) envelope glycoprotein (see, e.g., J.C. Burns et al., Proc. Natl. Acad. Sci. USA 90:8033-8037

[1993] ; A.L.Lever, Gene Therapy. 3:470-471

[1996] ; and D. Russell and A.D. Miller, J. Virol., 70:217-222

[1996] ).

[0087] The vector system generally comprises a DNA vector containing a small portion of retroviral sequences (viral long terminal repeats or "LTRs" and packaging or "psi" signals) and a packaging cell line. The gene to be transferred is inserted into the DNA vector. Viral sequences present on the DNA vector provide the signals necessary for insertion or packaging of the vector RNA into viral particles and for expression of the inserted gene. The packaging cell line provides the viral proteins required for particle assembly (D. Markowitz et al., J. Virol., 62:1120

[1988] ). In one embodiment of the present invention, an FIV system using a three-plasmid transfection production method in 293T cells was used (Johnston et al. al., J. Virol. 1999 73:4991-5000). Replication-incompetent viruses were successfully produced.

[0088] Vector DNA is introduced into packaging cells by any of a variety of techniques (e.g., calcium phosphate co-precipitation, lipofection, electroporation). Viral proteins produced by the packaging cells mediate the insertion of vector sequences in the form of RNA into viral particles that are released into the culture supernatant.

[0089] For cells that divide naturally or are stimulated to divide by growth factors, simple retroviruses such as murine leukemia virus (MLV) vectors are suitable delivery systems.However, the main limitation of the use of many retroviral vectors commonly used in gene transfer is that most of the vectors are limited to dividing cells.When non-dividing cells are the target cells, lentiviruses that can infect non-dividing cells can be used.

[0090] As used herein, the term "lentivirus" refers to a group (or genus) of retroviruses that cause slowly developing diseases. Viruses within this group include HIV (human immunodeficiency virus; including HIV types 1 and 2), the etiological agent of human acquired immunodeficiency syndrome (AIDS); visna-maedi, which causes encephalitis (visna) or pneumonia (maedi) in sheep; caprine arthritis-encephalitis virus, which causes immunodeficiency, arthritis, and encephalopathy in goats; equine infectious anemia virus, which causes autoimmune hemolytic anemia and encephalopathy in horses; feline immunodeficiency virus (FIV), which causes immunodeficiency in cats; bovine immunodeficiency virus (BIV), which causes lymphadenopathy, lymphocytosis, and possibly central nervous system infection in cattle; and simian immunodeficiency virus (SIV), which causes immunodeficiency and encephalopathy in subhuman primates. Diseases caused by these viruses are characterized by long incubation periods and protracted courses. These viruses normally latently infect monocytes and macrophages, from which they spread to other cells. HIV, FIV, and SIV also readily infect T lymphocytes (ie, T cells).

[0091] Lentiviruses, including HIV, SIV, FIV, and equine infectious anemia virus (EIAV), rely on several viral regulatory genes in addition to the simple structural gag-pol-env genes for efficient intracellular replication. Thus, lentiviruses use a more complex strategy for gene regulation and viral replication than classical retroviruses, with packaging signals appearing to be spread throughout the viral genome. These additional genes exert a network of regulatory functions during the lentiviral life cycle. For example, upon HIV-1 infection, transcription is upregulated by Tat expression through interaction with an RNA target (TAR) in the long terminal repeat (LTR). Expression of full-length and spliced ​​mRNAs is then controlled by Rev function, which interacts with RNA recombination elements (RREs) present in the gag and env regions (S. Schwartz et al., J. Virol., 66:150-159

[1992] ). Nuclear export of gag-pol and env mRNAs depends on Rev function. In addition to these two essential regulatory genes, a series of accessory genes, including vif, vpr, vpx, vpu, and nef, are also present in the viral genome, and their effects on efficient virus production and infectivity have been demonstrated, although they are not absolutely required for viral replication (K. and F. Wong-Staal, Microbiol. Rev., 55:193-205 (1991); R.A. Subbramanian and E.A. Cohen, J. Virol. 68:6831-6835

[1994] ; and D. Trono, Cell 82:189-192

[1995] ). A detailed description of the structure of an exemplary lentivirus, HIV-1, is given in U.S. Pat. No. 6,531,123.

[0092] A "source" or "original" retrovirus is a wild-type retrovirus from which a pseudotyped retrovirus is derived, or a wild-type retrovirus used as a starting point during packaging or transgene vector construction for the preparation of one or more of the vector's genetic elements. A genetic element may be used unchanged, or it may be mutated (but not beyond the point where it lacks statistically significant sequence similarity with the original element). A vector may have more than one source retrovirus; the different source retroviruses may be, for example, MLV, FIV, HIV-1 and HIV-2, or HIV and SIV. The term "genetic element" includes, but is not limited to, a gene.

[0093] A cognate retrovirus is a wild-type retrovirus with which the vector in question has the greatest percent sequence identity at the nucleic acid level. Usually, this will be identical to the source retrovirus. However, if the source retrovirus has been extensively mutated, it is conceivable that the vector will more closely resemble some other retrovirus. A cognate retrovirus need not be the physical starting point for construction; one may choose to directly synthesize genetic elements, particularly mutant elements, rather than first obtaining the original element and then modifying it. The term "cognate" can equally apply to proteins, genes, or genetic elements (e.g., splice donor sites or packaging signals). When referring to cognate proteins, percent sequence identity is determined at the amino acid level.

[0094] The term "cognate" retrovirus can be difficult to interpret in extreme cases, i.e., when all retroviral genetic elements have been replaced with alternative non-lentiviral genetic elements, in which case the aforementioned source retroviral strain is arbitrarily considered to be the cognate retrovirus.

[0095] When used herein with reference to a virus or vector, the term "replication" does not refer to the normal replication of proviral DNA in chromosomes as a result of cellular replication or the autonomous replication of plasmid DNA as a result of the presence of a functional origin of replication. Instead, "replication" refers to the completion of the complete viral life cycle in which infectious viral particles containing viral RNA enter the cell, the RNA is reverse transcribed into DNA, the DNA is integrated into the host chromosome as a provirus, and the infected cell produces virion proteins and assembles them into new, similarly infectious particles with full-length viral genomic RNA.

[0096] The term "replication-competent" refers to a wild-type or mutant virus that is capable of replicating such that viral replication in an infected cell results in the production of infectious virions that infect other, previously uninfected cells and subsequently cause the uninfected cells to produce such infectious virions as well. The present invention contemplates the use of replication-deficient viruses.

[0097] As used herein, the term "attenuated virus" refers to any virus (e.g., an attenuated lentivirus) that has been modified to substantially reduce its pathogenicity in a intended subject. The virus can be attenuated to the point where it is non-pathogenic from a clinical standpoint, i.e., subjects exposed to the virus do not exhibit a statistically significant level of increased disease compared to control subjects.

[0098] The present invention contemplates the preparation and use of modified retroviruses. In some embodiments, the retrovirus is a mutant of murine leukemia virus, human immunodeficiency virus type 1, human immunodeficiency virus type 2, feline immunodeficiency virus, simian immunodeficiency virus, visna-maedi, caprine arthritis-encephalitis virus, equine infectious anemia virus, and bovine immunodeficiency virus, or a virus composed of parts of more than one retrovirus species (e.g., MLV, FIV, HIV-1 and HIV-2, or a hybrid composed of parts of HIV-1 and / or SIV).

[0099] The reference virus is the virus whose genome is used to describe the components of the mutant virus. For example, certain genetic elements of the mutant virus may differ from the homologous elements of the reference virus by various substitutions, deletions, or insertions. The mutant virus does not necessarily have to actually be derived from the reference virus.

[0100] A preferred reference FIV sequence can be found in Talbott et al., Proc Natl Acad Sci USA. 1989 86:5743-7; Genbank accession number NC_001482. In some embodiments, a three-plasmid transient transfection method can be used to produce replication-incompetent pseudotyped retroviruses (e.g., FIV). A general method is described in Wang et al., J Clin Invest. 1999 104:R55-62 and Johnston et al., J Virol. 1999 73:4991-5000. Retroviral vector system

[0101] The present invention contemplates a retroviral gene amplification and transfer system comprising a transgene vector, one or more compatible packaging vectors, an envelope vector, and a suitable host cell. The vector used may be derived from a retrovirus (e.g., a lentivirus). The retroviral vector allows for (1) transfection of a packaging vector and an envelope vector into host cells to form a packaging cell line that produces viral particles essentially free of packaging vector RNA, (2) transfection of a transgene vector into the packaging cell line, (3) packaging of the transgene vector RNA by the packaging cell line into infectious viral particles, and (4) administration of the particles to target cells so that such cells are transduced and subsequently express the transgene.

[0102] The particles are administered directly to a subject in vivo, or the subject's cells are removed, infected with the particles in vitro, and then returned to the subject's body.

[0103] The packaging vectors and transgene vectors of the present invention generate replication-incompetent viruses. The vectors selected for incorporation into a given vector system of the present invention are those in which co-transfected cells are unable to generate replication-competent viruses by homologous recombination of the packaging vector(s) and the transgene vector alone, without further mutation of the packaging vector(s) or the transgene vector. The coat proteins used in this system can be retroviral coats, synthetic or chimeric coats, or coats from non-retroviral enveloped viruses (e.g., baculoviruses). Packaging Signal

[0104] As used herein, the term "packaging signal" or "packaging sequence" refers to a sequence located in a retroviral genome or vector that is required for, or at least facilitates, the insertion of viral or vector RNA into the viral capsid or particle. A packaging signal in an RNA identifies that RNA as the RNA to be packaged into a virion. For convenience, the term "packaging signal" is also used to refer to a vector DNA sequence that is transcribed into a functional packaging signal. Although a particular packaging signal may be part of a gene, it is recognized in the form of RNA rather than as a peptide portion of the encoded protein.

[0105] An important difference between packaging vectors and transgene vectors is that in packaging vectors, the major packaging signal is inactivated, whereas in transgene vectors, the major packaging signal is functional. Ideally, all packaging signals would be inactivated in packaging vectors and all packaging signals would be functional in transgene vectors. However, countervailing considerations, such as maximizing viral titer or inhibiting homologous recombination, may make such constructs less desirable. Packaging systems; packaging vectors; packaging cell lines

[0106] A packaging system is a vector or vectors that collectively provide all of the genetic information required, in an expressible form, to produce virions capable of encapsidating the appropriate RNA, transport the virions from the cells that produce them, transmit the virions to target cells, and reverse transcribe the RNA within the target cells so that the transgene incorporated in the RNA can be integrated into the host genome in a manner that allows it to be expressed. However, the packaging system must be substantially incapable of packaging itself. Rather, the packaging system packages a separate transgene vector.

[0107] In the present invention, the packaging vector provides the functional equivalents of the gag and pol genes (the "GP" vector). The env gene(s) are provided by the envelope vector. In theory, a three-vector system (the "G," "P," and "E" vectors) is possible if one wishes to construct different gag and pol genes on separate vectors and operably link them to different controllable promoters (or one to a controllable promoter and the other to a constitutive promoter) so that their relative expression levels can be appropriately adjusted.

[0108] A packaging cell line is a suitable host cell that is transfected with a packaging system that produces viral particles under achievable conditions. As used herein, the term "packaging cell line" typically refers to a cell line that expresses viral structural proteins (e.g., gag, pol, and env) but does not contain a packaging signal. For example, a cell line may contain a functional psi gene at one chromosomal site in its genome. + It has been genetically engineered to contain a 5'-LTR-gag-pol-3'-LTR fragment (designated Δ-psi) lacking the psi sequence, and a 5'-LTR-env-3'-LTR fragment, also Δ-psi, located at a separate chromosomal site. Both of these segments are constitutively transcribed, but the psi +Because the region is missing and the viral RNA molecule produced is smaller than full size, empty virus particles are formed.

[0109] If a host cell is transfected only with a packaging vector, it will produce essentially only viral particles without the full-length packaging vector.In one example, less than 10% of the viral particles produced by packaging cells contain full-length packaging vector-derived RNA.However, because the packaging vector lacks a functional primer binding site, even if these particles infect new cells, the packaging vector RNA will not be reverse transcribed into DNA, and therefore the new cells will not produce virions.Therefore, by itself, the packaging vector is a virus that is not capable of replication.

[0110] In some embodiments, the packaging cells and / or cell lines contain a transgene vector. The packaging cell lines package the transgene vector into infectious particles. Such cell lines are referred to herein as "transgenic virion-producing cell lines."

[0111] It is contemplated that packaging can be inducible or non-inducible. In inducible packaging cells and packaging cell lines, retroviral particles are produced in response to at least one inducer. In non-inducible packaging cell lines and packaging cells, no inducer is required for retroviral particle production to occur.

[0112] A packaging vector necessarily differs from a replication-competent wild-type retroviral genome by inactivation of at least one packaging signal of the cognate wild-type genome. More than one packaging signal may be inactivated. In one example, the only retroviral genes provided by the packaging vector are those encoding structural or essential regulatory proteins. transgene vector

[0113] A transgene vector is an expression vector that carries an expressible non-retroviral gene of interest and contains at least one functional retroviral packaging signal, such that after the transgene vector is transfected into a packaging cell line, the transgene vector is transcribed into RNA and this RNA is packaged into infectious viral particles. These particles then infect target cells, where the RNA is reverse transcribed into DNA, which is integrated into the host cell genome as a proviral element, thereby transferring the gene of interest to the target cells.

[0114] As used herein, the term "transduction" refers to the delivery of a gene using a viral or retroviral vector by infection, rather than by transfection. In certain embodiments, a retroviral vector is transduced. Thus, a "transduced gene" is a gene introduced into a cell via retroviral infection or vector infection and proviral integration. In certain embodiments, a viral vector (e.g., a "transgene vector") transduces a gene into a "target cell" or host cell. The present invention encompasses transgene vectors suitable for use in the present invention that are linked to any gene of interest (or a "marker gene" or "reporter gene" used to indicate infection or expression of the gene).

[0115] As used herein, the term "long-term transduction" refers to a vector that can remain transduced in host or target cells for a longer period of time than observed with other vectors. For example, the present invention provides retroviral vectors that can remain transduced for at least 120 days, at least one year, or for the lifetime of the subject or for the required period of treatment. The duration of expression is a function of the promoter choice and the target cell type rather than the choice of vector.

[0116] The term "stable transduction" or "stably transduced" refers to the introduction and integration of foreign DNA into the genome of a transduced cell. The term "stable transductant" refers to a cell that has foreign DNA stably integrated into its genomic DNA.

[0117] The terms "transient transduction" or "transiently transduced" refer to the introduction of foreign DNA into a cell without the foreign DNA being integrated into the genome of the transduced cell. The foreign DNA persists in the nucleus of the transduced cell for several days. During this period, the foreign DNA is subject to the regulatory controls that govern the expression of endogenous genes in the chromosomes. The term "transient transductant" refers to a cell that has taken up foreign DNA but has failed to integrate this DNA.

[0118] In some embodiments, target and / or host cells of the present invention are "non-dividing" cells. These cells include cells that do not normally divide, such as nerve cells. However, the present invention is not intended to be limited to non-dividing cells, including, but not limited to, muscle cells, white blood cells, spleen cells, liver cells, eye cells, and epithelial cells.

[0119] In some embodiments, the vector and vector progeny are at least 10 5 It is possible to transduce multiple target cells to achieve a vector titer of cfu / ml. The multiplicity of infection (MOI) can be at least 1 (i.e., an average of 1 infected per cell) or even at least 2. Expression cassettes and vectors

[0120] The present invention also provides an expression cassette comprising a sequence encoding an ACE-tRNA.

[0121] In some embodiments, the expression cassette further comprises a promoter. In some embodiments, the promoter is a regulatable promoter. In some embodiments, the promoter is a constitutive promoter. In some embodiments, the promoter is a PGK, CMV, RSV, H1, or U6 promoter (Pol II and Pol III promoter).

[0122] The present invention provides a vector containing the above expression cassette. In one embodiment, the vector is a viral vector. In one embodiment, the viral vector is an adenovirus, lentivirus, adeno-associated virus (AAV), poliovirus, HSV, or mouse Maloney virus-based viral vector.

