Mammalian cells for producing adeno-associated viruses
The integration of adenovirus genes and recombination target sites into mammalian cells like CHO cells allows for stable, scalable, and high-yield rAAV production without live helper virus, addressing scalability and cytotoxicity issues in existing rAAV production methods.
Patent Information
- Application Number
- JP2023031140
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2017-02-17
- Filing Date
- 2023-03-01
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2038-02-17
AI Technical Summary
Existing methods for producing recombinant adeno-associated virus (rAAV) face challenges such as scalability issues, reliance on wild-type adenovirus helper viruses, cytotoxic effects of E1A gene expression, and inefficient production processes, making it difficult to achieve stable and high-yield production suitable for clinical applications.
A mammalian cell line, such as CHO cells, is engineered with integrated recombination target sites, adenovirus genes, and promoters, allowing for stable production of rAAV without live helper virus, using site-specific recombinase technology to integrate AAV genes and vector cassettes into the chromosome.
This approach enables high-yield, scalable production of rAAV without the need for live helper virus, facilitating efficient production for preclinical and clinical trials by integrating essential viral components into a stable cell line.
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Abstract
Description
[Technical Field]
[0001]
[0001] This disclosure relates to mammalian cells comprising at least four distinct recombination target sites (RTS), adenovirus (Ad) genes including E1A, E1B, or a combination thereof, and a promoter operably linked to the Ad genes, wherein the RTS, Ad genes, and promoter are integrated into a chromosome. This disclosure also relates to methods of using the cells to generate recombinant adeno-associated virus (rAAV) producer cells, and methods of using the rAAV producer cells to produce, package, and purify rAAV in the absence of live helper virus. [Background technology]
[0002]
[0002] The use of recombinant adeno-associated viruses (rAAVs) is being actively pursued in clinical development to enable long-term, sustained, and efficient delivery of gene therapy products. Baculovirus-based platforms for rAAV production typically require variable and time-consuming raw materials. Triple transfection and transient expression in HEK293 cells is limited by poor scalability. Existing scalable HeLa-based producer cell line processes require wild-type (wt) adenovirus 5 (Ad5) as a helper virus, but clearance of the helper virus from the final product is critical for safety. When constructing rAAV-producing cell lines, the gene of interest and auxiliary helper genes can be transiently expressed or integrated into the host chromosome. Conventional DNA transduction pathways used to modify cellular genomes are prone to unpredictable alterations and are not easily adaptable to different viral serotypes.
[0003]
[0003] Therapeutic recombinant adeno-associated virus (AAV) constructs are replication-deficient and require co-infection with wild-type adenovirus (Ad) for replication and subsequent rounds of infection. The generation of therapeutic recombinant adeno-associated virus (rAAV) vectors generally requires the provision of three distinct components to the host: (i) the adeno-associated virus genes Rep / Cap, which provide replication and packaging elements; (ii) helper virus functions from the Ad genome for viral packaging; and (iii) a gene of interest (GOI) located between the 3' and 5' inverted terminal repeats (ITRs) of AAV. Ad genes required for efficient gene expression, DNA replication, and packaging are thought to include E1A, E1B, E2A, E4, and VA RNAs. E1A is said to be the earliest gene product produced during Ad infection (Shenk, T. et al., Fields Virology, 3rd ed., pp. 2211-2148 (1996)). E1A is thought to function as a stepping stone to initiate viral replication by upregulating transcription from the AAV Rep gene promoters p5 and p19 and by activating the adenovirus early promoters for E1B, E2A, and E4. Furthermore, since the AAV-encoded proteins (Rep and Cap) lack the function of transitioning host cells into the S phase of the cell cycle for viral DNA replication, E1A is thought to perform this function. A deleterious effect of E1A is that it stabilizes p53, leading to apoptosis (Low et al., Genes & Dev. 7:535-545 (1993)). Leaky expression of E1A can also turn on Ad and AAV Rep genes. The latter has been reported to have cytostatic and cytotoxic effects, which makes it difficult to obtain stable cell lines from cells that constitutively express E1A. Control of E1A gene expression is thought to be crucial for establishing helper virus-free AAV packaging cell lines.
[0004]
[0004] Various cell lines and approaches have been attempted to bring these elements together to produce rAAV. These various cell lines include HEK293 and HeLa cell lines. Various approaches have also included the use of baculovirus systems. However, each cell line and approach has its own drawbacks, and none is an ideal platform for a scalable, robust rAAV production process.
[0005] One rAAV production process uses HEK293 cells generated by transfection of primary embryonic kidney cells with physically sheared Ad5 DNA (Graham FL et al., J. Gen. Virol. 36:59-74 (1977)). Genomic analysis has revealed that HEK293 cells carry an integrated fragment of the left end of the adenovirus genome (bases 1-4344), including the E1 region and additional flanking sequences (Louis N. et al., Virology 233:423-9 (1997)). Several triple transfection processes have been used to transfect adherent HEK293 cells with plasmids containing the remaining essential elements. Although HEK293 can be used for rAAV production, adherent cell-based processes are difficult to scale up, cannot meet the growing demand for vectors with various potencies, and therefore rely on transient transfection rather than stable producer cell lines.
