Production of recombinant AAV
The method enhances rAAV production efficiency by transfecting host cells with a closed-end linear rAAV vector nucleic acid, achieving higher titers and reducing costs through optimized use of polycationic polymers and improved quality control.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-01-15
- Publication Date
- 2026-04-15
AI Technical Summary
Current methods for producing recombinant adeno-associated virus (rAAV) are expensive and lack scalability, with inefficient production rates and high costs due to transient plasmid delivery and heterogeneity in vector production, leading to empty capsids and challenges in quality control.
A method involving transfection of host cells with a closed-end linear double-stranded rAAV vector nucleic acid comprising helper protein, rep and cap genes, and a xenotransgene linked to ITR sequences, optimized with a polycationic polymer, to enhance production efficiency and purity.
The method achieves a higher titer of rAAV production, up to 15 times greater than plasmid DNA methods, with reduced empty capsids and improved quality control, enabling scalable and cost-effective production.
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Abstract
Description
[Technical Field]
[0001] Cross-reference of related applications This application claims the benefits of U.S. Provisional Application No. 62 / 962,911, filed on 17 January 2020 under 35 U.S.C. § 119(e), and incorporates its entire contents by reference.
[0002] Areas of this disclosure This disclosure relates to the production of recombinant adeno-associated virus (rAAV) virions lacking prokaryotic sequences. [Background technology]
[0003] background Current methods for producing rAAV are still very expensive, despite years of research. At present, approximately 10 5 The production rate of 10 genome copies (GC) per cell is common, and therefore 10 14GC / L can be obtained (Kotin RM. Large-scale recombinant adeno-associated virus production. Hum Mol Genet. 2011;20(R1):R2-R6. doi: 10.1093 / hmg / ddr141 (Non-patent Literature 1)). While this has been shown to be sufficient to support early clinical trials, and it may be possible to supply a commercially available product for cases in small patient populations, the lack of scalability of this platform is a major limitation (Clement N, Grieger JC. Manufacturing of recombinant adeno-associated viral vectors for clinical trials. Mol Ther Methods Clin Dev. 2016;3:16002. doi: 10.1038 / mtm.2016.2 (Non-patent Literature 2); Wright JF. manufacturing and characterizing AAV-based vectors for use in clinical studies. Gene Ther. 2008; 15(11):840-848. doi: 10.1038 / gt.2008.65 (Non-patent Literature 3)). As one might imagine, successfully delivering three plasmids to a single cell is a relatively inefficient process. In efforts toward large-scale production, transient plasmid delivery requires an excess amount of DNA, increasing the overall cost of production and purification. Furthermore, transient delivery of rep / cap genes in the presence of helper genes can also contribute to heterogeneity in the resulting products, including AAV vectors lacking the transgene. These "empty capsids" account for a large proportion of the viruses produced in transient transfection assays. Therefore, developing robust analytical quality control (QC) methods to ensure similarity between production lots is crucial. [Prior art documents] [Non-patent literature]
[0004] [Non-Patent Document 1] Kotin RM. Large-scale recombinant adeno-associated virus production. Hum Mol Genet. 2011;20(R1):R2-R6. doi: 10.1093 / hmg / ddr141 [Non-Patent Document 2] Clement N, Grieger JC. Manufacturing of recombinant adeno-associated viral vectors for clinical trials. Mol Ther Methods Clin Dev. 2016;3:16002. doi: 10.1038 / mtm.2016.2 [Non-Patent Document 3] Wright JF. manufacturing and characterizing AAV-based vectors for use in clinical studies. Gene Ther. 2008; 15(11):840-848. doi: 10.1038 / gt.2008.65 [Overview of the Initiative]
[0005] Abstract Aspects of the present invention relate to the large-scale production of a closed linear recombinant adeno-associated virus (rAAV) vector lacking a prokaryotic sequence.
[0006] In one aspect, a method for producing recombinant adeno-associated virus (rAAV) is provided herein. Generally, this method comprises the steps of: transfecting a host cell line in culture medium with a closed-end linear double-stranded rAAV vector nucleic acid comprising (a) a nucleic acid sequence encoding a helper protein sufficient for rAAV replication, (b) a nucleic acid sequence encoding AAV rep and AAV cap genes, and (c) a xenotransgene functionally linked to at least one inverted-end repeat (ITR) sequence and one or more regulatory elements; incubating the transfected host cell line for a time sufficient to produce rAAV; and optionally, lysing the transfected host cells and isolating / purifying the rAAV from the culture medium. This method is suitable for producing high-titer rAAV. Thus, the titer of rAAV produced by this method may be higher than that of rAAV produced using a host cell line transfected with a corresponding amount of plasmid DNA (pDNA) containing the same xenotransgene. In a particular embodiment, 1 × 10 6 The total amount of nucleic acids from (a), (b), and (c) per host cell is less than approximately 2 μg. In certain embodiments, host cells are transfected with a transfection composition comprising (a), (b), and (c), as well as a polycationic polymer, where the ratio of the polycationic polymer to the total amount of nucleic acids from (a), (b), and (c) is approximately 1:1 to approximately 3:1 (weight:weight). In some embodiments, the transfected host cells are lysed. In some other embodiments, the transfected cells are not lysed.
[0007] In certain embodiments, the titer of rAAV produced by the method of the present invention is higher than the titer of rAAV produced using a host cell line transfected with a corresponding amount of plasmid DNA containing a xenotransgene. For example, the titer of rAAV produced by the method of the present invention is at least 1.25 times, e.g., 1.5 times, 1.75 times, 2 times, 2.25 times, 2.5 times, 2.75 times, 3 times, 3.5 times, 4 times, 4.5 times, 5 times or more, than the titer of rAAV obtained using a corresponding amount of plasmid DNA.
[0008] In certain embodiments, a method for producing recombinant adeno-associated virus (rAAV) comprises the steps of: providing a vector encoding an AAV nucleic acid sequence or a closed linear AAV nucleic acid sequence; culturing a human embryonic cell line in suspension; transfecting a human cell line with the vector encoding the AAV nucleic acid and a transfection composition, or with a closed linear AAV nucleic acid sequence and a transfection composition; incubating the transfected human cell line for about 40 to 400 hours; and optionally, lysing the transfected human cell line to purify the nucleic acid sequence encoding rAAV, thereby producing rAAV. In some aspects of this embodiment, the transfected host cells are lysed. In some other embodiments, the transfected cells are not lysed.
[0009] In certain embodiments, the transfection composition includes (i) a vector encoding an adenovirus helper protein, (ii) a vector containing an AAV rep gene and an AAV capsid (cap) protein gene, and (iii) a vector containing an AAV inverted end repeat (ITR) sequence. In some embodiments, at least one of vectors (i) to (iii) comprises a closed linear AAV nucleic acid sequence. For example, vector (iii) comprises a closed-ended linear double-stranded vector nucleic acid containing at least one inverted end repeat (ITR) sequence and a xenotransgene functionally linked to one or more regulatory elements.
[0010] In certain embodiments, the vector encoding the adenovirus helper protein lacks the adenovirus structure and replication gene. In certain embodiments, the AAV rep and capsid (cap) genes are derived from different serotypes. In certain embodiments, the AAV rep and capsid genes are derived from the same serotype. Examples of AAV serotypes include AAV1, AAV2, AAV3, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, AAV11, AAV13, etc. In certain embodiments, the AAV rep gene is derived from a serotype selected from the group consisting of AAV2, 3, 8, 9, and 10. In certain embodiments, the AAV cap gene is derived from a serotype selected from the group consisting of AAV2, 3, 8, 9, and 10. For example, the AAV rep gene is the AAV2 rep gene and the AAV capsid gene is the AAV8 capsid gene. In certain embodiments, the AAV inverted terminal repeat (ITR) sequence is the adeno-associated virus 2 inverted terminal repeat (ITR) sequence. Substantially any other serotype combination may be used.
[0011] In certain embodiments, the rAAV particle has an AAV ITR derived from at least one AAV serotype selected from the group consisting of AAV1, 2, 3 (e.g., 3a, 3b), 4, 5, 6, 7, 8, 9, 10, 11, and 13. In certain embodiments, the AAV ITR is derived from one AAV serotype selected from the group consisting of AAV2, 3 (e.g., 3a, 3b), 8, 9, and 10. In certain embodiments, the AAV ITR and the AAV cap gene are derived from different serotypes. In certain embodiments, the AAV ITR and the AAV cap gene are derived from the same serotype. In some embodiments, the AAV ITR is wild-type, mutant, or synthetic. In certain embodiments, the mutant ITR includes one or more amino acid substitutions (substations), additions, and / or deletions. In some embodiments, the AAV ITR is an exemplary ITR derived from US 7,790,154; US 8,361,457; US 8,784,799; US 9,447,433; US 9,169,494; or US 10,233,428.
[0012] In certain embodiments, the human embryonic cell line is a suspension-adapted serum-free cell line derived from a human fetal kidney cell line.
[0013] In certain embodiments, the suspension of the human embryonic cell line is gradually cultured in increasing volumes prior to transfection. In certain embodiments, the volume of the culture is gradually increased from a volume of about 50 ml to a volume of about 100 liters. In certain embodiments, the culture medium for the gradual expansion of the human embryonic cell suspension from a volume of about 50 ml to a volume of about 10 liters contains amino acids at a concentration of about 1 mM to about 20 mM. In certain embodiments, the culture medium having a volume of about 5 liters contains amino acids at a concentration of about 10 mM. In certain embodiments, the amino acid is L-glutamine. In certain embodiments, the culture medium having a volume of about 50 liters contains at least about 1 mM to about 20 mM of L-glutamine, at least about 0.01% to about 1% of a nonionic surfactant polyol or surfactant, and at least about 0.001% to about 1% of an antifoaming agent. In certain embodiments, the nonionic surfactant polyol contains pluronic acid.
[0014] The cell density of the host cell can be in the range of about 3.0×10 6 ~ about 1×10 8 cells / ml. For example, the cell density of the host cell can be in the range of about 3.5×10 7 ~ about 8.5×10 7 cells / ml. In certain embodiments, the cell density of the host cell can be in the range of about 3×10 6 ~ about 6×10 6 cells / ml. For example, the cell density of the host cell can be about 4.0×10 6 ~ about 6×10 6 cells / ml. In certain embodiments, the cell density of the host cell can be about 2.5×10 7 cells / ml. In some other embodiments, the cell density of the host cell in the cell culture can be about 3×10 7 cells / ml.
[0015] In a particular embodiment, cultured human embryonic cell lines contain approximately 3.0 × 10⁶ viable cells. 6 ~Approx. 1×10 8 It contains a cell density of cells / ml. In one embodiment, the cultured human embryonic cell line contains 2.5 × 10⁶ viable cells. 7 Contains cells / ml. In another embodiment, cultured human embryonic cell lines contain 3 × 10⁶ viable cells. 7 Contains cells / ml. In some embodiments, cultured human embryonic cell lines contain approximately 3.5 × 10⁶ viable cells. 7 ~Approx. 8.5×10 7 It contains a cell density of cells / ml. In a particular embodiment, the cultured human embryonic cell line contains approximately 4.0 × 10⁶ viable cells. 6 ~about 6×10 6 It contains a cell density of cells / ml. In a particular embodiment, the human embryonic cell line contains approximately 3 × 10⁶ viable cells. 6 ~Approx. 5×10 6 A vector encoding an AAV nucleic acid sequence and a transfection composition, or a closed linear AAV nucleic acid sequence and a transfection composition, are transfected at a cell density of cells / ml.
[0016] In certain embodiments, the transfection composition contains at least about 5% volume / volume (v / v) to about 50% v / v of culture medium. In certain embodiments, the transfection composition contains at least about 5% volume / volume (v / v) to about 20% v / v of culture medium. In certain embodiments, the transfection composition contains at least about 10% volume / volume (v / v) to about 20% v / v of culture medium. In some embodiments, the transfection composition contains at least about 5% volume / volume (v / v) to about 10% v / v of culture medium. In certain embodiments, the transfection composition contains about 1 liter to about 5 liters of medium. In certain embodiments, the nucleic acid sequence added to the transfection composition is 0.5 × 10⁶ 6 ~Approx. 5×10 6 Each cell contains approximately 0.1 μg to 1 μg of Ad helper DNA, Rep / Cap DNA, or transgene.
[0017] In certain embodiments, the method further comprises (i) adding about 1 liter of culture medium to the transfected cells, and (ii) adding a cationic polymer in a ratio of about 1:1 polymer to DNA to about 3:1 polymer to DNA over a time course of about 1 to about 5 minutes. In certain embodiments, the cationic polymer is added in a ratio of 2.2:1 polymer to DNA over a time course of about 1 minute. In certain embodiments, the cationic polymer comprises fully hydrolyzable linear polyethyleneimine (PEI).
[0018] In certain embodiments, the temperature of the culture medium containing host cells is raised to 37°C approximately 12–36 hours before transfection. For example, the temperature of the culture medium containing human embryonic cell suspension is raised to 37°C approximately 12–36 hours before transfection.
[0019] In certain embodiments, the culture medium is subjected to air sparging at a flow rate of approximately 0.1 LPM to approximately 1.0 LPM. In certain embodiments, the culture medium is subjected to air sparging at a flow rate of approximately 0.5 LPM. In certain embodiments, the culture medium is subjected to air sparging at flow rates of approximately 1.5 LPM, 2 LPM, 5 LPM, 7 LPM, 10 LPM, 15 LPM, 20 LPM, 30 LPM, 40 LPM, 50 LPM, 60 LPM, 70 LPM, 80 LPM, <90 LPM, or 100 LPM. In certain embodiments, the culture medium is maintained at a pH of at least approximately 7.0.
[0020] In a particular embodiment, a method for producing a high-titer recombinant adeno-associated virus (rAAV) lacking a prokaryotic sequence is a step of transfecting mammalian cells with a closed-end linear double-stranded rAAV vector nucleic acid comprising (a) a nucleic acid sequence encoding a helper protein sufficient for rAAV replication, (b) nucleic acid sequences encoding rep and cap genes, and (c) a xenotransgene functionally linked to at least one ITR sequence and one or more regulatory elements, wherein the result is 1 × 10⁻⁶ 6The process includes: ensuring that the total amount of nucleic acids transfected from (a), (b), and (c) per cell is less than 1 μg; culturing the transfected cells for at least 24 hours, e.g., at least 40 hours; optionally, lysing the transfected cells and purifying the produced rAAV vector particles, wherein the titer of the rAAV is at least 9.3 × 10⁻⁶. 13 individual vector genomes / 3.0 × 10 9 These are individual transfected living cells. In some aspects of this embodiment, the transfected host cells are lysed. In some other embodiments, the transfected cells are not lysed.
[0021] In a particular embodiment, the titer of the rAAV vector particle is at least 1 × 10⁻⁶ 10 ~at least 1 × 10 16 individual vector genomes / 1.0 × 10 8 ~1 × 10 11 These are individual transfected living cells. In a particular embodiment, the titer of the rAAV vector particle is at least 1 × 10⁻¹⁶. 11 individual vector genomes / 1.0 × 10 9 ~2×10 11 These are individual transfected living cells. In a particular embodiment, the titer of the rAAV vector particle is at least 1 × 10⁻¹⁶. 12 individual vector genomes / 2.0 × 10 9 ~3×10 11 These are individual transfected living cells. In a particular embodiment, the titer of the rAAV vector particle is at least 1 × 10⁻¹⁶. 13 individual vector genomes / 2.0 × 10 9 ~2×10 11 These are individual transfected living cells. In a particular embodiment, the titer of the rAAV vector particle is at least 1 × 10⁻¹⁶. 14 individual vector genomes / 2.0 × 10 9 ~4×10 11 These are individual transfected living cells. In a particular embodiment, the titer of the rAAV vector particles is at least 2 × 10⁶ 14 individual vector genomes / 3.0 × 109 ~5×10 11 These are individual transfected living cells. In a particular embodiment, the titer of the rAAV vector particles is at least 3 × 10⁻¹⁶. 14 individual vector genomes / 4.0 × 10 9 ~5×10 11 These are individual transfected living cells. In a particular embodiment, the titer of the rAAV vector particles is at least 4 × 10⁶. 14 individual vector genomes / 5.0 × 10 9 ~5×10 11 These are individual transfected living cells. In a particular embodiment, the titer of the rAAV vector particles is at least 5 × 10⁶. 14 individual vector genomes / 6.0 × 10 9 ~5×10 11 These are individual transfected living cells. In a particular embodiment, the titer of the rAAV vector particles is at least 1.25 × 10⁶ 14 individual vector genomes / 4.0 × 10 9 These are individual transfected living cells.
[0022] In a particular embodiment, the titer of the rAAV vector particle is at least 2 × 10⁻¹⁶ 11 The titer is vp / ml. In a particular embodiment, the titer of the rAAV vector particles is at least 2.5 × 10⁻⁶. 11 The titer is vp / ml. In a particular embodiment, the titer of the rAAV vector particles is at least 3 × 10⁻¹⁶. 11 The titer is vp / ml. In a particular embodiment, the titer of the rAAV vector particles is at least 3.5 × 10⁻⁶. 11 The titer is vp / ml. In a particular embodiment, the titer of the rAAV vector particles is at least 4 × 10⁻¹⁴. 11 The titer is vp / ml. In a particular embodiment, the titer of the rAAV vector particles is at least 4.5 × 10⁻⁶. 11 The titer is vp / ml. In a particular embodiment, the titer of the rAAV vector particles is at least 5 × 10⁻¹⁴. 11 The titer is vp / ml. In a particular embodiment, the titer of the rAAV vector particles is at least 5.5 × 10⁻⁶. 11The titer is vp / ml. In a particular embodiment, the titer of the rAAV vector particles is at least 6 × 10⁻¹⁴. 11 The titer is vp / ml. In a particular embodiment, the titer of the rAAV vector particles is at least 6.5 × 10⁻⁶. 11 The titer is vp / ml. In a particular embodiment, the titer of the rAAV vector particles is at least 7 × 10⁻¹⁴. 11 The titer is vp / ml. In a particular embodiment, the titer of the rAAV vector particles is at least 7.5 × 10⁻⁶. 11 The titer is vp / ml. In a particular embodiment, the titer of the rAAV vector particles is at least 8 × 10⁻¹⁴. 11 The titer is vp / ml. In a particular embodiment, the titer of the rAAV vector particles is at least 8.5 × 10⁻⁶. 11 The titer is vp / ml. In a particular embodiment, the titer of the rAAV vector particles is at least 9 × 10⁻¹⁴. 11 The titer is vp / ml. In a particular embodiment, the titer of the rAAV vector particles is at least 9.5 × 10⁻¹⁶. 11 The titer is vp / ml. In a particular embodiment, the titer of the rAAV vector particle is at least 1 × 10⁻¹⁶. 12 The titer is vp / ml. In a particular embodiment, the titer of the rAAV vector particles is at least 5 × 10⁻¹⁴. 12 It is vp / ml.
[0023] In a particular embodiment of the present invention, the titer of rAAV vector particles obtained using closed linear DNA (clDNA) is at least 1e 11 The concentration is vg / ml. In some embodiments, the titer of the rAAV vector particles is at least 2e 11 The concentration is vg / ml. In some embodiments, the titer of the rAAV vector particles is at least 3e 11 The concentration is vg / ml. In a particular embodiment, the titer of the rAAV vector particle is at least 4e 11 The concentration is vg / ml. In a particular embodiment, the titer of the rAAV vector particles is at least 5e 11 The concentration is vg / ml. In various embodiments, the titer of the rAAV vector particles is at least 6e 11The titer is vg / ml. In some embodiments, the titer of the rAAV vector particles is at least 7e 11 The concentration is vg / ml. In a particular embodiment, the titer of the rAAV particles is at least 8e 11 The concentration is vg / ml. In some embodiments, the titer of the rAAV particles is at least 8.5e 11 In another embodiment, the titer of the rAAV particles is at least 9e 11 The concentration is vg / ml. In yet another embodiment, the titer of the rAAV particles is at least 9.5e 11 The concentration is vg / ml. In a particular embodiment, the titer of the rAAV particles is at least 1e 12 The concentration is vg / ml.
[0024] In some embodiments, the number of rAAV vector particles obtained using closed linear DNA (clDNA) is approximately 2 to 3 times greater than that obtained using plasmid DNA (pDNA). In another embodiment, the number of rAAV vector particles obtained using closed linear DNA (clDNA) is approximately 4 to 5 times greater than that obtained using plasmid DNA (pDNA). In yet another embodiment, the number of rAAV vector particles obtained using closed linear DNA (clDNA) is approximately 6 to 8 times greater than that obtained using plasmid DNA (pDNA). In various embodiments, the number of rAAV vector particles obtained using closed linear DNA (clDNA) is approximately 9 to 15 times greater than that obtained using plasmid DNA (pDNA).
[0025] Certain aspects of the methods described herein involve the use of a closed-end linear double-stranded rAAV vector nucleic acid comprising (a) a nucleic acid sequence encoding a helper protein, (b) nucleic acid sequences encoding rep and cap genes, and (c) a xenotransgene functionally linked to at least one ITR and one or more regulatory elements. The ratio of (a) the nucleic acid sequence encoding the helper protein to (b) the nucleic acid sequences encoding rep and cap genes to (c) the closed-end linear double-stranded rAAV vector nucleic acid comprising at least one ITR and one or more xenotransgene functionally linked to one or more regulatory elements [(a):(b):(c)] can be optimized for the specific nucleic acid used. For example, the ratio of (a):(b):(c) may be about 0.5 to 1.75:about 0.75 to 2.25:about 0.5 to 1.75 (weight:weight:weight). In a particular embodiment, the ratio of (a):(b):(c) is approximately 0.75-1.5:approximately 1-1.75:approximately 0.75-1.25 (weight:weight:weight).
