Isolated nucleic acid molecules and uses thereof
Isolated nucleic acid molecules with liver-specific regulatory elements and polyadenylation signals enhance gene expression in liver therapy, addressing low expression levels and improving treatment efficacy for conditions like hemophilia A.
Patent Information
- Application Number
- JP2024526801
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-11-02
- Filing Date
- 2022-11-01
- Publication Date
- 2026-01-15
- Estimated Expiration
- 2042-11-01
AI Technical Summary
Current liver gene therapy methods face challenges with low gene expression levels due to weak transcriptional activity, necessitating the development of highly efficient and stable expression regulatory sequences for therapeutic genes.
The use of isolated nucleic acid molecules comprising liver-specific expression regulatory elements, such as promoters derived from canine serpinA1 and Xenopus laevis albumin genes, and polyadenylation signal sequences like Common vole polyomavirus KS13, to enhance gene expression levels by at least 50% compared to existing sequences.
These elements significantly increase the expression and activity of therapeutic genes, such as FVIII, by at least 20-99% compared to standard sequences, facilitating effective treatment of conditions like hemophilia A.
Smart Images

Figure 0007799345000001 
Figure 0007799345000002 
Figure 0007799345000003
Abstract
Description
[Technical Field]
[0001] This application relates to the field of biopharmaceuticals, and in particular to isolated nucleic acid molecules and uses thereof. [Background technology]
[0002] With the development of molecular biology, gene therapy has been used experimentally and clinically to treat a range of disorders and diseases, including those associated with impaired hepatic protein synthesis. The liver's ability to perform post-translational protein modifications makes it an important target organ for gene therapy of inherited hematological disorders. Liver gene therapy allows the transfer of functional genes into individuals with genetic defects and enables efficient long-term gene expression in the body. However, a major limitation of current liver gene therapy is the low level of gene expression in the liver, which is partly due to weak transcriptional activity. Therefore, to achieve high in vivo gene expression, it is necessary to construct highly efficient expression regulatory sequences in the liver.
[0003] To promote the expression of a gene of interest in a host cell, the gene of interest is typically contained in a construct that also contains various regulatory elements necessary for the expression of the gene of interest. These regulatory elements include, for example, promoters, enhancers, initiation signals, termination signals, and other regulatory elements. Ideal cooperation between these elements can promote stable expression of the gene of interest in a host cell and achieve an expression level sufficient to realize the function or activity of the gene of interest. The promoter and other regulatory elements determine cell type specificity, transduction efficiency, and expression level and duration. Highly efficient and stable expression of a gene of interest in a host cell can be difficult to achieve. Therefore, there is an urgent need to develop nucleic acid molecules or vectors that are useful for highly efficient and stable expression of a gene of interest in a host cell. [Prior art documents] [Non-patent literature]
[0004] [Non-Patent Document 1] Sambrook et al. (1989) [Non-patent document 2] Altschul et al., J. Mol. Biol. 215:403 (1990) Summary of the Invention [Means for solving the problem]
[0005] The present application provides an isolated nucleic acid molecule that may comprise a liver-specific expression regulatory element, a gene of interest (e.g., a polynucleotide encoding a B-domain-deleted FVIII mutant), and a polyadenylation signal sequence (e.g., Ks13 poly A), wherein the gene of interest has a high expression level and / or activity. The liver-specific expression regulatory element of the present application can increase the expression level and / or activity of the gene of interest compared to an expression regulatory element using the nucleotide sequence set forth in SEQ ID NO: 10. The polyadenylation signal sequence of the present application can increase the expression level and / or activity of the gene of interest compared to a polyadenylation signal sequence using the nucleotide sequence set forth in SEQ ID NO: 8.
[0006] In one aspect, the present application provides an isolated nucleic acid molecule comprising, in 5' to 3' order, a liver-specific expression regulatory element and a gene of interest operably linked to the liver-specific expression regulatory element, wherein the liver-specific expression regulatory element increases the expression level and / or activity of the gene of interest by at least 50% compared to an expression regulatory element using the base sequence set forth in SEQ ID NO: 10.
[0007] In some embodiments, the liver-specific expression regulatory element comprises a) a promoter derived from the canine serpinA1 gene or a functional fragment thereof, and b) a promoter derived from the Xenopus laevis albumin gene or a functional fragment thereof.
[0008] In some embodiments, the liver-specific expression regulatory element comprises, in the 5' to 3' direction, a promoter derived from the canine serpinA1 gene or a functional fragment thereof, and a promoter derived from the Xenopus albumin gene or a functional fragment thereof.
[0009] In some embodiments, the liver-specific expression regulatory element comprises the nucleotide sequence shown in SEQ ID NO:1.
[0010] In some embodiments, the isolated nucleic acid molecule comprises a polyadenylation signal sequence located at the 3' end of the gene of interest.
[0011] Compared to prior art polyadenylation signal sequences, the polyadenylation signal can increase the expression level and / or activity of the gene of interest by at least 20% (e.g., at least 25%, at least 30%, at least 35%, at least 40%, at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 90%, at least 99% or more). Compared to BGH poly A and / or sv40 poly A, the polyadenylation signal can increase the expression level and / or activity of the gene of interest by at least 20%.
[0012] In some embodiments, the polyadenylation signal is a polyadenylation signal from Common vole polyomavirus.
[0013] In some embodiments, the polyadenylation signal is the polyadenylation signal from Common vole polyomavirus isolate KS13.
[0014] In some embodiments, the polyadenylation signal comprises the base sequence set forth in SEQ ID NO:3.
[0015] In some embodiments, the gene of interest encodes a protein of interest, which comprises a reporter protein, a therapeutic protein, and / or a prophylactic protein.
[0016] In some embodiments, the gene of interest encodes a B-domain deleted Factor VIII (FVIII) mutant. In some embodiments, the gene of interest encodes GFP. In some embodiments, the gene of interest encodes luciferase.
[0017] In some embodiments, the FVIII variant comprises the amino acid sequence set forth in SEQ ID NO:7.
[0018] In some embodiments, the gene of interest comprises the nucleotide sequence shown in SEQ ID NO: 2 or 6.
[0019] In some embodiments, the isolated nucleic acid molecule comprises, in 5' to 3' order, the liver-specific expression regulatory element, the gene of interest, and the polyadenylation signal sequence.
[0020] In some embodiments, the isolated nucleic acid molecule further comprises an AAV inverted terminal repeat (ITR) located at the 5' end of the liver-specific expression control element and at the 3' end of the polyadenylation signal sequence.
[0021] In some embodiments, the AAV ITRs are derived from an AV serotype selected from the group consisting of AAV5 and AAV2.
[0022] In some embodiments, the AAV ITR comprises the nucleotide sequence shown in any one of SEQ ID NOs: 4 to 5.
[0023] In some embodiments, the isolated nucleic acid molecule comprises the base sequence set forth in SEQ ID NO:9.
[0024] In another aspect, the present application provides a vector comprising the isolated nucleic acid molecule.