[0123] As used herein, "expression cassette" refers to a nucleic acid sequence capable of directing the expression of a particular nucleotide sequence in an appropriate host cell, which may include a promoter operably linked to a nucleotide sequence of interest, which may be operably linked to a termination signal. The expression cassette may also include sequences required for proper translation of the nucleotide sequence. The coding region typically encodes a protein of interest. The expression cassette containing the nucleotide sequence of interest may be chimeric. The expression cassette may be naturally occurring or may have been obtained in a recombinant form useful for heterologous expression. Expression of the nucleotide sequence in the expression cassette may be under the control of a constitutive promoter or a controllable promoter that initiates transcription only when the host cell is exposed to some specific stimulus. In the case of multicellular organisms, the promoter may also be specific to a particular tissue or organ or stage of development.

[0124] "Operably linked" refers to the association of two or more nucleic acid sequences on a single nucleic acid fragment such that the function of one of the sequences is affected by the other. For example, a regulatory DNA sequence is said to be "operably linked to" or "associated with" a DNA sequence encoding an RNA or polypeptide if the two sequences are positioned so that the regulatory DNA sequence affects expression of the coding DNA sequence (i.e., the coding sequence or functional RNA is under the transcriptional control of a promoter). A coding sequence can be operably linked to a regulatory sequence in either sense or antisense orientation. Adeno-associated virus (AAV)

[0125] Adeno-associated virus (AAV) is a small, nonpathogenic virus of the Parvoviridae family. AAV differs from other members of this family in that it depends on a helper virus for replication. In the absence of a helper virus, AAV can integrate in a locus-specific manner into the q arm of chromosome 19. The approximately 5 kb AAV genome consists of a single segment of single-stranded DNA of either positive or negative polarity. The ends of the genome are short inverted terminal sequences that fold into hairpin structures and can serve as origins of viral DNA replication. Physically, parvovirus virions are not enveloped, and their icosohedral capsids are approximately 20 nm in diameter.

[0126] To date, numerous serologically distinct AAVs have been identified, and more than 12 have been isolated from humans or primates. The AAV2 genome is 4680 nucleotides long and contains two open reading frames (ORFs). The left ORF encodes the nonstructural Rep proteins Rep40, Rep52, Rep68, and Rep78, which are involved in regulating replication and transcription as well as producing single-stranded progeny genomes. Furthermore, two of the Rep proteins have been associated with preferential integration of the AAV genome into the q-arm region of human chromosome 19. Rep68 / 78 have also been shown to possess NTP-binding activity and DNA and RNA helicase activity. Rep proteins contain several potential phosphorylation sites, as well as a nuclear localization signal. Mutation of one of these kinase sites resulted in loss of replication activity.

[0127] At the ends of the genome are short inverted terminal repeats (ITRs) that have the potential to fold into T-shaped hairpin structures that serve as origins of viral DNA replication. Within the ITR regions, two elements central to ITR function have been described: a GAGC repeat motif and a terminal resolution site (trs). This repeat motif has been shown to bind Rep when the ITR is in either a linear or hairpin conformation. This binding serves to position Rep68 / 78 for cleavage at the trs, which occurs in a site- and strand-specific manner. In addition to their role in replication, these two elements appear to be central to viral integration. Contained within the chromosome 19 integration locus is a Rep binding site with an adjacent trs. These elements have been shown to be functional and required for locus-specific integration.

[0128] AAV virions are unenveloped icosahedral particles approximately 25 nm in diameter, composed of three related proteins designated VP1, VP2, and VP3. The right ORF encodes the capsid proteins VP1, VP2, and VP3. These proteins are found in a 1:1:10 ratio, respectively, and all originate from the right ORF. These capsid proteins differ from each other through alternative splicing and aberrant start codon usage. Deletion analysis has shown that removal or modification of VP1, which is translated from the alternatively spliced ​​message, results in reduced production of infectious particles. Mutations within the VP3 coding region result in the inability to produce any single-stranded progeny DNA or infectious particles. AAV particles are viral particles containing the AAV capsid proteins. AAV capsid polypeptides can encode the complete VP1, VP2, and VP3 polypeptides. The particles may contain AAV2 and other AAV capsid proteins (i.e., chimeric proteins such as AAV1 and AAV2). Variations in the amino acid sequence of the AAV2 capsid protein are contemplated herein, so long as the resulting viral particles contain an AAV2 capsid and remain antigenically or immunologically distinct from AAV1, as can be routinely determined by standard methods. Specifically, for example, ELISA and Western blot can be used to determine whether viral particles are antigenically or immunologically distinct from AAV1. Furthermore, AAV2 viral particles preferably retain a tissue tropism distinct from AAV1.

[0129] AAV2 particles are viral particles containing AAV2 capsid proteins. The AAV2 capsid polypeptides encoding the complete VP1, VP2, and VP3 polypeptides can have at least about 63% overall homology (or identity) with a polypeptide having an amino acid sequence encoded by the nucleotide sequence set forth in NC_001401 (the nucleotide sequence encoding the AAV2 capsid proteins). The capsid proteins can have about 70%, about 75%, 80%, 85%, 90%, 95%, 98%, 99%, or even 100% homology with the protein encoded by the nucleotide sequence set forth in NC_001401. The capsid protein can have about 70% identity, about 75% identity, 80% identity, 85% identity, 90% identity, 95% identity, 98% identity, 99% identity, or even 100% identity with the protein encoded by the nucleotide sequence set forth in NC_001401. The particle can be a particle containing the AAV2 capsid protein with another AAV, i.e., a chimeric protein. Variations in the amino acid sequence of the AAV2 capsid protein are contemplated herein, as long as the resulting viral particles containing the AAV2 capsid remain antigenically or immunologically distinct from AAV4, as can be routinely determined by standard methods. Specifically, for example, ELISA and Western blot can be used to determine whether the viral particles are antigenically or immunologically distinct from AAV1. Furthermore, AAV2 viral particles preferably retain a tissue tropism different from AAV1, such as those exemplified in the Examples herein, although AAV2 chimeric particles comprising at least one AAV2 coat protein may have a tissue tropism different from that of AAV2 particles consisting only of AAV2 coat protein.

[0130] In one embodiment, the present invention provides an AAV2 particle further comprising, i.e., encapsidated, a vector comprising an AAV2 inverted terminal repeat pair. The nucleotide sequences of the AAV2 ITRs are known in the art. Furthermore, the particle may comprise both AAV1 and AAV2 capsid proteins, i.e., a chimeric protein. Furthermore, the particle may encapsidate a vector comprising an AAV inverted terminal repeat pair from another AAV (e.g., AAV1 to AAV9 and AAVrhlO). The encapsidated vector in the particle may further comprise an exogenous nucleic acid inserted between the inverted terminal repeat sequences.

[0131] The following characteristics of AAV have made it an attractive vector for gene transfer. AAV vectors have been shown to stably integrate into the genome of cells in vitro, have a broad host range, transduce both dividing and non-dividing cells in vitro and in vivo, and maintain high levels of expression of transduced genes. Viral particles are thermostable, resistant to solvents, detergents, pH changes, and temperature, and can be concentrated on CsCl gradients or by other means. The present invention provides methods for administering AAV particles, recombinant AAV vectors, and recombinant AAV virions. For example, AAV2 particles are viral particles containing AAV2 capsid proteins, or AAV1 particles are viral particles containing AAV1 capsid proteins. A recombinant AAV2 vector is a nucleic acid construct containing at least one unique nucleic acid of AAV2. A recombinant AAV2 virion is a particle containing a recombinant AAV2 vector. "AAV2 To be considered within the term "ITR," a nucleotide sequence must retain one or both of the features described herein that distinguish AAV2 ITRs from AAV1 ITRs: (1) three "GAGC" repeats (rather than four in AAV1) and (2) a C rather than a T at the fourth nucleotide in the first two "GAGC" repeats in the AAV2 ITR Rep binding site.

[0132] The promoter for inducing the expression of the sequence encoding the tRNA to be delivered can be any desired promoter selected based on known considerations, such as the level of expression of the nucleic acid operably linked to the promoter and the type of cell in which the vector will be used. The promoter can be an exogenous or endogenous promoter. The promoter can include known strong promoters, such as, for example, the SV40 or inducible metallothionein promoter, or AAV promoters such as the AAVp5 promoter. Further examples of promoters include promoters from actin genes, immunoglobulin genes, cytomegalovirus (CMV), adenovirus, bovine papillomavirus, adenovirus promoters such as the major late promoter of adenovirus, inducible heat shock promoters, respiratory syncytial virus, Rous sarcoma virus (RSV), etc. Further examples include regulated promoters.

[0133] The AAV vector can further comprise a foreign (heterologous) nucleic acid operably linked to a promoter. By "heterologous nucleic acid," it is meant that any heterologous or foreign nucleic acid can be inserted into the vector for transfer into a cell, tissue, or organism. The nucleic acid can, for example, encode a tRNA. By "operably linked," it is meant that the promoter can promote expression of the heterologous nucleic acid, as is known in the art, including the appropriate orientation of the promoter relative to the heterologous nucleic acid. Furthermore, the heterologous nucleic acid preferably has all the appropriate sequences for expression of the nucleic acid, as is known in the art, to operably encode, i.e., to enable the nucleic acid to be expressed. The nucleic acid can include expression regulatory sequences, such as enhancers. The nucleic acid can encode more than one gene product, limited only by the size of the nucleic acid that can be packaged.

[0134] AAV1 particle is a viral particle that contains AAV1 capsid protein.As long as the resulting viral particle that contains AAV1 capsid remains antigenically or immunologically different from other AAV capsids, as can be routinely determined by standard method, the amino acid sequence of AAV1 capsid protein is assumed to vary herein.Specifically, for example, ELISA and Western blot can be used to determine whether viral particle is antigenically or immunologically different from other AAV serotypes.

[0135] As used herein, the term "polypeptide" refers to a polymer of amino acids and includes full-length proteins and fragments thereof. For this reason, "protein" and "polypeptide" are often used interchangeably herein.

[0136] The present invention provides a method for delivering a nucleic acid to a cell, comprising administering to the cell an AAV particle containing a vector comprising a nucleic acid inserted between a pair of AAV inverted terminal sequences, thereby delivering the nucleic acid to the cell. Administration to the cell can be achieved by any means, including simply contacting the particle with the cell, optionally contained in a desired liquid such as tissue culture medium or buffered saline solution. The particle can remain in contact with the cell for any desired length of time; typically, the particle is administered and allowed to remain indefinitely. For such in vitro methods, the virus can be administered to the cell by standard viral transduction methods known in the art and exemplified herein. The titer of the virus to be administered can vary, particularly depending on the cell type, but titers generally used for AAV transduction are typical. Furthermore, the titer used in this example to transduce specific cells can be used. The cells can include any desired cells in humans and other large (non-rodent) mammals, such as primates, horses, sheep, goats, pigs, and dogs.

[0137] The present invention further provides a method for delivering a nucleic acid to a cell in a subject, comprising administering to the subject an AAV particle comprising a nucleic acid inserted between a pair of AAV terminal inverted sequences, thereby delivering the nucleic acid to the cell in the subject.

[0138] Certain embodiments of the present disclosure provide a cell comprising a viral vector as described herein. AAV vectors

[0139] In one embodiment, the viral vector of the present disclosure is an AAV vector. The term "AAV" refers to an adeno-associated virus and can be used to refer to a naturally occurring wild-type virus itself or its derivatives. The term encompasses all subtypes, serotypes, and pseudotypes, including both naturally occurring and recombinant forms, unless otherwise specified. As used herein, the term "serotype" refers to an AAV that is identified and distinguished from other AAVs based on the reactivity of its capsid protein with a specific antiserum. For example, there are eight known serotypes of primate AAV: AAV-1 to AAV-9 and AAVrh10. For example, the term AAV2 serotype refers to an AAV containing a genome containing the capsid protein encoded by the AAV2 cap gene and the 5' and 3' ITR sequences from the same AAV2 serotype. As used herein, for example, rAAV1 can be used to refer to an AAV having both capsid proteins and 5'-3' ITRs from the same serotype, or rAAV1 can refer to an AAV having capsid proteins from one serotype and 5'-3' ITRs from a different AAV serotype, e.g., an AAV having a capsid from AAV serotype 2 and ITRs from AAV serotype 5. For each example exemplified herein, the description of the vector design and construction will state the serotype of the capsid and 5'-3' ITR sequences. The abbreviation "rAAV" stands for recombinant adeno-associated virus, also referred to as recombinant AAV vector (or "rAAV vector").

[0140] "AAV virus" or "AAV viral particle" refers to a viral particle composed of at least one AAV capsid protein (preferably all of the capsid proteins of wild-type AAV) and a polynucleotide enclosed in the encapsid. When the particle contains a heterologous polynucleotide (i.e., a polynucleotide other than the wild-type AAV genome, such as a transgene to be delivered to a mammalian cell), it is typically referred to as "rAAV."

[0141] In one embodiment, an AAV expression vector is constructed using known techniques to provide at least the following components operably linked in the direction of transcription: regulatory elements including a transcription initiation region, a DNA of interest, and a transcription termination region. The regulatory elements are selected to be functional in mammalian cells. The resulting construct containing the operably linked components is flanked (5' and 3') by functional AAV ITR sequences.

[0142] By "adeno-associated virus inverted terminal repeats" or "AAV ITRs" is meant art-recognized regions found at each end of the AAV genome that function together in cis as origins of DNA replication and as packaging signals for the virus. The AAV ITRs, together with the AAV rep coding region, confer efficient excision and rescue from, and integration into, the mammalian cell genome of nucleotide sequences interposed between the two flanking ITRs.

[0143] The nucleotide sequence of the AAV ITR region is known. As used herein, "AAV ITR" does not necessarily have the wild-type nucleotide sequence shown, but can be modified, for example, by the insertion, deletion, or substitution of nucleotides. Furthermore, AAV ITR can be derived from any of several AAV serotypes, including but not limited to AAV1, AAV2, AAV3, AAV4, AAV5, AAV7, etc. Furthermore, the 5' and 3' ITRs flanking the selected nucleotide sequence in the AAV vector do not necessarily need to be identical or derived from the same AAV serotype or isolate, as long as they function as intended, i.e., to allow the excision and rescue of the target sequence from the host cell genome or vector, and to allow the integration of the heterologous sequence into the recipient cell genome when the AAV Rep gene product is present in the cell.

[0144] In one embodiment, the AAV ITRs can be derived from any of several AAV serotypes, including, but not limited to, AAV1, AAV2, AAV3, AAV4, AAV5, AAV7, etc. Furthermore, the 5' and 3' ITRs flanking a selected nucleotide sequence in an AAV expression vector need not necessarily be identical or derived from the same AAV serotype or isolate, so long as they function as intended, i.e., to allow excision and rescue of the sequence of interest from the host cell genome or vector, and to allow integration of the DNA molecule into the recipient cell genome when the AAV Rep gene product is present in the cell.

[0145] In one embodiment, the AAV capsid can be derived from AAV2. Suitable DNA molecules for use in AAV vectors are less than about 5 kilobases (kb), less than about 4.5 kb, less than about 4 kb, less than about 3.5 kb, less than about 3 kb, or less than about 2.5 kb in size and are known in the art.

[0146] In one embodiment, the selected nucleotide sequence is operably linked to regulatory elements that direct its transcription or expression in vivo in a subject. Such regulatory elements can include regulatory sequences normally associated with the selected gene. Alternatively, heterologous regulatory sequences can be utilized. Useful heterologous regulatory sequences generally include those derived from sequences encoding mammalian or viral genes. Examples include, but are not limited to, the SV40 early promoter, mouse mammary tumor virus long terminal repeat (LTR) promoter; the adenovirus major late promoter (Ad MLP); herpes simplex virus (HSV) promoter, cytomegalovirus (CMV) promoters such as the CMV immediate early promoter region (CMVIE), the Rous sarcoma virus (RSV) promoter, pol II promoters, pol III promoters, synthetic promoters, hybrid promoters, and the like. Additionally, sequences derived from non-viral genes, such as the mouse metallothionein gene, can also be used in the present invention. Such promoter sequences are commercially available, for example, from Stratagene (San Diego, Calif.).

[0147] In one embodiment, both heterologous promoters and other regulatory elements, such as tissue-specific and inducible promoters, enhancers, etc., are particularly useful. Examples of heterologous promoters include the CMV promoter. Examples of inducible promoters include DNA responsive elements for ecdysone, tetracycline, hypoxia, and aufin.