[0026] In certain embodiments, the ratio [(a):(b):(c)] of a closed-end linear double-stranded rAAV vector nucleic acid comprising (a) a nucleic acid sequence encoding a helper protein versus (b) nucleic acid sequences encoding rep and cap genes versus (c) a xenotransgene functionally linked to at least one ITR and one or more regulatory elements is about 1:about 1 to 1.6:about 1 (weight:weight:weight). In certain embodiments, the ratio of (a):(b):(c) is about 0.5:1:1 (weight:weight:weight). In certain embodiments, the ratio of (a):(b):(c) is about 0.5:1:0.5 (weight:weight:weight). In certain embodiments, the ratio of (a):(b):(c) is about 0.75:1:0.75 (weight:weight:weight). In certain embodiments, the ratio of (a):(b):(c) is about 0.5:1:1 (weight:weight:weight). In certain embodiments, the ratio of (a):(b):(c) is approximately 0.5:1:0.75 (weight:weight:weight). In certain embodiments, the ratio of (a):(b):(c) is approximately 0.5:1.5:1 (weight:weight:weight). In certain embodiments, the ratio of (a):(b):(c) is approximately 1:1.5:1 (weight:weight:weight). In certain embodiments, the ratio of (a):(b):(c) is approximately 1:1.6:1 (weight:weight:weight). In certain embodiments, the ratio of (a):(b):(c) is approximately 1:1.75:1 (weight:weight:weight). In certain embodiments, the ratio of (a):(b):(c) is approximately 1:1.8:1 (weight:weight:weight). In certain embodiments, the ratio of (a):(b):(c) is approximately 1:1.85:1 (weight:weight:weight). In certain embodiments, the ratio of (a):(b):(c) is approximately 1:1.90:1 (weight:weight:weight). In certain embodiments, the ratio of (a):(b):(c) is approximately 1:1.95:1 (weight:weight:weight). In certain embodiments, the ratio of (a):(b):(c) is approximately 1:2:1 (weight:weight:weight). In certain embodiments, the ratio of (a):(b):(c) is approximately 1.4:approximately 1.5:approximately 1 (weight:weight:weight).
[0027] In a particular embodiment, host cells are transfected with a transfection composition comprising (a) a nucleic acid sequence encoding a helper protein, (b) nucleic acid sequences encoding rep and cap genes, (c) a closed-terminated linear double-stranded rAAV vector nucleic acid containing at least one ITR and a xenotransgene functionally linked to one or more regulatory elements, and (d) a polycationic polymer. The cationic polymer may be any synthetic or natural polymer having at least two positive charges per molecule and possessing sufficient charge density and molecular size to bind to nucleic acids under physiological conditions. In a particular embodiment, the polycationic polymer comprises one or more amine residues, such as polyethyleneimine (PEI), or polyamino acids, such as polyornithine, polyarginine, and polylysine. In a preferred embodiment, the polycationic polymer is PEI.
[0028] Polycationic polymers can be any synthetic or natural polymer having at least two positive charges per molecule and possessing sufficient charge density and molecular size to bind to nucleic acids under transfection conditions (i.e., pH and salt conditions encountered in cell cultures). Suitable cationic polymers include, for example, polyethyleneimine (PEI), polyallylamine, polyvinylamine, polyvinylpyridine, aminoacetalized poly(vinyl alcohol), acrylic or methacrylic polymers having one or more amine residues (e.g., poly(N,N-dimethylaminoethyl methacrylate)), polyamino acids, e.g., polyornithine, polyarginine, and polylysine, protamine, cationic polysaccharides, e.g., chitosan, DEAE-cellulose, and DEAE-dextran, and polyamidoamine dendrimers (cationic dendrimers), as well as copolymers and blends thereof.
[0029] Polycationic polymers can be linear or branched, homopolymers or copolymers, and, if they contain amino acids, can have either L-structures or D-structures, and any combination of these features. Preferably, the cationic polymer molecule has sufficient flexibility to allow it to form compact complexes with one or more nucleic acid molecules.
[0030] The molecular weight of the polycationic polymer can be modified considering the properties of one or more nucleic acids. Thus, in some embodiments, the polycationic polymer has a molecular weight of about 5,000 daltons to about 100,000 daltons, more preferably about 5,000 to about 50,000 daltons, and most preferably about 10,000 to about 35,000 daltons.
[0031] In certain embodiments, the polycationic polymer is polyethyleneimine (PEI). For example, the polycationic polymer is linear polyethyleneimine. In certain embodiments, the polycationic polymer is fully hydrolyzed polyethyleneimine.
[0032] In some embodiments, the polycationic polymer is a stable cationic polymer.
[0033] The ratio of the polycationic polymer to the total amount of nucleic acids from (a), (b), and (c) can be modified for optimal transfection. For example, the ratio of the polycationic polymer to the total amount of nucleic acids from (a), (b), and (c) may be about 1.5:1 to about 2.75:1. In certain embodiments, the ratio of the polycationic polymer to the total amount of nucleic acids from (a), (b), and (c) may be about 1.9:1 to about 2.6:1. In certain embodiments, the ratio of the polycationic polymer to the total amount of nucleic acids from (a), (b), and (c) may be about 1:1.5 to about 1:2.75. For example, the ratio of the polycationic polymer to the total amount of nucleic acids from (a), (b), and (c) may be about 1:1.9 to about 1:2.6.
[0034] The polycationic polymer is present in the transfection composition in an amount effective for complexing with the nucleic acids from (a), (b), and (c) to form a complex. In certain embodiments, the relative amounts of the polycationic polymer and the nucleic acids from (a), (b), and (c) can be expressed by the N / P ratio, which is the number of nitrogen atoms in the polycationic polymer divided by the number of phosphorus atoms in the nucleic acid. In certain embodiments, the polycationic polymer and the nucleic acids from (a), (b), and (c) are present in an N / P ratio of about 2 to about 15, more preferably about 3 to about 12, and most preferably about 4 to about 9.
[0035] In certain embodiments, steps (a), (b), and (c) are transfected using a transfection composition comprising (a), (b), and (c), as well as a stable cationic polymer, where the ratio of the stable cationic polymer to the total amount of nucleic acids from (a), (b), and (c) is approximately 1.5:1. In certain embodiments, the ratio of the stable cationic polymer to the total amount of nucleic acids from (a), (b), and (c) is approximately 0.5:1 (weight:weight). In certain embodiments, the ratio of the stable cationic polymer to the total amount of nucleic acids from (a), (b), and (c) is approximately 0.75:1 (weight:weight). In certain embodiments, the ratio of the stable cationic polymer to the total amount of nucleic acids from (a), (b), and (c) is approximately 1:1 (weight:weight). In certain embodiments, the ratio of the stable cationic polymer to the total amount of nucleic acids from (a), (b), and (c) is approximately 1.75:1 (weight:weight). In certain embodiments, the ratio of the stable cationic polymer to the total amount of nucleic acids from (a), (b), and (c) is approximately 2:1 (weight:weight), approximately 2.2:1 (weight:weight). In certain embodiments, the ratio of the stable cationic polymer to the total amount of nucleic acids from (a), (b), and (c) is approximately 2.5:1 (weight:weight). In certain embodiments, the ratio of the stable cationic polymer to the total amount of nucleic acids from (a), (b), and (c) is approximately 3:1 (weight:weight). In certain embodiments, the ratio of the stable cationic polymer to the total amount of nucleic acids from (a), (b), and (c) is approximately 1:0.75 (weight:weight). In certain embodiments, the ratio of the stable cationic polymer to the total amount of nucleic acids from (a), (b), and (c) is approximately 1:0.5 (weight:weight). In certain embodiments, the ratio of the stable cationic polymer to the total amount of nucleic acids from (a), (b), and (c) is approximately 1:0.25 (weight:weight).
[0036] In certain embodiments, each of (a), (b), and (c) is provided on one or more closed-ended linear double-stranded nucleic acid molecules. In certain embodiments, the nucleic acids (a), (b), and (c) to be transfected are synthetic nucleic acids and do not result in prokaryotic DNA modification. In certain embodiments, (a), (b), and (c) to be transfected are synthetic nucleic acids and do not result in eukaryotic and prokaryotic DNA modification. In certain embodiments, the nucleic acid packaged within purified recombinant AAV (rAAV) lacks prokaryotic and eukaryotic DNA sequences. In one embodiment, the non-AAV vector DNA constitutes less than 10% of the total DNA within the rAAV particle.
[0037] In certain embodiments, a method of producing a population of purified recombinant adeno-associated virus (rAAV) lacking prokaryotic sequences comprises transfecting a mammalian cell line suspended in a culture medium with a transfection composition, wherein the transfection composition comprises (a) a nucleic acid sequence encoding helper proteins sufficient for rAAV replication, (b) a nucleic acid sequence encoding the rep and cap genes, and (c) a closed-ended linear double-stranded rAAV vector nucleic acid comprising at least one ITR and a heterologous transgene operably linked to one or more regulatory elements, and (d) a stable cationic polymer, wherein the ratio of the stable cationic polymer to the total amount of nucleic acid components from (a), (b), and (c) is at least 1.5:1; culturing the transfected cell line for at least 24 hours, such as at least 40 hours; lysing the transfected cell line of step (ii); and purifying the rAAV, wherein the purified virus has a particle to infectivity ratio of less than 2×10 4 vg / TCID50. In some aspects of this embodiment, the transfected host cells are optionally lysed. In some embodiments, the purified recombinant AAV (rAAV) produced is 1.5×10 4has a particle-to-infectivity ratio less than vg / TCID50. In some embodiments, the purified recombinant AAV (rAAV) is 1×10 4 has a particle-to-infectivity ratio less than vg / TCID50. In some embodiments, the purified recombinant AAV (rAAV) is 9×10 3 has a particle-to-infectivity ratio less than vg / TCID50. In some embodiments, the purified recombinant AAV (rAAV) is 8×10 3 has a particle-to-infectivity ratio less than vg / TCID50. In some embodiments, the purified recombinant AAV (rAAV) is 7×10 3 has a particle-to-infectivity ratio less than vg / TCID50. In some embodiments, the purified recombinant AAV (rAAV) is 6×10 3 has a particle-to-infectivity ratio less than vg / TCID50. In some embodiments, the purified recombinant AAV (rAAV) is 5×10 3 has a particle-to-infectivity ratio less than vg / TCID50. In some embodiments, the purified recombinant AAV (rAAV) is 4×10 3 has a particle-to-infectivity ratio less than vg / TCID50. In some embodiments, the purified recombinant AAV (rAAV) is 3×10 3 has a particle-to-infectivity ratio less than vg / TCID50. In some embodiments, the purified recombinant AAV (rAAV) is 2×10 3 has a particle-to-infectivity ratio less than vg / TCID50. In some embodiments, the purified recombinant AAV (rAAV) is 1×10 3 has a particle-to-infectivity ratio less than vg / TCID50. In some embodiments, the purified recombinant AAV (rAAV) is 9×10 2 has a particle-to-infectivity ratio less than vg / TCID50. In some embodiments, the purified recombinant AAV (rAAV) is 8×10 2 has a particle-to-infectivity ratio less than vg / TCID50. In some embodiments, the purified recombinant AAV (rAAV) is 7×10 2 has a particle-to-infectivity ratio less than vg / TCID50. In some embodiments, the purified recombinant AAV (rAAV) is 6×102 It has a particle-to-infectivity ratio of less than vg / TCID50. In some embodiments, purified recombinant AAV (rAAV) has 5 × 10 2 It has a particle-to-infectivity ratio of less than vg / TCID50.
[0038] In any one specific aspect of these aspects, the infectious particle titer is at least 1 × 10⁻⁶ 4 The titer is vg / TCID50. In certain embodiments, the infectious particle titer is at least 1.5 × 10⁻⁶. 4 The titer is vg / TCID50. In certain embodiments, the infectious particle titer is at least 2 × 10⁻⁶. 4 The titer is vg / TCID50. In certain embodiments, the infectious particle titer is at least 2.5 × 10⁻⁶. 4 The vg / TCID50 ratio is specified. In certain embodiments, the infectious particle titer is at least 3 × 10⁻⁶. 4 The value is vg / TCID50. In certain embodiments, the infectious particle titer is at least 3.5 × 10⁻⁶. 4 The titer is vg / TCID50. In certain embodiments, the infectious particle titer is at least 4 × 10⁻⁶. 4 The value is vg / TCID50. In certain embodiments, the infectious particle titer is at least 4.5 × 10⁶. 4 The virus is vg / TCID50. In a particular embodiment, the purified virus is at least 5 × 10⁻⁶ 4 It has a particle-to-infectivity ratio of vg / TCID50.
[0039] In some embodiments, the method for producing recombinant AAV uses a transient transfection method. In some embodiments, the method for producing recombinant AAV uses a stable transfection method. In various embodiments, transfection is carried out in a suspension state.
[0040] Embodiments of the methods described herein include the step of incubating an inoculated cell culture medium, e.g., transfected host cells, for a period of time to produce rAAV. For example, the inoculated cell culture medium, e.g., transfected host cells, may be incubated for a period of at least 24 hours. For example, the transfected host cells may be incubated for a period of at least 30 hours. In certain embodiments, the inoculated cell culture medium, e.g., transfected host cells, is incubated for 30–100 hours, or 30–150 hours, or 30–200 hours, or 40–100 hours, or 40–150 hours, or 40–200 hours, or 40–300 hours, or 40–350 hours, or 40–400 hours, or 40–450 hours, or 40–500 hours, or 40–550 hours, or 40–600 hours, or 40–650 hours, or 40–700 hours, or 40–750 hours, or 40–800 hours, or 40–850 hours, or 40–900 hours, or 40–950 hours, or 40–1000 hours. In certain embodiments, the inoculated cell culture medium, e.g., transfected cells, is cultured for approximately 40–400 hours. In a particular embodiment, transfected cells are cultured for approximately 40–100 hours, or approximately 40–150 hours, or approximately 40–200 hours, or approximately 40–250 hours, or approximately 40–300 hours, or approximately 40–350 hours, or approximately 40–400 hours, or approximately 40–450 hours, or approximately 40–500 hours, or approximately 40–550 hours, or approximately 40–600 hours, or approximately 40–650 hours, or approximately 40–700 hours, or approximately 40–750 hours, or approximately 40–800 hours, or approximately 40–850 hours, or approximately 40–900 hours, or approximately 40–950 hours, or approximately 40–1000 hours.In certain embodiments, the inoculated cell culture medium, e.g., the transfected cells, are cultured for at least 24 hours, or at least 30 hours, or at least 40 hours, or at least 45 hours, or at least 50 hours, or at least 55 hours, or at least 60 hours, or at least 65 hours, or at least 70 hours, or at least 72 hours, or at least 75 hours. In certain embodiments, the inoculated cell culture medium, e.g., the transfected cells, are cultured for 1000 hours or less, or 950 hours or less, or 900 hours or less, or 850 hours or less, or 800 hours or less, or 750 hours or less, or 700 hours or less, or 650 hours or less, or 600 hours or less, or 550 hours or less, or 500 hours or less, or 450 hours or less, or 400 hours or less, or 350 hours or less, or 300 hours or less, or 250 hours or less, or 200 hours or less, or 150 hours or less, or 100 hours or less.
[0041] In certain embodiments, the mammalian cell line is a suspension cell or cell line, i.e., non-adherent cells or cell line, and the cells are transfected in a suspension state. In certain embodiments, the cell line is derived from the human embryonic kidney 293 cell line (HEK293). In certain embodiments, the human embryonic kidney cells lack the SV40 antigen or other transformation antigens. In certain embodiments, the mammalian cell line is a suspension-adapted serum-free cell line. In certain embodiments, the cell line is derived from primary blood cells, e.g., lymphocytes, monocytes, macrophages, granulocytes, dendritic cells, erythrocytes. In certain embodiments, the cell line is derived from cell biopsies, e.g., lymph node cells, bone marrow cells, umbilical cord blood cells. In certain embodiments, the cell line is derived from circulating tumor cells. In certain embodiments, the cell line is derived from blood cell lines, e.g., Jurkat and Molt4 T cell lines, U937 and THP premonocyte cell lines, B cell hybridomas. In certain embodiments, the cell line is derived from stem cells. In certain embodiments, the cell line used for recombinant AAV production is a stable cell line.
[0042] In a particular embodiment, the mammalian cell line suspension is cultured progressively in gradually increasing volume of culture medium prior to transfection.
[0043] The methods disclosed herein are scalable and can be applied to the efficient and scalable production of rAAV. In other words, the methods described herein can be used in volumes ranging from a few milliliters to several thousand liters. Thus, the methods described herein can be used for the industrial-scale production of therapeutic rAAV compositions. In certain embodiments, the volume of the cell culture containing host cells may be at least about 50 liters. For example, the volume of the cell culture may range from about 50 liters to about 4000 liters. In certain embodiments, the volume of the cell culture may range from about 50 liters to about 2000 liters. For example, the volume of the cell culture may range from about 50 liters to about 250 liters. In another non-limiting example, the volume of the cell culture may range from about 50 liters to about 100 liters.
[0044] The volume of the cell culture containing the host cells may be increased before transfection. For example, the volume of the cell culture may be increased from a volume of about 10-20, 30, 40, or 50 ml to a volume of about 4000 liters. In certain embodiments, the volume of the cell culture may be increased from a volume of about 10-20, 30, 40, or 50 ml to a volume of about 2000 liters. For example, the volume of the cell culture may be increased from a volume of about 10-20, 30, 40, or 50 ml to a volume of about 250 liters. In another non-limiting example, the volume of the cell culture may be increased from a volume of about 10-20, 30, 40, or 50 ml to a volume of about 50 liters or about 100 liters. In certain embodiments, the volume of the cell culture may be increased from a volume of about 100 liters. In certain embodiments, the volume of the cell culture may be increased from a volume of about 50 ml to a volume of about 50 liters. In a particular embodiment, the volume of the cell culture can be increased from approximately 50 ml to approximately 10 liters.
[0045] In certain embodiments, the culture volume is progressively increased from a volume of approximately 50 ml to a volume of approximately 4000 liters. In certain embodiments, the culture volume is progressively increased from a volume of approximately 50 ml to a volume of approximately 2000 liters. In certain embodiments, the culture volume is progressively increased from a volume of approximately 10-20, 30, 40, or 50 ml to a volume of approximately 250 liters. In certain embodiments, the culture volume is progressively increased from a volume of approximately 10-20, 30, 40, or 50 ml to a volume of approximately 100 liters. In certain embodiments, the culture medium for the progressive expansion of a human embryonic cell suspension from a volume of approximately 50 ml to a volume of approximately 50 liters contains amino acids at a concentration of approximately 1 mM to approximately 20 mM. In a particular embodiment, the culture medium, having a volume of approximately 5 liters, contains an amino acid at a concentration of approximately 10 mM. In a particular embodiment, the amino acid is L-glutamine.
[0046] In certain embodiments, the packaged nucleic acids of rAAV virions lack prokaryotic DNA sequences.
[0047] In certain embodiments, the nucleic acid sequence encoding a helper protein sufficient for rAAV replication is included. Helper proteins sufficient for rAAV replication have been extensively studied, and many adenovirus genes encoding helper protein function are known. For example, proteins encoded by the early adenovirus gene region E1A (e.g., present in HEK293 cells), E2A, E4Orf6, VAI RNA, and optionally VAII RNA, as well as optionally E1B (also present in HEK293 cells), are thought to be involved in the rAAV replication process. Therefore, in certain embodiments, the nucleic acid sequence encoding a helper protein sufficient for rAAV replication includes a nucleotide sequence encoding an adenovirus (Ad) helper protein. For example, the nucleic acid sequence encoding a helper protein sufficient for rAAV replication includes a nucleotide sequence encoding the adenovirus helper proteins E2A and / or E4.
[0048] In a particular embodiment, (a) the nucleic acid sequence encoding a helper protein sufficient for rAAV replication is an adenovirus (Ad) helper containing nucleic acids encoding adenovirus helper proteins E2A and E4.
[0049] In certain embodiments, the total amount of DNA from (a), (b), and (c) is approximately 1 to approximately 50 μg. In certain embodiments, the total amount of DNA from (a), (b), and (c) is approximately 1 to approximately 20 μg. In certain embodiments, the total amount of DNA from (a), (b), and (c) is approximately 1 to approximately 10 μg. In certain embodiments, the total amount of DNA from (a), (b), and (c) is approximately 1 to approximately 8 μg. In certain embodiments, the total amount of DNA from (a), (b), and (c) is approximately 1 to approximately 6 μg. In certain embodiments, the total amount of DNA from (a), (b), and (c) is approximately 1 to approximately 3 μg. In certain embodiments, the total amount of DNA from (a), (b), and (c) is optionally 0.4, 0.5, 0.6, 0.7, 0.8, 0.9, 1, 1.2, 1.4, 1.6, or 1.8 μg. In a particular embodiment, the total amount of DNA from (a), (b), and (c) is 0.75 μg.
[0050] In a particular embodiment, the total amount of nucleic acids from a closed-end linear double-stranded rAAV vector nucleic acid, used for inoculation into cell cultures, for example, for transfecting host cells, is 1 × 10⁻⁶. The vector nucleic acid comprises (a) a nucleic acid sequence encoding a helper protein sufficient for rAAV replication; (b) a nucleic acid sequence encoding AAV rep and AAV cap genes; and (c) a xenotransgene functionally linked to at least one inverted-end repeat (ITR) sequence and one or more regulatory elements. 6 The amount is less than approximately 2 μg per cell. For example, the total amount of nucleic acids from (a), (b), and (c) is 1 × 10⁻⁶. 6 The amount is less than approximately 1.5 μg per cell. In a particular embodiment, the total amount of nucleic acids from (a), (b), and (c) is 1 × 10⁻⁶. 6 Less than approximately 1 μg per individual cell, or 1 × 10⁶ 6The amount is less than approximately 0.75 μg per individual cell.
[0051] In a particular embodiment, the total amount of nucleic acids from (a), (b), and (c) is 1 × 10⁻⁶ 6 The amount is at least 0.25 μg per cell. For example, the total amount of nucleic acids from (a), (b), and (c) is 1 × 10⁻⁶. 6 The amount is at least 0.5 μg per cell. In a particular embodiment, the total amount of nucleic acids from (a), (b), and (c) is 1 × 10⁻⁶. 6 Approximately 0.25 μg per cell ~ 1 × 10⁻⁶ 6 The amount is approximately 2 μg per cell. For example, the total amount of nucleic acids from (a), (b), and (c) is 1 × 10⁻⁶. 6 Approximately 0.5 μg per cell ~ 1 × 10⁻⁶ 6 The amount is approximately 1.5 μg per cell. In a particular embodiment, the total amount of nucleic acids from (a), (b), and (c) is 1 × 10⁻⁶. 6 Approximately 0.5 μg per cell ~ 1 × 10⁻⁶ 6 The amount is approximately 0.75 μg per cell.