[0025] In some embodiments, the vector is a viral vector or a polynucleotide vector.
[0026] In some embodiments, the vector is a plasmid, cosmid, or transposon.
[0027] In some embodiments, the vector is a viral vector, including an AAV vector.
[0028] In some embodiments, the AAV vector is an AAV8 vector.
[0029] In another aspect, the present application provides a host cell comprising the isolated nucleic acid molecule and / or the vector.
[0030] In another aspect, the present application provides a diagnostic or pharmaceutical composition comprising the isolated nucleic acid molecule, the vector, and / or the host cell.
[0031] In another aspect, the present application provides a method for expressing a gene of interest, comprising introducing the isolated nucleic acid molecule or the vector into a host cell and expressing the gene of interest in the host cell.
[0032] In another aspect, the present application provides a kit comprising the isolated nucleic acid molecule, the vector and / or the host cell.
[0033] In another aspect, the present application provides a method for delivering the isolated nucleic acid molecule into a mammal or mammalian cell, comprising administering the isolated nucleic acid molecule or the vector to a mammal or mammalian cell, or contacting a mammal or mammalian cell with the isolated nucleic acid molecule or the vector.
[0034] In another aspect, the present application provides use of the isolated nucleic acid molecule, the vector and / or the host cell in the preparation of a medicament for treating, alleviating and / or preventing a disease or disorder associated with factor FVIII.
[0035] In some embodiments, the disease or disorder comprises hemophilia A, thrombocytopenia and / or a blood clotting disorder.
[0036] In another aspect, the present application provides a method for treating, alleviating and / or preventing a disease or disorder associated with factor FVIII, comprising administering to a subject in need thereof said isolated nucleic acid molecule, said vector and / or said host cell.
[0037] In some embodiments, the disease or disorder comprises hemophilia A, thrombocytopenia and / or a blood clotting disorder.
[0038] In another aspect, the present application provides a use of said isolated nucleic acid molecule, said vector and / or said host cell for treating, alleviating and / or preventing a disease or disorder associated with factor FVIII.
[0039] In some embodiments, the disease or disorder comprises hemophilia A, thrombocytopenia and / or a blood clotting disorder.
[0040] Those skilled in the art can readily understand other aspects and advantages of the present application from the following detailed description. In the following detailed description, only exemplary embodiments of the present application are shown and described. As those skilled in the art will appreciate, the contents of the present application allow those skilled in the art to make changes to the specific embodiments disclosed without departing from the spirit and scope of the invention of the present application. Furthermore, the accompanying drawings and the description in the present application should be considered merely illustrative and not restrictive.
[0041] Specific features of the present invention are set forth in the appended claims. A further understanding of the features and advantages of the present invention can be obtained by reference to the exemplary embodiments described in detail below and the drawings, which are briefly described below. [Brief explanation of the drawings]
[0042] [Figure 1] FIG. 1 shows that the isolated nucleic acid molecules of the present application can restore FVIII expression in hemophilia A mice. [Figure 2] FIG. 1 shows the expression activity of the target gene FVIII under different regulatory elements (GT001: specific expression vector group of the present application, D2: expression vector group after polyA substitution, D1: expression vector group after promoter substitution, blank control: FVIII knockout group, and wild-type control: wild mouse group). [Figure 3] FIG. 1 shows the expression activity of the expression nucleic acid molecules of the present invention for expressing any gene of interest (wild-type control represents the wild-type mouse group, blank control represents the FVIII knockout group, D1-F9 represents the promoter-substituted expression vector used for FIX expression, and GT001-F9 represents the specific expression vector group of the present invention used for FIX expression). DETAILED DESCRIPTION OF THE INVENTION
[0043] Hereinafter, embodiments of the present invention will be described with reference to specific examples, and those skilled in the art will easily understand the present invention and other advantages and effects from the contents disclosed in this specification.
[0044] (Term definition) As used herein, the term "isolated" means that a biological component (such as a nucleic acid molecule, protein, virus, or cell) has been purified so that it is substantially free from other cellular components (e.g., other chromosomal components and extrachromosomal DNA and RNA, proteins, and cells) in the environment in which it naturally occurs. Isolated nucleic acid molecules and proteins include nucleic acid molecules and proteins purified by standard purification methods. The term also encompasses nucleic acid molecules and proteins prepared by recombinant expression in a host cell as well as chemically synthesized nucleic acid molecules and proteins.
[0045] As used herein, the term "canine serpinA1 gene" generally refers to a gene encoding α1-antitrypsin. In some cases, the dog may be a dog with the Latin name Canis lupus familiaris. In other cases, the "canine serpinA1 gene" may comprise the nucleotide sequence at positions 63,388,498 to 63,400,377 of chromosome 8 (see NCBI Accession No. NC_006590.3 for the sequence) or a variant thereof. A promoter derived from the "canine serpinA1 gene" may comprise the nucleotide sequence at positions 63,398,647 to 63,398,492 of the downstream strand of chromosome 8 or a variant thereof.
[0046] In the present application, the term "Xenopus albumin gene" is generally meant to include the nucleic acid sequence shown in GenBank Accession No. Z26825.1. The promoter may include the 1540th to 1605th bases of the above sequence.
[0047] As used herein, the term "codon" refers to an oligonucleotide consisting of three nucleotides that encodes a given amino acid. Due to the degeneracy of the genetic code, some amino acids are encoded by multiple codons. The relative usage of these different codons that encode the same amino acid varies in individual host cells. Thus, a particular amino acid can be encoded by different sets of codons. Similarly, the amino acid sequence of a polypeptide can also be encoded by different nucleic acids. Thus, a particular amino acid can be encoded by different sets of codons, each of which has a usage frequency in a given host cell. As used herein, the term "codon optimization" refers to the replacement of one, at least one, or more codons in a nucleic acid encoding a polypeptide with a codon that has a different relative usage frequency in the corresponding cell. As used herein, the term "codon-optimized polynucleotide" refers to a nucleic acid encoding a polypeptide that has been modified to have improved expression in a cell by replacing one, at least one, or more codons in a parent nucleic acid encoding a polypeptide with a codon that has a different relative usage frequency in the cell and encodes the same amino acid residue.
[0048] In this application, the terms "FVIII" and "factor FVIII" generally refer to blood clotting factor VIII, a protein required for effective blood clotting and capable of performing a cofactor function in clotting. A blood FVIII concentration of about 100 ng / ml is considered to be within the normal range. FVIII deficiency is associated with hemophilia A, which causes severe disease when a subject has less than about 1 ng of FVIII per milliliter of blood.
[0049] In this application, the term "FVIII mutant" generally refers to a protein that has undergone specific modifications based on wild-type FVIII, including deletion of the B domain, i.e., a FVIII mutant refers to a FVIII protein in which the B domain has been deleted.