[0148] In one embodiment, AAV expression vectors carrying the desired DNA molecule flanked by AAV ITRs can be constructed by directly inserting a selected sequence into the AAV genome from which the major AAV open reading frame ("ORF") is excised.Other parts of the AAV genome can also be removed, as long as a sufficient portion of the ITRs still allows replication and packaging functions.Such constructs can be designed using techniques well known in the art.

[0149] Alternatively, AAV ITRs can be excised from the viral genome or from an AAV vector containing AAV ITRs and fused 5' and 3' to a selected nucleic acid construct present in another vector using standard ligation techniques. For example, ligation can be performed in 20 mM Tris-Cl pH 7.5, 10 mM MgCl, 10 mM This can be accomplished in either DTT, 33 μg / mL BSA, 10 mM–50 mM NaCl, and 40 μM ATP, 0.01–0.02 (Weiss) units of T4 DNA ligase, at 0°C (for "sticky-end" ligation) or 1 mM ATP, 0.3–0.6 (Weiss) units of T4 DNA ligase, at 14°C (for "blunt-end" ligation). Intermolecular "sticky-end" ligation is typically performed at a total DNA concentration of 30–100 μg / mL (total final concentration of 5–100 nM) for AAV vectors containing ITRs.

[0150] Additionally, chimeric genes can be produced synthetically to include AAV ITR sequences located 5' and 3' of one or more selected nucleic acid sequences, with the complete chimeric sequence assembled from overlapping oligonucleotides prepared by standard methods.

[0151] To produce rAAV virions, the AAV expression vector is introduced into suitable host cells using known techniques, such as by transfection. Numerous transfection techniques are generally known in the art. See, for example, Sambrook et al. (1989) Molecular Cloning, a laboratory manual, Cold Spring Harbor Laboratories, New York. Particularly suitable transfection methods include calcium phosphate coprecipitation, direct microinjection into cultured cells, electroporation, liposome-mediated gene transfer, lipid-mediated transduction, and nucleic acid delivery using high-velocity microprojectiles.

[0152] In one embodiment, suitable host cells for producing rAAV virions include microorganisms, yeast cells, insect cells, and mammalian cells that can be or have been used as recipients of heterologous DNA molecules. The term includes the progeny of the original transfected cell. Thus, "host cell," as used herein, generally refers to a cell transfected with an exogenous DNA sequence. Cells derived from the stable human cell line, 293 (e.g., readily available from the American Type Culture Collection under accession number ATCC CRL1573), can be used in the practice of the present disclosure. In particular, the human cell line 293 is a human embryonic kidney cell line transformed with adenovirus type 5 DNA fragments and expresses the adenovirus E1a and E1b genes. The 293 cell line is easily transfected and provides a particularly convenient platform for producing rAAV virions therein.

[0153] "AAV rep coding region" refers to the art-recognized region of the AAV genome that encodes the replication proteins Rep78, Rep68, Rep52, and Rep40. These Rep expression products have been shown to have many functions, including recognition, binding, and nicking of the AAV origin of DNA replication, DNA helicase activity, and modulation of transcription from AAV (or other heterologous) promoters. The Rep expression products are collectively required for replicating the AAV genome. Suitable homologs of the AAV rep coding region include the human herpesvirus 6 (HHV-6) rep gene, which is also known to mediate AAV-2 DNA replication.

[0154] "AAV cap coding region" refers to the art-recognized region of the AAV genome that encodes the capsid proteins VP1, VP2, and VP3, or functional homologs thereof. These Cap expression products collectively supply the packaging functions required to package the viral genome.

[0155] In one embodiment, AAV helper functions are introduced into host cells by transfecting them with an AAV helper construct prior to or in conjunction with transfection of the AAV expression vector. Thus, AAV helper constructs are used to provide at least transient expression of the AAV rep and / or cap genes to complement missing AAV functions necessary for productive AAV infection. AAV helper constructs lack AAV ITRs and cannot replicate or package themselves. These constructs can be in the form of a plasmid, phage, transposon, cosmid, virus, or virion. Numerous AAV helper constructs have been described, including the commonly used plasmids pAAV / Ad and pIM29+45, which encode both Rep and Cap expression products. Numerous other vectors have been described that encode Rep and / or Cap expression products.

[0156] The method of viral vector delivery includes injecting AAV into the subject.Generally, rAAV virion can be introduced into cells using either in vivo or in vitro transduction technology.When transducing in vitro, desired recipient cells are removed from the subject, transduced with rAAV virion, and then reintroduced into the subject.Alternatively, syngeneic or xenogeneic cells can be used, and these cells do not cause inappropriate immune response in the subject.

[0157] Suitable methods for the delivery and introduction of transduced cells into a subject have been described.For example, cells can be transduced in vitro by combining recombinant AAV virions with cells in a suitable medium, and the cells carrying the DNA of interest can be screened using conventional techniques, such as Southern blot and / or PCR, or by using selectable markers.The transduced cells can then be formulated into pharmaceutical compositions, which will be described more fully below, and this composition can be introduced into a subject by various techniques, such as by implantation, intramuscular, intravenous, subcutaneous and intraperitoneal injection.

[0158] In one embodiment, a pharmaceutical composition contains sufficient genetic material to produce a therapeutically effective amount of the nucleic acid of interest, i.e., an amount sufficient to reduce or alleviate the symptoms of the disease state in question or to confer a desired benefit. The pharmaceutical composition also contains a pharmaceutically acceptable excipient. Such excipients include any pharmaceutical agent that does not itself induce the production of antibodies harmful to the individual receiving the composition and that can be administered without undue toxicity. Pharmaceutically acceptable excipients include, but are not limited to, sorbitol, Tween 80, and liquids such as water, saline, glycerol, and ethanol. Pharmaceutically acceptable salts may include, for example, mineral acid salts such as hydrochlorides, hydrobromides, phosphates, sulfates, and the like; and salts of organic acids such as acetates, propionates, malonates, benzoates, and the like. Additionally, auxiliary substances, such as wetting or emulsifying agents, pH buffering substances, and the like, may be present in such vehicles. A thorough discussion of pharmaceutically acceptable excipients is available in Remington's Pharmaceutical Sciences (Mack Pub. Co., NJ 1991).

[0159] It should be understood that more than one transgene can be expressed by the delivered viral vector. Alternatively, separate vectors, each expressing one or more different transgenes, can be delivered to a subject as described herein. Furthermore, it is intended that the viral vectors delivered by the methods of the present disclosure be combined with other appropriate compositions and treatments.

[0160] In light of the teachings of this specification, it will be clear to those skilled in the art that the effective amount of viral vector that needs to be added can be experimentally determined.Administration can be carried out in one dose, continuously or intermittently throughout the course of treatment.The method of determining the most effective means and dosage of administration is well known to those skilled in the art, and varies according to viral vector, therapeutic composition, target cell and the subject being treated.Single and multiple administrations can be carried out, with the dosage level and pattern selected by the treating physician.

[0161] In one embodiment, the rAAV is administered in a volume of about 0.3 to 2 mL of 1 x 10 5 ~1×10 16 In one embodiment, the rAAV is administered at a dose of about 1 x 10 vg / mL. 7 ~1×10 14 In one embodiment, the rAAV is administered at a dose of about 1 x 10 vg / mL. 8 ~1×10 13 It is administered at a dose of 1000 mg / mL.

[0162] Formulations containing rAAV particles contain an effective amount of rAAV particles in a vehicle, with the effective amount being readily determined by one skilled in the art. The rAAV particles typically comprise about 1% to about 95% (w / w) of the composition, or a higher or lower range as appropriate. The amount to be administered depends on factors such as the age, weight, and physical condition of the animal or human subject for whom treatment is being considered. Effective dosages can be established by one skilled in the art through routine testing to establish a dose-response curve. Subjects are treated by administering one or more doses of rAAV particles. Multiple doses can be administered if required to maintain sufficient enzyme activity.

[0163] Vehicles including water, aqueous saline, artificial CSF or other known substances can be used in the present invention.To prepare the formulation, the purified composition can be isolated, lyophilized and stabilized.Then, this composition can be combined with anti-inflammatory agents as needed, adjusted to an appropriate concentration, and packaged for use.

[0164] The present invention provides a method for increasing the level of a target protein in a cell by introducing into the cell a protein or a nucleic acid molecule encoding the protein in an amount sufficient to increase the level of the target protein in the cell. In certain embodiments, the accumulation of the target protein is increased by at least 10%. The accumulation of the target protein is increased by at least 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 95%, or 99%. Nucleic acids encoding therapeutic agents

[0165] The term "nucleic acid" refers to deoxyribonucleotides or ribonucleotides and polymers thereof in either single- or double-stranded form, composed of monomers (nucleotides) containing a sugar, a phosphate, and a base that is either a purine or a pyrimidine. Unless otherwise limited, the term encompasses nucleic acids containing known analogs of natural nucleotides that have similar binding properties as the reference nucleic acid and that are metabolized in a manner similar to naturally occurring nucleotides.

[0166] A "nucleic acid fragment" is a portion of a given nucleic acid molecule. The term "substantial identity" of a polynucleotide sequence means that a polynucleotide comprises a sequence having at least 70%, 71%, 72%, 73%, 74%, 75%, 76%, 77%, 78%, or 79%, or at least 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, or 89%, or at least 90%, 91%, 92%, 93%, or 94%, or at least 95%, 96%, 97%, 98%, or 99% sequence identity when compared to a reference sequence using one of the alignment programs described using standard parameters. Methods for introducing genetic material into cells

[0167] Exogenous genetic material (e.g., DNA encoding one or more therapeutic ACE-tRNAs) is introduced into cells in vivo by gene transfer methods such as transfection or transduction to provide genetically modified cells. A variety of expression vectors (i.e., vehicles for facilitating delivery of exogenous genetic material into target cells) are known to those skilled in the art.

[0168] As used herein, " cell transfection " refers to the cell's acquisition of new genetic material by incorporating added DNA.Therefore, transfection refers to the insertion of nucleic acid into cells using physical or chemical methods.Some transfection techniques are known to those skilled in the art, such as calcium phosphate DNA coprecipitation; DEAE-dextran; electroporation; cationic liposome-mediated transfection and tungsten particle-promoted microprojectile bombardment.Strontium phosphate DNA coprecipitation is another possible transfection method.

[0169] In contrast, "transduction of cells" refers to the process of transferring nucleic acid into cells using DNA or RNA viruses. RNA viruses (i.e., retroviruses) used to transfer nucleic acid into cells are referred to herein as transducing chimeric retroviruses. The exogenous genetic material contained within the retrovirus is incorporated into the genome of the transduced cell. Cells transduced with chimeric DNA viruses (e.g., adenoviruses carrying cDNA encoding a therapeutic agent) do not have the exogenous genetic material incorporated into their genome, but are able to express exogenous genetic material that is maintained extrachromosomally within the cell.

[0170] Typically, exogenous genetic material includes a heterologous gene (usually in the form of a cDNA containing exons encoding a therapeutic protein) along with a promoter to regulate transcription of the new gene. Promoters characteristically have specific nucleotide sequences necessary to initiate transcription. Optionally, the exogenous genetic material further includes additional sequences (i.e., enhancers) required to obtain the desired gene transcription activity. In this discussion, an "enhancer" is simply any untranslated DNA sequence that acts adjacent to a coding sequence (located in cis) to alter the basal transcription level determined by the promoter. Exogenous genetic material can be introduced into a cell genome immediately downstream of the promoter such that the promoter and coding sequence are operably linked to permit transcription of the coding sequence. Retroviral expression vectors can contain exogenous promoter elements to regulate transcription of the inserted exogenous gene. Such exogenous promoters include both constitutive and inducible promoters.

[0171] Naturally occurring constitutive promoters regulate the expression of essential cellular functions. As a result, genes under the control of a constitutive promoter are expressed under all conditions of cell growth. Exemplary constitutive promoters include promoters for the following genes encoding certain constitutive or "housekeeping" functions: hypoxanthine phosphoribosyltransferase (HPRT), dihydrofolate reductase (DHFR), adenosine deaminase, phosphoglycerol kinase (PGK), pyruvate kinase, phosphoglycerol mutase; the actin promoter; and other constitutive promoters known to those skilled in the art. Furthermore, many viral promoters function constitutively in eukaryotic cells. These include, among others, the early and late promoters of SV40; the long terminal repeat (LTR) of Moloney leukemia virus and other retroviruses; and the thymidine kinase promoter of herpes simplex virus. Therefore, any of the constitutive promoters cited above can be used to regulate the transcription of heterologous gene inserts.

[0172] Genes under the control of an inducible promoter are expressed only or more abundantly in the presence of an inducer (e.g., transcription under the control of a metallothionein promoter is greatly increased in the presence of certain metal ions). Inducible promoters contain a response element (RE) that stimulates transcription when the inducer binds. For example, REs exist for serum factors, steroid hormones, retinoic acid, and cyclic AMP. To obtain an inducible response, a promoter containing a specific RE can be selected; in some cases, the RE itself can be attached to a different promoter, thereby conferring inducibility to the recombinant gene. Thus, by selecting the appropriate promoter (constitutive vs. inducible; strong vs. weak), it is possible to regulate both the presence and level of expression of a therapeutic agent in genetically modified cells. If a gene encoding a therapeutic agent is under the control of an inducible promoter, in situ delivery of the therapeutic agent can be triggered by exposing the genetically modified cells in situ to conditions permissive for transcription of the therapeutic agent, e.g., by intraperitoneal injection of a specific inducer of the inducible promoter that regulates transcription of the therapeutic agent. For example, in situ expression by genetically modified cells of a therapeutic agent encoded by a gene under the control of a metallothionein promoter is enhanced by contacting the genetically modified cells in situ with a solution containing the appropriate (i.e., inducing) metal ion.

[0173] Thus, the amount of therapeutic agent delivered in situ is controlled by adjusting factors such as: (1) the nature of the promoter used to drive transcription of the inserted gene (i.e., whether the promoter is constitutive or inducible, strong or weak); (2) the number of copies of the exogenous gene inserted into the cells; (3) the number of transduced / transfected cells administered (e.g., transplanted) into the patient; (4) the size of the transplant (e.g., graft or encapsulated expression system); (5) the number of transplants; (6) the length of time the transduced / transfected cells or transplant remain in place; and (7) the rate of production of the therapeutic agent by the genetically modified cells. Selection and optimization of these factors to deliver a therapeutically effective dose of a particular therapeutic agent is considered to be within the skill of one in the art without undue experimentation, taking into account the factors disclosed above and the patient's clinical profile.

[0174] In addition to at least one promoter and at least one heterologous nucleic acid encoding a therapeutic agent, the expression vector may contain a selection gene, e.g., a neomycin resistance gene, to facilitate selection of cells transfected or transduced with the expression vector. Alternatively, cells may be transfected with two or more expression vectors, at least one of which contains a gene encoding a therapeutic agent and the other of which contains a selection gene. Selection of an appropriate promoter, enhancer, selection gene, and / or signal sequence (described below) is deemed to be within the skill of one in the art without undue experimentation. Disease Conditions and Methods of Treatment

[0175] The present invention, in one embodiment, comprises compositions and methods for treating cystic fibrosis by reversing the effects of existing mutations associated with nonsense mutations through the introduction of synthetic oligonucleotide suppressor tRNAs of the present invention.

[0176] Certain embodiments of the present disclosure provide methods for treating a disease in a mammal, comprising administering to the mammal a protein or vector encoding a therapeutic agent (e.g., a modified and / or stabilized ACE-tRNA) described herein. In certain embodiments, the mammal is a human.

[0177] Certain embodiments of the present disclosure provide for the use of a therapeutic agent or a vector encoding a therapeutic agent described herein to prepare a medicament useful for treating a disease in a mammal. In certain embodiments, the disease is cystic fibrosis.

[0178] The present disclosure also provides a mammalian cell containing a vector described herein. The cell can be a human cell.

[0179] Certain aspects of the present disclosure relate to polynucleotides, polypeptides, vectors, and genetically engineered cells (modified in vivo) and their uses. In particular, the present disclosure relates to methods of gene therapy that allow for the systemic delivery of therapeutically effective doses of therapeutic agents.