[0006] A second rAAV production process features the generation and selection of stably transfected HeLa cell clones containing both the AAV genes Rep / Cap and the GOI. These cell lines are then infected with wild-type Ad5 to allow packaging of rAAV particles. While this method is scalable, generation of these clones can be a lengthy, labor-intensive process, and removal of wild-type Ad5 virus from the final product of this process adds multiple steps to the process.
[0007] A third rAAV production process relies on recombinant baculovirus for introduction of the AAV genes (Rep / Cap) and directly performs the helper virus functions necessary for rAAV production in SF9 insect cells. While this method is scalable in suspension culture, it requires the generation of plaque-purified recombinant baculovirus constructs, thus extending the timeframe for product development.
[0008]
[0008] A new and efficient platform for rAAV production that addresses these shortcomings, provides a rapid process for generating stable producer cell lines in desired AAV serotypes, and provides high-yield, scale-up production without the addition of live helper virus is needed to provide high-quality vectors for use in both preclinical and clinical trials.
[0009]
[0009] Type I interferons (IFNs) were the first cytokines to be discovered and named for their potent ability to "block" viral replication. Many viral products can block IFN-associated signals, such as the influenza NS1 protein and vaccinia virus E3L protein, which inhibit protein kinase R (PKR), and the soluble IFN-α / β receptor decoy encoded by vaccinia virus.
[0010] Chinese hamster ovary (CHO) cells (Puck, J. Exp. Med., 108:259-268 (1958)) are a well-characterized cell line that is often used for the industrial production of recombinant proteins from mammalian cells due to their high productivity, robust nature, and ease of handling in industrial safety and usage records (Birch and Racher, Adv. Drug Delivery Rev., 58:671-685 (2006)). However, CHO cells have not previously been used in the production of rAAV.
[0011]
[0011] Various publications are cited herein, the entire disclosures of which are incorporated herein by reference. Summary of the Invention
[0012] [Brief description of the invention] In some embodiments, the present disclosure provides a mammalian cell comprising (i) at least four distinct recombination target sites (RTSs), (ii) adenovirus (Ad) genes including E1A, E1B, or a combination thereof, and (iii) a promoter operably linked to the Ad genes, wherein the RTSs, Ad genes, and promoter are integrated into a chromosome. In some embodiments, the cell is a mouse cell, a human cell, a Chinese hamster ovary (CHO) cell, a CHO-K1 cell, a CHO-DXB11 cell, a CHO-DG44 cell, a CHOK1SV™ cell (Lonza, Slough, UK) including all variants, a CHOK1SV GS-KO™ (glutamine synthetase knockout) cell (Lonza, Slough, UK) including all variants, a HEK293 cell, a HeLa cell, or a HT1080 cell, including adherent-adapted and suspension-adapted variants. In some embodiments, the cell comprises four RTSs. In some embodiments, the cell comprises six RTSs. In some embodiments, at least one RTS is selected from the group consisting of SEQ ID NOs: 1-30. In some embodiments, at least one RTS, Ad gene, and promoter are integrated into a single chromosomal locus. In some embodiments, the chromosomal locus is Fer1L4, ROSA26, HGPRT, DHFR, COSMC, LDHa, MGAT1, GRIK1, NL1, NL2, the first intron of MID1 on the X chromosome, or Enhanced Expression and Stability Regions (EESYR; see, e.g., U.S. Pat. No. 7,771,997). In some embodiments, the cell comprises a site-specific recombinase gene. In some embodiments, the site-specific recombinase gene is integrated into a chromosome. In some embodiments, the cell comprises a second Ad gene, and the second Ad gene is integrated into a chromosome. In some embodiments, the second Ad gene comprises E1A, E1B, E2A, E4, VA, MIR342, or a combination thereof. In some embodiments, the second Ad gene is from Ad5. In some embodiments, the second Ad gene is located between the two RTSs.In some embodiments, the cell further comprises adeno-associated virus (AAV) genes, wherein the AAV genes are integrated into the chromosome. In some embodiments, the AAV genes include Rep, Cap, or a combination thereof. In some embodiments, the AAV genes are derived from adeno-associated virus type 2. In some embodiments, the AAV genes are located between two RTSs. In some embodiments, the cell further comprises an AAV vector cassette, wherein the AAV vector cassette is integrated into the chromosome. In some embodiments, the AAV vector cassette comprises a reporter gene, a selection gene, a therapeutic gene, or a combination thereof. In some embodiments, the AAV vector cassette is located between two RTSs. In some embodiments, the cell is substantially free of helper virus.