[0050] As used herein, the term "promoter" generally refers to a nucleic acid sequence necessary to drive transcription of a downstream (3' end) or upstream (5' end) nucleic acid sequence. Promoters are usually located near the gene they transcrib. Promoters may also contain terminal enhancer or repressor elements, which may be located as far as several thousand base pairs from the start site of transcription.
[0051] As used herein, the term "functional fragment" refers to a fragment of a polypeptide or polynucleotide that retains the same activity or ability as a larger counterpart (e.g., a promoter). The activity level of a functional fragment may be the same as, less than, or greater than the activity level of the larger counterpart. For example, a functional fragment of a promoter may be composed of fewer polynucleotides than the promoter, yet still retain the ability to promote transcription.
[0052] As used herein, the term "gene of interest" generally refers to an exogenous DNA or cDNA contained in a nucleic acid molecule, vector, host cell, or kit, capable of encoding a gene product. The gene product may be a polypeptide, protein, or polynucleotide (e.g., antisense DNA, miRNA, siRNA, shRNA) that has a function or activity.
[0053] In this application, the term "reporter protein" generally refers to a protein that provides an analytically distinguishable signal through biochemical properties, thereby enabling detection. Commonly used reporter proteins may be enzymes, fluorophores, chemiluminescent proteins, electrochemiluminescent proteins, etc.
[0054] As used herein, the term "therapeutic protein" generally refers to a protein that can be used to treat, prevent, or alleviate a disease, condition, or disorder.
[0055] As used herein, the term "prophylactic protein" refers to a protein that can be used to prevent a condition or disease, generally before any symptoms of the condition or disease are detected.
[0056] As used herein, the term "operably linked" generally means that a first nucleic acid sequence is operably linked to a second nucleic acid sequence when the two sequences are in a functional relationship. For example, a promoter is operably linked to a coding sequence if it affects the transcription or expression of the coding sequence.
[0057] As used herein, the terms "polyadenylation signal sequence" and "polyA signal sequence" generally refer to a nucleic acid sequence for inducing cleavage and polyadenylation of a primary transcript of a specific nucleic acid sequence segment. The polyadenylation signal sequence may be selected from polyadenylation signal sequences derived from SV40, bovine growth hormone (BGH) gene, immunoglobulin genes, and thymidine kinase genes (tk, e.g., herpes simplex virus thymidine kinase polyadenylation signal).
[0058] As used herein, the term "vector" generally refers to a nucleic acid molecule capable of self-replicating in an appropriate host cell, which transfers an inserted nucleic acid molecule into and / or between host cells. Vectors may include vectors primarily for inserting DNA or RNA into cells, vectors primarily for replicating DNA or RNA, and vectors primarily used for transcriptional and / or translational expression of DNA or RNA. Vectors may also include vectors having the various functions described above. A vector may be a polynucleotide that can be transcribed and translated into a polypeptide when introduced into an appropriate host cell. Typically, the vector can produce a desired expression product by culturing an appropriate host cell containing the vector.
[0059] In this application, the term "AAV vector" or "viral vector" generally refers to a vector derived from naturally occurring, available adeno-associated viruses and artificial AAVs. AAVs can include different serotypes AAV1, AAV2, AAV3, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, AAV11, AAV12, or AAV13, as well as any AAV mutant or mixture. Usually, both ends of the AAV genome have inverted terminal repeats (ITRs). The term "ITR" or "inverted terminal repeat" refers to a segment of nucleic acid sequence present in AAV and / or recombinant AAV that forms a T-shaped palindrome necessary for completing the lytic and latent life cycle of AAV.
[0060] As used herein, the term "host cell" generally refers to a cell, such as a mammalian cell, that has been transformed or is capable of being transformed with a nucleic acid sequence and thereby expresses a gene of interest. A "host cell" includes a parent cell and its progeny, whether or not the progeny are identical in morphology or genetic make-up to the original parent cell, so long as the gene of interest can be introduced or is already present.
[0061] Thus, the present application includes gene and protein variants (e.g., variants of polynucleotides encoding the proteins described herein) that retain one or more biological activities. Such protein or polypeptide variants include proteins or polypeptides that have been or can be modified using recombinant DNA techniques so that the protein or polypeptide has altered or additional properties. For example, variants may improve the stability of the protein in plasma or improve the activity of the protein. Variants may differ from a reference sequence, such as a naturally occurring polynucleotide, protein, or peptide. At the nucleotide sequence level, naturally occurring and non-naturally occurring variant genes typically exhibit at least about 50% identity, more typically at least about 70% identity, and even more typically at least about 80% identity (90% or greater identity) to the reference gene. At the amino acid sequence level, naturally occurring and non-naturally occurring mutant proteins are typically at least about 70% identical to the reference protein, more typically at least about 80% identical, and even more typically at least about 90% or more identical, although regions of less identity (e.g., less than 70% identity, such as less than 60%, less than 50%, or even less than 40%) are permitted within non-conserved regions. In other embodiments, the sequence is at least 60%, 70%, 75% or more identical to the reference sequence (e.g., 80%, 85%, 90%, 95%, 96%, 97%, 98%, 99% or more identical). Procedures for introducing nucleotide and amino acid changes into polynucleotides, proteins, or polypeptides are known to those of skill in the art (see, e.g., Non-Patent Document 1).
[0062] As used herein, the terms "sequence similarity," "identity," "homology," and grammatical variations thereof generally refer to the sameness of two or more entities when the sequences are "aligned." Thus, for example, if two polypeptide sequences are identical, they have the same amino acid sequence, at least within the referenced region or portion. If two polynucleotide sequences are identical, they have the same polynucleotide sequence, at least within the referenced region or portion. Identity may encompass a given zone (region or domain) of a sequence. A "zone" or "region" of identity refers to the same portion of two or more referenced entities. Thus, if two protein or nucleic acid sequences are identical within one or more sequence zones or regions, they share identity within this region. "Aligned" sequences refer to multiple polynucleotide or protein (amino acid) sequences, which often contain deleted or added bases or amino acids (gaps) compared to a reference sequence. The degree of identity (homology) between two sequences can be determined using computer programs and mathematical algorithms. Algorithms that calculate the percentage of sequence identity (homology) are commonly used to calculate sequence gaps and mismatches in the regions or zones being compared. For example, the BLAST (e.g., BLAST 2.0) search algorithm (see, e.g., U.S. Patent No. 5,623,239, publicly available through NCBI) has the following exemplary search parameters: mismatch - 2, gap open 5, gap extension 2.
[0063] As used herein, the term "kit" generally refers to a combination of reagents and other materials. A kit is intended to include reagents, such as buffers, protein stabilizing reagents, signal generating systems (e.g., fluorescent signal generating systems), antibodies, control proteins, and test containers (e.g., microtiter plates, etc.). The term "kit" is not intended to be limited to a particular combination of reagents and / or other materials. In one embodiment, the kit also includes instructions for use of the reagents. Test kits can be packaged in any suitable manner and generally include components in a single container, or multiple containers (if desired), and instructions for conducting the test. In some embodiments, the kit preferably also includes a positive control sample. Kits can be manufactured in a variety of ways known in the art.