[0052] In certain embodiments, the infectious particle titer is at least 3 × 10⁻⁶ 9 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 1 × 10⁻⁶. 5 TCID50 / ml (Median Tissue Culture Infectious Dose) ~ Approx. 1×10 11 It is TCID50. In certain embodiments, the infectious particle titer is at least 2 × 10⁻⁶. 5 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 5 × 10⁻⁶. 5 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 7.5 × 10⁶ 5 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 8 × 10⁶. 5 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 8.5 × 10⁶. 5The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 9 × 10⁶. 5 The TCID is 50 / ml. In a particular embodiment, the infectious particle titer is at least 9.5 × 10⁶ 5 The TCID is 50 / ml. In a particular embodiment, the infectious particle titer is at least 9.9 × 10⁶ 5 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 1 × 10⁻⁶. 6 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 1 × 10⁻⁶. 6 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 2 × 10⁻⁶. 6 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 5 × 10⁻⁶. 6 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 7.5 × 10⁶ 6 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 8 × 10⁶. 6 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 8.5 × 10⁶. 6 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 9 × 10⁶. 6 The TCID is 50 / ml. In a particular embodiment, the infectious particle titer is at least 9.5 × 10⁶ 6 The TCID is 50 / ml. In a particular embodiment, the infectious particle titer is at least 9.9 × 10⁶ 6 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 1 × 10⁻⁶. 7 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 2 × 10⁻⁶. 7 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 5 × 10⁻⁶. 7 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 7.5 × 10⁶ 7 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 8 × 10⁶. 7The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 9 × 10⁶. 7 The TCID is 50 / ml. In a particular embodiment, the infectious particle titer is at least 9.9 × 10⁶ 7 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 1 × 10⁻⁶. 8 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 2.5 × 10⁶. 8 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 5 × 10⁻⁶. 8 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 7.5 × 10⁶ 8 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 8 × 10⁶. 8 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 8.5 × 10⁶. 8 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 9 × 10⁶. 8 The TCID is 50 / ml. In a particular embodiment, the infectious particle titer is at least 9.5 × 10⁶ 8 The TCID is 50 / ml. In a particular embodiment, the infectious particle titer is at least 9.9 × 10⁶ 8 The TCID is 50 / ml. In a particular embodiment, the infectious particle titer is at least 0.5 × 10⁶ 9 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 1 × 10⁻⁶. 9 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 1.5 × 10⁶. 9 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 2 × 10⁻⁶. 9 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 2.5 × 10⁶. 9 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 3 × 10⁶. 9 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 3.5 × 10⁶. 9The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 4 × 10⁶. 9 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 4.5 × 10⁶. 9 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 5 × 10⁻⁶. 9 The TCID is 50 / ml. In a particular embodiment, the infectious particle titer is at least 5.5 × 10⁶. 9 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 6 × 10⁶. 9 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 6.5 × 10⁶. 9 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 7 × 10⁶. 9 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 7.5 × 10⁶ 9 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 8 × 10⁶. 9 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 8.5 × 10⁶. 9 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 9 × 10⁶. 9 The TCID is 50 / ml. In a particular embodiment, the infectious particle titer is at least 9.5 × 10⁶ 9 The TCID is 50 / ml. In a particular embodiment, the infectious particle titer is at least 9.9 × 10⁶ 9 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 1 × 10⁻⁶. 10 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 2 × 10⁻⁶. 10 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 5 × 10⁻⁶. 10 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 7.5 × 10⁶ 10 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 8 × 10⁶. 10The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 8.5 × 10⁶. 10 The TCID is 50 / ml. In certain embodiments, the infectious particle titer is at least 9 × 10⁶. 10 The TCID is 50 / ml. In a particular embodiment, the infectious particle titer is at least 9.5 × 10⁶ 10 The TCID is 50 / ml. In some embodiments, the infectivity titer TCID 50 / ml is preferably standardized to vg / ml. In some embodiments, the infectivity particle titer is at least 10 11 The TCID level is 50 / ml.
[0053] In a particular embodiment, a method for the large-scale production of recombinant adeno-associated virus (rAAV) comprises the steps of: providing a vector encoding an AAV nucleic acid sequence or a closed linear AAV nucleic acid sequence; culturing a human embryonic cell line in suspension; transfecting a human cell line with a vector encoding an AAV nucleic acid sequence and a transfection composition, or with a closed linear AAV nucleic acid sequence and a transfection composition; incubating the transfected human cell line for approximately 30 to 250 hours; and lysing the transfected human cell line and purifying the nucleic acid sequence encoding rAAV, thereby providing the large-scale production of rAAV. In certain embodiments, transfected cells are incubated for 30–100 hours, or 30–150 hours, or 30–200 hours, or 40–100 hours, or 40–150 hours, or 40–200 hours, or 40–300 hours, or 40–350 hours, or 40–400 hours, or 40–450 hours, or 40–500 hours, or 40–550 hours, or 40–600 hours, or 40–650 hours, or 40–700 hours, or 40–750 hours, or 40–800 hours, or 40–850 hours, or 40–900 hours, or 40–950 hours, or 40–1000 hours.
[0054] In certain embodiments, the AAV Rep gene and the AAV Cap gene originate from the same AAV serotype. In certain embodiments, the AAV Rep gene and the AAV Cap gene originate from different AAV serotypes.
[0055] In certain embodiments, the human embryonic cell line is a suspension-adapted, serum-free cell line derived from a human embryonic kidney cell line. The suspension of the human embryonic cell line is cultured progressively in increasing volumes prior to transfection. In certain aspects, the culture volume is progressively increased from about 50 ml to about 100 liters. In certain embodiments, the culture medium for the progressive expansion of the human embryonic cell suspension contains L-glutamine at a concentration of about 1 mM to about 20 mM in a culture medium volume of about 50 ml to about 10 liters. In certain embodiments, the culture medium having a volume of about 5 liters contains L-glutamine at a concentration of about 10 mM. In certain embodiments, the culture medium having a volume of about 50 liters contains at least about 1 mM to about 20 mM L-glutamine, at least about 0.01% to about 1% pluronic acid, and at least about 0.001% to about 1% antifoaming agent.
[0056] In a particular embodiment, cultured human embryonic cell lines contain approximately 3.0 × 10⁶ viable cells. 6 ~Approx. 1×10 8 It contains a cell density of cells / ml. In certain contexts, cultured human embryonic cell lines contain approximately 4.0 × 10⁶ viable cells. 6 ~about 6×10 6 It contains a cell density of cells / ml. In a particular embodiment, the human embryonic cell line contains approximately 3 × 10⁶ viable cells. 6 ~Approx. 5×10 6 pieces / ml 3 At a given cell density, a vector encoding an AAV nucleic acid sequence and a transfection composition, or a closed linear AAV nucleic acid sequence and a transfection composition, are transfected.
[0057] In certain embodiments, the transfection composition comprises (i) a vector encoding an adenovirus helper protein, (ii) a vector containing the AAV rep gene and the AAV capsid (cap) protein gene, and (iii) a vector containing an AAV inverted terminal repeat (ITR) sequence. In certain embodiments, the vector encoding the adenovirus helper protein lacks adenovirus structure and replication gene. In certain aspects, the AAV rep and capsid genes are of different or the same serotype. In certain aspects, the AAV rep gene is the AAV2 rep gene, and the AAV capsid gene is the AAV8 capsid gene. In certain aspects, the AAV inverted terminal repeat (ITR) sequence is the adeno-associated virus 2 inverted terminal repeat (ITR) sequence. In certain embodiments, the nucleic acid sequence added to the transfection composition is 0.5 × 10⁻⁶ 6 ~Approx. 5×10 6 Each cell contains approximately 0.1 μg to 1 μg of Ad helper DNA, Rep / Cap DNA, or transgene. In some embodiments, transfection is carried out over a time course of approximately 10 minutes to 60 minutes. In certain embodiments, transfection is carried out over a time course of approximately 10 minutes to 120 minutes.
[0058] In a particular embodiment, the cell density at transfection is approximately 2.0 × 10⁶ cells. 4 ~Approx. 1.0×10 8 The cell density is cells / ml. In a particular embodiment, the cell density at transfection is approximately 5.0 × 10⁶ viable cells. 4 ~Approx. 5.0×10 7 The cell density is cells / ml. In a particular embodiment, the cell density at transfection is approximately 1.0 × 10⁶ viable cells. 5 ~Approx. 1×10 7 The cell density is cells / ml. In a particular embodiment, the cell density at transfection is approximately 5.0 × 10⁶ viable cells. 5 ~Approx. 1×10 7 The cell density is cells / ml. In a particular embodiment, the cell density at transfection is approximately 2.0 × 10⁶ viable cells. 5 ~Approx. 9×106 The cell density is cells / ml. In a particular embodiment, the cell density at transfection is approximately 1.0 × 10⁶ viable cells. 6 ~Approx. 7.5×10 6 The cell density is cells / ml. In a particular embodiment, the cell density at transfection is approximately 1.0 × 10⁶ viable cells. 6 ~Approx. 7×10 6 The cell density is cells / ml. In a particular embodiment, the cell density at transfection is approximately 1.0 × 10⁶ viable cells. 6 ~Approx. 5×10 6 The cell density is cells / ml. In a particular embodiment, the cell density at transfection is approximately 1.0 × 10⁶ viable cells. 6 ~Approx. 4×10 6 The concentration is per ml.
[0059] Certain embodiments include a transfection composition for transfecting host cells. Generally, a transfection composition comprises (a) a nucleic acid sequence encoding a helper protein sufficient for rAAV replication, (b) a nucleic acid sequence encoding AAV rep and AAV cap genes, (c) a closed-ended linear double-stranded rAAV vector nucleic acid comprising at least one inverted-end repeat (ITR) sequence and a xenotransgene functionally linked to one or more regulatory elements, and (d) a polycationic polymer. In addition to nucleic acids (a), (b), and (c), the transfection composition may also include a cell culture medium, i.e., the medium used for host cells. The transfection composition may have a volume of about 5% to about 20% (volume / volume) of the volume of the host cell line culture. For example, a host cell line may be transfected with a volume of transfection composition of about 7.5% to about 15% (volume / volume) of the volume of the host cell line culture.
[0060] In certain embodiments, the transfection composition contains at least about 5% volume / volume (v / v) to about 20% v / v of culture medium. In certain embodiments, the transfection composition contains about 1 liter to about 5 liters of medium. After the cells are transfected, about 1 liter of medium is added to the transfected cells. In certain embodiments, fully hydrolyzed linear polyethyleneimine (PEI) is added in a ratio of about 1:1 (PEI:DNA) to about 3:1 (PEI:DNA) over a time course of about 1 to about 5 minutes. In certain embodiments, fully hydrolyzed linear polyethyleneimine (PEI) is added in a ratio of 2.2:1 (PEI:DNA) over a time course of about 1 minute. In certain aspects, the suspension of transfected cells is incubated for about 1 to 20 minutes before being transferred to a large-volume bioreactor. In certain embodiments, the transfection cell suspension is incubated for approximately 3 hours and then sedated with 10% (v / v) volume of chemically defined serum-free medium supplemented with approximately 10 mM L-glutamine. In certain embodiments, the temperature of the culture medium containing the human embryonic cell suspension is raised to 37°C approximately 12–36 hours before transfection. In certain embodiments, the culture medium is subjected to air sparging at a flow rate of approximately 0.1 LPM–1.0 LPM. In certain embodiments, the culture medium is subjected to air sparging at a flow rate of approximately 0.5 LPM. In certain embodiments, the culture medium is maintained at a pH of at least approximately 7.0.
[0061] In certain embodiments, recombinant adeno-associated virus (rAAV) includes a protelomerase target sequence. In certain aspects, the protelomerase target sequence includes a double-stranded palindrome sequence of at least 10 base pairs in length. In certain embodiments, rAAV includes a transgene.
[0062] In certain embodiments, the pharmaceutical composition comprises a closed linear recombinant adeno-associated virus (rAAV). In certain embodiments, the rAAV comprises a transgene.
[0063] In a particular aspect, rAAV particles have AAV capsid genes derived from AAV serotypes including AAV-1, AAV-2, AAV-3, AAV-4, AAV-5, AAV-6, AAV-7, AAV-8, AAV-9, AAV-10, AAV-11, AAV-12, AAV-13, AAV-14, AAV-15, and AAV-16. In a particular aspect, rAAV particles have AAV rep genes derived from AAV serotypes including AAV-1, AAV-2, AAV-3, AAV-4, AAV-5, AAV-6, AAV-7, AAV-8, AAV-9, AAV-10, AAV-11, AAV-12, AAV-13, AAV-14, AAV-15, and AAV-16. In some embodiments, non-limitingly, rAAV particles are exemplary rAAVs as described in U.S. Patent No. 10,550,405, published International Application No. W02018170310A1, U.S. Patent No. 7,892,809, U.S. Patent No. 6,491,907, or U.S. Patent No. 7,172,893. In certain embodiments, rAAV is a hybrid AAV comprising an ITR derived from a specific AAV serotype and a capsid derived from a different AAV serotype. In some embodiments, rAAV may comprise rAAV virions. In certain embodiments, the rAAV capsid comprises substitution, addition, and / or deletion of one or more amino acids; for example, the capsid comprises an inserted peptide for targeting. [Brief explanation of the drawing]
[0064] This patent or application document includes at least one color drawing. Copies of this patent or patent application publication, including the color drawing, will be provided by the relevant office upon request and payment of the necessary expenses.
[0065] [Figure 1] Figure 1 is a graph comparing vector genome titers in cell lysates, expressed as vg / mL yield, for a plasmid-based system (AskBio) (N=2) and a preferred transfection condition using a clDNA system (N=5). The plots represent the mean + / -1 standard deviation. [Figure 2]Figure 2 is a plot of the predictive profiler showing that both μg clDNA / 1E6 cells and the PEI:DNA ratio have a statistically significant effect on Vg titer. p ≤ 0.0066 [Figure 3] Figure 3 is a contour plot showing the effect of the clDNA and PEI:DNA ratio on the vector genome titer in cell lysates, expressed in vg / mL. [Figure 4] Figure 4 is a plot showing the effect of clDNA and PEI:DNA ratios on viral titer, expressed in vp / mL. [Figure 5] Figure 5 is a predictive profiler plot showing that the PEI:DNA ratio has a statistically significant effect on the yield of AAHrh10 CYP titer expressed in vp / mL, but the amount of clDNA does not. [Figure 6] Figure 6 is a predictive profiler plot showing that both μg clDNA / 1E6 cells and the PEI:DNA ratio have a statistically significant effect on the yield of AAV8 GAA titer expressed in vp / ml. [Modes for carrying out the invention]
[0066] Detailed explanation AAV is a protein shell that surrounds and protects a small, single-stranded DNA genome of approximately 4.8 kilobases (kb). AAV belongs to the Parvoviridae family and, for replication, relies on co-infection with other viruses, primarily adenoviruses. Initially serologically distinguished, molecular cloning of AAV genes has identified hundreds of unique AAV strains across numerous species. Its single-stranded genome contains three genes: Rep (replication), Cap (capsid), and aap (assembly). These three genes produce at least nine gene products through the use of three promoters, alternative translation initiation sites, and different splicing. These coding sequences are flanked by inverted end repeats (ITRs) necessary for genome replication and packaging. The Rep genes encode proteins (Rep78, Rep68, Rep52, and Rep40) required for viral genome replication and packaging, while Cap expression produces viral capsid proteins (VP; VP1 / VP2 / VP3) that form an outer capsid shell protecting the viral genome and actively participating in cell binding and internal migration (Samulski RJ, Muzyczka N. AAV-mediated gene therapy for research and therapeutic purposes. Annu Rev Virol. 2014;1(1):427-451. doi: 10.1146 / annurev-virology-031413-085355). The viral coat consists of 60 proteins arranged in an icosahedral structure with capsid proteins in a molar ratio of 1:1:10 (VP1:VP2:VP3). The aap genes encode assembly activation proteins (AAP) within an alternative reading frame that overlaps with the cap genes. This nucleoprotein is thought to provide a scaffold for capsid assembly (Naumer M, et al., J Virol. 2012;86(23): 13038-13048. doi: 10.1128 / JVI.01675-12).While AAP is essential for the nuclear localization of the VP protein and capsid assembly in AAV2, nuclear localization of AAP varies among the 11 other serotypes and is not essential in AAV4, AAV5, and AAV11 (Earley LF, et al. Adeno-associated virus (AAV) assembly-activating protein is not an essential requirement for capsid assembly of AAV serotypes 4, 5, and 11. J Virol. 2017;91(3):1-21. doi:10.1128 / jvi.01980-16).
[0067] The following section on examples describes in detail compositions and methods for the large-scale production of rAAV. In a particular embodiment, a method for the large-scale production of recombinant adeno-associated virus (rAAV) comprises the steps of: providing a vector encoding an AAV nucleic acid sequence or a closed linear AAV nucleic acid sequence; culturing a human embryonic cell line in suspension; transfecting a human cell line with a vector encoding an AAV nucleic acid sequence and a transfection composition, or with a closed linear AAV nucleic acid sequence and a transfection composition; incubating the transfected human cell line for about 50 to 100 hours; and collecting the transfected human cell line and purifying the rAAV vector, thereby providing the large-scale production of rAAV. In a particular embodiment, the rAAV produced is a closed linear rAAV.
[0068] Therefore, in a particular embodiment, a method for producing a population of high-titer recombinant adeno-associated viruses (rAAV) lacking prokaryotic sequences is a method of transfecting mammalian cells with a closed-end linear double-stranded rAAV vector nucleic acid comprising (a) a nucleic acid sequence encoding a helper protein sufficient for rAAV replication, (b) nucleic acid sequences encoding rep and cap genes, and (c) a xenotransgene functionally linked to at least one ITR and one or more regulatory elements, wherein the result is 1 × 10⁻⁶ 6The process includes: ensuring that the total amount of nucleic acids transfected from (a), (b), and (c) per cell is less than 1 μg; culturing the transfected cells for at least 40 hours; and collecting the transfected cells and purifying the produced rAAV vector particles, wherein the titer of the rAAV is at least 9.3 × 10⁻⁶. 13 individual vector genomes / 3.0 × 10 9 These are individual transfected living cells.
[0069] AAV sequences can be obtained from various sources. For example, suitable AAV sequences can be obtained as described in WO 2005 / 033321 or from known sources, such as the American Type Culture Collection or core facilities for various scientific vectors. Alternatively, suitable sequences can be synthesized using known techniques, referencing publicly available sequences.
[0070] AAV cap and rep sequences can be independently selected from different AAV parent sequences and introduced into host cells in appropriate manner known to those skilled in the art. In certain embodiments, rAAV particles have AAV capsid genes derived from AAV serotypes including AAV-1, AAV-2, AAV-3, AAV-4, AAV-5, AAV-6, AAV-7, AAV-8, AAV-9, AAV-10, AAV-11, AAV-12, and AAV-13. In certain embodiments, rAAV particles have AAV capsid genes derived from AAV serotypes selected from the group consisting of AAV2, 3, 8, 9, and 10.
[0071] In a particular embodiment, the rAAV particles contain AAV rep genes derived from AAV serotypes including AAV-1, AAV-2, AAV-3, AAV-4, AAV-5, AAV-6, AAV-7, AAV-8, AAV-9, AAV-10, AAV-11, AAV-12, and AAV-13. In a particular embodiment, the rAAV particles have AAV rep genes derived from AAV serotypes selected from the group consisting of AAV2, 3, 8, 9, and 10.
[0072] The disclosure also provides a method for producing a population of purified recombinant adeno-associated virus (rAAV) lacking a prokaryotic sequence, the method comprising: transfecting a mammalian cell line suspended in culture medium with a transfection composition, wherein the transfection composition comprises: (a) a nucleic acid sequence encoding a helper protein sufficient for rAAV replication; (b) a nucleic acid sequence encoding rep and cap genes; and (c) a closed-terminated linear double-stranded rAAV vector nucleic acid comprising at least one ITR and a xenotransgene functionally linked to one or more regulatory elements; and (d) a stable cationic polymer, wherein the ratio of the stable cationic polymer to the total amount of nucleic acid components from (a), (b), and (c) is at least 1.5:1; culturing the transfected cell line for at least 40 hours; collecting the transfected cell line from step (ii); and purifying the rAAV, wherein the purified virus is 2 × 10⁻⁶ 4 It has a particle-to-infectivity ratio of less than vg / TCID50 and lacks prokaryotic DNA.
[0073] The mammalian cell lines used in the embodiments of the present invention include suspension cells or cell lines, i.e., non-adherent cells or cell lines. In certain embodiments, the cell line is derived from a human embryonic kidney cell line. In certain embodiments, the human embryonic kidney cells lack the SV40 antigen or other transforming antigens. In certain embodiments, the mammalian cell line is a suspension-adapted serum-free cell line. In certain embodiments, the cell line is derived from primary blood cells, e.g., lymphocytes, monocytes, macrophages, granulocytes, dendritic cells, and erythrocytes. In certain embodiments, the cell line is derived from cell biopsies, e.g., lymph node cells, bone marrow cells, and umbilical cord blood cells. In certain embodiments, the cell line is derived from circulating tumor cells. In certain embodiments, the cell line is derived from blood cell lines, e.g., Jurkat and Molt4 T cell lines, U937 and THP premonocyte cell lines, and B cell hybridomas. In certain embodiments, the cell line is derived from stem cells.
[0074] The culture of viral cells utilizes cells that contain, either stably or transiently, at least the minimum elements required to produce AAV particles. These minimum elements include an expression cassette, an AAV cap, and an AAV rep or its functional fragment, which are packaged in an AAV capsid, as well as helper functions.
[0075] Cells also require helper functions to package the AAV of the present invention. Optionally, these helper functions may be supplied by herpesviruses. In another embodiment, each required helper function is provided from a human or non-human primate adenovirus source, available from various sources, including, for example, the American Type Culture Collection (ATCC), Manassas, Va. (US). A variety of suitable adenovirus sequences have been reported. For example, chimpanzee adenoviruses C1 and C68 [US Patent No. 6,083,716]; Pan 5, Pan 6 and Pan 7 [WO 02 / 33645], as well as hybrid adenoviruses, such as those reported [e.g., in WO 05 / 001103], and see GenBank.
[0076] Various suitable cell types and cell lines have been reported for use in AAV production. The cells themselves can be selected from any biological tissue, including prokaryotic (e.g., bacterial) cells as well as eukaryotic cells, including insect cells, yeast cells, and mammalian cells. Particularly desirable host cells are selected from any mammalian species, including but not limited to primary fibroblasts, hepatocytes, and myoblasts derived from mammals such as humans, monkeys, mice, rats, rabbits, and hamsters. The selection of mammalian species providing these cells is not limited to the present invention, and the same applies to the type of mammalian cell, i.e., fibroblasts, hepatocytes, tumor cells, etc.
[0077] In any one particular embodiment of the aspects described herein, the host cell line is derived from the human embryonic kidney 293 cell line (HEK293).
[0078] The host cell may contain the minimum adenovirus DNA sequences necessary to express at least the E1A gene product, the E1B gene product, the E2A gene product, and / or the E4 ORF6 gene product. The host cell may contain other adenovirus genes, such as VAI RNA, but these genes are not essential. The cell does not harbor any adenovirus genes other than E1, E2A, and / or E4 ORF6, nor does it contain any other viral genes that could cause homologous recombination of contaminating viruses during rAAV production, and is capable of infection or transfection.