[0180] According to one aspect, a cell expression system for expressing a therapeutic agent in a mammalian recipient is provided. The expression system (also referred to herein as "genetically modified cells") comprises a cell and an expression vector for expressing the therapeutic agent. Expression vectors include, but are not limited to, viruses, plasmids, and other vehicles for delivering heterologous genetic material to cells. Thus, as used herein, the term "expression vector" refers to a vehicle for delivering heterologous genetic material to cells. In particular, the expression vector is a recombinant adenovirus, adeno-associated virus, or lentivirus or retrovirus vector.

[0181] The expression vector further comprises a promoter for regulating the transcription of the heterologous gene. The promoter may be an inducible promoter (as described herein). The expression system is suitable for administration to a mammalian recipient. The expression system may comprise a plurality of non-immortalized genetically modified cells, each cell containing at least one recombinant gene encoding at least one therapeutic agent.

[0182] The cell expression system is formed in vivo. According to yet another aspect, a method for treating a mammalian recipient in vivo is provided. The method comprises introducing, e.g., via intravenous administration, an expression vector for expressing a heterologous gene product into the patient's cells in situ. To form the in vivo expression system, an expression vector for expressing a therapeutic agent is introduced into the mammalian recipient in vivo via intravenous administration.

[0183] According to yet another aspect, there is provided a method for treating a mammalian recipient in vivo, the method comprising introducing a targeted therapeutic agent into the patient in vivo.

[0184] Expression vectors for expressing heterologous genes can contain inducible promoters to regulate transcription of the heterologous gene product. Thus, delivery of therapeutic agents in situ is regulated by exposing cells in situ to conditions that induce transcription of the heterologous gene.

[0185] The present disclosure provides methods for treating disease in mammals by administering expression vectors to cells or patients. For gene therapy methods, those skilled in the art of molecular biology and gene therapy should be able to determine, without undue experimentation, appropriate dosages and routes of administration for the expression vectors used in the novel methods of the present disclosure.

[0186] According to one embodiment, cells are transformed or otherwise genetically modified in vivo: Cells obtained from a mammalian recipient are transformed (i.e., transduced or transfected) in vivo with a vector containing exogenous genetic material for expressing a heterologous (e.g., recombinant) gene encoding a therapeutic agent, and the therapeutic agent is delivered in situ.

[0187] As used herein, "exogenous genetic material" refers to nucleic acids or oligonucleotides, either natural or synthetic, that are not naturally found in a cell or, if naturally found in a cell, are not transcribed or expressed at biologically significant levels by the cell. Thus, "exogenous genetic material" includes, for example, non-naturally occurring nucleic acids that can be transcribed into tRNA.

[0188] The therapeutic agents and conditions suitable for gene therapy disclosed above are merely exemplary and are not intended to limit the scope of the present disclosure. Selection of an appropriate therapeutic agent to treat a known condition is deemed to be within the skill of one in the art without undue experimentation.

[0189] In certain embodiments, this therapy has potential application in the treatment / management of diseases caused by premature termination codons (PTCs), including, but not limited to, cystic fibrosis, muscular dystrophy, β-thalassemia, and Liddle's syndrome. This therapy is advantageous in that it provides improved stop codon suppression specificity. The therapeutic ACE-tRNA of the present invention targets a specific stop codon, e.g., TGA, thereby reducing off-target effects at stop codons unrelated to the disease. This therapy is also advantageous in that it provides amino acid specificity. The expressed tRNA is engineered to specifically replace the amino acid lost through the insertion of the disease stop codon, thus eliminating any spurious effects on protein stability, folding, and transport.

[0190] In one embodiment, this system is modular, and therefore can be "individualized" for all possible PTC disease.For example, there are nine tryptophan tRNAs recognized by Trp synthase in the human genome, and all of them suppress the mRNA UGG codon.Therefore, each of these nine Trp tRNAs provides an opportunity for codon re-editing tolerance (UGG → UGA).In addition, given their proximity to the stop codon in the genetic code, mutation of arginine codons to PTC nonsense codons is common in disease.There are more than 30 Arg tRNAs that can be tested for codon editing tolerance and suppression effect.

[0191] A further advantage of the present invention is that the entire system (tRNA + promoter sequence) is compact, providing easy expression and cell-specific delivery. Dosage, formulation and route of administration of the agents of the present invention

[0192] The agent of the present invention is administered to reduce at least one symptom associated with genetic disease (for example, cystic fibrosis).The amount to be administered varies depending on various factors, including but not limited to, selected composition, specific disease, mammal's body weight, physical condition and age, and whether prevention or treatment is to be achieved.Such factors can be easily determined by clinicians using animal models or other test systems well known in the art.

[0193] The present invention contemplates treating genetic diseases (e.g., cystic fibrosis) by administering an agent of the present invention, such as an ACE-tRNA, an expression vector, or a viral particle. Administration of a therapeutic agent according to the present invention can be continuous or intermittent, depending, for example, on the physiological condition of the recipient, whether the purpose of administration is therapeutic or prophylactic, and other factors known to those skilled in the art. Administration of an agent of the present invention can be essentially continuous over a preselected period of time, or can be in a series of spaced doses. Both local and systemic administration are contemplated.

[0194] As discussed below, one or more suitable unit dosage forms having a therapeutic agent(s) of the present invention, optionally formulated for sustained release (e.g., using microencapsulation), can be administered by a variety of routes, including parenterally, including by intravenous and intramuscular routes, and by direct injection into diseased tissue. The formulations may, where appropriate, be conveniently presented in discrete unit dosage forms and may be prepared by any of the methods well known in the art of pharmacy. Such methods may include the step of bringing the therapeutic agent into association with liquid carriers, solid matrices, semi-solid carriers, finely divided solid carriers, or combinations thereof, and then, if necessary, incorporating or shaping the product into the desired delivery system.

[0195] When the therapeutic agents of the present invention are prepared for administration, they may be combined with a pharmaceutically acceptable carrier, diluent, or excipient to form a pharmaceutical formulation or unit dosage form. The total active ingredient in such a formulation comprises 0.1 to 99.9% by weight of the formulation. "Pharmaceutically acceptable" refers to a carrier, diluent, excipient, and / or salt that is compatible with the other ingredients of the formulation and not deleterious to the recipient. The active ingredient for administration may be present as a powder or granules; as a solution, suspension, or emulsion.

[0196] Pharmaceutical formulations containing the therapeutic agents of the present invention can be prepared by techniques known in the art using well-known and readily available ingredients. The therapeutic agents of the present invention can also be formulated as solutions suitable for parenteral administration, for example, by intramuscular, subcutaneous, or intravenous routes.

[0197] Pharmaceutical formulations of the therapeutic agents of the invention can also take the form of an aqueous or anhydrous solution or dispersion, or the form of an emulsion or suspension.

[0198] For this reason, the therapeutic agent can be formulated for parenteral administration (e.g., by injection, e.g., bolus injection or continuous infusion), and can be provided in unit dosage form in ampoules, pre-filled syringes, small-volume infusion containers, or in multi-dose containers with added preservatives.The active ingredient can take such forms as a suspension, solution, or emulsion in an oily or aqueous vehicle, and can contain formulatory agents such as suspending agents, stabilizers, and / or dispersants.Alternatively, the active ingredient can be in powder form, obtained by aseptic isolation of a sterile solid or by lyophilization from a solution, for constitution with a suitable vehicle, for example, sterile pyrogen-free water, before use.

[0199] It is understood that the unit content of one or more active ingredients contained in each individual aerosol dose of each dosage form does not necessarily constitute an effective amount for treating a specific indication or disease, since the required effective amount can be achieved by administering multiple dosage units. Moreover, either individually or in a series of administrations, an effective amount can be achieved using less than the dose in the dosage form.

[0200] The pharmaceutical formulations of the present invention may contain, as optional ingredients, pharmaceutically acceptable carriers, diluents, solubilizers or emulsifiers, and salts of the type well known in the art. Specific, non-limiting examples of carriers and / or diluents useful in the pharmaceutical formulations of the present invention include water and physiologically acceptable buffered saline solutions, such as phosphate buffered saline solution, pH 7.0-8.0, and water. definition

[0201] Disease status: In the present invention, "disease status" or "disease phenotype" refers to the characteristic of mammalian cells caused by a stop codon in the coding region of a gene in cells (e.g., caused by nonsense mutation).For example, an increasing number of human genetic diseases are thought to be caused by nonsense mutation (see, for example, Atkinson et al., Nuc. Acids Res. 22:1327, 1994).To name just a few examples, β-thalassemia, Duchenne muscular dystrophy, xeroderma pigmentosum, Fanconi anemia and cystic fibrosis can all be caused by nonsense mutations in identified genes.

[0202] Endogenous tRNA synthetase: A tRNA synthetase is considered "endogenous" to a cell if it is present in the cell into which the tRNA is introduced in accordance with the present invention. As will be apparent to those skilled in the art, a tRNA synthetase may be considered endogenous for these purposes whether it is naturally found in the cell type in question, or whether the cell has been engineered or otherwise manipulated by human hands to contain or express the tRNA synthetase.

[0203] Suppressor tRNA: A "suppressor tRNA" refers to a tRNA whose anticodon is complementary to a codon that would otherwise terminate translation, such that detectable readthrough occurs under experimental conditions. Standard termination codons are the amber (UAG), ochre (UAA), and opal (UGA) codons. However, non-standard termination codons (e.g., tetranucleotide codons) have also been used in the literature (see, e.g., Moore et al., J. Mol. Biol. 298:195, 2000; Hohsaka et al., J. Am. Chem. Soc. 121:12194, 1999).

[0204] The invention will now be illustrated by the following non-limiting examples. [Example]

[0205] [Example 1] The genetic code uses four nucleotides that sequentially form triplet codons, which form the basis for translating DNA into proteins. There are 64 codons in total, 61 of which are used to code for amino acids, and three of which (TAG, TGA, and TAA) code for protein-terminating "stop" or "nonsense" codons.

[0206] Five to ten percent of cystic fibrosis cases are caused by "nonsense" mutations that result in premature truncation of the cystic fibrosis transmembrane conductance regulator (CFTR) protein. An example of this "Class 1" mutation is p.Trp1282X, a premature stop codon (PTC) that causes loss of CFTR function and a severe cystic fibrosis phenotype. Some compounds, such as ataluren, promote stop readthrough of disease-causing nonsense mutations but have only met with limited success as therapeutics due to several caveats, including poor stop codon specificity and unexpectedly low codon skipping efficiency in vivo. However, the widespread use of these compounds and the discovery that endogenous stop codon readthrough is common in metazoans suggest that assisted suppression may be feasible if delivered to a subset of cell types, namely, airway epithelia. However, successful therapeutically assisted stop codon readthrough may result in nonselective incorporation of amino acids at nonsense codon positions (as in the case of CFTR1282X), affecting protein folding, trafficking, and function, necessitating further therapeutic intervention. Thus, there is an urgent unmet need to understand the nature of the disease PTC and potentially therapeutic suppressors, and more effective treatments for PTC disease in general.

[0207] This example characterizes an anticodon-edited (ACE) Trp-tRNA for rescue of the CFTR p.Trp1282X channel. Such a tRNA is engineered to "suppress" the disease-causing TGA stop codon, incorporating the original amino acid, Trp, in p.Trp1282X CFTR, effectively genetically reconstituting the wild-type CFTR protein. The data demonstrate that this general approach (nonsense suppression) results in robust rescue of transcripts carrying in-frame stop codons through transient transfection of the tRNA and its cognate synthetase in adherent cells or viral delivery into more native airway cell types, such as A549 airway cells. This approach offers several significant advantages over existing strategies: 1) Improved codon specificity—expressed tRNAs can be directed toward specific stop codons, reducing off-target effects toward stop codons unrelated to the disease. 2) Amino acid specificity—The expressed tRNA and / or synthetase can be engineered to replace the missing amino acid through the insertion of a disease stop codon, thereby negating any spurious effects on CFTR stability, folding, and trafficking. 3) Tunability—The system can theoretically be customized for each type of tRNA and PTC mutation. 4) Easy expression—The entire system is compact (<1 kb) and can be easily packaged and expressed transiently or via nanoparticle delivery of tRNA. 5) Proof of principle for a general strategy—In-frame stop codons are a major cause of human disease, with few treatment options; the experiments performed here with p.Trp1282X are expected to provide insight into the mechanisms of other CFTR nonsense codons.

[0208] The data show that ACE-tRNA stop codon suppressor tRNAs are efficient at "rescuing" transcripts containing introduced stop sites (Figures 6A and 6B), suggesting that such tRNAs have the ability to prevent nonsense-mediated decay (NMD), a major biological obstacle in the therapeutic rescue of disease stop sites. This opens the possibility of using suppressor tRNAs to gain more molecular insight into NMD in disease. result

[0209] We asked whether it was possible to express anticodon-edited eukaryotic tRNAs that suppress a stop site, e.g., TGA, but not its designated codon. This was tested with five human tryptophan tRNAs on a test construct consisting of an in-frame fluorescent protein (Cherry) with the eGFP sequence, separated by a linker containing the TGA site. To demonstrate production of the full-length protein, an HA epitope was added to the C-terminus of the eGFP reading frame. This test system is useful because the appearance of the Cherry signal indicates delivery and expression of the plasmid, and, in combination with eGFP rescue, indicates TGA suppression. Figures 6A and 6B show Western blot data using this test construct to assay the ability of five anticodon-edited human Trp tRNAs to suppress the TGA stop site in the short linker between the Cherry and eGFP reading frames. Of these constructs, candidates 1, 2, 3, and 5 show moderate activity in this regard. This could be due to structural intolerance to mutations or the possibility that changing the anticodon by just one base disrupted the ability of Trp synthase to recognize and / or acylate the tryptophan-bearing tRNA. However, tRNA number 4 (tRNA#4) of these test RNAs showed significant repression activity at the TGA site, producing full-length Cherry-eGFP-HA protein (Figure 6B). Furthermore, no readthrough was observed in the absence of coexpressed tRNA (last lane, Figure 6B). method

[0210] Trp tRNAs were examined for their tolerance of codon editing (TGG → TGA) and their ability to suppress the targeted TGA test site in transiently transfected tandem fluorescently labeled reagent (mCherry-TGA-GFP) and CFTR Trp1282X. Initial screening of five of nine Trp tRNAs transiently transfected into HEK cells uncovered anticodon-edited Trp-tRNAs with "unique" functionality for rescuing the Cherry-TGA-eGFP-HA test construct (Figure 6B). The selective presence of the HA epitope indicates successful rescue, as well as confocal examination of both Cherry and eGFP fluorescence at the single-cell level (not shown). This result provides proof-of-principle data that a) some ACE-tRNAs can tolerate anticodon editing, b) these tRNAs retain the ability to be acylated with Trp by endogenous tryptophan synthase, and c) these tRNAs can suppress TGA sites embedded within protein reading frames.

[0211] The remaining four Trp-tRNAs were functionally examined for their tolerance of anticodon editing from TAA to TGA suppressor. These anticodon-edited tRNAs were tested for their ability to rescue the Cherry-TGA-eGFPHA clone. Biochemical (Western blot) data were obtained for Cherry and eGFP signals and the HA epitope. Here, Cherry expression served as a positive transfection control. Confocal images demonstrated Cherry and eGFP fluorescence at the single-cell level.

[0212] The fidelity of the endogenous Trp synthase in incorporating tryptophan amino acids into ACE-Trp tRNA was determined by mass spectrometry analysis of tryptic fragments of purified rescued Cherry-Trp-eGFPHA protein. The predicted masses for the tryptic fragments generated from the linker between the Cherry and eGFP reading frames are as follows: 1590.8135; [ka] The bolded W indicates the incorporation site, Figure 10. This therefore represents the first example of nonsense codon repair and replacement with a wild-type amino acid and is therefore a significant advance over existing approaches such as therapeutic Ataluran. In the latter example, the compound promotes readthrough of the nonsense codon with the incorrect amino acid, making the discovery and identification of new tRNA sequences that provide accurate repair crucial.

[0213] Rescue of transiently transfected CFTR1282X channels by the above-identified ACE-tRNA is assessed by standard biochemical methods to full maturation of B and C glycosylated CFTR band 20. Thus, the channel is restored with wild-type amino acids, is fully functional, and is successfully transported to the plasma membrane.