[0064] As used herein, the term "administration" refers to the delivery of a substance (e.g., the isolated nucleic acid molecule or vector of the present application) to a human or animal in need thereof via any route generally known in the art. Pharmaceutical carriers and formulations or compositions are also generally known in the art. Routes of administration can include intravenous, intramuscular, intradermal, subcutaneous, transdermal, mucosal, intratumoral, or mucosal. Alternatively, these terms can refer to the delivery of the isolated nucleic acid molecule or vector of the present application to a cell or cultured cells and / or a cell or organ of a subject. Such administration or introduction can occur in vivo, in vitro, or first in vivo and then in vitro. The isolated nucleic acid molecule or vector of the present application can be introduced into a cell by the following methods. transfection (generally referring to the insertion of heterologous DNA into a cell by physical means (e.g., calcium phosphate transfection, electroporation, microinjection, or lipofection)), infection (generally referring to introduction by an infectious agent (i.e., a virus)), or transduction (generally referring to the stable infection of a cell by a virus or the transfer of genetic material from one microorganism to another via a viral agent (e.g., a bacteriophage))
[0065] As used herein, the term "contacting" generally refers to introducing a substance (e.g., an isolated nucleic acid molecule or vector of the present application) into a subject (e.g., a mammal or mammalian cells) via any route known in the art, thereby contacting the substance with the cells in vivo. Contacting can be direct or indirect, such as direct injection of the cells by microinjection. As another example, a substance can be contacted with the cells in vivo by being provided in the medium surrounding the cells or by being administered to the subject.
[0066] As used herein, the term "hemophilia" generally refers to a blood clotting disorder. "Hemophilia A" generally refers to a recessive X-linked gene disorder in individuals who lack functional factor VIII.
[0067] In this application, the term "comprising" generally means the inclusion of the expressly specified features but not the exclusion of other elements.
[0068] In this application, the term "about" generally refers to a variation within 0.5% to 10% above and below the specified value, for example, a variation within 0.5%, 1%, 1.5%, 2%, 2.5%, 3%, 3.5%, 4%, 4.5%, 5%, 5.5%, 6%, 6.5%, 7%, 7.5%, 8%, 8.5%, 9%, 9.5%, or 10%.
[0069] Isolated nucleic acid molecules Liver-specific expression regulatory elements In one embodiment, the present application provides an isolated nucleic acid molecule comprising a liver-specific expression regulatory element and a gene of interest operably linked to the liver-specific expression regulatory element, wherein the liver-specific expression regulatory element can increase the expression level and / or activity of the gene of interest by at least 50% compared to an expression regulatory element using the nucleotide sequence set forth in SEQ ID NO: 10. For example, the liver-specific expression regulatory element can increase the expression level or activity of the gene of interest by at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95%, or at least 99%. The expression level can be measured in the liver or hepatocytes, or can also be measured in blood.
[0070] As used herein, the term "expression control element" generally refers to nucleic acid sequences, such as enhancers and promoters, that affect the expression of an operably linked polynucleotide. These elements can act in cis or trans. Expression control can function at the level of transcription, translation, splicing, message stability, and the like. Typically, expression control elements that regulate transcription are juxtaposed near the 5' end (i.e., "upstream") of the transcribed polynucleotide. Expression control elements can also be located at the 3' end (i.e., "downstream") of the transcribed sequence or within the transcript (e.g., within an intron). A specific example of an expression control element is a promoter, which is generally located at the 5' end of the transcribed sequence. Expression control elements can also include ubiquitous or promiscuous promoters that can promote expression of a polynucleotide in many different cell types. The term "tissue-specific expression control element" generally refers to an expression control element that is active in specific tissues or cells, such as the liver, brain, central nervous system, spinal cord, eye, or lung.
[0071] The liver-specific expression regulatory element of the present application may include a promoter, which may be located at the 5' end of the gene of interest and operably linked to the gene of interest. The promoter may affect the expression of the isolated nucleic acid molecule of the present application. For example, the promoter may function at the levels of transcription, translation, splicing, message stability, etc., thereby driving the expression of the isolated nucleic acid molecule of the present application in many different cell types. In this application, the promoter may be a liver-specific promoter. A liver-specific promoter refers to a promoter that is active in liver tissues or cells.
[0072] In some cases, the liver-specific expression regulatory element of the present application may comprise a promoter derived from the canine serpinA1 gene or a functional fragment thereof. The promoter derived from the canine serpinA1 gene may be a modified variant of the promoter derived from the wild-type canine serpinA1 gene. In some cases, the expression regulatory element of the present application may comprise a promoter derived from the Xenopus vitellogenin A2 gene or a functional fragment thereof. In some cases, the expression regulatory element may comprise a promoter derived from the Xenopus albumin gene or a functional fragment thereof. The promoter derived from the Xenopus albumin gene may be a modified variant of the promoter derived from the wild-type Xenopus albumin gene.
[0073] The liver-specific expression regulatory element of the present application may comprise: a) a promoter derived from the canine serpinA1 gene or a functional fragment thereof; and b) a promoter derived from the Xenopus albumin gene or a functional fragment thereof; In some cases, the liver-specific expression regulatory element comprises, in the 5' to 3' direction, a promoter derived from the canine serpinA1 gene or a functional fragment thereof, and a promoter derived from the Xenopus albumin gene or a functional fragment thereof.
[0074] Furthermore, the isolated nucleic acid molecules of the present application may also contain introns, which can affect expression of the isolated nucleic acid molecules of the present application. For example, introns can function at the level of transcription, translation, splicing, message stability, etc., thereby driving expression of the isolated nucleic acid molecules of the present application in many different cell types. In some cases, the intron can be located at the 5' end of the isolated nucleic acid molecule of the present application. For example, the intron can be located at the 5' end of a promoter and operably linked to the promoter.
[0075] In the present application, the liver-specific expression regulatory element may comprise the nucleotide sequence shown in SEQ ID NO: 1. In the present application, the liver-specific expression regulatory element may comprise a nucleic acid sequence having at least 90% (e.g., at least 91%, at least 92%, at least 93%, at least 94%, at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%) identity to the nucleotide sequence shown in SEQ ID NO: 1.
[0076] Polyadenylation signal sequence In this application, the isolated nucleic acid molecule may contain a polyadenylation signal sequence, such as a polyadenylation signal sequence derived from SV40, the bovine growth hormone (BGH) gene, the rabbit β-globin (RBG) gene, polyoma virus, and the thymidine kinase gene (TK), or a variant thereof.
[0077] In the present application, the polyadenylation signal sequence may be a polyadenylation signal derived from Common vole polyomavirus. In some embodiments, the polyadenylation signal is a polyadenylation signal derived from Common vole polyomavirus isolate KS13.
[0078] For example, the polyadenylation signal sequence can comprise the base sequence set forth in SEQ ID NO:3 or a nucleic acid sequence having at least 90% (e.g., at least 91%, at least 92%, at least 93%, at least 94%, at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%) identity to the base sequence set forth in SEQ ID NO:3.