[0079] In any one particular aspect of these aspects, the host cells lack the SV40 antigen or other transforming antigen. For example, when human embryonic kidney cells, e.g., HEK293 cells, are used as host cells, such cells may lack the SV40 antigen or other transforming antigen.
[0080] Another type of host cell is stably transformed with sequences encoding rep and cap and transfected with constructs holding adenovirus E1, E2A, and E4 ORF6 DNA and the expression cassettes described above. Stable rep and / or cap-expressing cell lines, such as B-50 (International Patent Application Publication WO 99 / 15685) or U.S. Patent No. 5,658,785, can also be used. Another preferred host cell contains a minimum amount of adenovirus DNA sufficient to express E4 ORF6. Yet another cell line may also be constructed using the novel modified caps of the present invention.
[0081] The preparation of host cells is performed using techniques such as the assembly of selected DNA sequences. This assembly can be achieved using conventional techniques. Such techniques are well known and include polymerase chain reactions, synthesis methods, and any other suitable methods for providing the desired nucleotide sequences, including cDNA and genome cloning as described in Sambrook et al, Molecular Cloning: A Laboratory Manual, Cold Spring Harbor Press, Cold Spring Harbor, NY.
[0082] In certain embodiments, the host cell is a mammalian cell, i.e., the host cell line is a mammalian cell line. For example, the host cell, i.e., the host cell line, is a human cell, e.g., a human embryonic cell line. In any one particular embodiment of the aspects described herein, the host cell line is a human embryonic kidney cell line.
[0083] Cell culture operations involved in rAAV production, including the expansion, seeding, and transfection of adherent cells, are labor-intensive and resource-intensive. Therefore, the use of cells suspended in aqueous liquid medium ("suspended cells") for rAAV vector production is desirable in terms of scalability and cost-effectiveness. Accordingly, in any particular embodiment of the aspects described herein, a host cell line may be adapted to suspension. For example, host cells may be transfected with nucleic acid vectors in a suspended state.
[0084] Elements for AAV production (e.g., adenovirus E1a, E1b, E2a, and / or E4ORF6 gene products, rep or fragments thereof, cap, expression cassette, and any other desired helper functions) can be delivered to a packaging host cell individually or in combination in the form of any gene element that transfers the retained sequence. As used herein, gene elements (vectors) include, for example, naked DNA, plasmids, phages, transposons, cosmids, episomes, proteins in non-viral delivery vehicles (e.g., lipid-based carriers), viruses, etc., that transfer the retained sequence. Selected vectors can be delivered by any suitable method, including transfection, electroporation, liposome delivery, membrane fusion techniques, high-velocity DNA-coated pellets, viral infection, and protoplast fusion. Methods used to construct any aspect of the present invention are known to those with expertise in nucleic acid manipulation and include genetic engineering, recombinant engineering, and synthetic techniques. See, for example, Sambrook et al, Molecular Cloning: A Laboratory Manual, Cold Spring Harbor Press, Cold Spring Harbor, NY. See, for example, K. Fisher et al, J Virol., 70:520-532 (1993) and U.S. Patent No. 5,478,745.
[0085] One or more adenovirus genes can be stably integrated into the genome of a host cell or stably expressed as episomes. The promoter for each adenovirus gene can be independently selected from constitutive promoters, inductive promoters, or native adenovirus promoters. Promoter functions can be regulated, for example, by specific physiological states of an organism or cell (i.e., by its differentiation state or in replicating or resting cells) or by externally added factors. Examples of such factors include, but are not limited to, antibiotics, cytokines, growth factors, and hormones.
[0086] In one embodiment, a stable or transient host cell contains the required elements under the control of an inductive or regulatory promoter. However, the required elements may also be under the control of a constitutive or synthetic promoter.
[0087] Regulatory promoters allow for the control of gene expression due to externally supplied compounds, environmental factors such as temperature, or the presence of specific physiological conditions, such as the acute phase, a specific differentiation state of the cell, or only in replicating cells. Regulatory promoters and systems are available from a variety of commercial sources, including, but not limited to, Invitrogen, Clontech, and Ariad. Many other systems have also been reported and can be readily selected by those skilled in the art. Examples of promoters regulated by externally supplied promoters include the zinc-inducible sheep metallothionine (MT) promoter, the dexamethasone (Dex)-inducible mouse mammary tumor virus (MMTV) promoter, the T7 polymerase promoter system [WO 98 / 10088], the ecdysone insect promoter [No et al, Proc. Natl. Acad. Sci. USA, 93:3346-3351 (1996)], the tetracycline-inhibiting system [Gossen et al., Proc. Natl. Acad. Sci. USA, 89:5547-5551 (1992)], and the tetracycline-inducible system [Gossen et al., Science, 268:1766-1769 (1995), Harvey et al., Curr. Opin. Chem. Biol., 2:512-518]. This includes the RU486-inducible system [Wang et al., Nat. Biotech., 15:239-243 (1997) and Wang et al., Gene Ther., 4:432-441 (1997)] and the rapamycin-inducible system [Magari et al., J Clin. Invest., 100:2865-2872 (1997)]. Further types of inducible promoters that may be useful in this relationship are regulated only by specific physiological conditions, such as temperature, acute phase, specific differentiation states of cells, or in replicating cells.
[0088] In certain cases, native promoters are used. Native promoters may be used when it is desired that the expression of a gene product mimics native expression. Native promoters may be used when the expression of a desired transgene must be regulated temporally, developmentally, in a tissue-specific manner, or in response to a specific transcriptional stimulus. Other native expression regulatory elements, such as enhancer elements, polyadenylation sites, or Kozak consensus sequences, may also be used to mimic native expression.
[0089] In cases involving transgenes, the transgene is functionally linked to a tissue-specific promoter. For example, if expression in skeletal muscle is desired, a promoter active within muscle should be used. These include, but are not limited to, promoters derived from genes encoding skeletal β-actin, myosin light chain 2A, dystrophin, and muscle creatine kinase, as well as synthetic muscle promoters with higher activity than naturally occurring promoters (see Li et al., Nat. Biotech., 17:241-245 (1999)). Examples of tissue-specific promoters include, in particular, liver (albumin, Miyatake et al., J. Virol., 71:5124-32 (1997); hepatitis B virus core promoter, Sandig et al., Gene Ther., 3:1002-9 (1996); alpha-fetoprotein (AFP), Arbuthnot et al., Hum. Gene Ther., 7:1503-14 (1996)), bone osteocalcin (Stein et al., Mol. Biol. Rep., 24:185-96 (1997)); bone sialoprotein (Chen et al., J. Bone Miner. Res., 11:654-64 (1996)), and lymphocytes (CD2, Hansal et al., J. Immunol., 161:1063-8) (1998); immunoglobulin heavy chains; T cell receptor α chains), neuronal promoters, such as neuron-specific enolase (NSE) promoters (Andersen et al., Cell. Mol. Neurobiol., 13:503-15 (1993)), neurofilament light chain genes (Piccioli et al., Proc. Natl. Acad. Sci. USA, 88:5611-5 (1991)), and neuron-specific vgf genes (Piccioli et al., Neuron, 15:373-84 (1995)), are known. Regarding liver-specific promoters, examples include HLP, LP1, HCR-hAAT, ApoE-hAAT, and LSP.These promoters are described in detail in the following references: HLP: McIntosh J. et al., Blood 2013 Apr. 25, 121(17):3335-44; LP1: Nathwani et al., Blood. 2006 April 1, 107(7): 2653-2661; HCR-hAAT: Miao et al., Mol Ther. 2000;1: 522-532; ApoE-hAAT: Okuyama et al., Human Gene Therapy, 7, 637-645(1996); and LSP: Wang et al., Proc Natl Acad Sci USA. 1999 March 30,96(7): 3906-3910. See also Brown HC et al., Mol. Ther.: Meth. Clin. Dev. Vol. 9, pp:57-91, June 2018.
[0090] Examples of suitable activatable and constitutive promoters are known to those skilled in the art. In yet another alternative example, selected stable host cells may include selected elements under the control of a constitutive promoter and other selected elements under the control of one or more inductive promoters. For example, stable host cells can be generated that are derived from 293 cells (containing E1 helper function under the control of a constitutive promoter) but contain rep and / or cap proteins under the control of an inductive promoter. Further stable host cells can also be generated by those skilled in the art.
[0091] Closed-ended linear double-stranded nucleic acids Closed linear DNA molecules typically contain covalently closed ends, also known as hairpin loops, where complementary base pairing between DNA strands is absent. These hairpin loops connect the ends of complementary DNA strands. This type of structure is typically formed at the telomere ends of chromosomes to protect chromosomal DNA from loss or damage by confining terminal nucleotides within a closed structure. In the examples of closed linear DNA molecules described herein, the hairpin loops are adjacent to complementaryly base-paired DNA strands, forming a closed linear (cl)DNA-shaped structure. Closed linear DNA molecules contain barbell-shaped DNA.
[0092] One or more of the following nucleic acids (a) to (c), namely (a) a nucleic acid sequence encoding a helper protein sufficient for rAAV replication, (b) a nucleic acid sequence encoding rep and cap genes, and (c) a closed-ended linear double-stranded rAAV vector nucleic acid comprising at least one ITR and a xenotransgene functionally linked to one or more regulatory elements, may be present on a closed-ended linear double-stranded nucleic acid. Such nucleic acids can be produced by various known methods, including in vitro cell-free synthesis and in vivo methods.
[0093] In a particular embodiment, a nucleic acid sequence comprising one or more of (a), (b), or (c) is an amplified linear open-ended DNA having blunt ends or overhangs, to which a synthesized hairpin molecule is ligated to one or both ends to form a closed-ended linear DNA comprising one or more of the nucleic acids of (a), (b), or (c). The unligated hairpin is purified using means well known to those skilled in the art. The DNA is amplified by PCR and ligated into a double-stranded form.
[0094] One method for generating linear double-stranded nucleic acids with closed ends via covalent bonding involves incorporating a protelomerase binding site into a precursor molecule such that the protelomerase binding site is adjacent to the nucleic acid of interest. The nucleic acid of interest may consist of one or more of (a), (b), and (c), i.e., (a), (b), and (c); any combination of (a), (b), and (c); or (a) only, (b) only, or (c) only; exposure of this molecule to protelomerase causes the DNA to be cleaved and ligated at this site. Non-limiting examples of cell-free in vitro synthesis are described, for example, in US 9,109,250;US 6,451,563;Nucleic Acids Res. 2015 Oct 15; 43(18): el20;US 9499847;15 / 508,766;PCT / GB2017 / 052413; and Antisense & nucleic acid drug development 11:149-153 (2001), the entirety of which is incorporated herein by reference. DNA from cell-free in vitro synthesis is free from any prokaryotic DNA modifications.
[0095] Recombinant AAV vector genomes can be designed to have at least one wild-type ITR, synthetic ITR, or DD ITR, or a combination thereof, adjacent to an incomplete palindromic structure containing a protelomerase site, e.g., telRL. A template is used to generate a closed linear double-stranded nucleic acid vector when cleaved by telomerase and covalently closed ends are formed. In one embodiment, the vector includes two DD ITRs, an expression cassette, and telomerase-binding sites adjacent to each side of the DD ITRs, which can be cleaved by telomerase and form covalently closed ends. The closed linear DNA contains half of the protelomerase-binding site.
[0096] In addition, prokaryotic systems can be used. Within lysogenic bacteria, bacteriophage N15 exists as linear extrachromosomal DNA with covalently closed ends (see Rybchin VN, Svarchevsky AN (1999) The plasmid prophage N15: a linear DNA with covalently closed ends. Mol Microbiol 33:895-903). This DNA is produced by a cleaving-joining reaction carried out by a single enzyme, protelomerase, such as TelN (prokaryotic telomerase) [Deneke J, Ziegelin G, Lurz R, Lanka E (2000) The protelomerase of temperate Escherichia coli phage N15 has cleaving-joining activity. Proc Natl Acad Sci USA 97:7721-7726]. Protelomerase, such as TelN, recognizes target sequences within double-stranded DNA. The target site is an incomplete palindromic structure called telRL, formed by two halves, telR and telL, corresponding to the covalently closed ends of a linear prophage. This enzyme cleaves both DNA strands and connects the resulting ends to form a covalently closed hairpin structure. The resulting DNA molecule has two hairpin loops. TelN can linearize recombinant plasmids containing the telRL site [Deneke J, et al., (2000). Proc Natl Acad Sci USA 97:7721-7726]. Therefore, this enzyme can be used in plasmid DNA for expression in higher organisms.
[0097] In a particular embodiment, closed-end linear double-stranded nucleic acids are produced using an in vivo cell system. This method involves the use of cells expressing a protelomerase, e.g., TelN, or another protelomerase, where the protelomerase gene is under the control of a regulatory promoter, e.g., an inductive promoter, e.g., a small molecule regulatory promoter, or a temperature-sensitive promoter, e.g., a heat shock promoter. After sufficient production of AAV template DNA, or other nucleic acids of interest, or combinations thereof, protelomerase can be expressed, which will excise nucleic acids of interest from the template, e.g., nucleic acids containing one or more of (a) helper, (b) rep / cap, or (c) AAV genomes.
[0098] In a particular embodiment, an in vivo cell system is used to produce a nonviral DNA vector construct for delivering a predetermined nucleic acid sequence to target cells for sustained expression. The nonviral DNA vector comprises two DD-ITRs, which each include: an inverted terminal repeat having regions A, A', B, B', C, C', and D; a D' region; where the D and D' regions are complementary palindromic sequences approximately 5–20 nt in length, positioned adjacent to the A and A' regions; and a predetermined nucleic acid sequence (e.g., a heterologous gene to be expressed); where the two DD-ITRs are adjacent to the nucleic acid in a covalently closed nonviral DNA, and the closed linear vector includes a 1 / 2 protelomerase binding site at each end.
[0099] The TelN / telRL system described herein may be used to produce closed linear DNA fragments by either linearizing a parent plasmid containing one telRL site, or by cleaving an rAAV DNA fragment or non-viral vector fragment containing a promoter, a gene of interest, and a polyadenylation signal from a parent plasmid having two adjacent ITRs and further having two adjacent telRL sites in each segment. In one embodiment, at least one double "D" ITR is present. The resulting linearly covalently closed DNA molecule is functional in vivo.
[0100] This system includes recombinant host cells. Suitable host cells for use in this production system include microbial cells, such as bacterial cells, such as Escherichia coli (E. coli) cells, and yeast cells, such as budding yeast (S. cerevisiae). Mammalian host cells may also be used, including, for example, Chinese hamster ovary (CHO) cells of the K1 lineage (ATCC CCL 61) including the Pro5 variant (ATCC CRL 1281); fibroblast-like cells derived from SV40-transformed African green monkey kidneys of the CV-1 lineage (ATCC CCL 70), COS-1 lineage (ATCC CRL 1650), and COS-7 lineage (ATCC CRL 1651); human cancer cells including mouse L cells, mouse 3T3 cells (ATCC CRL 1658), mouse C127 cells, human embryonic kidney cells of the 293 lineage (ATCC CRL 1573), and those of the HeLa lineage (ATCC CCL 2); and neuroblastoma cells of the IMR-32 (ATCC CCL 127), SK-N-MC (ATCC HTB 10), and SK-N-SH (ATCC HTB 11) lines.
[0101] The host cell is designed to encode at least one recombinase. The host cell is also designed to encode two or more recombinases. The term “recombinase” refers to an enzyme that catalyzes DNA exchange at specific target sites, e.g., palindromic sequences, by excision / insertion, inversion, translocation, and exchange. Examples of recombinases suitable for use in this system include, but are not limited to, TelN, Tel, Tel(gp26 K02 phage), Cre, Flop, phiC31, Int, and other lambda phage integrases, e.g., phi80, HK022, and HP1 recombinases. The target sequences of each of these recombinases are as follows: telRL part: TIFF0007846625000001.tif11143; pal site: TIFF0007846625000002.tif4143; φK02 telRL part: TIFF0007846625000003.tif4128; loxP site: TIFF0007846625000004.tif4128; FRT part: TIFF0007846625000005.tif4128; phiC31 attP site: TIFF0007846625000006.tif18145; and λattP site: TIFF0007846625000007.tif18145.
[0102] Recombinase expression is controlled under the regulation of any regulatory or inductive promoter, i.e., a promoter that is activated under specific physical or chemical conditions or stimuli. Examples of suitable promoters include thermoregulatory promoters, e.g., the λpL promoter, the IPTG regulatory lac promoter, the glucose regulatory ara promoter, the T7 polymerase regulatory promoter, the cold shock-inducible cspA promoter, the pH-inducible promoter, or combinations thereof, e.g., the tac(T7 and lac) dual regulatory promoter.
[0103] Another method for producing covalently closed-ended linear DNA lacking bacterial sequences is known in the art, for example, by the formation of minicircular DNA from plasmids (see, for example, U.S. Patents 8,828,726 and 7,897,380, whose entire contents are incorporated by reference). For example, one cell-free synthesis method combines the use of two enzymes, Phi29 DNA polymerase and protelomerase, to produce a highly fidelity, covalently closed linear DNA construct. This construct does not contain antibiotic resistance markers and therefore eliminates the packaging of these sequences. This process can amplify AAV genomic DNA on a commercial scale in a two-week process while maintaining the ITR sequence required for viral production.
[0104] Phi29 DNA polymerase is used to amplify double-stranded DNA by rolling circle amplification, and protelomerase is used to generate linear DNA closed by covalent bonds. These are combined with a state-of-the-art purification process to produce a pure DNA product containing only the sequence of interest. Phi29 DNA polymerase exhibits high fidelity (1 × 10⁻⁶). 6 ~1 × 10 7It possesses high processability (approximately 70 kbp). These characteristics make this polymerase particularly suitable for large-scale production of GMP DNA. Protelomerase (also known as telomeri-resolverase) catalyzes the formation of covalently closed hairpin ends on linear DNA and has been identified in several phages, bacterial plasmids, and bacterial chromosomes. A pair of protelomerases recognize an inverted palindromic DNA recognition sequence and catalyze strand breaks, strand exchanges, and DNA ligation to generate closed linear hairpin ends. The formation of these closed-ended structures makes the DNA resistant to exonuclease activity, thereby enabling simpler purification and potentially improving stability and expression duration.
[0105] Protelomerase binding site In one embodiment, the DNA construct includes a protelomerase binding site, and the covalently closed ends are formed by protelomerase enzyme activity (e.g., in vitro). The protelomerase binding sites and corresponding protelomerases used in the present invention are provided in U.S. Patent No. 9,499,847, the entirety of which is incorporated herein by reference. The protelomerase target sequences used in the present invention preferably include double-stranded palindromes (complete inverted repeats) of at least 14 base pairs in length. Preferred complete inverted repeat sequences include sequences with SEQ ID NO: 1-6 and their variations. TIFF0007846625000008.tif4128 is the 22-base consensus sequence of a complete inverted repeat in an isothermal bacteriophage. The base pairs of the complete inverted repeat are conserved between different bacteriophages at specific positions, and sequence flexibility may be observed at other positions. Therefore, SEQ ID NO:1 is the minimal consensus sequence of the complete inverted repeat sequence used in conjunction with bacteriophage protelomerase in the process of the present invention.
[0106] Within the consensus defined by SEQ ID NO:1, TIFF0007846625000009.tif4128 is a complete inverted repeat sequence used with E. coli phage N15 and Klebsiella phage Phi KO2 protelomerase. It is also used within the consensus defined by SEQ ID NO:1, specifically SEQ ID NO:3~5: TIFF0007846625000010.tif25145 is a completely inverted repeat sequence that is particularly preferred for use with protelomerases derived from Yersinia phage PY54, Halomonas phage phiHAP-1, and Vibriophage VP882, respectively. TIFF0007846625000011.tif4128 is a particularly preferred complete inverted repeat sequence for use with Borrelia burgdorferi protelomerase. This complete inverted repeat sequence originates from lpB31.16, a linear, covalently closed plasmid found in Borrelia burgdorferi. This 14-nucleotide sequence is shorter than the bacteriophage's 22-bp consensus complete inverted repeat (SEQ ID NO:1), suggesting that bacterial protelomerases may differ from bacteriophage protelomerases in terms of specific target sequence requirements. However, all protelomerase target sequences share a common structural motif of complete inverted repeats.
[0107] The complete inverted repeat sequence may be longer than 22 bp, depending on the specific protelomerase requirements used in the process of the present invention. Therefore, in some embodiments, the complete inverted repeat may be at least 30, at least 40, at least 60, at least 80, or at least 100 base pairs long. Examples of such complete inverted repeat sequences include SEQ ID NO: 7-9 and their variants. TIFF0007846625000012.tif32146SEQ ID NO:7~9 and their variants are particularly preferred for use with protelomerases derived from vibriophage VP882, Yersinia phage PY54, and halomonas phage phi HAP-1, respectively.
[0108] A complete inverted repeat may be adjacent to further inverted repeat sequences. Adjacent inverted repeats may be complete or incomplete repeats, i.e., they may be completely symmetric or partially symmetric. Adjacent inverted repeats may be continuous or discontinuous with respect to the central palindrome. The protelomerase target sequence may contain an incomplete inverted repeat sequence containing a complete inverted repeat sequence of at least 14 base pairs in length. An example is SEQ ID NO: 14. The incomplete inverted repeat sequence may contain a complete inverted repeat sequence of at least 22 base pairs in length. An example is SEQ ID NO: 10.
[0109] In a particular embodiment, the protelomerase target sequences include sequences with SEQ ID NO: 10-14 or their variants. TIFF0007846625000013.tif59146
[0110] Sequences with SEQ ID NO:10-14 include a complete inverted repeat sequence as defined above, and further include adjacent sequences from related organisms. Protelomerase target sequences containing the sequence of SEQ ID NO:10 or its variants are preferred for use in combination with Escherichia coli N15 TelN protelomerase and its variants. Protelomerase target sequences containing the sequence of SEQ ID NO:11 or its variants are preferred for use in combination with Klebsiella phage Phi K02 protelomerase and its variants. Protelomerase target sequences containing the sequence of SEQ ID NO:12 or its variants are preferred for use in combination with Yersinia phage PY54 protelomerase and its variants. Protelomerase target sequences containing the sequence of SEQ ID NO:13 or its variants are preferred for use in combination with Vibriophage VP882 protelomerase and its variants. Protelomerase target sequences containing the sequence of SEQ ID NO:14 or its variants are preferred for use in combination with Borrelia burgdorferi protelomerase.