[0013] In some embodiments, the present disclosure provides a mammalian cell comprising (i) at least four distinct recombination target sites (RTSs), (ii) Ad genes E2A, E4, VA, MIR342, or a combination thereof, and (iii) a promoter operably linked to the Ad genes, wherein the RTSs, Ad genes, and promoters are integrated into a chromosome. In some embodiments, the cell is a mouse cell, a human cell, a Chinese hamster ovary (CHO) cell, a CHO-K1 cell, a CHO-DXB11 cell, a CHO-DG44 cell, a CHOK1SV™ cell including all variants, a CHOK1SV GS-KO™ (glutamine synthetase knockout) cell including all variants, a HEK293 cell including adherent-adapted and suspension-adapted variants, a HeLa cell, or an HT1080 cell. In some embodiments, the cell comprises four RTSs. In some embodiments, the cell comprises six RTSs. In some embodiments, at least one RTS is selected from the group consisting of SEQ ID NOs: 1-30. In some embodiments, the RTS, Ad gene, and promoter are integrated into a single chromosomal locus. In some embodiments, the chromosomal locus is Fer1L4, ROSA26, HGPRT, DHFR, COSMC, LDHa, MGAT1, GRIK1, NL1, NL2, the first intron of MID1 on the X chromosome, or the expression enhancing and stability region (EESYR). In some embodiments, the cell comprises a site-specific recombinase gene. In some embodiments, the site-specific recombinase gene is integrated into the chromosome. In some embodiments, the cell further comprises a second Ad gene, wherein the second Ad gene is integrated into the chromosome. In some embodiments, the second Ad gene comprises E1A, E1B, E2A, E4, VA, MIR342, or a combination thereof. In some embodiments, the second Ad gene is from Ad5. In some embodiments, the second Ad gene is located between two RTSs. In some embodiments, the cells further comprise adeno-associated virus (AAV) genes, wherein the AAV genes are integrated into the chromosome. In some embodiments, the AAV genes comprise Rep, Cap, or a combination thereof.In some embodiments, the AAV gene is derived from adeno-associated virus type 2. In some embodiments, the AAV gene is located between two RTSs. In some embodiments, the cell further comprises an AAV vector cassette, wherein the AAV vector cassette is integrated into a chromosome. In some embodiments, the AAV vector cassette comprises a reporter gene, a selection gene, a therapeutic gene, or a combination thereof. In some embodiments, the AAV vector cassette is located between two RTSs. In some embodiments, the cell is substantially free of helper virus.
[0014] In some embodiments, the present disclosure provides a mammalian cell comprising (i) at least four distinct recombination target sites (RTSs) and (ii) adeno-associated virus (AAV) genes comprising Rep, Cap, or a combination thereof, wherein the RTSs and AAV genes are integrated into a chromosome. In some embodiments, the AAV genes are derived from adeno-associated virus type 2. In some embodiments, the cell is a mouse cell, a human cell, a Chinese hamster ovary (CHO) cell, a CHO-K1 cell, a CHO-DXB11 cell, a CHO-DG44 cell, a CHOK1SV™ cell including all variants, a CHOK1SV GS-KO™ cell including all variants, a HEK293 cell including adherent-adapted and suspension-adapted variants, a HeLa cell, or an HT1080 cell. In some embodiments, the cell comprises four RTSs. In some embodiments, the cell comprises six RTSs. In some embodiments, at least one RTS is selected from the group consisting of SEQ ID NOs: 1-30. In some embodiments, the RTS and AAV are integrated at a single chromosomal locus. In some embodiments, the chromosomal locus is Fer1L4, ROSA26, HGPRT, DHFR, COSMC, LDHa, MGAT1, GRIK1, NL1, NL2, the first intron of MID1 on chromosome X, or the expression enhancing and stability region (EESYR). In some embodiments, the cell comprises a site-specific recombinase gene. In some embodiments, the site-specific recombinase gene is integrated into the chromosome. In some embodiments, the cell further comprises an Ad gene and a promoter operably linked to the Ad gene, whereby the Ad gene and promoter are integrated into the chromosome. In some embodiments, the Ad gene comprises E1A, E1B, E2A, E4, VA, MIR342, or a combination thereof. In some embodiments, the Ad gene is from Ad5. In some embodiments, the AAV gene is located between the two RTSs. In some embodiments, the cell further comprises an AAV vector cassette, where the AAV vector cassette is integrated into the chromosome.In some embodiments, the AAV vector cassette comprises a reporter gene, a selection gene, a therapeutic gene, or a combination thereof. In some embodiments, the AAV vector cassette is located between two RTSs. In some embodiments, the cells are substantially free of helper virus.
[0015]
[0015] In some embodiments, the present disclosure provides a Chinese hamster ovary (CHO) cell comprising six distinct recombination target sites (RTSs), at least one RTS selected from the group consisting of SEQ ID NOs: 1-30; adenovirus (Ad) genes comprising E1A and E1B; and a promoter operably linked to the Ad genes, wherein the RTSs, Ad genes, and promoter are integrated into a chromosome; a second Ad gene comprising E2A, E4, VA, and MIR342, the second Ad gene being integrated into the chromosome and located between the two RTSs; adeno-associated virus (AAV) genes comprising Rep and Cap, the AAV genes being integrated into the chromosome and located between the two RTSs; and an AAV vector cassette comprising a reporter gene, a selection gene, or a gene of therapeutic interest, the AAV vector cassette being integrated into the chromosome and located between the two RTSs.