[0214] The next step is to functionally characterize the CFTR Trp1282X channel rescued by the ACE-tRNA system identified above using electrophysiological (single-cell patch clamp and Ussing chamber) and biochemical approaches. The efficacy of the expressed tRNA in attenuating nonsense-mediated decay (NMD) of the 1282X mRNA can be assessed using quantitative rtPCR. Reprogrammed human airway cells will be used to test the rescue of the native 1282X CFTR channel by the expressed codon-edited Trp-tRNA.

[0215] We demonstrate that the identified human Trp tRNA tolerates anticodon editing and that this 75-base pair transfer RNA can suppress an in-frame TGA codon in a test construct. These experiments extrapolate this finding to characterize the ability of this ACE-tRNA to interact with CFTR 1282TGA mRNA and produce functional CFTR channels in model cells (FRT and A549) and p.1282X human reprogrammed airway cells.

[0216] Biochemical determination of rescue levels in transiently expressed CFTR1282X channels and in reprogrammed airway cells. To detect rescued and unrescued CFTRs, antibody M3A7, an antibody that binds to the N-terminal-like MM13-4 (epitope amino acids 25-36) available from EMD Millipore, was used. Alternatively, L12B4 (epitope amino acids 386-412, EMD Millipore) or 660 (epitope amino acids 576-585) are available through Cystic Fibrosis Foundation Therapeutics.

[0217] Surface functionality is examined through electrophysiological approaches, patch clamp and Ussing chamber recordings, and 1282X mRNA stability and abundance are assayed by quantitative rtPCR of RNA extracts from transiently expressing and reprogrammed airway cells.

[0218] Bioinformatics analysis of RNA transcriptome data from human airway cells identifies the abundance, context, and identity of transcripts containing the TGA codon. The top 10 expressed transcripts using TGA relative to their normal termination site are tracked at the individual transcript level using protein biochemistry before and after ACE-tRNA expression. Biochemical and immunohistological probes of cellular apoptosis are also used to examine the impact of ACE-tRNA on cell death.

[0219] In conclusion, this data indicates that ion channel genes with in-frame termination sites are suitable for this type of "rescue" (Figure 9), and components of the system can be expressed virally in airway cells. Furthermore, a highly simplified version of this concept, ACE-tRNA of human origin, demonstrates a "unique" ability to rescue the in-frame CFTR TGA codon in mammalian cell lines (Figure 9). This approach has many advantages over existing termination codon strategies and merits closer investigation into the ability of ACE-tRNA to 1) suppress nonsense-mediated decay, 2) function in lung cell preparations, and 3) specifically rescue CFTR1282X. [Example 2]

[0220] Several different nonsense mutations cause CF and thus underlie approximately 10% of all CF cases (Figure 7). These cases are clustered around 10 specific genetic lesions: E60X, R75X, G542X, R553X, Q890X, Y1092X, R1158X, R1162X, and W1282X. We propose that, with the appropriate approach, it should be feasible to screen existing human tRNA sequences for modification and tolerance to anticodon editing. To this end, approximately 144 ACE-tRNAs were candidates for testing against ACE-tRNAs that could be used to promote repair of disease-causing nonsense codons and full-length protein expression. Specifically, using the scheme described in Figure 11, a tRNA library was generated to identify novel ACE-tRNA sequences encoding ACE-tRNAs with the ability to repair the top CF-causing nonsense mutations. Specifically, as depicted in Figure 11, 10 ng of annealed oligos encoding ACE-tRNA were combined with 50 ng of NanoLuc reporter plasmid, 1 μL of 10x CutSmart Buffer (NEB), 1 μL of T4 ligase (NEB), 10 mM ATP, and 1 μL of BbsI (NEB) in a thermocycler. 1 μL of the reaction was transformed into competent E. coli, and the transformants were plated on ampicillin agar plates. One transformant per plate was picked, grown in 1 mL of LB under ampicillin selection, miniprepped, and sequence-confirmed.

[0221] A screening study was first conducted to identify the best ACE-tRNA candidate from tryptophan and glycine. 125 ng of sequence-verified miniprep cDNA of the NanoLuc reporter plasmid along with ACE-tRNA was transfected into HEK cells using calcium phosphate. 4 × 10 4HEK cells were plated in 96-well plates. 24 hours after transfection, the medium was replaced with 20 μL of PBS, and 15 μL of NanoGlo reagent (Promega) was added. Plates were read on a SpectraMax i3 (Molecular Devices). Data are from three or more replicates. Figure 8. The data indicate that many tRNAs exhibit poor codon editing tolerance. However, clear high-performance tRNAs emerged from the above screening study, identifying ACE-Trp and ACE-Gly tRNAs that demonstrated 20- to 130-fold rescue of nonsense codon-containing proteins over background.

[0222] To assess whether these novel tRNAs could rescue CFTR channels carrying nonsense codons, we coexpressed them with a CFTR W1282X cDNA plasmid in mammalian HEK cells. Cell preparations were analyzed by standard biochemical approaches via Western blot analysis of CFTR protein. This method is highly advantageous for this purpose, as CFTR protein exhibits a well-established multiband pattern. Specifically, the "B" and "C" bands correspond to full-length and fully mature, post-translationally processed CFTR protein at the cell surface, respectively. In this case, both rescue with the Trpchr17.trna39 ACT-tRNA and the Glychr19.trna2 ACT-tRNA produced robust populations of "B" and "C" CFTR-immunopositive (antibody MA37) bands, indicating that the tRNAs promote the transport of full-length, successfully transported ion channel protein (Figure 9). [Example 3]

[0223] Modification of the t-stem significantly improves nonsense suppression (Figure 10). Here, we propose further modifications of tRNAs to further confer functionality to the tRNA for the purposes of suppressing nonsense codons and promoting protein expression. This hypothesis is based on the possibility that rationally introduced mutations within the tRNA "t-stem" loop, shown in Figure 10, may result in tRNA molecules that are more stable and functionally more potent with respect to nonsense codon suppression. To this end, we engineered single and double mutations directly into the t-stem of tRNA Trpchr17.trna39, an ACE-tRNA identified for its activity in rescuing the tryptophan TGA nonsense codon. In this way, 38 tRNA t-stem variants were generated and screened in HEK cells transiently transfected with the nonsense rescue reporter construct shown in Figure 4. 24 hours after transfection, cells were assayed for luciferase activity, as shown in Figure 10. The data show strong variation and identify novel tRNA sequences with altered t-stem-loop sequences that have enhanced repression activity. Notably, one such mutant, TS-38 52-62 GC, enhances the repression ability of Trpchr17.trna39 by approximately 250% (Figure 12). Therefore, we propose that this is a generalizable modification, i.e., the novel tRNA sequence modifications identified by Examples 1 and 2 can be improved (in terms of their ability to rescue nonsense codons) through further rational modification. Such an approach would aid the therapeutic utility of ACE-tRNAs targeted to tissue types with low abundance of target RNAs or where tRNA delivery may be limited. [Example 4]

[0224] To enable identification of the nucleotide composition and functional ability of novel tRNAs to suppress nonsense codons, we invented an all-in-one plasmid with a one-pot cloning reaction for high-throughput cloning (Figure 11). This approach allows for easy investigation of ACE-tRNA activity via luciferase activity in a standard 96-well format. Briefly, synthetic nucleotide sequences encoding tRNAs were ligated into the NanoLuc Reporter plasmid, and an example of a TGA nonsense reporter plasmid variant is shown in Figure 11. In Figures 16–19, TAA (opal) and TAG (amber) stop codon rescue vectors were successfully designed and implemented. An advantage of this approach is that DNA oligos encoding a tRNA library can be ligated into the NanoLuc reporter plasmid in the presence of restriction enzymes and ligase, driving the reaction to nearly 100% tRNA insert incorporation (Figure 11), hence the term "one-pot." The reaction mixture is transformed into E. coli, and the resulting cDNA is purified by standard methods. Another advantage of the invented method is that the tRNA and reporter gene (gen) are contained within a single expression cassette, thus reducing biological variability and improving the quality of data obtained in the resulting screen for tRNA suppression activity. The purified cDNA plasmids are then screened in a high-throughput 96-well format for their ability to repair nonsense codons via predicted luciferase activity. This approach is suitable for high-throughput screening of hundreds to thousands of tRNAs for novel therapeutic activity.

[0225] The "one-pot" cloning and expression system described in Figure 11 was successfully used to identify unique tRNA sequences for repair of tryptophan and glycine: ACE-tRNA (Figure 13), ACE-tRNA-Arg (Figure 14), ACE-tRNA-Gln TAG (Figure 15), ACE-tRNA-Gln TAA (Figure 16), ACE-tRNA-Glu TAG (Figure 17), ACE-tRNA-Gln TAA (Figure 18), and ACE-tRNA-Trp TAG (Figure 19). Figures 20A-20D show that delivery of ACE-tRNA as small RNAs supports robust suppression of G542X and W1282X nonsense mutations. [Example 5] Engineered transfer RNAs for suppression of premature termination codons summary

[0226] Premature termination codons (PTCs) are responsible for 10-15% of all genetic diseases. PTC suppression during translation offers a promising approach for treating various genetic disorders, but small molecules that promote PTC readthrough have given inconsistent results in clinical trials. Anticodon-engineered (anticodon-engineered) PTCs can effectively suppress in-frame PTCs and faithfully encode their cognate amino acids. a nti c odon e A cell-based, high-throughput assay for identifying engineered transfer RNAs (ACE-tRNAs) is provided. Taken together, ACE-tRNAs with high repression activity targeting nonsense codons that cause the most common human diseases were identified. Genome-wide transcriptome ribosome profiling of cells expressing ACE-tRNAs at levels that repair PTCs indicates limited interaction with translation termination codons. These ACE-tRNAs exhibit high repression potency in mammalian cells, Xenopus oocytes, and mice in vivo, leading to PTC repair in multiple genes, including disease-causing mutations in the cystic fibrosis transmembrane conductance regulator (CFTR). Introduction

[0227] Premature termination codons (PTCs) result from single-nucleotide mutations that convert a canonical triplet nucleotide codon into one of three stop codons, e.g., TAG, TGA, or TAA. PTCs are often more deleterious than missense mutations because they result in loss of protein expression. Furthermore, mRNA abundance can be reduced through nonsense-mediated decay (NMD), and in some cases, the truncated protein may have dominant-negative functions. 1-3 Therefore, PTC may be a potential risk factor for cystic fibrosis. 4 , Duchenne muscular dystrophy, spinal muscular atrophy 5 , infantile neuronal ceroid lipofuscinosis 6 , β-thalassemia 7 , cystinosis 8 , X-linked nephrogenic diabetes insipidus 9 , Hurler syndrome 10 , Usher syndrome 11 It is not surprising that nonsense mutations are associated with many severe disease phenotypes, including leukemia and polycystic kidney disease. Furthermore, nonsense mutations in the tumor suppressor genes p53 and ATM 12 PTCs occur within the genome, further suggesting a role for nonsense mutations in disease. The amino acid codons most susceptible to PTC conversion are those with a single base substitution from a stop codon: tryptophan, tyrosine, cysteine, glutamic acid, lysine, glutamine, serine, leucine, arginine, and glycine (Figure 25). As such, PTCs are a unique group of diseases that afflict over 30 million people worldwide, accounting for 10-15% of all genetic diseases. 13 .

[0228] Aminoglycosides 14 , dipeptides 15 and oxadiazole 16 Small molecules such as α-glucan, α-glucan, and α-glucan promote the "read-through" or "suppression" of nonsense mutations. These compounds are useful in model organisms such as α-glucan, α-glucan, and α-glucan. 17、18 , mammalian cell lines 19and several animal disease models 16、20 However, this approach does not result in the encoding of closely related amino acids. 21 , effectively creating missense mutations in PTCs, which themselves can have deleterious effects on protein folding, trafficking, and function. Furthermore, aminoglycosides are ototoxic and nephrotoxic. 22 Ataluren, a groundbreaking oxadiazole drug, has shown unexpectedly low efficacy in this patient population (ACT DMD Phase 3 Clinical Trial, NCT01826487; ACT CF, NCT02139306), thus limiting its usefulness as a PTC treatment. Recent ongoing advances in CRISPR / Cas9-mediated genome editing potentially offer a permanent solution to diseases caused by nonsense mutations. However, aspects of this technology pose obstacles to its early use as a therapeutic. 23、24 This is not limited to the requirement for "precise" or "personalized" diagnostics for each mutation in the context of each patient's genetic variability.

[0229] PTC repair approaches demonstrating the versatility of small molecules and the precision of gene editing have been identified. To fulfill these criteria, tRNAs whose anticodons have been engineered via mutagenesis to recognize and suppress UGA, UAA, or UAG PTC codons were examined. To be effective, anticodon-edited tRNAs, also known as ACE-tRNAs, require the endogenous translation cellular machinery, including aminoacyl-tRNA synthetases to incorporate their cognate amino acids into the ACE-tRNA and eukaryotic elongation factor 1α (eEF-1α) to deliver the incorporated tRNA to the ribosome. Such suppressor tRNAs are capable of suppressing β-thalassemia in a restricted manner. 25 , xeroderma pigmentosum 26 and transgenic PTC reporter gene 27It has been shown that the nucleotide sequence of ...

[0230] This example demonstrates that the anticodon editing approach is generalizable to multiple tRNA gene families, suggesting that many annotated tRNAs are biologically viable. Furthermore, we demonstrate that anticodon editing suppressor tRNAs encode their cognate amino acids, lack significant interactions with termination stop codons, and are effective in suppressing PTCs in vivo. Overall, this data supports the potential for such engineered tRNAs to meet the broad requirements for covering disease-causing PTCs and thus represent a promising new class of RNA therapeutics. result

[0231] The rationale for this study is based on the observation that there are multiple tRNA genes (isodecoders) with unique sequences for a given cognate amino acid (isoacceptor), and over 400 tRNAs have been annotated in the human genome (http: / / lowelab.ucsc.edu / GtRNAdb / ). 28,29 First, we investigated the tRNA gene to identify individual ACE-tRNAs that retain PTC suppression potency in mammalian cells. To maximize sequence coverage, we constructed an all-in-one cDNA plasmid that supports both high-throughput cloning (HTC) of ACE-tRNAs and quantitative measurement of PTC suppression using luminescence after delivery into mammalian cells (Figure 21B). ccdB negative selection 31 Golden Gate Cloning in Combination with 30The ACE-tRNA sequence was cloned as a DNA oligo into the HTC plasmid using the NLuc NanoBiT platform. This strategy resulted in a cloning efficiency of approximately 100%. ACE-tRNA silencing efficiency was also measured using another NanoLuc luciferase (NLuc) NanoBiT platform, where the PTC of interest (UGA, UAA, or UAG) was introduced in-frame at the junction between the large and small bit domains using a 96-well format, as shown in Figure 21B. 32 , normalized to the background obtained in cells expressing NLuc-PTC. First, 21 glycine ACE-tRNAs were evaluated for repression of the UGA PTC, Figure 22, top left, column 1 (violet). ACE-tRNA Gly Although the majority of the sequences were unable to suppress the UGA NLuc PTC, three Gly-tRNA sequences had high suppression yields (approximately 100-fold over background). UGA Given the high sequence conservation among the Gly-tRNAs screened for anticodon tolerance (Figure 27), it would be difficult to de novo predict which tRNAs are best suited for anticodon editing.