[0111] Variants of any palindromic sequence or protelomerase target sequence described herein include its homologs or variants. Variants include shortening, substitution, or deletion of the native sequence. A variant sequence is any sequence whose presence in a DNA template enables its conversion to closed linear DNA by the enzymatic activity of protelomerase. This can be readily determined by the use of a suitable assay for the formation of closed linear DNA. Any suitable assay reported in the Art may be used. An example of a suitable assay is described in Deneke et al., PNAS (2000) 97, 7721-7726. In certain embodiments, the variant achieves protelomerase binding and activity comparable to that observed in the native sequence. Preferred examples of variants of palindromic sequences described herein include shortened palindromic sequences that preserve the complete repeat structure and can still form closed linear DNA. However, variant protelomerase target sequences can be modified such that they no longer preserve the complete palindrome, insofar as they can act as substrates for protelomerase activity.
[0112] Those skilled in the art will understand that, based on the structural principles outlined above, suitable protelomerase target sequences for use in the present invention can be readily identified. Candidate protelomerase target sequences can be screened for their ability to promote the formation of closed linear DNA using the assay described above.
[0113] Generation of closed linear DNA constructs by covalent bonding The covalently closed vectors described herein can be generated in vitro or in vivo. The vectors are covalently closed linear double-stranded vectors capable of expressing a transgene in target cells. One example of an in vitro process for the production of closed linear expression cassette DNA, including, for example, the ITR described herein, includes (a) contacting a DNA template containing at least one expression cassette adjacent to a protelomerase target sequence on either side with at least one DNA polymerase in the presence of one or more primers under conditions that promote amplification of the template, and (b) contacting the amplified DNA produced in (a) with at least one protelomerase under conditions that promote the formation of closed linear expression cassette DNA. The closed linear expression cassette DNA product may or may essentially consist of a eukaryotic promoter functionally linked to a coding sequence of interest, and optionally, a eukaryotic transcription termination sequence. Closed linear expression cassette DNA products may further lack one or more bacterial or vector sequences, typically selected from the group consisting of (i) bacterial origins of replication, (ii) bacterial selection markers (typically antibiotic resistance genes), and (iii) unmethylated CpG motifs.
[0114] As outlined above, any DNA template containing at least one protelomerase target sequence can be amplified according to the process of the present invention. Therefore, while the production of therapeutic DNA molecules, such as DNA vaccines or other therapeutic proteins and nucleic acids, is preferred, the process of the present invention can be used to produce any type of closed linear DNA. The DNA template may be double-stranded (ds) or single-stranded (ss) DNA. Double-stranded DNA templates may be open circular double-stranded DNA, closed circular double-stranded DNA, open linear double-stranded DNA, or closed linear double-stranded DNA. Preferably, the template is closed circular double-stranded DNA. Closed circular dsDNA templates are particularly preferred for use with RCA (rolling circle amplification) DNA polymerase. Circular dsDNA templates may be in the form of plasmids or other vectors typically used to contain genes for bacterial growth. Therefore, the process of the present invention can be used to amplify any commercially available plasmid or other vector, such as a commercially available DNA drug, and then convert the amplified vector DNA into closed linear DNA.
[0115] Open circular dsDNA can be used as a template when the DNA polymerase is a strand substitution polymerase that can initiate amplification from a nicked DNA strand. In this embodiment, the template can be pre-incubated with one or more enzymes that add nicks to one or more sites on the template DNA strand. Closed linear dsDNA can also be used as a template. The closed linear dsDNA template (starting material) may be identical to the closed linear DNA product. When closed linear DNA is used as a template, it can be incubated under denaturing conditions that form single-stranded circular DNA before or during conditions that promote amplification of the template DNA. In one embodiment, closed-ended linear double-stranded DNA is produced in eukaryotic cells, e.g., insect cells described in PCT publications WO 2019032102 and WO 2019169233. In one embodiment, the DNA is not produced in eukaryotic cells, and the DNA lacks a eukaryotic sequence. In one embodiment, a closed-end linear double-stranded DNA vector is produced as described in PCT Publication WO 2019143885.
[0116] As outlined above, the DNA template typically comprises or essentially comprises an expression cassette consisting of, as described above, a eukaryotic promoter functionally linked to a sequence encoding the protein of interest and optionally a eukaryotic transcription termination sequence. Optionally, the expression cassette may be a minimal expression cassette lacking one or more bacterial or vector sequences selected from the group typically consisting of (i) bacterial origins of replication, (ii) bacterial selection markers (typically antibiotic resistance genes), and (iii) unmethylated CpG motifs, as defined above.
[0117] Cell culture medium As used herein, the terms “cell culture medium” and “culture medium” refer to a nutrient solution used to grow cells in vitro, which typically provides at least one component from one or more of the following categories: 1) an energy source, usually in the form of carbohydrates, e.g., glucose; 2) one or more of the total essential amino acids, usually the basic set of 20 amino acids; 3) vitamins and / or other organic compounds required in low concentrations; 4) free fatty acids; and 5) trace elements, defined as inorganic compounds or naturally occurring elements, typically required in very low concentrations, usually in the micromolar range. The nutrient solution may optionally be supplemented with additional components to optimize cell growth and / or transfection.
[0118] The cell cultures of the present invention are prepared in a medium suitable for the specific host cells being cultured. Suitable cell culture media that can be used to culture specific cell types will be apparent to those skilled in the art. Exemplary commercially available media include, for example, Ham's F 10 (SIGMA), Minimum Essential Medium (MEM, SIGMA), RPMI-1640 (SIGMA), Dulbecco's modified Eagle's medium (DMEM, SIGMA); Iscove modified Dulbecco medium containing 10% fetal bovine serum (Gibco) (see Xiao et al, Production of High-Titer Recombinant Adeno-Assoeiated Virus Vectors in the Absence of Helper Adenovirus, J Virol, 72: 2224-2232 (1998)) and DMEM / F 12 (Life Technologies). Any of these or other suitable media may be supplemented as needed with hormones and / or other growth factors (e.g., non-limitingly, insulin, transferrin, or epidermal growth factor), salts (e.g., sodium chloride, calcium, magnesium, and phosphates), buffers (e.g., HEPES), nucleosides (e.g., adenosine and thymidine), antibiotics (e.g., puromycin, neomycin, hygromycin, blasticidine, or gentamicin®), trace elements (defined as inorganic compounds typically present at final concentrations in the micromolar range), lipids (e.g., linoleic acid or other fatty acids) and their suitable carriers, and glucose or an equivalent energy source, and / or may be modified to promote the production of recombinant glycoproteins having a low mannose content, as described herein.
[0119] Depending on the requirements of the specific cell line or method used, the cell medium may contain serum additives, such as fetal bovine serum or serum substitutes. Examples of serum substitutes (for serum-free cell growth) are TCH®, TM-235®, and TCH®, which are commercially available from Celox (St. Paul, Minn.) and KOSR (Knockout (KO) Serum Substitute; Life Technologies).
[0120] In any one particular aspect of these aspects, host cells may be grown in serum-free, protein-free, growth factor-free, and / or peptone-free media. The term “serum-free” as applied to media generally includes any mammalian cell culture medium that does not contain serum, e.g., fetal bovine serum (FBS). The term “growth factor-free” as applied to media includes any medium that does not contain exogenous growth factors (e.g., insulin, IGF-1). The term “peptone-free” as applied to media includes any medium that does not contain exogenous protein hydrolysates, e.g., animal and / or plant protein hydrolysates.
[0121] In any one particular aspect of these aspects, the cell culture medium is serum-free. “Serum-free” is understood to mean that the concentration of serum in the medium is preferably less than 0.1% (v / v), more preferably less than 0.01% (v / v). “Essentially serum-free” means that there is less than about 2% (v / v) of serum, more preferably less than about 1%, even more preferably less than about 0.5% (v / v), and still even more preferably less than about 0.1% (v / v). When a defined serum-free medium is used, the medium is typically enriched with high concentrations of certain amino acids, vitamins, and / or trace elements (see, for example, U.S. Patent No. 5,122,469 to Mather et al. and U.S. Patent No. 5,633,162 to Keen et al.).
[0122] "Culture" or "incubation" (used interchangeably with respect to the growth, transformation and / or maintenance of host cells or host cell lines) is carried out under conditions of sterilization, temperature, pH, atmospheric gas components (e.g., oxygen, carbon dioxide, dinitrogen), humidity, culture vessel, culture volume, subculturing, operation, and other parameters that are appropriate for the intended purpose and are conventionally known in the field of mammalian cell culture.
[0123] In certain embodiments, the culture medium contains amino acids at concentrations of approximately 1 mM to approximately 100 mM. For example, the culture medium contains amino acids at concentrations of approximately 1 mM to approximately 20 mM, for example, approximately 5 mM to approximately 15 mM. In certain embodiments, the culture medium contains amino acids at concentrations of approximately 7.5 mM to approximately 12.5 mM. For example, the culture medium contains amino acids at a concentration of approximately 10 mM.
[0124] In certain embodiments, the culture medium contains L-glutamine or a dipeptide containing L-glutamine. An example of a dipeptide containing L-glutamine is L-alanyl-L-glutamine (e.g., GLUTAMAX®). Typically, the culture medium contains L-glutamine or a dipeptide containing L-glutamine at concentrations ranging from about 1 mM to about 100 mM. For example, the culture medium contains L-glutamine or a dipeptide containing L-glutamine at concentrations ranging from about 1 mM to about 20 mM, for example, about 5 mM to about 15 mM. In certain embodiments, the culture medium contains L-glutamine or a dipeptide containing L-glutamine at concentrations ranging from about 7.5 mM to about 12.5 mM. For example, the culture medium contains L-glutamine or a dipeptide containing L-glutamine at a concentration of about 10 mM.
[0125] In certain embodiments, the culture medium may also contain a nonionic surfactant polyol or surfactant. Exemplary nonionic surfactants include, but are not limited to, polysorbates, e.g., polysorbate 20 (TWEEN 20), polysorbate 28, polysorbate 40, polysorbate 60, polysorbate 65, polysorbate 80, polysorbate 81, and polysorbate 85; poloxamers, e.g., poloxamer 188, poloxamer 407; polyethylene polypropylene glycol; or polyethylene glycol (PEG). In any one or several embodiments of these aspects, the nonionic surfactant polyol or surfactant is a poloxamer. Examples of poloxamers include: Poloxamer 188 (P188), Pluronic® F127, Pluronic® F38, Pluronic® F68, Pluronic® F87, Pluronic® F108, Pluronic® 10R5, Pluronic® 17R2, Pluronic® 17R4, Pluronic® 25R2, Pluronic® 25R4, Pluronic® 31R1, Pluronic® F108 Cast Solid Surfacer, Pluronic® F108 NF, Pluronic® F108 Pastile, Pluronic® F108NF Prill, Poloxamer 338, Pluronic® F127 NF, Pluronic® F127 NF 500 BHT Prill, Pluronic® F127 NF Prill Poloxamer 407, Pluronic® F38 Pastile, Pluronic® F68 LF Pastile, Pluronic® F68 NF, Pluronic® F68 NF Prill, Pluronic® F68 Pastile, Pluronic® F77, Pluronic® F77 Micropastile, Pluronic® F87 NF, Pluronic® F87 NF Prill Poloxamer 237, Pluronic® F88, Pluronic® F88 Pastile, Pluronic® F98, Pluronic® FT L 61, Pluronic® L10, Pluronic® L101, Pluronic® L121, Pluronic® L31, Pluronic® L35, Pluronic® L43, Pluronic® L61, Pluronic® L62, Pluronic® L62 LF, Pluronic® L62D, Pluronic® L64, Pluronic® L81, Pluronic® L92, Pluronic® L44 NF This includes, but is not limited to, INH surfactant poloxamer 124, Pluronic® N3, Pluronic® P103, Pluronic® P104, Pluronic® P105, Pluronic® P123 surfactant, Pluronic® P65, Pluronic® P84, Pluronic® P85, etc.
[0126] The amount of nonionic surfactant polyol or surfactant in the culture medium may be at least about 0.01%, 0.015%, 0.02%, 0.025%, 0.03%, 0.035%, 0.04%, 0.045%, 0.05% (w / w, w / v, or v / v) or more. For example, the amount of nonionic surfactant polyol or surfactant in the culture medium may range from about 0.001% to about 1% (weight / volume). For example, the culture medium may contain nonionic surfactant polyol or surfactant at concentrations of about 0.01% to about 0.5%, about 0.015% to about 0.45%, about 0.02% to about 0.4%, or about 0.025% to about 0.35%. 0.1%. For example, the culture medium contains a nonionic surfactant polyol or surfactant at concentrations of approximately 0.01%, 0.015%, 0.02%, 0.025%, 0.03%, 0.035%, 0.04%, 0.045%, or 0.05%.
[0127] In certain embodiments, the culture medium includes an antifoaming agent. The term “antifoaming agent” refers to a chemical substance that, when added to a liquid, can substantially reduce the surfactant activity of that liquid, thereby substantially preventing the liquid from foaming. Exemplary antifoaming agents available in the present invention include, but are not limited to, high molecular weight silicones and other substances well known in the art with respect to such applications.
[0128] The amount of antifoaming agent in the culture medium may be at least about 0.01%, 0.015%, 0.02%, 0.025%, 0.03%, 0.035%, 0.04%, 0.045%, 0.05% (w / w, w / v, or v / v) or more. For example, the amount of antifoaming agent in the culture medium may range from about 0.001% to about 1% (weight / volume). For example, the culture medium may contain antifoaming agent at concentrations of about 0.01% to about 0.5%, about 0.015% to about 0.45%, about 0.02% to about 0.4%, or about 0.025% to about 0.35%. 0.1%. For example, the culture medium contains an antifoaming agent at concentrations of approximately 0.01%, 0.015%, 0.02%, 0.025%, 0.03%, 0.035%, 0.04%, 0.045%, or 0.05%.
[0129] As used herein, the term “cell line” refers to a population of cells capable of continuous or long-term growth and division in vitro. Often, a cell line is a clonal population derived from a single ancestral cell. Furthermore, it is known in the art that spontaneous or induced changes in karyotype can occur during the storage or transport of such clonal populations. Therefore, cells derived from a referenced cell line may not be strictly identical to their ancestral cells or culture, and the referenced cell line may include such variants.
[0130] Lysis of host cells In any one particular aspect of these aspects, the method includes a step of lysing the transfected host cells. Methods for lysing host cells in cell cultures are well known in the art. For example, a nonionic surfactant may be added to the cell culture or cell culture supernatant. Typically, the nonionic surfactant is added to the cell culture up to a final concentration of at least about 0.05%, 0.1%, 0.15%, 0.2%, 0.25%, 0.3%, 0.35%, 0.4%, 0.45%, 0.5%, 0.55%, 0.6%, 0.65%, 0.7%, 0.75%, 0.8%, 0.85%, 0.9%, 0.95%, 1% (w / v, w / w, or v / v) or higher. For example, nonionic surfactants are added to cell cultures up to a final concentration of approximately 0.05% to 1%, 0.1% to 0.95%, 0.15% to 0.9%, 0.2% to 0.85%, 0.25% to 0.8%, 0.3% to 0.75%, 0.35% to 0.65%, 0.4% to 0.6%, or 0.45% to 0.55%. In some embodiments, nonionic surfactants are added to cell cultures up to a final concentration of approximately 0.05%, 0.1%, 0.15%, 0.2%, 0.25%, 0.3%, 0.35%, 0.4%, 0.45%, 0.5%, 0.55%, 0.6%, 0.65%, 0.7%, 0.75%, 0.8%, 0.85%, 0.9%, 0.95%, or 1%. For example, nonionic surfactants can be added to cell cultures up to a final concentration of approximately 0.5%.
[0131] Typically, nonionic surfactants are mixed with the cell culture for a period sufficient to lyse host cells present in the cell culture or cell culture supernatant. For example, nonionic surfactants are mixed with the cell culture for a period of approximately 15 minutes to 2 hours. In some embodiments, nonionic surfactants are mixed with the cell culture for a period of approximately 30 minutes to 60 minutes.
[0132] Mixing may be carried out at ambient temperature or at high temperatures. For example, mixing with a nonionic surfactant may be carried out at temperatures of about 15°C to about 37°C. In some embodiments, mixing with a nonionic surfactant may be carried out at temperatures of about 18°C, 19°C, 20°C, 21°C, 22°C, 23°C, 24°C, 25°C, 26°C, 27°C, 28°C, 28°C, 30°C, 31°C, 32°C, 33°C, 34°C, 35°C, 36°C, or 37°C.
[0133] It should be noted that any desired nonionic surfactant can be used to lyse transfected host cells. Exemplary nonionic surfactants for lysing transfected host cells and classes of nonionic surfactants include: polyallylphenol polyethoxyethers; polyalkylphenol polyethoxyethers; polyglycol ether derivatives of saturated fatty acids; polyglycol ether derivatives of unsaturated fatty acids; polyglycol ether derivatives of aliphatic alcohols; polyglycol ether derivatives of alicyclic alcohols; fatty acid esters of polyoxyethylene sorbitan; alkoxylated vegetable oils; alkoxylated acetylenic dials; polyalkoxylated alkylphenols; fatty acid alkoxylates; sorbitan alkoxylates; sorbitol esters; C8-C 22Alkyl or alkenyl polyglycosides; polyalkoxystyrylallyl ethers; alkylamine oxides; block copolymer ethers; polyalkoxylated fatty acid glycerides; polyalkylene glycol ethers; linear aliphatic or aromatic polyesters; organosilicones; polyallylphenols; sorbitan ester alkoxylates; as well as mono and diesters of ethylene glycol and mixtures thereof; ethoxylated tristyrylphenol; ethoxylated aliphatic alcohols; ethoxylated lauryl alcohol; ethoxylated castor oil; as well as ethoxylated monylphenol; alkoxylated alcohols, amines or acids may be included. In any one or several aspects of these aspects, the nonionic surfactant for lysing host cells is selected from the group consisting of polyoxyethylene aliphatic alcohol ethers, polyoxyethylene alkylphenyl ethers, polyoxyethylene-polyoxypropylene block copolymers, alkyl glucosides, alkylphenol ethoxylates, preferably polysorbates, polyoxyethylene alkylphenyl ethers, and any combination thereof.
[0134] Specific exemplary nonionic surfactants for lysing transfected host cells include ECOSURF EH-9, polysorbates (e.g., polysorbate 20 (TWEEN 20), polysorbate 28, polysorbate 40, polysorbate 60, polysorbate 65, polysorbate 80, polysorbate 81, and polysorbate 85), ECOSURF EH-14, TWEEN 60 nonionic surfactant, PPG-PEG-PPG Pluronic 10R5, polyoxyethylene (18) tridecyl ether, polyoxyethylene (12) tridecyl ether, MERPOL SH surfactant, MERPOL OJ surfactant, MERPOL HCS surfactant, IGEPAL CO-720, IGEPAL CO-630, IGEPAL CA-720, Brij S20, Brij S10, Brij O10, Brij C10, BRIJ This includes, but is not limited to, O20, TERGITOL 15-S-7, ECOSURF SA-15, TERGITOL 15-S-9, TERGITOL 15-S-12, TERGITOL L-64, TERGITOL NP-7, TERGITOL NP-8, TERGITOL NP-9, TERGITOL NP-9.5, TERGITOL NP-10, TERGITOL NP-11, TERGITOL NP-12, and TERGITOL NP-13, as well as any combination thereof. In some embodiments, the nonionic surfactant for lysing transfected host cells is not Triton X-100.
[0135] In some embodiments, amphoteric surfactants may be added to cell cultures to lyse transfected host cells. Exemplary amphoteric surfactants include sulfonates, e.g., CHAPS(3-[(3-collamidopropyl)dimethylammonio]-1-propanesulfonate), CHAPSO(3-{(3-collamidopropyl)dimethylammonio}-2-hydroxy-1-propanesulfonate), 3-(decyldimethylammonio)propanesulfonate, 3-(dodecyldimethylammonio)propanesulfonate, 3-(N,N-dimethylmyristylamine) This includes, but is not limited to, monio)propanesulfonates, 3-(N,N-dimethyloctadecylammonio)propanesulfonates, 3-(N,N-dimethyloctylammonio)propanesulfonates, and 3-(N,N-dimethylpalmitylammonio)propanesulfonates; sultaines, e.g., cocamidopropyl hydroxysultaine; betaines, e.g., cocamidopropyl betaine; and phosphates, e.g., lecithin.
[0136] In some embodiments, the surfactant, for example, an amphoteric surfactant, may be an amine oxide surfactant. For example, an amine oxide surfactant may be added to a cell culture to lyse host cells. The amine oxide surfactant that may be used in the methods described herein is a trialkylamine N-oxide, for example, formula R 1 R 2 R 3 It can be an amine oxide of NO, where R 1 R is a substituted or unsubstituted alkyl or alkenyl containing approximately 8 to approximately 30 carbon atoms. 2 and R 3 These are independently substituted or unsubstituted alkyl or alkenyl groups containing about 1 to about 18 carbon atoms. Non-limiting examples of trialkylamine N-oxides and trialkylamine N-oxide surfactants used are described in WO1998055581, which is incorporated herein by reference in its entirety.
[0137] Lysate may contain impurities, such as host cell DNA (hcDNA). Therefore, this method may include a post-lysis step to remove or reduce the amount of impurities, such as hcDNA, from the lysate before isolating / purifying rAAV. Methods and compositions for reducing the amount of host cell DNA in cell cultures or cell culture supernatants are well known in the art. For example, cationic amines or nucleases may be added to the lysate.
[0138] In some embodiments, the post-lysis step includes adding a selective precipitating agent to reduce or remove impurities, such as hcDNA, from the lysate. As used herein, “selective precipitating agent” refers to any agent, compound, etc., that, when added to a preparation containing a population of recombinant virus particles and contaminating nucleic acid molecules, results in the selective precipitation of at least a substantial amount of contaminating nucleic acid molecules from the recombinant virus particles. Exemplary agents added to the lysate in the post-lysis step include, but are not limited to, cetyltriethylammonium bromide, cetylpyridinium chloride, benzethonium chloride, tetradecyltrimethylammonium chloride, polyethyleneimine, and combinations thereof.
[0139] In some embodiments, a nuclease, such as an endonuclease, is added to the lysate to reduce or remove impurities, such as hcDNA. Exemplary endonucleases include those derived from both prokaryotes and eukaryotes. In some embodiments, the nuclease is BENZONASE® or a salt-activated nuclease (SAN).