[0016]
[0016] In some embodiments, the present disclosure provides a Chinese hamster ovary (CHO) cell comprising adenovirus (Ad) genes including E1A and E1B and a promoter operably linked to the Ad genes, a second Ad gene including E2A, E4, VA and MIR342, adeno-associated virus (AAV) genes including Rep and Cap, and an AAV vector cassette comprising a reporter gene, a selection gene, a gene of therapeutic interest, or a combination thereof.
[0017]
[0017] In some embodiments, the present disclosure provides methods for producing recombinant adeno-associated virus (rAAV) producer cells, comprising: providing a cell comprising at least four distinct recombination target sites (RTS), adenovirus (Ad) genes comprising E1A, E1B, or a combination thereof, and a promoter operably linked to the Ad genes, wherein the RTS, Ad genes, and promoter have been integrated into a chromosome; transfecting the provided cell with a vector comprising a replaceable cassette encoding an adeno-associated virus (AAV) gene, a second Ad gene, an AAV vector cassette, or a combination thereof; integrating the replaceable cassette into the chromosome; and selecting rAAV producer cells having the replaceable cassette integrated into the chromosome. In some embodiments, the transfection is with two vectors: a first vector comprising a replaceable cassette comprising the second Ad gene and the AAV gene, and a second vector comprising a replaceable cassette comprising the AAV vector cassette. In some embodiments, transfection is performed using two vectors: a first vector containing a replaceable cassette containing a second Ad gene and a second vector containing a replaceable cassette containing an AAV gene. In some embodiments, transfection is performed using three vectors: a first vector containing a replaceable cassette containing a second Ad gene, a second vector containing a replaceable cassette containing an AAV gene, and a third vector containing a replaceable cassette containing an AAV vector cassette. In some embodiments, each replaceable cassette further contains two RTSs that match the two RTSs of the cell. In some embodiments, the second Ad gene contains E1A, E1B, E2A, E4, VA, MIR342, or a combination thereof. In some embodiments, the AAV gene contains Rep, Cap, or a combination thereof. In some embodiments, the AAV vector cassette contains a reporter gene, a selection gene, a therapeutic gene, or a combination thereof.
[0018]
[0018] In some embodiments, the present disclosure provides a method for producing a recombinant adeno-associated virus (rAAV), comprising the steps of (i) infecting a host cell with rAAV, (ii) producing rAAV packaged with an AAV vector cassette, and (iii) purifying the packaged rAAV, wherein the host cell comprises at least four distinct recombination target sites (RTS), adenovirus (Ad) genes including E1A, E1B, or a combination thereof, a promoter operably linked to the Ad genes, wherein the RTS, Ad genes, and promoter are chromosomally integrated, a second Ad gene including E1A, E1B, E2A, E4, VA, MIR342, or a combination thereof, adeno-associated virus (AAV) genes including Rep, Cap, or a combination thereof, and an AAV vector cassette comprising a reporter gene, a selection gene, a therapeutic gene, or a combination thereof. In some embodiments, a live wild-type helper virus is not required for the production and packaging of rAAV. In some embodiments, expression of E1A is not required for rAAV production. In some embodiments, a minimum of 1.0 x 10 9 vg / mL of active AAV is obtained after purification. [Brief explanation of the drawings]
[0019] [Figure 1A] Figure 1 shows the production of recombinant adeno-associated virus (rAAV) in HEK293 and CHOK1SV GS-KO™ cells. Triple transfection with plasmids (pAAV-GFP (AAV-400, Cell Biolabs), pRC2-mi342 (6234, Clontech), and pHelper (6234, Clontech)) was completed in HEK293 cells. Double transfection with helper virus (wt Ad5) (pAAV-GFP (AAV-400, Cell Biolabs) and pRC2-mi342 (6234, Clontech)) was completed in CHOK1SV GS-KO™ cells. Figure 1A shows a schematic diagram of the experimental design. [Figure 1B] Figure 1 shows the production of recombinant adeno-associated virus (rAAV) in HEK293 and CHOK1SV GS-KO™ cells. Triple transfection of HEK293 cells with plasmids (pAAV-GFP (AAV-400, Cell Biolabs), pRC2-mi342 (6234, Clontech), and pHelper (6234, Clontech)) was completed. Double transfection of CHOK1SV GS-KO™ cells with helper virus (wt Ad5) (pAAV-GFP (AAV-400, Cell Biolabs) and pRC2-mi342 (6234, Clontech)) was completed. FIG. 1B shows detection of green fluorescent protein (GFP) signal