[0079] A polyadenylation signal sequence (e.g., KS13-polyA signal sequence) can increase the expression level and / or activity of a gene of interest in a vector by at least 20%. For example, polyadenylation can increase the expression level or activity of a gene of interest by at least 20%, at least 25%, at least 30%, at least 35%, at least 40%, at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95%, or at least 99%. Expression levels can be measured in the liver or hepatocytes, or in blood.
[0080] In some cases, a polyadenylation signal sequence (e.g., KS13-polyA signal sequence) can increase the expression level and / or activity of a gene of interest in a vector by at least 20% compared to polyadenylation signal sequences derived from SV40, BGH gene, RBG gene, polyoma virus, and TK gene, or variants thereof.
[0081] In the present application, the isolated polynucleotide may comprise a liver-specific expression regulatory element and a polyadenylation signal sequence, and the liver-specific expression regulatory element may comprise the base sequence shown in SEQ ID NO: 1, and the polyadenylation signal sequence may comprise the base sequence shown in SEQ ID NO: 3.
[0082] Target gene In the present application, the isolated nucleic acid molecule may further comprise a gene of interest operably linked to a liver-specific expression regulatory element. The liver-specific expression regulatory element and the gene of interest may be directly adjacent to each other or may be separated by inserted nucleotides. In some cases, the liver-specific expression regulatory element and the gene of interest may be separated by an intron (e.g., an intron of the present application). In some cases, no intron is included between the liver-specific expression regulatory element and the gene of interest.
[0083] The gene of interest herein can encode a polypeptide, protein, or polynucleic acid, or can itself be transcribed into a functional or active polynucleic acid, such as an antisense nucleic acid or inhibitory oligonucleotide, including antisense DNA and RNA (e.g., miRNA, siRNA, and shRNA). In some cases, the gene of interest can encode a protein of interest, including a reporter protein. Reporter proteins can be enzymes, fluorescent labels, radioisotope-containing molecules, and chemiluminescent or electrochemiluminescent molecules. Examples of reporter proteins include, but are not limited to, green fluorescent protein (GFP), enhanced green fluorescent protein (eGFP), yellow fluorescent protein (YFP), enhanced yellow fluorescent protein (eYFP), cyan fluorescent protein (CFP), enhanced cyan fluorescent protein (eCFP), blue fluorescent protein (BFP), enhanced blue fluorescent protein (eBFP), MmGFP (Zernicka-Goetz et al., Development, 124:1133-1137, 1997), dsRed, luciferase and β-galactosidase (lacZ).For example, it can be firefly luciferase and Renilla luciferase.
[0084] In some other cases, the gene of interest may be a therapeutic gene. A therapeutic gene may encode a therapeutic peptide, therapeutic polypeptide, therapeutic protein, or therapeutic polynucleic acid. A therapeutic peptide, therapeutic polypeptide, or therapeutic protein may be a peptide, polypeptide, or protein that can be used to restore or replace the function of a defective endogenous peptide, polypeptide, or protein. In some cases, a therapeutic protein or therapeutic polynucleic acid can be used to alter the expression level and / or activity of one or more proteins or polynucleic acids in a host cell.
[0085] In some other cases, the gene of interest can be a prophylactic gene. The prophylactic gene can encode a prophylactic peptide, prophylactic polypeptide, prophylactic protein, or prophylactic polynucleic acid. The prophylactic peptide, prophylactic polypeptide, or prophylactic protein can be a peptide, polypeptide, or protein that can be used to restore or replace the function of a defective endogenous peptide, polypeptide, or protein. In some cases, the prophylactic protein or prophylactic polynucleic acid can be used to alter the expression level and / or activity of one or more proteins or polynucleic acids in a host cell.
[0086] In some cases, the protein of interest may be involved in or affect cell metabolism, immune response, hematopoietic function, inflammatory response, cell growth and / or proliferation, cell differentiation, and / or stress response. Examples of proteins of interest include factor FVIII, factor FIX, factor FVII, factor FX, interferon-α, interferon-β, interferon-γ, interleukin 1 (IL-1), interleukin 2 (IL-2), interleukin 3 (IL-3), interleukin 4 (IL-4), interleukin 5 (IL-5), interleukin 6 (IL-6), interleukin 7 (IL-7), interleukin 8 (IL-8), interleukin 9 (IL-9), interleukin 10 (IL-10), interleukin 11 (IL-11), interleukin 12 (IL-12), chemokine (C-X-C motif) ligand 5 (CXCL5), conjugates, and the like. These include, but are not limited to, granulocyte colony-stimulating factor (G-CSF), granulocyte-macrophage colony-stimulating factor (GM-CSF), macrophage colony-stimulating factor (M-CSF), stem cell factor (SCF), keratinocyte growth factor (KGF), monocyte chemoattractant protein-1 (MCP-1), tumor necrosis factor (TNF), afamin (AFM), α-galactosidase A, αL-iduronidase, lysosomal α-glucosidase, phenylalanine hydroxylase, lipoprotein lipase, apolipoproteins, low-density lipoprotein receptor (LDL-R), albumin, glucose-6-phosphatase, antibodies, nanobodies, antiviral dominant inactivated proteins, and fragments, subunits, or mutants thereof.
[0087] In the present application, the gene of interest can encode factor VIII (FVIII). For example, the gene of interest can encode a B-domain deleted factor VIII (FVIII) variant. For example, the FVIII variant can include the amino acid sequence set forth in SEQ ID NO: 7 or an amino acid sequence having at least 90% identity (e.g., at least 91%, at least 92%, at least 93%, at least 94%, at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%) to the amino acid sequence set forth in SEQ ID NO: 7.
[0088] In the present application, the target gene may comprise the nucleotide sequence set forth in SEQ ID NO: 6, or a nucleotide sequence having at least 90% identity (e.g., at least 91%, at least 92%, at least 93%, at least 94%, at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%) to the nucleotide sequence set forth in SEQ ID NO: 6.
[0089] In the present application, the gene of interest may be a codon-optimized polynucleotide. In the present application, the gene of interest may include the nucleotide sequence set forth in SEQ ID NO: 2 or a nucleotide sequence having at least 90% identity (e.g., at least 91%, at least 92%, at least 93%, at least 94%, at least 95%, at least 96%, at least 97%, at least 98%, or at least 99%) to the nucleotide sequence set forth in SEQ ID NO: 2.
[0090] In the present application, the isolated polynucleotide may comprise a liver-specific expression regulatory element, a gene of interest, and a polyadenylation signal sequence, in this order from the 5' end to the 3' end, and the liver-specific expression regulatory element may comprise the base sequence shown in SEQ ID NO: 1, and the polyadenylation signal sequence may comprise the base sequence shown in SEQ ID NO: 3.