[0140] Typically, nucleases are added to the lysate up to a final concentration of at least approximately 0.05%, 0.1%, 0.15%, 0.2%, 0.25%, 0.3%, 0.35%, 0.4%, 0.45%, 0.5%, 0.55%, 0.6%, 0.65%, 0.7%, 0.75%, 0.8%, 0.85%, 0.9%, 0.95%, 1% (w / v, w / w, or v / v) or higher. For example, the nuclease is added to the lysate up to a final concentration of approximately 0.05% to 1%, 0.1% to 0.95%, 0.15% to 0.9%, 0.2% to 0.85%, 0.25% to 0.8%, 0.3% to 0.75%, 0.35% to 0.65%, 0.4% to 0.6%, 0.45% to 0.55%, 0.05% to 0.4%, or 0.2% to 0.4%. In some embodiments, the nuclease is added to the lysate up to a final concentration of about 0.05%, 0.1%, 0.15%, 0.2%, 0.25%, 0.3%, 0.35%, 0.4%, 0.45%, 0.5%, 0.55%, 0.6%, 0.65%, 0.7%, 0.75%, 0.8%, 0.85%, 0.9%, 0.95%, or about 1%. For example, the nuclease is added to the lysate up to a final concentration of about 0.2%. In some embodiments, the nuclease can be added to the lysate up to a final concentration of about 0.05% to about 0.4%.
[0141] Typically, the drug or nuclease is mixed with the lysate for approximately 15, 20, 30, 35, 40, 45, 50, 55 minutes or longer. In some embodiments, the drug or nuclease is mixed with the lysate for a period of approximately 10 minutes to approximately 4 hours. For example, the drug or nuclease is mixed with the lysate for a period of approximately 15 minutes to approximately 3 hours. In some embodiments, the drug or nuclease is mixed with the lysate for a period of approximately 30 minutes to approximately 120 minutes. For example, the drug or nuclease is mixed with the lysate for a period of approximately 30 minutes.
[0142] In some embodiments, the method includes a step of purifying the dissolved product. For example, the method includes a step of purifying the dissolved product by deep filtration to produce a purified composition.
[0143] Isolation / purification of rAAV Various methods for isolating / purifying rAAV from lysates derived from host cell lines are known in the Art. Such methods include, but are not limited to, density gradient, tangential flow filtration, affinity chromatography, size exclusion chromatography, cation exchange chromatography, anion exchange chromatography, hydroxyl apatite chromatography, hydrophobic interaction chromatography, and various combinations thereof. Exemplary methods for isolating / purifying rAAV from host cell lysates are described, for example, in U.S. Patent No. 6,592,123; U.S. Patent No. 9,862,936; International Patent Publication No. WO2019 / 241535; International Patent Publication No. W02005 / 035743; and International Patent Publication No. WO2019 / 212921, the entire contents of which are incorporated herein by reference.
[0144] Aspects of the present invention can be represented by the following numbered embodiments 1 to 103. Embodiment 1: A method for producing recombinant adeno-associated virus (rAAV) lacking a prokaryotic sequence, (i) Optionally, a step of culturing a human embryonic cell line in a suspension state. (ii) A step of transfecting a human embryonic cell line with a closed-end linear double-stranded rAAV vector nucleic acid comprising (a) a nucleic acid sequence encoding a helper protein sufficient for rAAV replication, (b) a nucleic acid sequence encoding AAV rep and AAV cap genes, and (c) a xenotransgene functionally linked to at least one inverted-end repeat (ITR) sequence and one or more regulatory elements. (iii) The step of incubating the transfected human cell line for approximately 40 to 400 hours, (iv) Lysizing the transfected human cell line and purifying the nucleic acid sequence encoding rAAV. The method comprising, thereby producing rAAV. Embodiment 2: The method according to claim 1, wherein the cells of the cell line are transfected in a suspension state. Embodiment 3: The method according to any one of claims 1 to 2, wherein the human embryonic cell line is a suspension-adapted serum-free cell line derived from a human fetal kidney cell line. Embodiment 4: The method according to any one of claims 1 to 3, wherein the AAV rep and AAV cap genes are derived from different serotypes. Embodiment 5: The method according to any one of claims 1 to 3, wherein the AAV rep and AAV cap genes originate from the same serotype. Embodiment 6: The method according to any one of claims 1 to 5, wherein the AAV rep gene is the AAV2 rep gene and the AAV cap gene is the AAV8 cap gene. Embodiment 7: The method according to any one of claims 1 to 6, wherein the AAV ITR and AAV cap genes are derived from different serotypes. Embodiment 8: The method according to any one of claims 1 to 6, wherein the AAV ITR and AAV cap gene originate from the same serotype. Embodiment 9: The method according to any one of claims 1 to 8, wherein the AAV inverted terminal repeat (ITR) sequence is an adeno-associated virus 2 inverted terminal repeat (ITR) sequence. Embodiment 10: The method according to any one of claims 1 to 9, wherein the AAV ITR sequence is derived from the AAV2 serotype or from a serotype selected from the group consisting of AAV1, 3a, 3b, 4, 5, 6, 7, 8, 9, 10, 11, and 13. Embodiment 11: The method according to any one of claims 1 to 10, wherein the AAV ITR sequence is synthetic. Appearance 12: 1 × 10 6 The total amount of nucleic acids transfected from (a), (b), and (c) per individual cell is less than 2 μg, and optionally, 1 × 10⁻⁶ 6 The method according to any one of claims 1 to 11, wherein the total amount of nucleic acids transfected from (a), (b), and (c) per cell is less than 1 Eg. Embodiment 13: The method according to any one of claims 1 to 12, wherein the ratio of (a):(b):(c) is approximately 0.5 to 1.75: approximately 0.75 to 2.25: approximately 0.5 to 1.75 (weight:weight:weight), and optionally the ratio of (a):(b):(c) is approximately 1: approximately 1 to 1.6: approximately 1 (weight:weight:weight). Embodiment 14: The method according to any one of claims 1 to 13, wherein (a), (b), and (c) are transfected using a transfection composition comprising (a), (b), and (c) and a stable cationic polymer, wherein the ratio of the stable cationic polymer to the total amount of nucleic acids from (a), (b), and (c) is about 1:1 to about 3:1 (weight / weight), and optionally, the ratio of the stable cationic polymer to the total amount of nucleic acids from (a), (b), and (c) is about 1.5:1. Embodiment 15: The method according to any one of claims 1 to 14, wherein each of (a), (b), and (c) is provided on one or more closed-ended linear double-stranded nucleic acid molecules. Embodiment 16: The method according to any one of claims 1 to 15, wherein the nucleic acids to be transfected (a), (b), and (c) are synthetic nucleic acids and have no eukaryotic or prokaryotic DNA modifications. Embodiment 17: The method according to any one of claims 1 to 16, wherein the nucleic acid sequence encoding a helper protein sufficient for rAAV replication includes a nucleotide sequence encoding an adenovirus helper (Ad helper) protein, and optionally, the nucleic acid sequence encoding a helper protein sufficient for rAAV replication includes nucleotide sequences encoding adenovirus helper proteins E2A and E4. Embodiment 18: The titer of rAAV is at least 9.3 × 10⁻⁶ 13 individual vector genomes / 3.0 × 10 9 The method according to any one of claims 1 to 17, wherein the transfected cells are living cells. Embodiment 19: The method according to any one of claims 1 to 18, wherein a suspension of human embryonic cells is cultured gradually in increasing volume before transfection. Embodiment 20: The method according to any one of claims 1 to 19, wherein the culture volume is gradually increased from a volume of about 50 ml to a volume of about 2000 liters. Embodiment 21: The method according to any one of claims 1 to 20, wherein an amino acid at a concentration of about 1 mM to about 20 mM is contained in the culture volume. Embodiment 22: The method according to any one of claims 1 to 21, wherein the culture medium having a volume of about 5 liters contains an amino acid at a concentration of about 10 mM. Embodiment 23: The method according to claim 21 or 22, wherein the amino acid is L-glutamine or L-alanyl-L-glutamine (Glutamax®). Embodiment 21: The method according to any one of claims 1 to 24, wherein a culture medium having a volume of about 50 liters comprises at least about 1 mM to about 20 mM of L-glutamine, at least about 0.01% to about 1% of a nonionic surfactant polyol or surfactant, and at least about 0.001% to about 1% of an antifoaming agent. Embodiment 24: The method according to claim 24, wherein the nonionic surfactant polyol comprises pluronic acid. Apparatus 26: Cultured human embryonic cell line contains approximately 3.0 × 10⁶ viable cells. 6 ~Approx. 1×10 8 The method according to any one of claims 1 to 25, comprising a cell density of cells / ml. Apparatus 27: Cultured human embryonic cell line contains approximately 4.0 × 10⁶ viable cells. 6 From approximately 6 x 10 6 Up to pieces / ml, or optionally approximately 2.5 x 10 7 The method according to any one of claims 1 to 26, comprising a cell density of up to cells / ml. Embodiment 28: The method according to any one of claims 1 to 27, further comprising the steps of (i) adding about 1 liter of culture medium to transfected cells, and (ii) adding a cationic polymer in a polymer-to-DNA ratio of about 1:1 to about 3:1 over a time period of about 10 minutes to about 60 minutes. Embodiment 29: The method according to claim 28, wherein the cationic polymer is added over a time period of about 1 minute to about 10 minutes in a polymer-to-DNA ratio of 2.2:1. Embodiment 30: The method according to any one of claims 14 to 29, wherein the cationic polymer comprises a fully hydrolyzable linear polyethyleneimine (PEI). Embodiment 31: The method according to any one of claims 1 to 30, wherein the temperature of the culture medium containing the human embryonic cell suspension is raised to 37°C about 12 to 36 hours before transfection. The method according to claim 27, wherein the culture medium is subjected to air sparging at a flow rate of approximately 0.1 LPM to approximately 1.0 LPM. The method according to claim 27, wherein the culture medium is subjected to air sparging at a flow rate of approximately 0.5 LPM. Embodiment 34: A method for producing a population of high-titer recombinant adeno-associated viruses (rAAV) lacking a prokaryotic sequence, (i) A step of transfecting a mammalian cell line with a closed-end linear double-stranded rAAV vector nucleic acid comprising (a) a nucleic acid sequence encoding a helper protein sufficient for rAAV replication, (b) nucleic acid sequences encoding rep and cap genes, and (c) a xenotransgene functionally linked to at least one ITR and one or more regulatory elements, wherein 1 × 10 6 The total amount of nucleic acids transfected from (a), (b), and (c) per individual cell is less than 2 μg, for example, less than 1 μg, in the process, (ii) A step of culturing the transfected cells for at least 24 hours, for example, at least 40 hours, and (iii) A step of collecting transfected cells and purifying the produced rAAV vector particles, It includes, and the titer of rAAV is at least 9.3 × 10⁻⁶. 13 individual vector genomes / 3.0 × 10 9 The method, wherein each cell is a living transfect cell. Embodiment 35: The method according to claim 34, wherein the mammalian cell line is a suspension cell line and the cells are transfected in a suspension state. Embodiment 36: The method according to any one of claims 34 or 35, wherein the cell line is derived from a human fetal kidney cell line. Embodiment 37: The method according to any one of claims 34 to 36, wherein the mammalian cell line is a suspension-adapted serum-free cell line. Embodiment 38: The method according to any one of claims 34 to 37, wherein the ratio of (a):(b):(c) is approximately 0.5 to 1.75: approximately 0.75 to 2.25: approximately 0.5 to 1.75 (weight:weight:weight), for example, the ratio of (a):(b):(c) is approximately 1: approximately 1 to 1.6: approximately 1 (weight:weight:weight). Embodiment 39: The method according to any one of claims 34 to 38, wherein (a), (b), and (c) are transfected using a transfection composition comprising (a), (b), and (c) and a stable cationic polymer, wherein the ratio of the stable cationic polymer to the total amount of nucleic acids from (a), (b), and (c) is about 1:1 to about 3:1 (weight / weight), for example, the ratio of the stable cationic polymer to the total amount of nucleic acids from (a), (b), and (c) is about 1.5:1. Embodiment 40: The method according to any one of claims 34 to 39, wherein each of (a), (b), and (c) is provided on one or more closed-ended linear double-stranded nucleic acid molecules. Embodiment 41: The method according to any one of claims 34 to 40, wherein the nucleic acids to be transfected (a), (b), and (c) are synthetic nucleic acids and have no eukaryotic or prokaryotic DNA modifications. Embodiment 42: (a) The method according to any one of claims 34 to 41, wherein the nucleic acid sequence encoding a helper protein sufficient for rAAV replication comprises a nucleotide sequence encoding an Ad helper protein, and optionally, the nucleic acid sequence encoding a helper protein sufficient for rAAV replication comprises nucleotide sequences encoding adenovirus helper proteins E2A and E4. Embodiment 43: The method according to any one of claims 34 to 42, wherein the total amount of DNA from (a), (b), and (c) is optionally 0.6, 0.7, 0.75, 0.8, 0.9, 1, 1.2, 1.4, 1.6, or 1.8 Eg. Embodiment 44: The method according to any one of claims 34 to 43, wherein a suspension of mammalian cell lines is gradually cultured in gradually increasing volume of culture medium before transfection. Embodiment 45: The method according to any one of claims 34 to 44, wherein the culture volume is gradually increased from a volume of about 50 ml to a volume of about 2000 liters. Embodiment 46: The method according to any one of claims 34 to 45, wherein an amino acid at a concentration of about 1 mM to about 20 mM is contained in the culture volume. Embodiment 47: The method according to any one of claims 34 to 46, wherein the culture medium having a volume of about 5 liters contains an amino acid at a concentration of about 10 mM. Embodiment 48: The method according to any one of claims 34 to 47, wherein the amino acid is L-glutamine. Embodiment 49: The method according to any one of claims 34 to 48, wherein the cells are in a culture volume of 50 to 100 liters. Embodiment 50: Infectious particle titer of at least 3 × 10 9 The method according to any one of claims 34 to 49, wherein the concentration is TCID50 / ml. Embodiment 51: The method according to any one of claims 34 to 50, wherein the AAV Rep and AAV Cap genes are derived from the same AAV serotype. Embodiment 51: The method according to any one of claims 34 to 50, wherein the AAV Rep and AAV Cap genes are derived from different AAV serotypes. Embodiment 53: The method according to any one of claims 34 to 52, wherein the AAV ITR and AAV Cap genes are derived from the same AAV serotype. Embodiment 54: The method according to any one of claims 34 to 52, wherein the AAV ITR and AAV Cap genes are derived from different AAV serotypes. Embodiment 55: The method according to any one of claims 34 to 54, wherein the AAV ITR sequence is derived from AAV2 or from a serotype selected from the group consisting of AAV1, 3a, 3b, 4, 5, 6, 7, 8, 9, 10, 11, and 13. Embodiment 56: The method according to any one of claims 34 to 55, wherein the AAV ITR sequence is synthetic. Embodiment 57: A method for producing a population of purified recombinant adeno-associated viruses (rAAV) lacking a prokaryotic sequence, (i) A step of transfecting a mammalian cell line suspended in a culture medium with a transfection composition, wherein the transfection composition comprises (a) a nucleic acid sequence encoding a helper protein sufficient for rAAV replication, (b) a nucleic acid sequence encoding rep and cap genes, (c) a closed-ended linear double-stranded rAAV vector nucleic acid comprising at least one ITR and a heterologous transgene functionally linked to one or more regulatory elements, and (d) a stable cationic polymer, wherein the ratio of the stable cationic polymer to the total amount of nucleic acid components from (a), (b), and (c) is at least 1:1, for example, the ratio of the stable cationic polymer to the total amount of nucleic acid components from (a), (b), and (c) is at least 1.5:1. (ii) A step of culturing the transfected cell line for at least 24 hours, for example, at least 40 hours. (iii) the step of collecting the transfected cell line of step (ii), and (iii) Process of purifying rAAV The purified virus contains 2 × 10 4 The method having a particle-to-infectivity ratio of less than vg / TCID50. Embodiment 57: The method according to claim 57, wherein the mammalian cell line is a suspension cell line, and the cells are transfected in a suspension state. Embodiment 59: The method according to any one of claims 57 to 58, wherein the mammalian cell line is derived from a human fetal kidney cell line. Embodiment 60: The method according to any one of claims 57 to 59, wherein the human embryonic cell line is a suspension-adapted serum-free cell line derived from a human fetal kidney cell line. Embodiment 61: The method according to any one of claims 57 to 60, wherein the ratio of the total amount of nucleic acid components from (a), (b), and (c) is about 1.75:1 to about 2.75:1, for example, the ratio of the total amount of nucleic acid components from (a), (b), and (c) is about 2:1. Embodiment 62: The method according to any one of claims 57 to 61, wherein the stable cationic polymer comprises a fully hydrolyzable linear polyethyleneimine (PEI). Embodiment 63: The method according to any one of claims 57 to 62, wherein the stable cationic polymer comprises a fully hydrolyzable linear polyethyleneimine, and the PEI to nucleic acid ratio is selected from the group consisting of 1.2:1, 1.4:1, 1.6:1, 1.8:1, 2:1, 2.5:1, 2.8:1, and 2.2:1. Embodiment 64: The method according to any one of claims 57 to 63, wherein the temperature of the culture medium containing the cell suspension is raised to 37°C about 12 to 36 hours before transfection. Embodiment 65: The method according to any one of claims 57 to 64, wherein the culture medium is subjected to air sparging at a flow rate of about 0.1 LPM to about 1.0 LPM. Embodiment 66: The method according to any one of claims 57 to 65, wherein the culture medium is subjected to air sparging at a flow rate of about 0.5 LPM. Embodiment 66: The method according to any one of claims 57 to 66, wherein the transfection composition is added to the suspended cells over a time period of about 10 minutes to about 60 minutes. Embodiment 68: The method according to any one of claims 57 to 67, wherein a culture medium is added after step (i) and before step (ii). Embodiment 69: The method according to any one of claims 57 to 68, wherein the total amount of nucleic acid (DNA) from (a), (b), and (c) is about 1 μg to about 20 μg. Embodiment 70: The method according to any one of claims 57 to 69, wherein the total amount of DNA from (a), (b), and (c) is about 1 μg to about 10 μg. The method according to any one of claims 57 to 70, wherein the ratio of aspect 71:(a):(b):(c) is approximately 0.5 to 1.75:approximately 0.75 to 2.25:approximately 0.5 to 1.75 (weight:weight:weight). Embodiment 72: The method according to any one of claims 57 to 71, wherein each of (a), (b), and (c) is provided on one or more closed-ended linear double-stranded nucleic acid molecules. Embodiment 73: The method according to any one of claims 57 to 72, wherein the nucleic acids (a), (b), and (c) to be transfected are synthetic and have no eukaryotic or prokaryotic DNA modifications. The method according to any one of claims 57 to 73, wherein the ratio of (a):(b):(c) is approximately 1:approximately 1 to 1.6:approximately 1 (weight:weight:weight). Embodiment 75: (a) The method according to any one of claims 57 to 74, wherein the nucleic acid sequence encoding a helper protein sufficient for rAAV replication comprises a nucleotide encoding an Ad helper protein, and optionally, the nucleic acid sequence encoding a helper protein sufficient for rAAV replication comprises nucleotide sequences encoding adenovirus helper proteins E2A and E4. Embodiment 76: The method according to any one of claims 57 to 75, wherein the total amount of DNA from (a), (b), and (c) is 0.6, 0.7, 0.8, 0.9, 1, 1.2, 1.4, 1.6, or 1.8 μg. Embodiment 77: The method according to any one of claims 57 to 76, wherein the total amount of DNA from (a), (b), and (c) is about 0.75 μg. Embodiment 78: The method according to any one of claims 57 to 77, wherein a suspension of mammalian cell lines is cultured gradually in increasing volume before transfection. Embodiment 79: The method according to any one of claims 57 to 78, wherein the culture volume is gradually increased from a volume of about 50 ml to a volume of about 2000 liters. Embodiment 80: The method according to any one of claims 57 to 79, wherein the culture volume is gradually increased from a volume of about 50 ml to a volume of about 100 liters. Embodiment 81: The method according to any one of claims 57 to 80, wherein an amino acid at a concentration of about 1 mM to about 20 mM is contained in the culture volume. Embodiment 82: The method according to any one of claims 57 to 81, wherein the culture medium having a volume of about 5 liters contains an amino acid at a concentration of about 10 mM. Embodiment 83: The method according to claim 81 or 82, wherein the amino acid is L-glutamine or L-alanyl-L-glutamine (Glutamax®). Embodiment 84: The method according to any one of claims 57 to 83, wherein the cells are in a culture volume of 50 liters to 100 liters. Embodiment 85: The method according to any one of claims 57 to 84, wherein a culture medium having a volume of about 50 liters comprises at least about 1 mM to about 20 mM of L-glutamine, at least about 0.01% to about 1% of a nonionic surfactant polyol or surfactant, and at least about 0.001% to about 1% of an antifoaming agent. Embodiment 86: The method according to claim 85, wherein the nonionic surfactant polyol comprises pluronic acid. Embodiment 87: The method according to any one of claims 57 to 86, wherein the transfection composition comprises at least about 5% volume / volume (v / v) to about 20% v / v of culture medium. Embodiment 88: The method according to any one of claims 57 to 87, wherein the transfection composition comprises about 1 liter to about 5 liters of culture medium. Embodiment 89: The method according to any one of claims 57 to 88, wherein the transfection composition comprises 5 to 50% (volume / volume) of culture medium. Embodiment 90: The nucleic acid sequence added to the transfection is 0.5 × 10 6 ~Approx. 5×10 6 The method according to any one of claims 57 to 89, comprising approximately 0.1 μg to approximately 1 μg of Ad helper DNA, Rep / Cap DNA, or transgene per cell. Embodiment 91: The method according to any one of claims 57 to 90, wherein the AAV Rep and AAV Cap genes are derived from the same AAV serotype. Embodiment 92: The method according to any one of claims 57 to 90, wherein the AAV Rep and AAV Cap genes are derived from different AAV serotypes. Embodiment 93: The method according to any one of claims 57 to 92, wherein the AAV ITR and AAV Cap genes are derived from the same AAV serotype. Embodiment 94: The method according to any one of claims 57 to 92, wherein the AAV ITR and AAV Cap genes are derived from different AAV serotypes. Embodiment 95: The method according to any one of claims 57 to 94, wherein the AAV ITR sequence is derived from AAV2 or from a serotype selected from the group consisting of AAV1, 3a, 3b, 4, 5, 6, 7, 8, 9, 10, 11, and 13. Embodiment 96: The method according to any one of claims 57 to 95, wherein the Cap gene is derived from the AAV8 serotype. Embodiment 97: The method according to any one of claims 1 to 96, wherein the packaged nucleic acid of rAAV further lacks a eukaryotic DNA sequence. Embodiment 98: The method according to any one of claims 1 to 97, wherein the closed-end linear double-stranded nucleic acid includes half of the protelomerase binding site. Embodiment 99: The method according to any one of claims 1 to 98, wherein a closed-end linear double-stranded nucleic acid comprises half of a protelomerase binding site, and the half of the protelomerase binding site is formed by protelomerase digestion of a target binding site comprising a double-stranded palindromic sequence of at least 10 base pairs in length. Embodiment 100: A population of rAAV virions lacking prokaryotic DNA, produced by the method described in any one of claims 1 to 99. Embodiment 101: Recombinant adeno-associated virus (rAAV) containing a protelomerase target sequence. Embodiment 102: The rAAV according to claim 101, wherein the protelomerase target sequence includes a double-stranded palindrome sequence of at least 10 base pairs in length. Embodiment 103: The rAAV according to claim 101 or 102, further comprising a transgene.