[0232] Next, a screen was performed on codon-edited tRNAs for each of the following single-base mutations that could potentially result in disease-causing PTCs: Arg-tRNA UGA , Gln-tRNA UAA , Gln-tRNA UAG Trp-tRNA UGA , Trp-tRNA UAG , Glu-tRNA UAA , Glu-tRNA UAG , Cys-tRNA UGA , Tyr-tRNA UAG , Tyr-tRNA UAA , Ser-tRNAUAG 、 Leu-tRNA UAG , Leu-tRNA UAA , Lys-tRNA UAG, Lys-tRNA UGA and Ser-tRNA UAG The enzymatic activity of NLuc was not significantly affected by the introduced amino acid (Figure 28), and therefore, the difference in NLuc luminescence was due to the ACE-tRNA suppression ability. Screening identified multiple ACE-tRNAs for each amino acid and stop codon species, covering the suppression of all three stop codons (Figure 22). Many of these ACE-tRNAs exhibited strong activity, with PTC suppression exceeding 100-fold over background, which was significantly higher than that of the aminoglycosides used in this study. Interestingly, some ACE-tRNAs showed clear preferences for specific anticodon editing, likely reflecting altered aminoacyl-tRNA synthetase binding to the tRNA anticodon isoacceptor sequence. 33 For example, the conversion of tryptophan to UAG is mediated by the same ACE-tRNA. Trp This resulted in a 10-fold higher rescue than that of UGA editing in the control gene. However, the opposite was true for glutamine, which showed a clear preference for UAA over UAG. Notably, in each case, multiple high-potency suppressors were identified, suggesting that the PTC, Arg, plays an outsized role in human disease. UGA This is particularly evident in the 20 efficient ACE-Arg UGA In other cases, suppressors have been identified. Glu Among those that showed function, the repression efficiency was roughly equal for UAA and UAG. ACE-tRNA encoding via UAG or UGA repression was very similar. Lys A similar pattern was found in Gln-tRNA. UAA For ACE-tRNAs, the inhibitory activity resulted in an inhibitory signal 2,000-fold above background. Among the ACE-tRNAs identified in the screen, the tryptophan tRNA gene family showed the weakest inhibitory activity against the UGA PTC. The unique human ACE-tRNA TrpSince only six sequences were available for screening, we used tRNAs from various species to identify UGA-suppressing ACE-tRNAs. Trp The library was expanded. Miscoded A9C tRNA Trp We tested UGA anticodon editing tolerance in tryptophan tRNA genes with unique sequences from yeast, fly, mouse, rat, rabbit, and frog, in addition to the bacterial Hirsh Trp suppressor. 34,36 , Figures 29A-29B. This attempt demonstrated that the inhibitory activity of ACE-tRNA exceeds that of human ACE Trp tRNA. Trp We were not successful in identifying UGA PTC suppression activity (Fig. 29C). Taken together, the tRNA screen identified multiple engineered tRNAs (for each amino acid and stop codon type) that exhibited strong suppression and thus general tolerance to anticodon editing.

[0233] Next, we determined whether the ACE-tRNAs identified in the screen were functionalized at the expense of the stringency of aminoacylation by their cognate aminoacyl-tRNA synthetases. To this end, we used mass spectrometry to examine PTC suppression in a model soluble protein, histidinol dehydrogenase (HDH), Figure 23A. A TGA codon was introduced at asparagine 94 (N94) (Figures 30A-C), resulting in the highest-performing glycine and tryptophan ACE-tRNAs, respectively. UGAThe HDH p.N94X ACE-tRNAs were coexpressed in HEK293 cells in tandem with plasmids encoding either the Glychr19.trna2 or Trpchr17.trna39 ACE-tRNAs. The resulting full-length, repressed HDH proteins were purified via a Strep-Tactin® C-terminal affinity tag and analyzed by mass spectrometry (Figure 23A). Subsequent data mining identified an Asn-to-Trp modification (+72 Da) for Trp chr17.trna39 and (-57 Da) for Glychr19.trna2, confirming faithful coding of the cognate amino acids for each ACE-tRNA type. Importantly, in each case, over 98% of peptides identified at the HDH p.N94X site encoded the cognate tryptophan and glycine. Furthermore, both ACE-tRNAs retained preference for the UGA stop codon over UAA and UAG, Figure 23B (ACE-tRNA Gly ) and Figure 31 (ACE-tRNA Trp Finally, when transiently expressed, ACE-tRNA Gly was superior to the conventional small molecule suppressors gentamicin (40 μM) and G418 (140 μM) in terms of its ability to suppress NLuc-UGA stably expressed in HEK293 cells (Figure 23C). ACE-tRNA, which had a lower suppression efficiency, Trp The same was true even for G418, which showed superior PTC rescue compared to G418, Figures 33A-D.

[0234] The question arose as to whether the ACE-tRNAs, which exhibit effective suppression of premature stop codons, could also broadly induce readthrough of natural stop codons. To address this potential "off-target" suppression, we obtained transcriptome-wide quantitative profiles of actively engaged ribosomes on all cellular transcripts by generating ribosome footprint libraries from HEK293 cells expressing exogenous ACE-tRNA or a control mock plasmid (puc57GG). To prevent readthrough artifacts, streptomycin was omitted from the growth medium. For comparison, ribosome footprint libraries were also generated from cells in the presence or absence of G418 (150 μM, 48 h). Figure 24A shows the ribosome footprint densities (log2 fold change) of G418 and the five ACE-tRNAs on the 3'UTR region compared to the control. Only transcripts with a minimum threshold of 5 RPKM for the coding sequence and 0.5 RPKM for the 3'UTR in two replicate libraries were included for quantitative comparison (254 transcripts for G418 and 495-748 transcripts for ACE-tRNA). In this system, G418 had no observable effect on 3'UTR ribosome density across the transcriptome for any of the three endogenous stop codon groups. With the exception of the ACE-tRNAs Gln-UAA and Arg-UGA, which induced an approximately two-fold increase in 3'UTR ribosome density for their cognate stop codons complementary to the ACE-tRNA anticodon, the ACE-tRNAs examined in this study did not have detectable changes in 3'UTR ribosome density. While further study is needed to understand the biological significance of the two-fold readthrough of protein termination, this effect is substantially lower than the 100- to 1000-fold suppression of PTC for the same ACE-tRNA.

[0235] Multiple in-frame stop codons are often found at the end of genes. 37-39This may result in slight differences in overall 3'UTR ribosome density for ACE-tRNA and G418 treatments. Ribosome occupancy was examined at each nucleotide in the 3'UTR within the 60-nucleotide region downstream of the stop codon. Figure 24B demonstrates ribosome occupancy around the native stop codon for each nucleotide within the region from -35 to +65 nt relative to the first nucleotide of the stop codon. Reads were normalized per million total mapped reads, compared to control cells, and reported as log2 fold change in panel A. Over 5,200 transcripts mapped to at least one footprint within the region of interest. ACE-tRNA Gln-UAA and Arg-UGA not only showed significantly increased ribosome occupancy within the initial region, but also displayed a characteristic three-nucleotide periodicity, indicating that ribosomes were not randomly distributed but followed a codon-by-codon pattern. ACE-tRNA or G418 for UGA-Trp, UGA-Gly, and UAG-Glu consistently showed no observable changes in ribosome occupancy, even in the early regions of the 3'UTR. Taken together, the ribosome profiling data indicate that the efficiency of natural stop codon suppression by ACE-tRNA is generally low, significantly lower than the level of PTC suppression. Consideration

[0236] PTCs cause numerous human diseases, and no established therapeutic options exist for their therapeutic management. This example reports the high-throughput cloning and identification, characterization, and functional analysis of anticodon-edited tRNAs that exhibit effective PTC reversion in eukaryotic cells and mouse skeletal muscle. Notably, the screen identifies ACE-tRNAs, which, overall, have the ability to repair the majority of known human disease-causing PTCs. The engineered tRNAs faithfully encode their cognate amino acids, thus eliminating spurious effects on downstream protein stability, folding, and transport, thereby negating the need for tandem therapies involving protein folding or transport factors. When transfected as cDNA, ACE-tRNA rescued two disease nonsense mutations in multiple full-length proteins, an NLuc luciferase reporter, and the model proteins HDH and CFTR through PTC repression. ACE-tRNA Arg The cDNA showed potent and stable in vivo PTC suppression in mouse skeletal muscle, suggesting a particularly high level of cellular tolerance to ACE-tRNA activity. The identification of active ACE-tRNA for arginine in muscle is suitable for the treatment of dystrophinopathies caused by nonsense mutations. As with many genetic diseases, more than 10% of dystrophinopathies are caused by nonsense mutations. 43 , CGA → TGA mutation is the most common 43 Efficient inhibition was also achieved with ACE-tRNA delivered as a synthetic RNA transcript, enabling the development of nanoparticle formulations. Future studies are needed to evaluate the ideal tRNA delivery strategy for each tissue and disease type, and perhaps the rapidly expanding technologies for nucleic acid delivery will aid in this effort.

[0237] Factors that suppress PTC also have the potential to cause readthrough of natural stop codons. The RNA profiling data presented herein suggest that this is not the case in cells in general and for the codon-editing tRNAs tested. Arg-tRNA UGA and Gln-tRNA UAA Detectable readthrough was found in Glu-tRNA UAG , UGA-Gly-tRNA UGA and Trp-tRNA UGA No significant effect on widespread translation termination was measured. This behavior was apparently not dissociated by the type of stop codon or the intrinsic PTC-suppressing activity of the tRNA. One potential reason why ACE-tRNA does not effectively promote readthrough of true stop codons may be due to the contextual sequence landscape near translation termination. 44 This possibility is supported by the finding that the composition of the termination complex at PTC differs from that at native termination. 45、46 However, when lower levels of readthrough occur, multiple cellular mechanisms are in place to constrain both the readthrough of normal termination and its deleterious effects. Multiple in-frame stop codons are often found at the ends of genes. 37-39 , a specialized ubiquitin ligase 47 and ribosome-related pathways 48 is known to identify and degrade proteins with incorrect translation termination. However, despite the limited effect seen in this example in mammalian cells, similar ribosome profiling experiments should be performed in the desired cell or tissue type for delivery and expression of ACE-tRNA.

[0238] Previous studies have shown that the surrounding mRNA sequence influences the intrinsic stop codon suppression potency of aminoglycosides and ataluren PTCs. 49-52ACE-tRNA may be similarly affected. Furthermore, gene addition strategies to replace PTC-containing genes via viral or non-viral delivery have achieved short-term benefits in some situations, but transgene expression levels can be difficult to control. In contrast, the amount of protein rescue via ACE-tRNA suppression is related to intrinsic cellular RNA levels, and thus elevated levels of expression are inherently controlled. The biological purpose of the majority of variable isoacceptor tRNA sequences in the human genome remains unknown, and it has been speculated that nearly half of these genes are transcriptionally silent pseudogenes. 53 , individually presented data suggest that many annotated tRNAs are viable. Consistent with this possibility, a suppression approach has been used to identify functional isodecoder tRNAs within the Ser and Leu isoacceptor families. 54 The data presented in this example further demonstrate that, when removed from their genomic context, the majority of tRNA gene sequences support viable activity, further deepening the mystery of the biological necessity for multiple tRNA and codon usage. Thus, the high-throughput suppression strategy described in this example is useful for identifying new classes of tRNA sequences with unique suppression properties; such studies have the potential to generate new RNA reagents and advance the molecular understanding of tRNA expression and suppression. material and method Nonsense reporter HTC plasmid

[0239] The parental plasmid used was pcDNA3.1(+). The cDNA encoding pNLuc was Gibson Assembled (New England Biolabs, USA) into the restriction sites HindIII and XhoI. The glycine (codon gga), tryptophan (tgc), amber (tag), opal (tga), and ochre (taa) codons were added at amino acid position 160 during the cDNA PCR. Using PCR-based Gibson Assembly, the pcDNA3.1(+) polyA sequence was replaced with one without a BbsI restriction site. First, two BbsI restriction sites (bold italics) were inserted after the cDNA. [ka] followed by the T7 promoter sequence (italics) [ka] (Ye et al., 2008) Tyr The 5' leader sequence of the gene (bold) and the 3' termination sequence (bold) followed by the reverse T3 primer sequence (italicized). [ka] A high-throughput ACE-tRNA Golden Gate cloning site was created by inserting HTC of ACE-tRNA library

[0240] The tRNA gene sequences were obtained from the tRNA database, tRNAscan-SE (http: / / gtrnadb.ucsc.edu / index.html; PMID: 26673694). The sequences of all tRNA genes used in this study are numbered in Figure 26 and Table 9. tRNA sequences, with their corresponding anticodons (UAG, UGA, or UAA) appropriately mutated, were synthesized as complementary Ultramers from Integrated DNA Technologies (IDT, USA) in a 96-well format at a 200 pmol scale. All tRNA sequences were synthesized with CGAC and GGAC overhangs (5'→3') on the forward and reverse oligos, respectively. Ultramers were annealed by resuspending them in annealing buffer (100 mM potassium acetate; 30 mM HEPES, pH 7.5) to 100 ng / μL, heating to 96°C for 2 minutes, and cooling to 4°C at 1°C / min in a thermocycler. In a 96-well PCR plate, each well contained 10 ng of HTC plasmid with the appropriate PTC codon, 2 ng of ACE-tRNA duplex, 1 mM The 96-well plate was cycled in a thermocycler as follows: 37°C for 5 minutes, 20°C for 5 minutes, 37°C for 10 minutes, 80°C for 10 minutes, and cooled to 4°C. 10 μL of the Golden Gate reaction mixture was added to 10 μL of chemically competent DH5α cells (ThermoFisher, USA) in a deep-well 96-well plate. The cells were heat-shocked at 42°C for 30 seconds and then queued in 100 μL of Super Optimal ATP. The transformants were resuspended in 5% ribosomal broth (SOC; Thermofisher, USA). The transformants were grown at 37°C for 1 hour at 250 rpm and then added to 2 mL of Luria-Bertani liquid medium (LB) supplemented with 100 μg / mL carbenicillin and grown at 300 rpm for 20 hours at 37°C in coated deep 48-well plates. E. coli was grown in deep-well plates and Enzyscreen (http: / / www.enzyscreen.com) clamps. E. coli suspension cultures were sedimented (4,000 g for 10 minutes at room temperature), and plasmid DNA was prepared and diluted to 125 ng / μL (IBI Scientific, USA). All clones were sequence-confirmed. Using this method, 100% cloning efficiency was achieved. HTS of ACE-tRNA library

[0241] The day before transfection, HEK293 cells (less than 40 passages) were seeded at 1.4 × 10 in 96-well cell culture-treated plates in Dulbecco's modified essential medium (DMEM) (Thermofisher, USA) supplemented with 10% FBS, 1% Pen / Step, and 2 mM L-glutamine. 4Cells were seeded at 1000 x g / well. The all-in-one nonsense reporter carrying the ACE-tRNA gene was transfected in triplicate per plate using Calfectin (Signagen, USA). 16 hours after transfection, the medium was aspirated and 20 μL of PBS was added to each well. 15 μL of soluble Nano-Glo® Luciferase Assay Reagent was added to each well (1:50). Reagents versus buffer; Promega, USA). After orbital shaking, plates were incubated for 2 minutes and read using a SpectraMax i3 plate reader (Molecular Devices, USA; integration time, 200 msec; all wavelengths were collected in endpoint mode). For each experiment, luminescence was averaged across three wells, and all ACE-tRNAs were repeated three times in this manner. Each plate also contained triplicate wells transfected with the all-in-one nonsense reporter without ACE-tRNA to serve as controls for transfection efficiency and baseline PTC readthrough. All values ​​are reported as the ratio of ACE-tRNA luminescence above baseline PTC readthrough luminescence ± SEM. One-way ANOVA was performed across all ACE-tRNAs in a given amino acid family with Tukey's post-hoc analysis. CFTR, HDH-his-strep and 4xACE-tRNA expression plasmids

[0242] For expression in mammalian cells, cDNAs for the coding region and 200 base pairs of the 3' untranslated region (UTR) of human CFTR were ligated into pcDNA3.1(+) (Promega, USA) using KpnI and XbaI restriction enzymes. The G542tga and W1282tga mutations were introduced using QuickChange XL II (Stratagene, USA). For expression in Xenopus laevis oocytes, cDNAs for the coding region and 140 base pairs of the 5' and 244 base pairs of the 3' UTR of human CFTR were ligated into pGEM-HE (Promega, USA). Both the G542tga and W1282tga mutations were introduced using QuickChange XL II. A cDNA encoding Escherichia coli histidinol dehydrogenase was codon-optimized for Mus musculus and synthesized with a C-terminal 8xHis-Strep-tag for protein purification from mammalian cells (BioBasic Inc, Canada). The synthesized cDNA was ligated into pcDNA3.1(+) using the EcoRI and XhoI restriction sites. The nonsense mutations tag, taa, and tga were introduced using QuickChange XL II. To generate a multiplexed ACE-tRNA expression plasmid, a BbsI "multiple cloning site" was inserted between the EcoRI and HindIII restriction sites. [ka] The directional BbsI recognition sequence is in italics, and the unique 4-base pair overhang for ligation is in bold.) was inserted into pUC57(amp) to generate a new parent Golden Gate pUC57(amp) plasmid. pUC57(amp) was chosen as the parent plasmid because of its relatively small size and lack of a backbone BbsI restriction site and T7 and T3 promoter sequences. Features included in the HTS plasmid are the T7 and T3 promoter sequences flanking the ACE-tRNA cassette, and similar melting temperatures (T m) to give a universal primer binding sequence. PCR primers were generated using the NEB Golden Gate Assembly Tool (https: / / goldengate.neb.com / editor) that anneal to the T7 and T3 flanking sequences, generating unique four-base-pair overhangs after cleavage of the distal BbsI recognition sequence. The end result was the generation of four ACE-tRNA PCR products using universal PCR primers that could be "daisy-chained" through the complementary four-base-pair overhangs and ligated into the puc57 Golden Gate plasmid using a one-pot Golden Gate reaction. All clones were sequence verified. Cell culture, protein expression and Western blot