[0091] In the present application, the isolated polynucleotide may comprise, in this order from the 5' end to the 3' end, a liver-specific expression regulatory element, a gene of interest, and a polyadenylation signal sequence, wherein the liver-specific expression regulatory element may comprise the nucleotide sequence set forth in SEQ ID NO: 1, the polyadenylation signal sequence may comprise the nucleotide sequence set forth in SEQ ID NO: 3, and the gene of interest may encode a FVIII protein. For example, the gene of interest may comprise the nucleotide sequence set forth in SEQ ID NO: 2 or 6.
[0092] Other Elements In the present application, to facilitate packaging of specific components of an isolated nucleic acid molecule (e.g., expression regulatory elements and / or a gene of interest) into a vector (e.g., an AAV vector), for example, specific components of an isolated nucleic acid molecule (e.g., expression regulatory elements and / or a gene of interest) can be packaged into an AAV1, AAV2, AAV3, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, AAV11, AAV12, or AAV13 vector. For example, specific components of an isolated nucleic acid molecule (e.g., expression regulatory elements and / or a gene of interest) can be packaged into an AAV8 vector.
[0093] The isolated nucleic acid molecule of the present application may further comprise an AAV inverted terminal repeat (ITR) sequence, which may be located at the 5' end of the enhancer and the 3' end of the polyadenylation signal sequence. The AAV ITRs may be derived from any AAV serotype, including, but not limited to, AAV1, AAV2, AAV3, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, AAV11, AAV12, or AAV13, and natural or artificial variants thereof. Compared to the wild-type AAV ITRs, the nucleic acid sequence contained in the AAV ITRs of the present application may contain nucleotide insertions, deletions, and / or substitutions. Furthermore, the AAV ITRs of the isolated nucleic acid molecule may be derived from a different serotype or from a different serotype, as long as they have the desired function (e.g., the ability to replicate and package a gene of interest in gene therapy). In some cases, the AAV ITRs of the present application may be derived from an AAV serotype selected from the group consisting of AAV5 and AAV2. For example, the AAV ITR may comprise the nucleotide sequence shown in any one of SEQ ID NOs: 4 to 5.
[0094] In certain cases, the sequences can be prepared by cloning techniques, synthetically produced, or by amplification methods, including polymerase chain reaction (PCR), ligase chain reaction (LCR), transcription-based amplification systems (TAS), and self-sustained sequence replication systems (3SR). Many cloning, synthesis, and amplification methods are commonly known in the art.
[0095] In the present application, the isolated nucleic acid molecule of the present application may comprise, in this order from the 5' end to the 3' end, a liver-specific expression regulatory element, a gene of interest, and a polyadenylation signal sequence. In some cases, the polyadenylation signal sequence may be a KS13-polyA signal sequence. For example, the isolated nucleic acid molecule of the present application may comprise, in this order from the 5' end to the 3' end, a liver-specific expression regulatory element, a gene of interest, and a KS13-polyA signal sequence.
[0096] For example, an isolated nucleic acid molecule of the present application can comprise the base sequence set forth in SEQ ID NO:9.
[0097] Vectors, host cells and methods In another embodiment, the present application also provides a vector that can contain the isolated nucleic acid molecule described herein.The vector can be a viral vector, such as an AAV vector (e.g., an AAV8 vector), a lentivirus, a retrovirus, an adenovirus, a herpesvirus, or a hepatitis virus vector.The vector can also be a polynucleotide vector, such as a plasmid, a cosmid, or a transposon.
[0098] Applicable vectors have been described extensively and are generally known in the art. Those skilled in the art will understand that vectors containing the isolated nucleic acid molecules of the present application may also contain other sequences and elements required for the replication of the vector in prokaryotic and / or eukaryotic cells. For example, the vectors of the present application may contain a prokaryotic replicon, i.e., a nucleotide sequence capable of directing the replication and maintenance of the host in a prokaryotic host cell (e.g., a bacterial host cell). Replicons are generally known in the art. In some cases, the vector may contain shuttle elements that make the vector suitable for replication and integration in prokaryotes and eukaryotes. Additionally, the vector may contain a gene capable of expressing a detectable marker (e.g., a drug resistance gene). The vector may also have a reporter gene, such as a gene encoding a fluorescent protein or other detectable protein.
[0099] In some cases, the vector may be a viral vector, such as AAV, lentivirus, retrovirus, adenovirus, herpesvirus, or hepatitis virus. Methods for producing viral vectors containing nucleic acid molecules (e.g., the isolated nucleic acid molecules of the present application) as part of the vector genome are generally known in the art and can be performed by those of ordinary skill in the art without undue experimentation. In other cases, the vector may be a recombinant AAV virion that packages the isolated nucleic acid molecules of the present application. Methods for producing recombinant AAV may include introducing the isolated nucleic acid molecules of the present application into a packaging cell line to provide the helper functions of the AAV cap and rep genes, and recovering the recombinant AAV from the packaging cell line. Various types of cells can be used as packaging cell lines.
[0100] In another aspect, the present application provides host cells that can contain the isolated nucleic acid molecules or vectors described herein. In some cases, the host cells can be used to amplify, replicate, package, or purify the nucleic acid molecules or vectors. In other cases, the host cells can be used to express a gene of interest contained in the isolated nucleic acid molecule or vector. For example, the isolated nucleic acid molecules or vectors of the present application can be introduced into host cells, such as liver cells. Those skilled in the art will understand the conditions necessary to introduce the isolated nucleic acid molecule or vector into a host cell and the conditions that support or promote expression of the gene of interest in the cell. This method can also be an in vivo or in vitro method.
[0101] Host cells can include prokaryotic and eukaryotic cells. In some cases, the host cell can be a mammalian host cell. For example, when using a host cell to package a viral vector, the host cell can be transfected with one or more plasmids or infected with one or more viruses that can provide accessory molecules necessary for packaging. In other cases, the host cell can stably express one or more accessory molecules from its genome. Those skilled in the art can select host cells suitable for amplifying, replicating, packaging, and / or purifying the vectors of the present application. In a specific example, the host cell can be liver-derived cells, such as HUH7 and HepG2 cells, or hepatocytes isolated from a subject, to enable the isolated nucleic acid molecule or vector to express a gene of interest.
[0102] In another aspect, the present application also provides a method for expressing a gene of interest, comprising introducing an isolated nucleic acid molecule described herein or a vector described herein into a host cell and expressing the gene of interest in the host cell.
[0103] Pharmaceutical Compositions and Kits In another aspect, the present application also provides diagnostic or pharmaceutical compositions comprising the isolated nucleic acid molecules, vectors, or host cells described herein. AAV vectors and other compositions, agents, drugs, and biologics (proteins), such as pharmaceutically acceptable carriers, excipients, diluents, and adjuvants, can be incorporated into the diagnostic and pharmaceutical compositions of the present application. Carriers, excipients, diluents, and adjuvants can include buffers, antioxidants, proteins, hydrophilic polymers, amino acids, monosaccharides, disaccharides, and other carbohydrates, chelating agents, sugar alcohols, salt-forming counterions, and / or non-ionic surfactants.