[0145] Exemplary further aspects of the present invention can be represented by the following numbered embodiments 1 to 74. Embodiment 1: A method for producing a high-titer population of recombinant adeno-associated virus (rAAV) lacking a prokaryotic sequence, comprising: (i) inoculating a cell culture medium optionally containing cells of a host cell line with a closed-end linear double-stranded rAAV vector nucleic acid comprising (a) a nucleic acid sequence encoding a helper protein sufficient for rAAV replication, (b) a nucleic acid sequence encoding AAV rep and AAV cap genes, (c) a closed-end linear double-stranded rAAV vector nucleic acid comprising at least one inverted-end repeat (ITR) sequence and a xenotransgene functionally linked to one or more regulatory elements, and (d) optionally a polycationic polymer, wherein the ratio of the stable cationic polymer to the total amount of nucleic acids from (a), (b), and (c) is about 1:1 to about 3:1 (weight / weight), and optionally 1 × 10⁻⁶ 6 A method comprising the steps of: (ii) incubating the inoculated cell culture medium for a period of time sufficient to produce rAAV; and (iii) purifying the rAAV, wherein optionally, the titer of the produced rAAV is higher than the titer of rAAV produced by cell culture medium inoculated with a corresponding amount of plasmid DNA (pDNA) containing xenotransfer genes. Embodiment 2: A method for producing a high-titer population of recombinant adeno-associated virus (rAAV) lacking a prokaryotic sequence, comprising the steps of (i) transfecting cells of a host cell line in a culture medium with a closed-end linear double-stranded rAAV vector nucleic acid comprising (a) a nucleic acid sequence encoding a helper protein sufficient for rAAV replication, (b) a nucleic acid sequence encoding AAV rep and AAV cap genes, and (c) a xenotransgene functionally linked to at least one inverted-end repeat (ITR) sequence and one or more regulatory elements, wherein (i) 1 × 10 6The total amount of nucleic acids from (a), (b) and (c) per host cell is less than about 2 μg, or (ii) the host cell is transfected with a transfection composition comprising (a), (b) and (c), and a polycationic polymer, and the ratio of polycationic polymer to the total amount of nucleic acids from (a), (b) and (c) is about 1:1 to about 3:1 (weight / weight); (ii) incubating the transfected host cell for a period sufficient to produce rAAV; (iii) optionally, lysing the transfected host cell; and (iv) purifying rAAV, optionally, the titer of the produced rAAV is higher than the titer of rAAV produced using a host cell line transfected with a corresponding amount of pDNA containing a heterologous transgene. Embodiment 3: The viral titer of rAAV is at least 9.3×10 13 vector genomes / 3.0×10 9 live transfected cells, the method according to embodiment 1 or 2. Embodiment 4: The viral titer of rAAV is at least 3.5×10 11 vp / ml, the method according to any one of embodiments 1 to 3. Embodiment 5: The purified rAAV has a particle-to-infectivity ratio of less than 2×10 4 vg / TCID50, the method according to any one of embodiments 1 to 4. Embodiment 6: The incubation of the transfected host cell line is carried out for at least about 24 hours, the method according to any one of embodiments 1 to 5. Embodiment 7: The incubation of the transfected host cell line is carried out for about 40 hours to about 400 hours, the method according to any one of embodiments 1 to 6. Embodiment 8: The host cell line is contained in a cell culture volume of at least about 50 liters, the method according to any one of embodiments 1 to 7. Embodiment 9: The host cell line is contained in a cell culture volume of about 50 liters to about 100 liters, the method according to any one of embodiments 1 to 8. Embodiment 10: 1×10 6The method according to any one of aspects 1 to 9, wherein the total amount of nucleic acid from (a), (b) and (c) per cell is less than about 1.5 μg. Aspect 11: 1×10 6 The method according to any one of aspects 1 to 10, wherein the total amount of nucleic acid from (a), (b) and (c) per cell is less than about 1 μg. Aspect 12: 1×10 6 The method according to any one of aspects 1 to 11, wherein the total amount of nucleic acid from (a), (b) and (c) per cell is less than about 0.75 μg. Aspect 13: 1×10 6 The method according to any one of aspects 1 to 12, wherein the total amount of nucleic acid from (a), (b) and (c) per cell is at least about 0.25 μg. Aspect 14: 1×10 6 The method according to any one of aspects 1 to 13, wherein the total amount of nucleic acid from (a), (b) and (c) per cell is at least about 0.5 μg. Aspect 15: The method according to any one of aspects 1 to 14, wherein the ratio of nucleic acids (a):(b):(c) is about 0.5 - 1.75:about 0.75 - 2.25:about 0.5 - 1.75 (weight:weight:weight). Aspect 16: The method according to any one of aspects 1 to 15, wherein the ratio of nucleic acids (a):(b):(c) is about 0.75 - 1.5:about 1 - 1.75:about 0.75 - 1.25 (weight:weight:weight). Aspect 17: The method according to any one of aspects 1 to 16, wherein the ratio of nucleic acids (a):(b):(c) is about 1.4:about 1.5:about 1 (weight:weight:weight). Aspect 18: The method according to any one of aspects 1 to 17, wherein the polycationic polymer is polyethyleneimine (PEI). Aspect 19: The method according to any one of aspects 1 to 18, wherein the polycationic polymer is linear polyethyleneimine. Aspect 20: The method according to any one of aspects 1 to 19, wherein the stable cationic polymer is fully hydrolyzed polyethyleneimine. Embodiment 21: The method according to any one of Embodiments 1 to 20, wherein the ratio of the stable cationic polymer to the total amount of nucleic acids from (a), (b), and (c) is about 1.5:1 to about 2.75:1. Embodiment 22: The method according to any one of Embodiments 1 to 21, wherein the ratio of the stable cationic polymer to the total amount of nucleic acids from (a), (b), and (c) is about 1.9:1 to about 2.6:1. Appearance 23: 1 × 10 6 The method according to any one of embodiments 1 to 22, wherein the total amount of nucleic acids from (a), (b), and (c) per individual cell is approximately 0.55 μg to approximately 0.75 μg, and the ratio of the stable cationic polymer to the total amount of nucleic acids from (a), (b), and (c) is approximately 2:1 to approximately 2.5:1. Embodiment 24: The method according to any one of Embodiments 1 to 23, wherein a host cell line is infected using a transfection composition volume of approximately 5% to approximately 20% (volume / volume) of the host cell line culture volume. Embodiment 25: The method according to any one of Embodiments 1 to 24, wherein a host cell line is infected using a transfection composition volume of approximately 7.5% to approximately 15% (volume / volume) of the host cell line culture volume. Embodiment 26: The method according to any one of Embodiments 1 to 25, wherein the transfection composition is added to host cells over a time period of about 10 minutes to about 60 minutes. Embodiment 27: The method according to any one of Embodiments 1 to 26, further comprising the step of culturing the host cell line for a certain period of time before transfection of the host cell line. Embodiment 28: The method according to Embodiment 27, wherein the step of culturing the host cell line includes increasing the culture volume from approximately 50 ml to approximately 2000 liters. Embodiment 29: The method according to Embodiment 27 or 28, wherein the step of culturing the host cell line includes increasing the culture volume to about 50 ml to about 100 liters. Embodiment 30: The method according to any one of Embodiments 1 to 29, wherein the temperature of the culture medium containing the host cell line is raised to 37°C approximately 12 to 36 hours before transfection. Embodiment 31: The method according to any one of Embodiments 1 to 30, wherein the culture medium contains amino acids at a concentration of about 1 mM to about 20 mM. Embodiment 32: The method according to any one of Embodiments 1 to 31, wherein the culture medium contains amino acids at a concentration of about 5 mM to about 15 mM. Embodiment 33: The method according to any one of Embodiments 1 to 32, wherein the culture medium contains amino acids at a concentration of approximately 7.5 mM to approximately 12.5 mM. Embodiment 34: The method according to any one of Embodiments 31 to 33, wherein the amino acid is L-glutamine or a dipeptide containing L-glutamine. Embodiment 35: The method according to Embodiment 34, wherein the dipeptide containing L-glutamine is L-alanyl-L-glutamine. Embodiment 36: The method according to any one of Embodiments 1 to 35, wherein the culture medium contains a nonionic surfactant polyol or surfactant at a concentration of about 0.01% to about 1% (weight / volume). Embodiment 37: The method according to Embodiment 36, wherein the nonionic surfactant polyol contains pluronic acid. Embodiment 38: The method according to any one of Embodiments 1 to 37, wherein the culture medium contains an antifoaming agent at a concentration of approximately 0.001% to approximately 1% (weight / volume). Embodiment 39: The method according to any one of Embodiments 1 to 38, wherein the culture medium is subjected to air sparging at a flow rate of approximately 0.1 LPM to approximately 1.0 LPM. Embodiment 40: The method according to any one of Embodiments 1 to 39, wherein the culture medium is subjected to air sparging at a flow rate of approximately 0.25 LPM to approximately 0.75 LPM. Embodiment 41: The method according to any one of Embodiments 1 to 40, wherein the host cell line is a mammalian cell line. Embodiment 42: The method according to any one of Embodiments 1 to 41, wherein the host cell line is a human cell line. Embodiment 43: The method according to any one of Embodiments 1 to 42, wherein the host cell line is a human embryonic cell line. Embodiment 44: The method according to any one of Embodiments 1 to 43, wherein the host cell line is a human embryonic kidney cell line. Embodiment 45: The method according to any one of Embodiments 1 to 44, wherein the host cell line is a serum-free cell line. Embodiment 46: The method according to any one of Embodiments 1 to 45, wherein the host cell line is adapted for suspension. Embodiment 47: The method according to any one of Embodiments 1 to 46, wherein the host cell line is suspended in a culture medium. Embodiment 48: The method according to any one of Embodiments 1 to 47, wherein cells of a host cell line are transfected in a suspension state. Apparatus 49: The host cell line contains approximately 3.0 × 10⁶ living cells. 6 ~Approx. 1×10 8 A method according to any one of embodiments 1 to 48, comprising a cell density of cells / ml. Appearance 50: The host cell line contains approximately 4.0 × 10⁶ living cells. 6 ~about 6×10 6 A method according to any one of embodiments 1 to 49, comprising a cell density of cells / ml. Appearance 51: The host cell line contains approximately 2.5 × 10⁶ living cells. 7 A method according to any one of embodiments 1 to 50, comprising a cell density of cells / ml. Embodiment 52: The method according to any one of Embodiments 1 to 51, wherein at least one of the nucleic acids of (a) and (b) is contained in a closed-end linear double-stranded nucleic acid molecule. Embodiment 53: The method according to any one of Embodiments 1 to 52, wherein each of the nucleic acids of (a) and (b) is independently contained in a closed-end linear double-stranded nucleic acid molecule. Embodiment 54: The method according to any one of Embodiments 1 to 53, wherein the closed-end linear double-stranded nucleic acid contains half of the protelomerase binding site. Embodiment 55: The method according to any one of Embodiments 1 to 54, wherein a closed-end linear double-stranded nucleic acid comprises half of a protelomerase binding site, and the other half of the protelomerase binding site is formed by protelomerase digestion of a target binding site. The method comprises a double-stranded palindrome sequence of at least 10 base pairs in length. Embodiment 56: The method according to any one of Embodiments 1 to 55, wherein the AAV rep and AAV cap genes originate from the same serotype. Embodiment 57: The method according to any one of Embodiments 1 to 56, wherein the AAV rep and AAV cap genes are derived from different serotypes. Embodiment 58: The method according to any one of Embodiments 1 to 57, wherein the AAV ITR sequence and the AAV cap gene originate from the same serotype. Embodiment 59: The method according to any one of Embodiments 1 to 58, wherein the AAV ITR sequence and the AAV cap gene are derived from different serotypes. Embodiment 60: The method according to any one of Embodiments 1 to 59, wherein the AAV ITR sequence and the AAV rep gene are derived from the same serotype. Embodiment 61: The method according to any one of Embodiments 1 to 60, wherein the AAV ITR sequence and the AAV rep gene are derived from different serotypes. Embodiment 62: The method according to any one of Embodiments 1 to 61, wherein the AAV rep gene is derived from a serotype selected from the group consisting of AAV1, 2, 3a, 3b, 4, 5, 6, 7, 8, 9, 10, 11, and 13. Embodiment 63: The method according to any one of Embodiments 1 to 62, wherein the AAV rep gene is derived from a serotype selected from the group consisting of AAV2, 3a, 3b, 8, 9, and 10. Embodiment 64: The method according to any one of Embodiments 1 to 63, wherein the AAV cap gene is derived from a serotype selected from the group consisting of AAV1, 2, 3a, 3b, 4, 5, 6, 7, 8, 9, 10, 11, and 13. Embodiment 65: The method according to any one of Embodiments 1 to 64, wherein the AAV cap gene is derived from a serotype selected from the group consisting of AAV2, 3a, 3b, 8, 9, and 10. Embodiment 66: The method according to any one of Embodiments 1 to 65, wherein the AAV ITR sequence is derived from a serotype independently selected from AAV1, 2, 3a, 3b, 4, 5, 6, 7, 8, 9, 10, 11, and 13. Embodiment 67: The method according to any one of Embodiments 1 to 66, wherein the AAV ITR sequence is derived from a serotype independently selected from AAV2, 3a, 3b, 8, 9, and 10. Embodiment 68: The method according to any one of Embodiments 1 to 67, wherein the AAV ITR sequence is a composite sequence. Embodiment 69: The method according to any one of Embodiments 1 to 68, wherein the nucleic acid sequence encoding a helper protein sufficient for rAAV replication includes a nucleotide sequence encoding an adenovirus helper protein. Aspect 70: The method according to any one of Aspects 1 to 69, wherein the nucleic acid sequence encoding a helper protein sufficient for rAAV replication comprises nucleotide sequences encoding adenoviral helper proteins E2A and E4. Aspect 71: The method according to any one of Aspects 1 to 70, wherein at least one of the nucleic acids to be transfected is a synthetic nucleic acid and does not cause eukaryotic and prokaryotic DNA modification. Aspect 72: The method according to any one of Aspects 1 to 71, wherein the rAAV further lacks eukaryotic DNA sequences. Aspect 73: The method according to any one of Aspects 1 to 72, wherein the incubation for a period sufficient to produce rAAV is an incubation for a period of at least 24 hours. Aspect 74: A population of rAAV virions produced by the method according to any one of Aspects 1 to 73.
[0146] It should be understood that one, more, or all of the characteristics of the various aspects described herein can be combined to form other aspects of the present invention. Although the various aspects of the present invention have been described above, it should be understood that they are presented by way of example only and not limitation. Many changes can be made to the disclosed aspects without departing from the spirit or scope of the present disclosure. Therefore, the width and scope of the present invention should not be limited by any of the above aspects.
[0147] definition For the purposes of this specification and the appended claims, unless otherwise indicated, all figures used herein and in the claims to represent amounts, sizes, dimensions, ratios, shapes, formulations, parameters, percentages, parameters, quantities, characteristics, and other numerical values should be understood to be modified by the term “approximately,” even if the term “approximately” is not explicitly stated with the value, quantity, or range. Therefore, unless otherwise indicated, the numerical parameters shown in the following specification and the appended claims may be approximate, not exact, and not necessarily exact, and / or, where desirable, larger or smaller, reflecting tolerances, conversion factors, rounding, measurement errors, and other factors known to those skilled in the art, depending on the desired characteristics to be obtained by the technical concept of this disclosure. For example, the term “approximately” when referring to a certain value may mean to include a variation of ±100%, ±50%, ±20%, ±10%, ±5%, ±1%, ±0.5%, and ±0.1% from the indicated amount, insofar as it is appropriate for carrying out the disclosed method or utilizing the disclosed composition.
[0148] Furthermore, the term “approximately” used in relation to one or more numbers or numerical ranges should be understood to represent all such numbers, including all numbers within the range, and modifying that range by extending the upper and lower boundaries of the numbers indicated. A reference to a numerical range by endpoint includes all numbers, e.g., all integers, including their fractions, that are contained within that range (for example, a reference to 1-5 includes 1, 2, 3, 4, and 5, as well as their fractions, e.g., 1.5, 2.25, 3.75, 4.1, etc.), as well as any range within that range.
[0149] Where used herein, the singular forms “a,” “an,” and “the” are intended to include their plural forms unless the context explicitly indicates otherwise. Furthermore, where the terms “including,” “includes,” “having,” “has,” and “with,” or their derivatives, are used in either the detailed description and / or the claims, such terms are intended to be comprehensive in a similar manner to the term “comprising.” Where used herein and in the appended claims, the singular forms “a,” “an,” and “the” are intended to include multiple references unless the context explicitly indicates otherwise. For example, the reference to “a protein” is a reference to one or more proteins, including their equivalents known to those skilled in the art, etc.
[0150] As used herein, the terms “comprising,” “comprise,” and “comprised,” and their derivatives, referencing a defined or described element of a product, composition, apparatus, method, process, system, etc., are inclusive or open-ended, allowing for further elements, and thus indicating that the defined or described product, composition, apparatus, method, process, system, etc., includes the indicated element—or, where appropriate, its equivalent—and other elements may also be included, yet still be included within the scope / definition of the defined product, composition, apparatus, method, process, system, etc.
[0151] As used herein, the terms “helper virus” or “contamination helper virus” refer to a helper virus-dependent viral vector, such as an adeno-associated virus, that does not possess the ability to replicate on its own and is used to produce a copy of the vector. Helper viruses are used to co-infect cells together with the viral vector and provide the proteins necessary for the replication of the viral vector’s genome. The term encompasses intact viral particles, empty capsids, viral DNA, etc. Helper viruses commonly used to produce rAAV particles include adenoviruses, herpes simplex viruses, cytomegaloviruses, Epstein-Barr viruses, and vaccinia viruses.
[0152] Helper viruses include adenoviruses (AVs), herpes simplex viruses (HSVs), and baculoviruses, which are systems present in insect cells to produce AAVs. It has also been proposed that papillomaviruses may provide helper function for AAVs (see, e.g., Hermonat el al., Molecular Therapy 9, S289-S290 (2004)). Helper viruses include any virus capable of achieving AAV replication. AVs are non-enveloped nuclear DNA viruses with a double-stranded DNA genome of approximately 36 kb. AVs can rescue latent AAV proviruses in cells by providing E1a, E1b55K, E2a, E4orf6, and VA genes, enabling AAV replication and capsidation. HSVs are a family of viruses with relatively large double-stranded linear DNA genomes capsidated to an icosahedral capsid covered with a lipid bilayer envelope. HSVs are infectious and highly transmissible. The following HSV-1 replication proteins have been identified as necessary for AAV replication: helicase / primase complexes (UL5, UL8, and UL52) and the DNA-binding protein ICP8 encoded by the UL29 gene, along with other proteins that enhance helper function.
[0153] The terms “non-adherent cell line” or “suspension cell line,” as used herein, refer to cell lines that can survive in a suspension culture without adhering to a surface (e.g., a tissue culture plastic carrier or microcarrier). Adaptation to non-adherent cell lines is a lengthy process that requires subculturing with decreasing serum volume to select a cell population that has been irreversibly altered. These cell lines can grow to densities higher than those achievable under adherent conditions and are therefore more suitable for cultivation on an industrial scale, for example, in a bioreactor setting or in agitated cultures.
[0154] As used herein and in the appended claims, the term “or” is generally used to mean “and / or” unless the context explicitly indicates otherwise.
[0155] The term “promoter,” as used herein, is defined as a DNA sequence recognized by a cellular synthetic mechanism, or an introduced synthetic mechanism, that is required for the initiation of transcription of a particular polynucleotide sequence. A “constitutive” promoter is a nucleotide sequence, when functionally ligated to a polynucleotide encoding or designating a gene product, that causes the gene product to be produced in a cell under most or all physiological conditions of that cell. An “inducible” promoter is a nucleotide sequence, when functionally ligated to a polynucleotide encoding or designating a gene product, that causes the gene product to be produced in the cell only when substantially the inducer corresponding to that promoter is present in the cell. A “tissue-specific” promoter is a nucleotide sequence, when functionally ligated to a polynucleotide encoded or designated by a gene, that causes the gene product to be produced in the cell only when substantially the cell is a tissue type corresponding to that promoter.
[0156] A "protelomerase" target sequence is any DNA sequence whose presence in a DNA template enables its conversion to closed linear DNA by the enzymatic activity of protelomerase. In other words, protelomerase target sequences are required for the cleavage and rejoining of double-stranded DNA by protelomerase to form covalently closed linear DNA. Typically, protelomerase target sequences include any complete palindromic sequence, i.e., any double-stranded DNA sequence with two rotational symmetries, also referred herein to as a complete inverted repeat. The length of a complete inverted repeat varies depending on the individual organism. In Borrelia burgdorferi, a complete inverted repeat is 14 base pairs long. In various isothermophilic bacteriophages, a complete inverted repeat is 22 base pairs or longer. Also, in some examples, e.g., in E. coli N15, a central complete inverted palindrome forms part of a larger incomplete inverted palindrome adjacent to an inverted repeat sequence.
[0157] As used herein, the terms “recombinant AAV (rAAV) vector” or “gene delivery vector” refer to a viral particle containing a vector genome (e.g., viral DNA [vDNA]) packaged within an AAV capsid, which functions as a nucleic acid delivery medium. Alternatively, in some contexts, the term “vector” may be used to refer only to the vector genome / vDNA.