[0243] HEK293T cells (ATCC, USA) were grown in standard growth medium containing 10% FBS (HiClone, USA), 1% Pen-Strep, and 1% L-Glut (v / v %) in high-glucose DMEM (Gibco, USA) at 37°C and 5% CO2. cDNA was transfected at 75% confluency using Calfectin according to standard protocols (SignaGen Laboratories, USA). After 36 hours, cells were scraped and pelleted at 7,000 g for 8 minutes at 4°C in PBS supplemented with 0.5 μg / mL pepstatin, 2.5 μg / mL aprotinin, 2.5 μg / mL leupeptin, 0.1 mM PMSF, and 0.75 mM benzamidine. For CFTR-expressing cells, cell pellets were vigorously dounced in 100 mM sucrose, 150 mM NaCl, 1 mM DTT, 0.5 μg / mL pepstatin, 2.5 μg / mL aprotinin, 2.5 μg / mL leupeptin, 0.1 mM PMSF, 0.75 mM benzamidine, and 50 mM Tris-HCl pH 7.4, and centrifuged at 100,000 g to separate total membranes from soluble cytoplasmic proteins. The pellets were solubilized in a buffer containing 1% Triton, 250 mM NaCl, 50 mM Tris-HCl pH 7.4, and 0.5 μg / mL pepstatin, 2.5 μg / mL aprotinin, 2.5 μg / mL leupeptin, 0.1 mM PMSF, and 0.75 mM benzamidine. Load equal cell lysates onto a 3-15% separation gradient SDS-page with a 4% stacking gel in the presence of 1% 2-mercaptoethanol and separate at 55 V O / N, adding 0.45 μM LF. The cells were transferred onto PVDF (Bio-Rad, USA). PVDF was immunoblotted with anti-CFTR antibody M3A7 (1:1000; Millipore, USA) in 2% nonfat milk and imaged on a LI-COR Odyssey Imaging System (LI-COR, USA). For HDH-His-Strep-expressing cells, cell pellets were vigorously Dounce homogenized in 100 mM sucrose, 1 mM DTT, 1 mM EDTA, 20 mM Tris-HCl pH 8.0, 0.5 μg / mL pepstatin, 2.5 μg / mL aprotinin, 2.5 μg / mL leupeptin, 0.1 mM PMSF, and 0.75 mM benzamidine. Lysates were centrifuged at 100,000 x g for 30 min at 4 °C. The supernatant (soluble cellular proteins) was separated on a 4–12% Bis-Tris SDS-page acrylamide gel (ThermoFisher, USA) in the presence of 1% 2-mercaptoethanol, transferred to 0.22 μM LF PVDF (Bio-Rad, USA), immunoblotted with anti-Strep antibody (1:5000; iba, Germany) in 2% nonfat milk, and imaged on a LI-COR Odyssey Imaging System (LI-COR, USA). mass spectrometry

[0244] Fragmentation data for purified HDH-His-Strep protein were obtained at the University of Iowa Proteomics Facility. Briefly, HDH-His-Strep protein from the soluble fraction of a high-speed spin was passed through a Strep Trap HP column (GE Healthcare, Sweden) and washed with 5 column volumes of 100 mM sucrose, 1 mM DTT, 1 mM EDTA, 20 mM Tris-HCl pH 8.0, 0.5 μg / mL pepstatin, 2.5 μg / mL aprotinin, 2.5 μg / mL leupeptin, 0.1 mM PMSF, and 0.75 mM benzamidine. Protein was eluted with wash buffer supplemented with 10 mM d-desthiobiotin and concentrated in a 30 kDa cutoff Amicon Ultrafiltration column (Millipore, USA). The concentrated proteins were loaded onto NuPage 4–12% Bis-Tris precast gels (Invitrogen, USA) and separated for 1.5 h at 150 V. The gels were stained using a Pierce mass spectrometry compatible silver staining kit (ThermoFisher Scientific, USA).

[0245] In-gel trypsin digestion. Briefly, the targeted protein bands from SDS-PAGE gels were manually excised and then lysed in 1 mm 3The gel pieces were cut into pieces and washed in 100 mM ammonium bicarbonate:acetonitrile (1:1, v / v) and 25 mM ammonium bicarbonate / acetonitrile (1:1, v / v), respectively, to achieve complete destaining. The gel pieces were further treated with ACN and dried using a speed vac. After drying, the gel pieces were reduced in 50 μL of 10 mM DTT at 56°C for 60 minutes, and then alkylated with 55 mM IAM at room temperature for 30 minutes. To remove excess DTT and IAM, the gel pieces were washed twice with 25 mM ammonium bicarbonate:acetonitrile (1:1, v / v). After drying, the gel pieces were placed on ice in 50 μL of a 10 ng / μL trypsin solution in 25 mM ammonium bicarbonate and incubated on ice for 60 minutes. Digestion was then carried out at 37°C for 16 hours. Peptide extraction was performed twice with 100 μL of 50% acetonitrile / 0.2% formic acid for 0.5 h. The combined extracts were concentrated in a Speed ​​Vac to approximately 15 μL.

[0246] LC-MS / MS. Mass spectrometry data were collected using an Orbitrap Fusion Lumos mass spectrometer (Thermo Fisher Scientific, San Jose, CA) coupled to an Eksigent Ekspert™ nanoLC 425 System (Sciex). A Trap-Elute Jumper Chip (product number: 800-00389) and a coupled 1 / 16" 10-port Valco directed loading, performed by the gradient 1 pump, and final elution (by the gradient 2 pump). The column assembly was designed as two tandem 75 μm × 15 cm columns (ChromXP C18-CL, 3 μm 120A, Eksigent part of AB SCIEX) installed in an ekspert™ cHiPLC system. Approximately 0.5 μg of total digest was loaded for each injection. Peptides were separated in-line in the mass spectrometer using a 120 min gradient consisting of a linear and stationary segment with buffer A being 0.1% formic acid and buffer B being 95% ACN, 0.1% formic acid. The gradient started with a 3 min hold at 4%, followed by the following transition (%B, min): (26, 48), (35, 58), (35, 64), (50, 72), (50, 78), (94, 84), (94, 96), (4, 100), (4, 120).

[0247] Tandem Mass Analysis on a LUMOS Orbitrap. The scan sequence began with a full survey (m / z 350–1500) acquired on an Orbitrap Fusion Lumos mass spectrometer (Thermo) at a resolution of 60,000 in the off-axis Orbitrap segment (MS1). Gradient MS1 scans were acquired every 3 seconds during the 120-minute gradient. The most abundant precursor was selected from ions of two to eight charge states at a threshold of 2.0E5. If an ion had been targeted twice in the previous 30 seconds, it was dynamically excluded for 30 seconds. Selected ions were isolated by a multisegment quadrupole with a mass window at m / z 2 and then sequentially subjected to both CID and HCD activation conditions in the IT and ion routing multipoles, respectively. The AGC target for CID was 4.0E04, 35% collision energy, 0.25 activation Q, and 100 ms maximum fill time. The targeted precursor was also fragmented by higher-energy collision-induced dissociation (HCD) at 40% collision energy and 0.25 activation Q. HCD fragment ions were analyzed using an Orbitrap (AGC 1.2E05, maximum injection time 110 ms, and resolution set to 30,000 at 400 Th). Both MS2 channels were recorded as centroids, and MS1 survey scans were recorded in profile mode.

[0248] Proteomics Search. Initial spectral searches were performed using Sequest HT with Proteome Discoverer version 2.1.1.21 (ThermoFisher Scientific, USA). Spectra were also searched with the Byonic search engine (Protein Metrics) version 2.8.2. The search databases consisted of Uniprot KB for species 9606 (human) downloaded on October 24, 2016, containing 92,645 sequences, and Uniprot KB for taxonomic group 562 (Escherichia coli) downloaded on November 8, 2016, containing 10,079 sequences. For the Byonic search, these two databases were directly concatenated. For both searches, an equal number of decoy entries were generated and simultaneously searched by reversing the original entries in the Target database.

[0249] In vitro cRNA transcription: G542X was transcribed with a 10-fold excess of NheI-HF restriction enzyme (site located 3' of the coding region) (New England Biolabs, USA) for 3 hours at 37°C. UGA , W1282X UGA and WT CFTR pGEMHE (Mense et al., 2006; PMID: 1703051) plasmids were linearized and purified using standard cDNA precipitation methods. All cRNAs were transcribed using the mMessage mMachine T7 Kit (ThermoFisher Scientific, USA). cRNA from the transcription reactions was purified on columns obtained from the RNeasy Mini Kit (Qiagen, Germany). Concentrations were determined by absorbance measurement at 260 nm, and quality was confirmed on a 1% agarose gel (RNase-free). All cRNAs were queued at 1 μg / mL before use, and all results were obtained from more than one cRNA preparation.

[0250] In vitro tRNA transcription. The best-performing Trp and Gly ACE-tRNAs, Trpchr17.trna39 and Glychr19.trna2, were transcribed in vitro using the CellScript T7-Scribe Standard RNA IVT Kit (CELLSCRIPT, USA). An equimolar concentration of T7 oligo (5'-taatacgactcactata-3') was annealed to ACE-tRNA PAGE-purified Ultramer (20 μg; Integrated DNA Technologies, Coralville, IA), which encodes the ACE-tRNA and is preceded by a T7 promoter (italics). Importantly, the three terminal nucleotides containing CCA were included (bold). [ka]

[0251] The total reaction volume was adjusted to 100 μL, and the following amounts of kit reagents were added: 10 μL of 10X T7-Scribe transcription buffer, 7.5 μL of each nucleotide (100 mM stock solution), 10 μL of 100 mM dithiothreitol, 2.5 μL of ScriptGuard RNase inhibitor, and 10 μL of T7-Scribe enzyme solution. After incubating the reaction at 37°C for 4–5 h, the DNA template was digested with 5 μL of DNase (1 U / μL) provided with the kit for 30–60 min. ACE-tRNA was extracted from the reaction using acidic phenol / chloroform (5:1, pH 4.5) and precipitated with ethanol. The precipitated ACE-tRNA was pelleted, washed, dried, resuspended in 100 μL of DEPC-treated water, and further purified using a Chroma Spin-30 column (Clontech, USA). This procedure yielded approximately 100 μL of approximately 5 μg / μL ACE-tRNA. In 20 μg aliquots, the ACE-tRNA was again pelleted, washed, lyophilized, and stored at −80°C until use. All results were obtained from more than one ACE-tRNA preparation.

[0252] Preparation of ribosome footprint profiling libraries. HEK293 cells transiently transfected with ACE-tRNA and control plasmid (puc57GG) were grown in standard growth medium in the absence of Pen-Strep for 48 h as described with minor modifications. 55 Briefly, cells were rapidly cooled by adding ice-cold PBS and lysed in lysis buffer (20 mM Tris-HCl / pH 7.4, 150 mM NaCl, 5 mM MgCl, 1 mM DTT, 1% (v / v) Triton X-100, and 25 μg ml -1 The cells were lysed in Turbo DNase I on ice for 10 minutes, triturated by passing through a 26G needle 10 times, and then centrifuged at 16,000g for 10 minutes at 4°C. Incubate at room temperature for 45 min with gentle agitation before adding RNase inhibitor (Thermo Scientific). 260 The lysates were digested with 100 U of RNase I (Ambion, USA) per lysate, and then purified with modified polysome buffer (20 mM Tris-HCl / pH 7.4, 150 mM NaCl, 8.5 mM MgCl, 0.5 mM DTT, 20 U ml -1Ribosome-protected mRNA fragments were isolated by loading the lysate onto a 1 M sucrose cushion prepared in RiboLock RNase inhibitor (RIBOLock) and centrifuging at 70,000 rpm for 2 hours at 4°C in a Beckmen TLA-110 rotor. The ribosomal pellet containing mRNA footprints was extracted using TRIzol and separated on a denaturing 12% polyacrylamide gel containing 8 M urea. RNA fragments ranging in size from 26 to 34 nt were manually excised from the gel stained with SYBR Gold (Invitrogen) and isolated to generate a library of ribosome-protected fragments. Contaminating rRNA fragments were depleted using the Ribo-Zero kit (Illumina). 3' oligonucleotide adapter ligation, reverse transcription, circularization, and a second rRNA depletion using biotinylated rRNA depletion oligos (Table 9) were performed as described. 55 During PCR amplification, libraries were barcoded using index primers for each sample. Barcoded libraries were then pooled with 3% PhiX (Illumina) and sequenced in an Illumina NextSeq500 according to the manufacturer's protocol, typically generating 18-27 million reads per sample.

[0253] Ribosome footprint data analysis. HISAT 2.0.3 was used to remove rRNA contaminant reads. 56Using the RIMA tool, data files for each barcoded sample (minus the 3' adapter sequence) were first mapped to four rRNA sequences (RNA5S1; NR_023363, RNA5-8SN5; NR_003285, RNA18SN5; NR_003286, and RNA28SN5; NR_003287). The remaining reads were aligned to the sense strand of the longest transcript variant of each human gene (UCSC RefSeq GRCh38). Transcripts with a 3' UTR length of at least 75 nt (18,101 sequences) were used for sequence analysis. A maximum of two mismatches at the 5' end of the reads were allowed. All multiple-mapped reads were discarded. Fragment reads between 26 and 34 nt in length were defined as ribosome footprints and used for analysis. The 5'-terminal nucleotides from each footprint were annotated and mapped to each transcript. The position of the ribosomal A site occupying the 16th to 18th nucleotides of each footprint is 57,58, was used to infer ribosome positioning on each transcript. The RPKM (footprint reads per kilobase of transcript per total million-mapped reads) on each individual transcript (18,101 sequences) was calculated. Only transcripts with a minimum threshold of 5 RPKM for coding sequences and 0.5 RPKM for 3'UTR regions (254 transcripts for G418 and 495-748 transcripts for ACE-tRNA) in two replicate libraries were included for analysis in Figure 24A. For the transcriptome-wide meta-gene plot in Figure 2B, the footprint count for each nucleotide within the region -35 to +65 nt relative to the first nucleotide of the stop codon was normalized to the total number of million mapped reads. All transcripts (18,101 sequences) were used for mapping, and over 5,200 transcripts were mapped to at least one footprint in the region of interest. Next, we investigated the in vivo biological activity of the ACE-tRNAs Glychr19.trna2 and Trpchr17.trna39 in rescuing PTC. Sequencing data were analyzed using the Galaxy platform. 59 Graphs were generated using Prism 7 (GraphPad Software).

[0254] Generation of a stable NLuc reporter cell line. Using Gibson Assembly (New England Biolabs, USA), a cDNA encoding pNLuc with a tag, taa, and tga stop codon at amino acid position 160 was inserted into the AgeI and NotI restriction sites within the multiple cloning site of the retroviral vector pQCXIP (Clontech, USA). Calfectin (SignaGen) was used. PhoenixGP cells (PMID: 7690960) were co-transfected with pNLuc-STOP-pQCXIP and cmv-VSV-G (VSV-G envelope pseudotyping) plasmids using a 5% CO2 incubator (Millipore Laboratories, USA) and placed in a 33°C CO2-regulated (5%) cell incubator for 48 hours. The medium (20 ml) containing the retroviral particles was cooled to 4°C, centrifuged at 10,000 g to remove cellular debris, and filtered through a 0.45 μm MCE membrane syringe filter (Millipore, USA) onto two 10 cm dishes seeded with low-passage HEK293 cells at 30% confluency. The cell culture dishes were sealed with Parafilm, centrifuged at 3,500 g for 90 minutes at 24°C, and placed in a 37°C CO2-regulated (5%) cell culture incubator. Cells were selected with puromycin (1 μg / mL) for 24 hours until complete cell death was observed in the control dish (uninfected). Cells were monodispersed into 96-well plates using FACS, followed by monodispersion of clonal populations. Puromycin was not used to maintain selected clones during experimental procedures. Standard DMEM medium (DMEM-Dulbecco's Modified Eagle's Medium-High Glucose with L-Glutamine, supplemented with 10% FBS, 1% Pen / Step, and 2 mM L-Glutamine; Thermofisher, USA) was used in all studies.