in transfected CHOK1SV GS-KO™ cells (left) and HEK293 cells infected with lysates from transfected CHOK1SV GS-KO™ cells (right). [Figure 1C] Figure 1 shows the production of recombinant adeno-associated virus (rAAV) in HEK293 and CHOK1SV GS-KO™ cells. Triple transfection of HEK293 cells with plasmids (pAAV-GFP (AAV-400, Cell Biolabs), pRC2-mi342 (6234, Clontech), and pHelper (6234, Clontech)) was completed. Double transfection of CHOK1SV GS-KO™ cells with co-infection with helper virus (wt Ad5) (pAAV-GFP (AAV-400, Cell Biolabs) and pRC2-mi342 (6234, Clontech)) was completed. Figure 1C shows the quantification of rAAV titers in CHOK1SV GS-KO™ and HEK293 (control) cells by qPCR analysis of viral genomic DNA. [Figure 2] Figure 2 shows a diagram of the pMF30 vector. E1A is present in a TET-inducible vector carrying the GS selection marker. [Figure 3]Figure 3 shows a diagram of the pMF23 vector. E1B is present in the constitutive vector carrying the PAC selectable marker. [Figure 4] Figure 4 shows a diagram of the pXC17.4_17Ad5PerProKZ vector. E1A and E1B were expressed from a single promoter as described in Qiao et al., J. Virol. 76:1904-13 (2002). (The viral regulatory region between the two genes and the viral promoter region (nucleotides 498-3635) located between the E1A and E1B coding sequences were retained.) Annotation corresponds to the coordinates described in Qiao et al., J. Virol. 76:1904-13 (2002). [Figure 5A] Figure 5 shows the construction of a CHOK1SV GS-KO™ pool that expresses wild-type Ad5 E1A and E1B to enable rAAV production in these cells without helper virus. Figure 5A is a schematic representation of the experimental design. [Figure 5B] Figure 5 shows the construction of the CHOK1SV GS-KO™ pool, which expresses wild-type Ad5 E1A and E1B to enable rAAV production in these cells without helper virus. Figure 5B shows agarose gel analysis of genomic PCR products for E1A in HEK293F, HEK293L, CHOK1SV GS-KO™, and CHOK1SV GS-KO™ MOCK and CHOK1SV GS-KO™ (E1A_E1B) pools. [Figure 5C] Figure 5 shows the construction of a CHOK1SV GS-KO™ pool that expresses wild-type Ad5 E1A and E1B, enabling rAAV production in these cells without helper virus. Figure 5C shows agarose gel analysis of genomic PCR products for E1B in HEK293F, HEK293L, CHOK1SV GS-KO™ hosts, and CHOK1SV GS-KO™ MOCK and CHOK1SV GS-KO™ E1A_E1B pools. [Figure 5D]Figure 5 shows the construction of a CHOK1SV GS-KO™ pool that expresses wild-type Ad5 E1A and E1B, enabling rAAV production in these cells without helper virus. Figure 5D shows agarose gel analysis of RT-PCR products for E1A in doxycycline-treated HEK293F, HEK293L, CHOK1SV GS-KO™ hosts, and CHOK1SV GS-KO™ MOCK and CHOK1SV GS-KO™ E1A_E1B pools. [Figure 5E] Figure 5 shows the construction of a CHOK1SV GS-KO™ pool that expresses wild-type Ad5 E1A and E1B, enabling rAAV production in these cells without helper virus. Figure 5E shows agarose gel analysis of RT-PCR products for E1B in doxycycline-treated HEK293F, HEK293L, CHOK1SV GS-KO™, and CHOK1SV GS-KO™ MOCK and CHOK1SV GS-KO™ E1A_E1B pools. [Figure 5F] Figure 5 shows the construction of a CHOK1SV GS-KO™ pool that expresses wild-type Ad5 E1A and E1B to enable rAAV production in these cells without helper virus. Panel F shows Western blot analysis of protein lysates for E1A and β-actin in the CHOK1SV GS-KO™ MOCK and CHOK1SV GS-KO™ E1A_E1B pools. [Figure 6] Figure 6 shows vector diagrams for pRC2-miRNA342 (6234, Clontech) (Figure 6A), pHelper (6234, Clontech) (Figure 6B), and pAAV-GFP (AAV-400, Cell Biolabs) (Figure 6C). [Figure 7]Figure 7 shows a schematic diagram of three independently addressable site-specific integration sites (SSISs) in the site-specific integration cell lines CHOK1SV GS-KO™ and HEK293. Figure 7A shows the layout of landing pad 1, which contains a single or dual-function reporter / marker gene. The reporter gene is under the control of the SV40E promoter and contains the SV40 polyA sequence. For recombinase-mediated cassette exchange (RMCE), incompatible Frt sites are located between the SV40 promoter and the hpt-eGFP gene (Frt-A) and 5' to the SV40 polyA sequence (Frt-B). Figures 7B and 7C show the layout of the following landing pads containing incompatible Frt sites (C, D, E, and F) and different reporters, allowing independent targeting of payload sequences. In this case, Frt sites A to F can be any of those listed in Table 2. [Figure 8] Figure 8 shows a systematic overview of the method for preparing CHOK1SV GS-KO™-AAV producer cells. Adenovirus (Ad) genes (helper genes), AAV genes (Rep / Cap), and an AAV vector cassette (e.g., ITR-GOI-ITR) are introduced using SSIS. Furthermore, Ad genes (E1A / E1B) are introduced into CHOK1SV GS-KO™ at another site along with an inducible promoter. In this case, Frt sites A to F can be any of those listed in Table 2. Figure 8A shows the single-site configuration of CHOK1SV GS-KO™ and the HEK293 host. The Ad helper genes are integrated by SSIS, and the GOI / Rep / Cap genes are transiently expressed from a plasmid. Figure 8B shows the double-site configuration of CHOK1SV GS-KO™ and the HEK293 host. The Ad helper and Rep / Cap genes are integrated in two separate SSISs, and the GOI is transiently expressed from a plasmid. Figure 8C shows the triple site configuration for CHOK1SV GS-KO™ and the HEK293 host. The helper, Rep / Cap, and GOI genes are integrated in three separate SSISs. In some cases, E1A and E1B genes are integrated in SSISs to enhance expression. [Figure 9]Figure 9 shows a schematic diagram of rAAV production in CHOK1SV GS-KO™ site-specific integration (SSI) hosts using site-specific integration of the GOI and Rep / Cap genes at different sites. To produce rAAV, CHOK1SV GS-KO™ SSI hosts were infected with wild-type Ad5 to provide the helper gene functions required for rAAV replication. [Figure 10]Figure 10 shows a schematic diagram of the GOI vector and four designs of the Rep / Cap genes for site-specific integration in the CHOK1SV GS-KO™ host. All vectors are flanked by two Frt sites, allowing for SSI introduction into CHOK1SV GS-KO™ SSI host cells. Figure 10A shows a schematic of the construction of vector pLMC31 (encoding an rAAV vector with an eGFP reporter gene flanked by ITRs at both ends of the AAV cassette). The selectable marker for this vector is the neomycin phosphotransferase I gene, and Frt sites are positioned for NL1 targeting. Figure 10B shows a schematic of the construction of vector pLMC32 (encoding the AAV2 Rep / Cap genes). This vector contains a minimal p5 promoter (open square) containing two enhancer elements 5′ to Rep to reduce Rep expression and suppress rAAV production, and a complete p5 promoter (black and white square) 3′ to Cap to enhance Cap expression. Figure 10C shows a schematic of the construction of vector pLMC33 (encoding the AAV2 Rep / Cap genes). This vector contains a minimal p5 promoter (white square) 5' to Rep and a p5mut promoter (black and gray squares) 3' to Cap, in which the TATA box has been mutated to GGGGGGG to reduce promoter activity. Figure 10D shows a schematic of the construction of vector pLMC34, again encoding the AAV2 Rep / Cap genes. This vector contains a wild-type p5 promoter (white and black squares) 5' to Rep and a mutated p5 promoter (black and gray squares) 3' to Cap. Figure 10E shows a schematic of the construction of vector pLMC35, again encoding the AAV2 Rep / Cap genes. This vector contains a mutated p5 promoter (black and gray squares) 5' to Rep and 3' to Cap. The selectable marker in pLMC32 to pLMC35 is the GS cDNA, and an Frt site is positioned for targeting to Fer1L4. [Figure 11]Figure 11 shows protein expression of E1A, Rep, and Cap in HEK293 and CHOK1SV GS-KO™ cells by Western blot analysis. HEK293 cells were transfected with pHelper (6234, Clontech), GOI (pLMC31), and one Rep-Cap vector (pLMC32-35), or triple-transfected with pHelper (6234, Clontech), pRC2-mi342 (6234, Clontech), and pAAV-GFP (AAV-400, Cell Biolabs). CHOK1SV GS-KO™ cells were infected with wild-type Ad5 and transfected with the GOI (pLMC31) and one Rep-Cap vector (pLMC32-35), or infected with wild-type Ad5 and transfected with pRC2-mi342 (6234, Clontech) and pAAV-GFP (AAV-400, Cell Biolabs). Three days after transfection, protein lysates were analyzed by Western blotting. Figure 11A shows the levels of three E1A isoforms: E1A 289R, E1A 243R, and E1A 171R (Radko et al. (2015) PLoS One. 10:e0140124). E1A protein levels were detected using a mouse anti-E1A antibody (Abcam, ab33183) diluted 1:1000. The molecular weights of E1A, Rep, and Cap protein isoforms are shown in parentheses. While E1A protein levels were unchanged in HEK293 or CHOK1SV GS-KO™ cells transfected with different vectors, the protein levels of each E1A isoform differed between HEK293 and CHOK1SV GS-KO™ cells. Figure 11B shows the levels of Rep78 and Rep52 proteins. Rep protein levels were detected using a mouse anti-Rep antibody (ARP, 03-61069) diluted 1:1000. Molecular weights are shown in parentheses.Rep52 protein levels were unchanged in HEK293 or CHOK1SV GS-KO™ cells transfected with different vectors, whereas Rep78 protein levels were elevated in cells transfected with pLMC34 and pLMC35. Figure 