[0158] An "rAAV vector genome" or "rAAV genome" is an AAV genome (i.e., vDNA) containing one or more heterologous nucleotide sequences. An rAAV vector typically requires only in cis 145-nucleotide terminal repeats (TRs) to generate the virus. All other viral sequences are optional and can be supplied in trans (Muzyczka, (1992) Curr. Topics Microbiol. Immunol. 158:97). Typically, an rAAV vector genome will retain only the minimum number of TR sequences necessary to maximize the size of the transgene that can be effectively packaged by its vector. Sequences encoding structural and non-structural proteins can be supplied in trans (e.g., from a vector, e.g., a plasmid, or by stably incorporating the sequence into packaging cells). The rAAV vector genome contains at least one TR sequence (e.g., an AAV TR sequence, synthetic, or other parvovirus TR sequence), and optionally two TRs (e.g., two AAV TRs), which are typically located at the 5' and 3' ends of heterologous nucleotide sequences, but do not need to be contiguous with them. The TRs may or may not be identical to each other.
[0159] The term “terminal repeat” or “TR” includes any viral terminal repeats and synthetic sequences that form a hairpin structure and function as inverted terminal repeats (ITRs), such as the “double D sequence” described in U.S. Patent No. 5,478,745 to Samulski et al. The capsid structures of autonomous parvovirus and AAV are described in detail by BERNARD N. FIELDS et al., VIROLOGY, volume 2, chapters 69 & 70 (4th ed., Lippincott-Raven Publishers). See also the descriptions of the crystal structures of AAV2 (Xie et al., (2002) Proc. Nat. Acad. Sci. 99: 10405-10), AAV4 (Padron et al., (2005) I. Virol. 79: 5047-58), AAV5 (Walters et al., (2004) I. Virol. 78: 3361-71), and CPV (Xie et al., (1996) I. Mol. Biol. 6:497-520 and Tsao et al., (1991) Science 251: 1456-64).
[0160] An "AAV terminal repeat" or "AAV TR" may originate from any AAV, including but not limited to serotypes AAV-1, AAV-2, AAV-3, AAV-4, AAV-5, AAV-6, AAV-7, AAV-8, AAV-9, AAV-10, AAV-11, AAV-12, AAV-13, or any other AAV currently known or to be discovered later. An AAV terminal repeat does not need to have a wild-type terminal repeat sequence, as long as at least one of the terminal repeats mediates the desired function, a functional TR, e.g., replication, viral packaging, integration, and / or proviral rescue (for example, the wild-type sequence may be modified by insertion, deletion, shortening, or missense mutation). Those skilled in the art will understand the selection of a Rep protein that is functional with respect to the replication of a functional TR.
[0161] "Transgene" is used herein to mean, as appropriate, a polynucleotide or nucleic acid intended to be introduced into or that has been introduced into a cell or organism. A transgene includes any nucleic acid, e.g., a gene encoding a polypeptide or protein. Suitable transgenes used, for example, in gene therapy, are well known to those skilled in the art. For example, the vectors described herein can deliver and use transgenes, including but not limited to those described in U.S. Patents 6,547,099, 6,506,559, and 4,766,072, published U.S. applications 20020006664, 20030153519, and 20030139363, and published PCT applications WO 01 / 68836 and WO 03 / 010180, as well as miRNAs and other transgenes, for example, WO2017 / 152149, each of which is incorporated herein by reference in whole.
[0162] As used herein, the term "tropism" refers to the preferential entry of a virus into a particular cell or tissue, optionally followed by the intracellular expression (e.g., transcription and, optionally, translation) of the sequence carried by the viral genome, for example, in the case of recombinant viruses, of the expression of the heterologous nucleic acid of interest.
[0163] When used in the context of polynucleotide sequences, the term "variant" may encompass polynucleotide sequences related to a wild-type gene. This definition may also include, for example, "allelic," "splice," "interspecific," or "polymorphic" varieties. A splice variety may have significant identity with respect to a reference molecule but may have more or fewer polynucleotides, typically resulting from alternative splicing of exons during mRNA processing. The corresponding polypeptide may have additional functional domains or may not have any. An interspecific variety is a polynucleotide sequence that differs between one species and another. Of particular use in this invention are varieties of wild-type gene products. A variety may arise from at least one mutation in a nucleic acid sequence, resulting in an altered mRNA or a polypeptide that may or may not have altered structure or function. Any given native or recombinant gene may have no alleles, one, or many. Common mutations that result in a variety usually result from spontaneous deletions, additions, or substitutions of nucleotides. Each of these types of changes can occur once or multiple times in a given sequence, either alone or in combination with others.
[0164] Scope: Throughout this disclosure, various aspects of the invention may be represented in range form. It should be understood that range form is for convenience and brevity only and should not be interpreted as a rigid limitation on the scope of the invention. Therefore, range descriptions should be considered to specifically disclose all possible subranges and the individual numbers within those ranges. For example, a range description such as 1-6 should be considered to specifically disclose subranges such as 1-3, 1-4, 1-5, 2-4, 2-6, 3-6, etc., and the individual numbers within those ranges, e.g., 1, 2, 2.1, 2.2, 2.7, 3, 4, 5, 5.5, 5.75, 5.8, 5.85, 5.9, 5.95, 5.99, and 6. This applies regardless of the breadth of the range.
[0165] All documents referenced herein are incorporated herein by reference. All references, patents, and published patent applications cited throughout this application, as well as their drawings and sequence listings, are incorporated herein by reference for all purposes, with each individual publication or patent document being shown separately. The various references herein do not constitute an endorsement by the applicant that any particular reference is “prior art” of the present invention. Aspects of the compositions and methods of the present invention are illustrated in the following examples. [Examples]
[0166] The following non-limiting embodiments serve to illustrate selected aspects of the present invention and do not limit the scope of the invention as described in the claims. Variations in the proportions of the components shown and substitutions of elements will be apparent to those skilled in the art and will be understood to fall within the scope of the embodiments of the present invention.
[0167] Example 1: Production of AAV using closed linear (cl)DNA The objective of this study was to evaluate large-scale production of rAAV.
[0168] material and method TCID50 Assay: The in vitro AAV infectivity of a drug in HeLa RC32 cells is evaluated using the infectivity titer (TCID50) method. In this assay, HeLa RC32 cells are transduced using serial dilutions of adenovirus type 5 helper virus and the drug. After 3 days of infection, the cells are treated with proteinase K to digest the protein, and the replicated AAV vector DNA is quantified by qPCR. This method utilizes a DNA primer and a fluorescent dye-based detection system. The absolute amount of ITR target sequences derived from the vector DNA is interpolated from a standard curve created using a plasmid. The contained ITR is prepared as a test sample and used as an assay control. The results are expressed as infection units per milliliter (IU / mL). Note that TCID50 / mL is preferably standardized to vg / mL for comparison between different preparations.
[0169] (Table 1) Description of the analytical test and details to be achieved for 50L-scale vector production TIFF0007846625000014.tif90147
[0170] The PRO10® cell line (AskBio, NC, USA), used to produce recombinant adeno-associated virus vectors (rAAV), is a suspension-adapted serum-free cell line derived from human embryonic kidney cell line 293 (HEK293). PRO10® virus vector production is a batch process carried out in the range of medium to high cell densities and utilizes a triple transfection method through the condensation of the required plasmid (pDNA) or closed linear (cl) DNA substrate with linear polyethyleneimine MAX in a production medium cocktail. Both the cell growth medium and the production medium are chemically defined and free of animal-derived components. Each DNA molecule provides a key element in recombinant AAV production. The first provides an adenovirus helper (Ad helper) protein for efficient vector replication and packaging, but lacks the adenovirus structure and replication genes essential for generating adenovirus. The second construct is an AAV8 or AAVrh10 trans construct (packaging construct) containing the AAV2 rep gene and the AAV8 or AAVrh10 capsid (cap) protein gene. The third construct is an AAV vector construct encoding a therapeutic transgene, containing an adeno-associated virus 2 inverted terminal repeat (ITR) sequence adjacent (5' to 3') to the gene of interest. The constructs used in all experiments were dual reporters for GFP and luciferase. Furthermore, subsequent studies used two therapeutic transgene cassettes containing CYP and GAA transgenes.
[0171] Initial experiments were conducted using a traditional non-blocking approach on a bench scale (31.25 mL–2 L) applying a Design of Experiment (DoE) method to identify and optimize definitive parameters related to production by simultaneously testing factors such as clDNA concentration and the clDNA to transfection reagent ratio. All small-scale experiments were controlled by parallel vector production using an optimized triple plasmid transfection system. Further factors that may be evaluated include, but are not limited to, culture medium, cell density, transfection time, transfection volume, temperature, and other cell-dependent or cell-independent factors.
[0172] Small-scale transfected cultures were incubated for approximately 72 post-transfection hours (hpt) and then collected by mechanical cell lysis. Total vector production was assessed by quantification of the vector genome (vg) using a proprietary qPCR-based DNase-resistant particle (DRP) method specific to the viral ITR. Yields were typically 4–6 × 10⁶, as indicated by qPCR. 11 The values were in the range of vg / mL. Yield was further evaluated by observing the total viral particles (capsids) (vp / mL) per 1 mL via transgene-targeted qPCR and ELISA. Relative packaging efficiency was also modeled by observing the A260 / 280 ratio when collecting affinity-purified lysates via SEC-HPLC.
[0173] The primary objective of the small-scale screening experiments was to identify the nearly optimal transfection conditions for the 50L scaled portion of this experimental design. In both the pDNA and clDNA experiments, cells were thawed, cultured, and progressively expanded until inoculated into a 50L production bioreactor. This cell culture expansion process was continued in the production bioreactor until transient transfection was performed. The transfected cell cultures were incubated in the production bioreactor for approximately 72 hpt. Upon collection, the transfected cell cultures were lysed, purified through deep and membrane filtration, and then further purified. Purification consisted of capture chromatography, gradient ultracentrifugation, ion exchange chromatography, ultrafiltration / diafiltration (UF / DF), and 0.2 μm filtration steps. Table 3 provides characterization studies for the rAAV vectors produced by pDNA and clDNA, respectively.
[0174] Detailed process description for 50L SUB upstream operation To produce a 50L batch, cells were thawed, cultured, and progressively expanded until inoculated into a 50L production bioreactor. This cell culture expansion process was continued in the production bioreactor until transient transfection was performed. Here, L-glutamine was supplemented to a final concentration of 10 mM in the seed train growth medium, which was used for restoring the frozen cell stock and expanding the inoculation into 5L suspensions using a 10L WAVE bag bioreactor. 0.2% PLURONIC® acid was supplemented in the medium used in the WAVE suspensions. The growth medium used after seeding in ThermoFisher 50L single-use agitated tank bioreactors (SUB, STR) consists of seed train growth medium supplemented with approximately 1–100 mM GLUTAMAX®, approximately 0.01%–10% PLURONIC® acid (ThermoFisher, Waltham, MA), and approximately 0.001%–1% FOAMAWAY® (Gibco, Waltham, MA). GLUTAMAX® is a stabilized dipeptide source of L-glutamine designed to prevent degradation and reduce the toxic generation of excess ammonia.
[0175] Transient transfection to produce AAV is performed through the condensation of three clDNAs and linear polyethyleneimine MAX (PEI MAX) in living cells 3.25-4.25 × 10⁻¹⁵ 6 pieces / mL 3 The transfection was performed at the following cell density. The transfection cocktail comprised 10% (v / v) of the culture volume (5L). Condensation was performed in a custom-made 10L WAVE Rocker bag fitted with tubing suitable for a 50L SUB. The transfection cocktail was first prepared by adding 4L of medium to the rocker bag with gentle agitation (8° angle, 25 RPM) at 25°C. Air was added at 0.2 LPM to prevent the bag from collapsing. Plasmid (Table 2) was then added, followed by the addition of 1L of medium.
[0176] (Table 2) Standardized ratio of each clDNA used relative to cell density at transfection TIFF0007846625000015.tif40128
[0177] After adding the culture medium, PEI was added over 1 minute, followed by 1 liter of additional medium. This cocktail was incubated for 7 minutes and then transferred to a submucosa. The transfection cell suspension was incubated for 3 hours and sedated with 10% (v / v) volume of chemically defined serum-free HEK293 medium supplemented with 10 mM L-glutamine.
[0178] SUB control parameters The large-scale manufacturing platform utilized a Finesse G3Pro Universal Controller mounted on a ThermoFisher jacketed 50L SUB. The single-use container featured a three-blade, 45° pitch angle, axial impeller, and dual sparger (frit-drilled-hole) configuration, along with a primary Finesse TruFluor pH / DO single-use probe sheath and an auxiliary Pall Kleenpak connection for reusable pH / DO probe insertion. The day before medium filling, the bags were installed and inflated with a 10 LPM layer of air. The optical / reusable DO probes were connected to the transmitters. On the day of filling, the DO probes were calibrated using two-point gradient calibration. After medium addition, both single-use and reusable pH probes were standardized using offline samples in a calibrated blood / gas analyzer.
[0179] The day before inoculation, the SUB temperature was raised to 37°C. The culture medium was then prepared by saturating it with a continuous drill-hole air spurging at a flow rate of 0.5 LPM (0.025 VVM). Before inoculation, both single-use and reusable DO probes were standardized to 100% air saturation using a single-point calibration.
[0180] After inoculation, the controller was set to supply a continuous drill hole air sparge of 0.5 LPM, and the headspace was cleared with a 1 LPM air overlay. DO was controlled via an O2 gas cascade, and the setpoint was maintained by increasing the O2 flow rate to the frit sparger from 0.00 to 5.00 LPM (0 to 100% DO output / 0 to 100% MFC-3 output). pH was controlled on the high side (7.0 to 14) by increasing the CO2 gas flow to the frit sparger from 0.00 to 2.00 LPM (0 to (-100)% output / 0 to 100% MFC-4 output), but on the low side, no base supply was used to control pH, and it was left to natural flow.
[0181] result 1×10 6 DoE assessment of total clDNA (μg) and PEI:DNA ratio per individual living cell Under DoE settings, 1x10 6 The μgDNA and PEI:DNA ratio per individual living cell were studied in the ranges of 0.5–2 μg and 1–3, respectively. The design was a unique Response-Surface Model (RSM) with three levels for each factor, allowing for interpretations of both linear and quadratic effects. The significance of each effect was estimated using overlapping center points within this design space.
[0182] Total vector production at the time of collection was evaluated by ITR-qPCR (Figure 1). The data show a 2 to 2.5-fold increase in ratio (vg / cell) production when using clDNA as the starting material compared to pDNA as the starting material.
[0183] To identify significant and interacting factors and to determine optimal clDNA conditions in transfection, responses were modeled using a fitted model, excluding plasmid values. The results of the JMP analysis are summarized below.
[0184] (Table 3) Fit Summary TIFF0007846625000016.tif50128
[0185] (Table 4) Analysis of variance TIFF0007846625000017.tif41130
[0186] 1 x 10 6 We analyzed the fit summary and ANOVA for factors such as μg clDNA per cell (total clDNA) and PEI:DNA ratio (Figure 2). The regression model covers most of the variance observed in this experiment. 2 The ratio was 0.941, indicating that less than 6% of the variance in vg titer could not be explained by the total clDNA or PEI:DNA factor. Contour plots showed the effect of the clDNA and PEI:DNA ratios on the vector genome titer in the cell lysates, expressed in vg / mL (Figure 3). As shown in Figure 4, the clDNA used to produce recombinant AAVrh10CYP suggests that less than 1 ug of DNA, e.g., 0.6–0.7 ug, is required to achieve high titer AAV. Furthermore, Figures 5 and 6 show 2.2 and 2.5 PEI:DNA for producing recombinant AAVrh10CYP and AAV8GAA, respectively, and the optimal clDNA was 0.6 ug, considering both overall yield and packaging efficiency.
[0187] (Table 5) Approximate values of parameters TIFF0007846625000018.tif77156
[0188] Implementation of 50L SUB QC assays were performed on each 50L lot for samples in processing, purified bulk and final products, as well as for product release testing. The following QC assays were performed, and the results are shown below.
[0189] (Table 6) Analytical tests, details, and results for pDNA and clDNA-derived vectors TIFF0007846625000019.tif101138
[0190] (Table 7) Results of TCID50 / ml and particle-to-infectivity (vg / TCID50) ratios for pDNA and clDNA-derived vectors. TIFF0007846625000020.tif80146
[0191] As shown in Table 7, in DoE experiments and 50L implementations, the clDNA-derived vector exhibited increased infectivity compared to the pDNA control, as indicated by the lower vg / TCID50 ratio in clDNA compared to that of pDNA.
[0192] conclusion While the clDNA system has been shown to be usable for AAV production, the linear scaling of vector production, along with batch-to-batch consistency during small-scale manufacturing, needs to be demonstrated using other serotypes and transgene constructs, as has been done with plasmid DNA. The secondary effects on total clDNA shown in the above experiments were also observed in similar experiments used to optimize the pDNA transfection process. Further experiments will reveal the potential product-specific relationships between total clDNA and PEI, which need to be further evaluated. Further research will be conducted to address variations in small-scale and large-scale production. These studies will likely focus on establishing the stability of clDNA starting materials, handling of clDNA before transfection, and evaluating the dynamics of PEI:clDNA ratio, clDNA ratio, and PEI:clDNA complex formation.
[0193] Apart from yield and strength, analytical test results from 50L-scale experiments showed consistency with one another. Assay results for purity, safety, quality, and identity were highly similar regardless of the starting material.
[0194] Further research, along with optimization work, is planned to understand the discrepancies in yield, packaging efficiency, purity, and efficacy in scaled-up vector preparations.
[0195] While the present invention has been specifically shown and described with reference to its preferred embodiments, it will be understood by those skilled in the art that various modifications can be made in form and detail without departing from the scope of the invention as encompassed in the appended claims.
Claims
1. A method for producing recombinant adeno-associated virus (rAAV) lacking a prokaryotic sequence, The method described above is A process of culturing human embryonic kidney cell lines in a suspension state, A step of transfecting a human embryonic kidney cell line with a closed-end linear double-stranded rAAV vector nucleic acid comprising (a) a nucleic acid sequence encoding a helper protein sufficient for rAAV replication, (b) nucleic acid sequences encoding an AAV rep gene and an AAV cap gene, and (c) a xenotransgene functionally linked to at least one inverted-end repeat (ITR) sequence and one or more regulatory elements. The process involves incubating the transfected human embryonic kidney cell line for 40 to 400 hours. Includes, 1 x 10 6 The total amount of transfected nucleic acids from (a), (b), and (c) per individual cell is at least 0.25 μg and less than 1 μg. The transfect further involves the use of a stable cationic polymer, with a ratio of the total amount of stable cationic polymer to nucleic acid component of 2.5:
1. The ratio of (a):(b):(c) is 0.5–1.75:0.75–2.25:0.5–1.75 (weight:weight:weight), The cationic polymer contains polyethyleneimine (PEI), Optionally, the method may include the step of lysing the transfected human cell line to purify the nucleic acid sequence encoding rAAV. The method for producing rAAV thereby.
2. The method according to claim 1, wherein cells of a human fetal kidney cell line are transfected in a suspension state.
3. The method according to claim 1, wherein the human fetal kidney cell line is a suspension-adapted serum-free cell line.
4. The method according to claim 1, wherein the AAV rep gene and the AAV cap gene are derived from different serotypes.
5. The method according to claim 1, wherein the AAV rep gene and the AAV cap gene originate from the same serotype.
6. The method according to claim 1, wherein the AAV rep gene is the AAV2 rep gene and the AAV cap gene is the AAV8 cap gene.
7. The method according to claim 1, wherein the AAV ITR gene and the AAV cap gene are derived from different serotypes.
8. The method according to claim 1, wherein the AAV ITR gene and the AAV cap gene originate from the same serotype.
9. The method according to claim 1, wherein the AAV inverted terminal repeat (ITR) sequence is an adeno-associated virus 2 inverted terminal repeat (ITR) sequence.
10. The method according to claim 1, wherein the AAV ITR sequence is derived from the AAV2 serotype or from a serotype selected from the group consisting of AAV1, 3a, 3b, 4, 5, 6, 7, 8, 9, 10, 11, and 13.
11. The method according to claim 1, wherein the AAV ITR sequence is synthetic.
12. A method for producing a population of high-titer recombinant adeno-associated viruses (rAAVs) lacking prokaryotic sequences, (i) A step of transfecting a human embryonic kidney cell line with a closed-end linear double-stranded rAAV vector nucleic acid comprising (a) a nucleic acid sequence encoding a helper protein sufficient for rAAV replication, (b) nucleic acid sequences encoding a rep gene and a cap gene, and (c) a xenotransgene functionally linked to at least one ITR and one or more regulatory elements, wherein 1 × 10 6 The process is such that the total amount of transfected nucleic acids from (a), (b), and (c) per individual cell is at least 0.25 μg and less than 1 μg. (ii) A step of culturing the transfected cells for at least 24 hours, (iii) Collecting transfected cells and purifying the produced rAAV vector particles. Includes, The titer of rAAV is at least 9.3 × 10⁻⁶ 13 individual vector genomes / 3.0 × 10⁻¹⁶ 9 These are individual living transfect cells, (a), (b), and (c) are transfected using a transfection composition containing (a), (b), and (c) as well as a stable cationic polymer. The ratio of the stable cationic polymer to the total amount of nucleic acids from (a), (b), and (c) is 2.5:1 (weight / weight), The cationic polymer contains PEI. The aforementioned method.
13. The method according to claim 12, wherein the ratio of (a):(b):(c) is 0.5 to 1.75:0.75 to 2.25:0.5 to 1.75 (weight:weight:weight).
14. A method for producing a population of purified recombinant adeno-associated viruses (rAAV) lacking prokaryotic sequences, i. A step of transfecting a human embryonic kidney cell line suspended in culture medium with a transfection composition, wherein the transfection composition comprises (a) a nucleic acid sequence encoding a helper protein sufficient for rAAV replication, (b) nucleic acid sequences encoding a rep gene and a cap gene, and (c) a closed-ended linear double-stranded rAAV vector nucleic acid comprising at least one ITR and a xenotransgene functionally linked to one or more regulatory elements, and (d) a stable cationic polymer, wherein the total amount of transfected nucleic acids from (a), (b), and (c) per 1 × 10⁶ cells is at least 0.25 μg and less than 1 μg, and the ratio of the stable cationic polymer to the total amount of nucleic acid components from (a), (b), and (c) is 2.5:
1. ii. A step of culturing the transfected cell line for at least 24 hours. iii. Step (ii) to collect the transfected cell line, iv. Process for purifying rAAV Includes, The purified virus is 2 x 10 4 Having a particle-to-infectivity ratio of less than vg / TCID50, The cationic polymer contains PEI. The aforementioned method.
15. The method according to claim 14, wherein the human embryonic kidney cell line is a suspension cell line, and the cells are transfected in a suspension state.
16. The method according to claim 14, wherein the human fetal kidney cell line is a suspension-adapted serum-free cell line.
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