[0255] RNA transfection. 1.4 × 10 HEK293 cells stably expressing pNLuc-UGA were transfected into 96-well cell culture-treated plates in Dulbecco's modified essential medium (DMEM) (Thermofisher, USA) supplemented with 10% FBS, 1% Pen / Step, and 2 mM L-glutamine. 4Cells were seeded at 1000 x g / well. After 16–24 h, cells were transfected with ACE-tRNA using Lipofectamine 2000 (ThermoFisher Scientific, USA). Briefly, 3 μg of ACE-tRNA was suspended in 150 μL of OptiMEM, and 12 μL of Lipofectamine 2000 was mixed with 150 μL of OptiMEM. The volumes were combined, mixed thoroughly, and incubated at room temperature for 10 min. 75 μL of transfection complex was added to each well. PTC suppression by ACE-tRNA transcripts was quantified as described above.

[0256] Expression in Xenopus laevis oocytes. Xenopus oocytes (stages V and VI) were purchased from Ecocyte (Austin, TX). Prior to injection, each ACE-tRNA pellet was resuspended in 2 μL of ddH2O, and the debris was pelleted at 21,000 × g for 25 min at 4°C. To measure the dose response of ACE-tRNA on CFTR channel rescue, serial dilutions of the ACE-tRNA aliquots were made volume-balanced with ddH2O (200, 100, 50, 25, 12.5, 6.25, 3.125, and 1.562 ng / oocyte). In all experiments, 25 ng of CFTR cRNA was injected per oocyte, and the injection volume was 50 nL. For background control experiments without ACE-tRNA, ddH2O was used. After injection, oocytes were kept in OR-3 (50% Leibovitz's medium, 250 mg / L gentamicin, 1 mM L-glutamine, 10 mM HEPES (pH 7.6)) at 18°C ​​for 36 hours.

[0257] Two-electrode voltage clamp (TEVC) recording. -Currents were recorded in ND96 bath solution containing (in mM): 96 NaCl, 2 KCl, 1 MgCl2, and 5 HEPES (pH 7.5) in the presence of the maximum CFTR activation cocktail, forskolin (10 μM; an adenylate cyclase activator) and 3-isobutyl-1-methylxanthine (1 mM; a phosphodiesterase inhibitor). Glass microelectrodes backfilled with 3 M KCl had resistances of 0.5–2 MΩ. Data were filtered at 1 kHz and digitized at 10 kHz using a Digidata 1322A amplifier regulated by pClamp 9.2 software (Molecular Devices, USA). CFTR currents were elicited using 5 mV voltage steps from −60 to +35 mV using an OC-725C voltage-clamp amplifier (Warner Instruments, USA). CFTR Cl - Oocytes in which the current reversed to a positive value of -20 mV were discarded. Clampfit 9.2 software was used for current analysis. All values ​​are expressed as mean ± SEM.

[0258] Animals and in vivo imaging. Nu / J mice were purchased from Jackson Labs. Animal experiments were approved by the Wistar Institute Institutional Animal Care and Use Committee (Protocol No. 112762). Mice were treated by electroporation after injection of 10–20 μg of DNA resuspended in 30 μL of water into the tibialis anterior muscle. Three mice were injected with 10 μg of pNano-TGA + 10 μg of ArgACE-tRNA (right tibialis anterior muscle) or 10 μg of pNano-TGA + 10 μg of empty pUC57 (left tibialis anterior muscle). As controls, three other mice were injected with 10 μg of pNano-WT (right tibialis anterior muscle; positive control) or water (left tibialis anterior muscle; negative control). DNA was formulated with 333 IU / mL of hyaluronidase (Sigma). One minute after DNA injection, electroporation was performed using a CELLECTRA 3P device (Inovio Pharmaceuticals). Nanoluciferase activity was imaged in mice by intraperitoneally injecting 100 μL of furimazine (40-fold dilution of Nano-Glo substrate). Five minutes after injection, mice were imaged on an IVIS Spectrum (Perkin Elmer). Imaging was performed using an open filter, and images were acquired in 40 seconds. Images were captured using Living Image Analysis was performed using software (Perkin Elmer).

[0259] Table 9. Library of annotated sequences of tRNAs screened for PTC suppression activity. The italicized letters for each sequence indicate the site of anticodon editing. Bold letters indicate tRNAs with suppression activity 5-fold above background. Note that in the tRNAs, thymidine has been replaced with uracil. [Table 9-1] [Table 9-2] [Table 9-3] Table 9-4 Table 9-5 Table 9-6 Table 9-7 Table 9-8 Table 9-9 Table 9-10 Table 9-11 Table 9-12 Table 9-13 Table 9-14 Table 9-15 Table 9-16 Table 9-17 Table 9-18 Table 9-19 Table 9-20 [Table 9-21] [Table 9-22] [Table 9-23] [Table 9-24] [Table 9-25] [Table 9-26] [Table 9-27]

[0260] [Example 5] References [ka] [ka] [ka] [ka] [ka]

[0261] While the above specification and examples fully disclose and enable the invention, they are not intended to limit the scope of the invention, which is defined by the claims appended hereto.

[0262] All publications, patents, and patent applications are incorporated herein by reference. In the foregoing specification, the invention has been described with reference to certain specific embodiments thereof, and numerous details have been set forth for purposes of illustration, but it will be apparent to those skilled in the art that the invention is susceptible to further embodiments and that some of the details described herein may be varied considerably without departing from the underlying principles of the invention.

[0263] The use of the terms "a," "an," "the," and similar referents in describing the present invention should be construed to encompass both the singular and the plural, unless otherwise stated herein or clearly contradicted by context. The terms "comprising," "having," "including," and "containing" should be construed as open-ended terms (i.e., meaning "including, but not limited to"), unless otherwise indicated. Unless stated otherwise herein, the recitation of ranges of values ​​herein is merely intended to serve as a shorthand method of referring individually to each separate value falling within the range, and each separate value is incorporated herein as if individually set forth herein. Unless otherwise stated herein or clearly contradicted by context, all methods described herein can be performed in any suitable order. The use of any and all examples or exemplary phrases (e.g., "such as") provided herein is intended merely to better clarify the invention and does not pose a limitation on the scope of the invention unless otherwise claimed. No phrase in the specification should be construed as indicating any non-claimed element as essential to the invention.

[0264] Embodiments of the present invention, including the best mode known to the inventors for carrying out the invention, are described herein. Variations of these embodiments may become apparent to those skilled in the art upon reading the foregoing description. The inventors anticipate that those skilled in the art will employ such variations as appropriate, and the inventors intend that the invention may be practiced otherwise than as specifically described herein. Accordingly, this invention includes all modifications and equivalents of the subject matter recited in the claims appended hereto as permitted by applicable law. Moreover, any combination of the above-described elements in all possible variations thereof is encompassed by the present invention unless otherwise indicated herein or clearly contradicted by context. The present invention provides, for example, the following items. (Item 1) A modified transfer RNA (tRNA) comprising a T arm, a D arm, an anticodon arm, and an acceptor arm, wherein the T arm comprises a T stem having a nucleotide that interacts with elongation factor 1-α1 (EF1α). (Item 2) A modified transfer RNA (tRNA) consisting of any one of SEQ ID NOs: 1 to 538, in which thymidine is substituted with uracil. (Item 3) 3. The modified transfer RNA (tRNA) of item 2, wherein the tRNA consists of SEQ ID NO: 4, and thymidine is substituted with uracil. (Item 4) 3. The modified transfer RNA (tRNA) of item 2, wherein the tRNA consists of SEQ ID NO: 16, and thymidine is substituted with uracil. (Item 5) 3. The modified transfer RNA (tRNA) of item 2, wherein the tRNA consists of SEQ ID NO: 24, and thymidine is substituted with uracil. (Item 6) 3. The modified transfer RNA (tRNA) of item 2, wherein the tRNA consists of SEQ ID NO: 33, and thymidine is substituted with uracil. (Item 7) 3. The modified transfer RNA (tRNA) of item 2, wherein the tRNA consists of SEQ ID NO: 38, and thymidine is substituted with uracil. (Item 8) 3. The modified transfer RNA (tRNA) of item 2, wherein the tRNA consists of SEQ ID NO: 44, and thymidine is substituted with uracil. (Item 9) 3. The modified transfer RNA (tRNA) of item 2, wherein the tRNA consists of SEQ ID NO: 48, and thymidine is substituted with uracil. (Item 10) 3. The modified transfer RNA (tRNA) of item 2, wherein the tRNA consists of SEQ ID NO: 53, and thymidine is substituted with uracil. (Item 11) SEQ ID NOs: 56-60, 62-66, 84-86, 90-111, 113, 128-143, 147-149, 153-156, 161-174, 176, 178, 181, 184-186, 192, 196-197, 199-201, 205, 213-240, 246, 255-256, 258-285, 299, 305-312, 314, 318-332, 335-344, 346, 350-354, 357-360, 362, 365-370, 372-383, 388-390 A modified transfer RNA (tRNA) consisting of any one of 90, 392, 394-401, 403-407, 414-416, 418, 422, 425, 428-433, 437, 444-445, 452, 455, 459-463, 470, 472-474, 476, 487-492, 525, 530-539, 545-550, 553-555, 561-563, and 567-579, wherein thymidine is replaced with uracil. (Item 12) A modified transfer RNA (tRNA) comprising a T arm, a D arm, an anticodon arm, and an acceptor arm, (a) the anticodon arm comprises a trinucleotide anticodon, the anticodon is 5'-UCA-3' and recognizes a TGA stop codon, and the acceptor arm is operably linked to arginine, tryptophan, or glycine; (b) the anticodon arm comprises a trinucleotide anticodon, the anticodon is 5'-UUA-3' and recognizes a TAA stop codon, and the acceptor arm is operably linked to glutamine or glutamic acid; or (c) the anticodon arm comprises a trinucleotide anticodon, the anticodon is 5'-CUA-3' and recognizes a TAG stop codon, and the acceptor arm is operably linked to tryptophan, glutamic acid, or glutamine; Modified transfer RNA (tRNA). (Item 13) 13. The modified tRNA of item 12, wherein the T arm comprises rational nucleotide substitutions that enhance or modulate interaction with elongation factor 1-α1 (EF1α). (Item 14) 14. An oligonucleotide sequence encoding the modified tRNA according to any one of items 1 to 13, wherein the oligonucleotide has a total length of less than 150 nucleotides. (Item 15) 14. An oligonucleotide comprising a first oligonucleotide sequence and a second oligonucleotide sequence, wherein the first and second oligonucleotide sequences independently encode the modified tRNA according to any one of Items 1 to 13, the first and second oligonucleotides independently have a total length of less than 150 nucleotides, and the two sequences are in tandem. (Item 16) 16. The oligonucleotide according to item 15, wherein the oligonucleotide is DNA. (Item 17) An expression cassette comprising a promoter and a nucleic acid encoding the modified tRNA according to any one of Items 1 to 13 or the oligonucleotide sequence according to any one of Items 14 to 16. (Item 18) A vector comprising the oligonucleotide according to any one of Items 14 to 16 or the expression cassette according to Item 17. (Item 19) Item 19. The vector according to item 18, wherein the vector is a viral vector or a plasmid vector. (Item 20) A modified tRNA according to any one of Items 1 to 13, an oligonucleotide according to any one of Items 14 to 16, or a vector according to Item 18 or 19; a pharmaceutically acceptable carrier; and A composition comprising: (Item 21) 21. The composition according to item 20, wherein the carrier is a liposome. (Item 22) 20. A cell comprising the vector of item 18 or 19. (Item 23) 22. A method for treating a stop codon-associated genetic disease, comprising administering to a patient in need of treatment for a stop codon-associated genetic disease the composition of item 20 or 21. (Item 24) 24. The method of item 23, wherein the genetic disease associated with a premature stop codon is cystic fibrosis, muscular dystrophy, β-thalassemia, or Liddle's syndrome. (Item 25) 22. A method for restoring translation of a nucleotide sequence containing a nonsense mutation in a cell, the method comprising introducing into the cell the composition of item 20 or 21, wherein the modified tRNA restores translation of the nucleotide sequence containing the nonsense mutation.

Claims

1. A modified transfer RNA (tRNA) comprising a T arm, a D arm, an anticodon arm, and an acceptor arm, the anticodon arm comprises a trinucleotide anticodon, the anticodon is 5'-CUA-3', and recognizes a TAG stop codon; the acceptor arm is operably linked to a glutamine; and the modified tRNA comprises a nucleic acid sequence selected from SEQ ID NOs: 139, 128-138, and 140-143, wherein thymine is substituted with uracil; Modified tRNA.

2. The modified tRNA described in claim 1, wherein the modified tRNA comprises a nucleic acid sequence of SEQ ID NO: 139, in which thymine is replaced with uracil.

3. The modified tRNA described in claim 1, wherein the modified tRNA comprises a nucleic acid sequence of SEQ ID NO: 141, in which thymine is replaced with uracil.

4. The modified tRNA described in claim 1, wherein the modified tRNA comprises a nucleic acid sequence of SEQ ID NO: 130, in which thymine is replaced with uracil.

5. The modified tRNA described in claim 1, wherein the modified tRNA comprises a nucleic acid sequence of SEQ ID NO: 134, in which thymine is replaced with uracil.

6. The modified tRNA described in claim 1, wherein the modified tRNA comprises a nucleic acid sequence of SEQ ID NO: 140, in which thymine is replaced with uracil.

7. An oligonucleotide encoding a modified tRNA described in any one of claims 1 to 6.

8. The oligonucleotide described in claim 7, wherein the oligonucleotide has a total length of less than 150 nucleotides.

9. An oligonucleotide comprising a first oligonucleotide sequence and a second oligonucleotide sequence, wherein the first and second oligonucleotide sequences independently encode the modified tRNA described in claim 1, the first and second oligonucleotides independently have a total length of less than 150 nucleotides, and the two sequences are in tandem.

10. The oligonucleotide described in claim 9, wherein the oligonucleotide is DNA.

11. An expression cassette comprising a promoter and a nucleic acid encoding a modified tRNA described in any one of claims 1 to 6 or an oligonucleotide described in any one of claims 7 to 10.

12. A vector comprising the oligonucleotide described in any one of claims 7 to 10 or the expression cassette described in claim 11.

13. The vector described in claim 12, wherein the vector is a viral vector or a plasmid vector.

14. A modified tRNA according to any one of claims 1 to 6, an oligonucleotide according to any one of claims 7 to 10, or a vector according to claim 12 or 13, a pharmaceutically acceptable carrier; and A composition comprising:

15. The composition of claim 14, wherein the carrier is a liposome.

16. A cell containing the vector described in claim 12 or 13.

17. A composition described in claim 14 or 15 for treating a genetic disease associated with a premature stop codon.

18. The composition described in claim 17, wherein the genetic disease associated with a premature stop codon is cystic fibrosis, muscular dystrophy, beta-thalassemia or Liddle's syndrome.

19. The composition described in claim 18, wherein the genetic disease associated with a premature stop codon is Duchenne muscular dystrophy.

20. A composition described in claim 14 or 15 for restoring translation of a nucleotide sequence containing a nonsense mutation in a cell, characterized in that the composition is introduced into the cell, and the modified tRNA restores translation of the nucleotide sequence containing a nonsense mutation.

Citation Information

Patent Citations

  • Truncated protein for reading through premature termination codons diseases by using inhibitory transfer ribonucleic acids (tRNAs)

    CN107177592A

  • Human suppressor trna oligonucleotides and methods of using same

    JP2002508959A