[0104] Where the composition contains a nucleic acid molecule or nucleic acid molecule vector (e.g., a plasmid), the nucleic acid molecule or nucleic acid molecule vector may be present as "naked DNA" or may be formulated in a delivery vector such as a microparticle or nanoparticle (including a liposome, micelle, lipid particle, ceramic / inorganic particle, virus-like particle).
[0105] The pharmaceutical compositions, methods, and uses of the present application can be administered to a subject in need thereof in a sufficient or effective amount. An "effective amount" or "sufficient amount" refers to an amount, in a single dose or multiple doses, that alone or in combination with one or more other compositions (therapeutic agents such as drugs), treatments, regimens, or therapeutic regimens or agents, produces a detectable response, any measurable or detectable degree, or an expected or desired result or benefit over any period (long or short term) (e.g., minutes, hours, days, months, years, or until healing occurs). The route of administration is not particularly limited. For example, a therapeutically effective amount of a nucleic acid molecule or vector can be administered to a subject intramuscularly, intravaginally, intravenously, intraperitoneally, subcutaneously, epidermally, intradermally, rectally, intraocularly, pulmonary, intracranially, intraosseously, orally, bucally, or nasally. The nucleic acid molecule or vector can be administered in a single dose or multiple doses at different intervals.
[0106] In another aspect, the present application also provides kits comprising the isolated nucleic acid molecules, vectors, and / or host cells. The kits generally include a label or instructions containing a description of the components or instructions for using the components therein in vitro, in vivo, or ex vivo (indirectly in vivo).
[0107] Uses and Applications In another aspect, the present application provides a method of delivering an isolated nucleic acid molecule into a mammal or mammalian cell, comprising administering the isolated nucleic acid molecule or vector to the mammal or mammalian cell or contacting the mammal or mammalian cell with the isolated nucleic acid molecule or vector.
[0108] For example, the method may comprise administering an isolated nucleic acid molecule or vector of the present application to a mammal or a mammalian secretory cell, or contacting a mammal or a mammalian secretory cell with the isolated nucleic acid molecule or vector. As another example, the method may comprise administering an isolated nucleic acid molecule or vector of the present application to a mammal or a mammalian endothelial cell, or contacting a mammal or a mammalian endothelial cell with the isolated nucleic acid molecule or vector.
[0109] Administration may include administration via routes such as intravenous, intramuscular, intradermal, subcutaneous, transdermal, mucosal, intratumoral or mucosal. Methods of administration may also include transfection, infection or transduction.
[0110] Contacting can be direct or indirect, for example, by direct injection of the cells by microinjection. As another example, a substance can be contacted with the cells in vivo by being provided in the medium surrounding the cells or by being administered to a subject.
[0111] In another aspect, the present application also provides use of the isolated nucleic acid molecule, vector, or host cell in the preparation of a medicament for treating, alleviating, and / or preventing a disease or disorder associated with factor FVIII, including hemophilia A, thrombocytopenia, and / or blood clotting disorders.
[0112] In another embodiment, the present application also provides a method for treating, alleviating, and / or preventing a disease or disorder associated with factor FVIII, including hemophilia A, thrombocytopenia, and / or blood clotting disorders, comprising administering the isolated nucleic acid molecule, vector, or host cell to a subject in need thereof.
[0113] In another aspect, the present application also provides a use of the isolated nucleic acid molecule, vector, or host cell for treating, alleviating, and / or preventing a disease or disorder associated with factor FVIII, including hemophilia A, thrombocytopenia, and / or blood clotting disorders.
[0114] Without being bound by any theory, the following examples are intended to illustrate the nucleic acid molecules of the present application that increase the expression level of a gene of interest and their uses, and are not intended to limit the scope of the present invention. [Example]
[0115] Example 1. Construction of recombinant AAV vectors The base sequence of each element of a nucleic acid molecule The isolated nucleic acid molecule of the present application comprises, in 5' to 3' order: liver-specific expression regulatory element (SEQ ID NO: 1); gene of interest (SEQ ID NO: 2), KS13-polyA signal sequence (SEQ ID NO: 3), and The 5' end of the liver-specific expression regulatory element and the 3' end of KS13-polyA each have an AAV ITR (nucleic acid sequences: 5'ITR: SEQ ID NO: 4; 3'ITR: SEQ ID NO: 5, respectively).
[0116] This nucleic acid molecule was designated GT001.
[0117] Construction of control nucleic acid molecule D1: The liver-specific expression regulatory element in GT001 was replaced with a promoter having the nucleotide sequence shown in SEQ ID NO:10.
[0118] Construction of control nucleic acid molecule D2: The KS13-polyA signal sequence in GT001 was replaced with the polyA base sequence of SPA, SV40, or BGH.
[0119] AAV8 vector packaging HEK299 cells were cultured at a diameter of 4x10 6 The cells were seeded at a concentration of 100 ml / ml onto plates in 10% FBS-containing DMEM medium and cultured overnight in a humidified atmosphere at 37°C under 5% CO2. The next day, a PEI transfection mixture containing the nucleic acid molecule of the present application or a control nucleic acid molecule, AAV8 capsid protein, and helper plasmid was prepared. This transfection mixture was then added to the cell culture medium. Six hours after transfection, the medium was replaced with 10% FBS-containing DMEM. 72 hours after transfection, the cells were harvested. The cells were resuspended in a buffer containing 100 mM sodium chloride, 2 mM magnesium chloride, and 10 mM Tris (pH = 8) and stored at -80°C.
[0120] AAV8 vector purification and quantitative analysis HEK-293 cells containing rAAV8 were freeze-thawed three times, treated with 50 U / mL Benzonase at 37°C for 30 minutes to remove unencapsulated DNA, and then pelleted by centrifugation at 3000 g for 10 minutes. The supernatant was then transferred for ultracentrifugation. An iodixanol centrifugation system was prepared, and four gradient iodixanol solutions (17%, 25%, 40%, and 60%) were added to 33 mL Optiseal tubes (Beckman) using a 10 mL syringe. Each concentration of iodixanol solution (6 mL of 17%, 6 mL of 25%, 5 mL of 40%, and 4 mL of 60%) was slowly added from the bottom of the Optiseal tube. After addition, the sample name was written on the top of the Optiseal tube, and a line was drawn at the boundary between 40% and 60%. The supernatant was then carefully added to a centrifuge tube using a test tube and centrifuged at 53000 g and 14°C for 2 hours and 40 minutes.
[0121] The needle of a 5 ml syringe was inserted into the Optiseal tube along the pre-marked line (the boundary between 40% and 60%), and the 40% solution (approximately 2-3 ml) was aspirated and transferred to a new 15 ml tube. The virus solution was added to an equilibrated 100K Centrifuge filter and diluted with 1x PBS (10 -4 F188) was added up to the 50 ml line, and the mixture was centrifuged at 3500 rpm for 10 minutes. -4 F188) was added to the top, and the mixture was centrifuged at 3500 rpm for 10 minutes. This procedure was repeated three times. -4 The virus was collected by adding PBS (F188) and transferred to a 1.5 ml EP tube. Quantitative qPCR analysis of the purified AVV vector genome was then performed using a kit according to the manufacturer's instructions to measure the titer of the virus stock.
[0122] Example 2: Repair ability of the isolated nucleic acid molecule of the present application in a mouse model of hemophilia A The recombinant AAV8 vector obtained in Example 1 was transfected into hemophilia A model mice at a dose of 4 × 10 11 The mice were injected via the tail vein at a dose of 0.05 mg / kg, and serum FVIII activity and symptoms were measured two weeks after each injection. The results, as shown in Figure 1, demonstrate that the isolated nucleic acid molecule GT001 of the present invention can restore FVIII expression in hemophilia A mice.
[0123] Example 3: Detection of expression activity of isolated nucleic acid molecules of the present application Similarly, the control nucleic acid molecules D1 and D2 obtained in Example 1 and the isolated nucleic acid molecule GT001 of the present application were packaged with AAV8, and the recombinant AAV8 vectors were injected into hemophilia A model mice via the tail vein to restore FVIII expression. The results show that the expression activity of the FVIII mutant of the isolated nucleic acid molecule GT001 of the present application is increased compared to the control nucleic acid molecules D1 and D2.
[0124] Figure 2 shows the expression activity of the target gene FVIII under different regulatory elements. For example, D1, constructed by replacing the promoter of the present application with a control promoter, has a significantly lower expression efficiency than the specific expression vector of the present application. As another example, D2, obtained by replacing the polyA signal sequence of the present application with a control polyA such as SPA polyA, has a significantly lower expression efficiency than the specific expression vector of the present application. The results demonstrate that the specific isolated nucleic acid molecule GT001 of the present application can restore FVIII expression.
[0125] Example 4: Detection of expression activity of isolated nucleic acid molecules of the present application By arbitrarily replacing the FVIII gene in the expressible nucleic acid molecule of the present invention with another gene of interest, such as the FIX gene, the expressible nucleic acid molecule of the present invention could exhibit the same effect of increasing expression activity.
[0126] FIG. 3 shows the expression activity of the expressible nucleic acid molecules of the present application for selectively expressing a gene of interest. Various molecules were packaged in AAV8, and the recombinant AAV8 vectors were injected into hemophilia B model mice at 6 × 10 11 The FIX activity in serum was measured two weeks after injection via the tail vein. The results show that the GT001-F9 molecule, obtained by replacing the gene of interest in the specific isolated nucleic acid molecule GT001 of the present application with the FIX gene, can restore FIX expression in hemophilia B mice. The D1-F9 molecule, obtained by replacing the gene of interest in the control molecule D1 (containing a control promoter) with the FIX gene, showed significantly lower expression efficiency than the specific expression vector of the present application.
[0127] The foregoing detailed description has been provided by way of illustration and example, and is not intended to limit the scope of the appended claims. Many variations to the embodiments described herein will be apparent to those skilled in the art and fall within the scope of the appended claims and their equivalents.
Claims
1. An isolated nucleic acid molecule comprising, in the 5' to 3' direction, a liver-specific expression regulatory element and a target gene operably linked to the liver-specific expression regulatory element, wherein the liver-specific expression regulatory element comprises the base sequence shown in SEQ ID NO:
1.
2. 2. The isolated nucleic acid molecule of claim 1, comprising a polyadenylation signal sequence located at the 3' end of the gene of interest.
3. The isolated nucleic acid molecule of claim 2, wherein the polyadenylation signal comprises the base sequence shown in SEQ ID NO:
3.
4. 2. The isolated nucleic acid molecule of claim 1, wherein the gene of interest encodes a protein of interest, the protein of interest comprising a reporter protein, a therapeutic protein and / or a prophylactic protein.
5. 5. The isolated nucleic acid molecule of claim 4, wherein the gene of interest encodes a B-domain deleted factor VIII (FVIII) mutant.
6. The isolated nucleic acid molecule of claim 5 , wherein the FVIII variant comprises the amino acid sequence set forth in SEQ ID NO:
7.
7. The isolated nucleic acid molecule of claim 1 , wherein the target gene comprises the base sequence shown in SEQ ID NO: 2 or 6.
8. 3. The isolated nucleic acid molecule of claim 2, further comprising an AAV inverted terminal repeat (ITR) located at the 5' end of the liver-specific expression regulatory element and the 3' end of the polyadenylation signal sequence.
9. 9. The isolated nucleic acid molecule of claim 8, wherein the AAV ITRs are derived from an AAV serotype selected from the group consisting of AAV5 and AAV2.
10. The isolated nucleic acid molecule according to claim 8, wherein the AAV ITR comprises a base sequence shown in any one of SEQ ID NOs: 4 to 5.
11. 2. The isolated nucleic acid molecule of claim 1, comprising the base sequence shown in SEQ ID NO:
9.
12. A vector comprising the isolated nucleic acid molecule of claim 1.
13. The vector of claim 12, which is a viral vector or a polynucleotide vector.
14. 13. The vector of claim 12, which is a plasmid, cosmid or transposon.
15. The vector of claim 12, which is a viral vector including an AAV vector.
16. The vector of claim 15, wherein the AAV vector is an AAV8 vector.
17. A host cell comprising the isolated nucleic acid molecule of claim 1.
18. A diagnostic or pharmaceutical composition comprising an isolated nucleic acid molecule according to any one of claims 1 to 11, a vector according to any one of claims 12 to 16, and / or a host cell according to claim 17.
19. A method for expressing a gene of interest, comprising introducing the isolated nucleic acid molecule according to any one of claims 1 to 11 or the vector according to any one of claims 12 to 16 into a host cell and expressing the gene of interest in the host cell.
20. A kit comprising an isolated nucleic acid molecule according to any one of claims 1 to 11, a vector according to any one of claims 12 to 16, and / or a host cell according to claim 17.
21. Use of an isolated nucleic acid molecule according to any one of claims 1 to 11, a vector according to any one of claims 12 to 16, and / or a host cell according to claim 17 in the preparation of a medicament for treating, alleviating and / or preventing a disease or disorder associated with factor FVIII.
22. 22. The use according to claim 21, wherein the disease or disorder comprises hemophilia A, thrombocytopenia and / or blood clotting disorders.
23. A liver-specific expression regulatory element comprising the base sequence shown in SEQ ID NO: 1.
Citation Information
Patent Citations
Separated nucleic acid molecule and application thereof
CN113088519A
Optimized human coagulation factor VIII gene expression cassette and uses thereof
JP2018509141A
Liver-specific constructs, factor viii expression cassettes, and methods of their use
JP2018531614A
Gene therapy for the treatment of hemophilia A
JP2019513794A
Treatment of diseases by hepatic expression of enzymes with deoxyribonuclease (DNase) activity
JP2021510539A