11C shows the levels of the three Cap isoforms, VP1, VP2, and VP3, using a mouse anti-Cap antibody (ARP, 03-61058) diluted 1:1000. Molecular weights are shown in parentheses. VP3 protein levels were unchanged in HEK293 cells transfected with different vectors, and VP1 and VP2 were undetectable in HEK293 cells. VP1, VP2, and VP3 were undetectable in CHOK1SV GS-KO™ cells. Figure 11D shows a β-actin loading control using a mouse anti-β-actin antibody (TFS, MA5-1573) diluted 1:1000. [Figure 12]Figure 12 shows the infectivity of rAAV produced by HEK293 and CHOK1SV GS-KO™ cells. HEK293 cells were triple-transfected with Rep / Cap, GOI, and pHelper (6234, Clontech). CHOK1SV GS-KO™ cells were transfected with Rep / Cap and GOI and infected with wild-type Ad5. Three days after transfection, an equal amount of the collected crude rAAV was used to infect HEK293 cells. Two days after transduction, green fluorescence and bright-field images were obtained. Green fluorescence was emitted by GOI-packaged rAAV. The scale bar in the figure represents 50 μm. The infectivity of rAAV produced by triple-transfected HEK293 cells (pHelper (6234, Clontech), pRC2-mi342 (6234, Clontech), and pAAV-GFP (AAV-400, Cell Biolabs)) (top panel) was higher than that produced by transfected CHOK1SV GS-KO™ cells (third panel). In particular, the infectivity of rAAV produced by HEK293 cells transfected with pLMC32-35 was higher than that produced by HEK293 cells transfected with pRC2-mi342 (6234, Clontech) (top panel). [Figure 13]Figure 13 shows the construction of pools derived from the CHOK1SV GS-KO™ SSI host carrying the GOI SSI and one of four Rep-Cap configurations. Pools were generated in two stages. In stage 1, part 1, the CHOK1SV GS-KO™ SSI host was transfected with the FLP recombinase vector (pMF4) and one Rep-Cap vector (pLMC32-35), followed by selection in glutamine-free medium. In stage 1, part 2, the CHOK1SV GS-KO™ SSI host was transfected with the FLP recombinase vector (pMF4), one Rep-Cap vector (pLMC32-35), and the GOI vector (pLMC31), followed by selection in glutamine-free medium containing geneticin (500 μg / mL or 750 μg / mL). These were designated "A" pools. In step 2, 4 to 7 of the "A" pool were transfected with FLP recombinase (pMF4) and the GOI vector (pLMC31) and then selected in medium containing geneticin (400 μg / mL). These were designated the "B" pool. [Figure 14] Figure 14 shows a schematic diagram of primer sites for detection of targeted SSI and remaining (non-exchanged) landing pads. Primer set P5 was designed to detect specific Rep / Cap integration into the landing pad located in the Fer1L4 gene. The expected product size is 1524 bp. Primer set P6 was designed to detect the remaining landing pad. The expected product size is 487 bp. Primer set P7 was designed to detect specific GOI integration into the landing pad located in the NL1 locus. The expected product size is 1446 bp. Primer set P8 was designed to detect the remaining NL1 landing pad. The expected product size is 809 bp. [Figure 15]Figure 15 shows agarose gel analysis of genomic DNA PCR products for Rep / Cap integration into the Fer1L4 landing pad. Genomic DNA was recovered from pool "A," pool "B," CHOK1SV GS-KO™, and CHOK1SV GS-KO™ SSI hosts and then amplified by PCR using primer set 5 or 6. PCR products were separated by agarose gel electrophoresis. Figure 15A shows agarose gel analysis of genomic DNA PCR products using primer set P5 for specific Rep / Cap integration into the landing pad located in the Fer1L4 gene. The expected product size is 1524 bp. The results show specific Rep / Cap integration into the landing pad located in the Fer1L4 gene in pools 4, 5, 6, 7, 9, 11, 17, 18, 19, and 21 of pool "A" and all analyzed "B" pools. As expected, specific Rep / Cap integration was not detected in CHOK1SV GS-KO™ and CHOK1SV GS-KO™ SSI hosts. Figure 15B shows agarose gel analysis of genomic DNA PCR products using primer set P6 for the remaining landing pad of the Fer1L4 gene. The expected product size is 487 bp. The results show incomplete Rep / Cap integration into some remaining landing pads and the landing pad located in the Fer1L4 gene in all but 18 of the "A" pools and all of the "B" pools. A smaller PCR product was present in 19 of the "A" pools, indicating loss of some sequence. As expected, the Fer1L4 landing pad was amplified in CHOK1SV GS-KO™ cells but not in the CHOK1SV GS-KO™ SSI host. [Figure 16]Figure 16 shows agarose gel analysis of genomic DNA PCR products for GOI integration into the NL1 landing pad. Genomic DNA was recovered from pool "A," pool "B," CHOK1SV GS-KO™, and CHOK1SV GS-KO™ SSI hosts and then amplified by PCR using primer set 7 or 8. PCR products were separated by agarose gel electrophoresis. Figure 16A shows agarose gel analysis of genomic DNA PCR products for GOI integration into the NL1 landing pad using primer set P7. The expected product size is 1446 bp. The results demonstrate specific GOI integration into the landing pads located at all NL1 loci in pool "B," but not pool "A." As expected, specific GOI integration was not detected in pool "A," or pool "B," CHOK1SV GS-KO™, or SSI hosts. Figure 16B shows agarose gel analysis of genomic DNA products using the P8 primer set for the remaining NL1 landing pad. The expected product size is 809 bp. The results show incomplete GOI integration into some remaining landing pads and landing pads located in the NL1 gene in all "A" pools except 11 and all "B" pools. The results show that the NL1 landing pad was incomplete in "A" pool 11, and the GOI was not integrated into the landing pad. As expected, the NL1 landing pad was amplified in CHOK1SV GS-KO™ cells but was not detected in the CHOK1SV GS-KO™ SSI host. [Figure 17]Figure 17 shows Western blot analysis of E1A, Rep, and Cap protein expression in CHOK1SV GS-KO™ cells infected with wild-type Ad5. Pools "A" and "B" were infected with wild-type Ad5 for 3 days and then harvested for E1A, Rep, Cap, and β-actin protein expression analysis. Figure 17A shows the levels of three isoforms: E1A 289R, E1A 243R, and E1A 171R. E1A protein levels were detected using a mouse anti-E1A antibody (Abcam, ab33183) diluted 1:1000. The molecular weights of E1A, Rep, and Cap protein isoforms are shown in parentheses. The levels of all three E1A isoforms were comparable in all pools and slightly higher in CHOK1SV GS-KO™ cells. Figure 17B shows the levels of Rep78 and Rep52 proteins. Rep protein levels were detected using a mouse anti-Rep antibody (ARP, 03-61069) diluted 1:1000. Molecular weights are shown in parentheses. Rep78 was not detectable. Rep52 was detected (indicated with an *) in "A" pool 13 and "B" pools 6, 7, 8, and 10. Figure 11C shows the levels of the three Cap isoforms, VP1, VP2, and VP3, using a mouse anti-Cap antibody (ARP, 03-61058) diluted 1:1000. Molecular weights are shown in parentheses. VP1, VP2, and VP3 were not detected. Figure 17D shows a β-actin loading control using a mouse anti-β-actin antibody (TFS, MA5-1573) diluted 1:1000. [Figure 18]Figure 18 shows a schematic diagram of primer sites for detection of AAV2 Rep and Cap mRNA. Primer set P1 is for Rep78 and Rep68. Primer set P2 is for Rep78, Rep68, Rep52, and Rep40. Primer set P3 is for Rep78 and Rep52. Primer set P4 is for all Rep and Cap. * indicates an alternative ACG codon used to produce VP3. The AAV2 genome structure was adjusted with reference to Samulski and Muzyczka, Annu. Rev. Virol. 1:427-451 (2014). [Figure 19]Figure 19 shows mRNA expression analysis for Rep / Cap and Ad5 helper genes from transfected HEK293 and CHOK1SV GS-KO™ cells. HEK293 cells were triple-transfected with pRC2-mi342 (6234, Clontech) and pAAV-GFP (AAV-400, Cell Biolabs) vectors (black bars). CHOK1SV GS-KO™ cells were transfected with pRC2-mi342 and pAAV-GFP and infected with wild-type Ad5 (white bars). Controls included HEK293 or CHOK1SV GS-KO™ cells transfected with pRC2-mi342 (top left bar). cDNA was prepared and subjected to RT-qPCR analysis for Rep / Cap and Ad helper genes. Expression data were internally normalized to β-actin and then compared to HEK293 control samples. Primer sequences are shown in Figure 21. Figure 19A shows mRNA levels of Rep78 and Rep68. After triple transfection, ~6-fold and ~5-fold induction (respectively) was observed in HEK293 and CHOK1SV GS-KO™ cells. Figure 19B shows mRNA levels of Rep78, Rep68, Rep52, and Rep40. After triple transfection, ~11-fold and ~5-fold induction (respectively) was observed in HEK293 and CHOK1SV GS-KO™ cells. Figure 19C shows mRNA levels of Rep78 and Rep52. After triple transfection, ~17-fold and ~4-fold induction (respectively) was observed in HEK293 and CHOK1SV GS-KO™ cells. Figure 19D shows mRNA levels of total Rep and Cap. After triple transfection, ~20-fold and ~7-fold induction was observed in HEK293 and CHOK1SV GS-KO™ cells (respectively). Figure 19E shows E1A mRNA levels. After triple transfection, ~1-fold induction was observed in HEK293. E1A mRNA was not detected in control CHOK1SV GS-KO™ cells and was detected after transfection and infection with wild-type Ad5.Figure 19F shows E1B-19K mRNA levels. After triple transfection, a ~1-fold induction was observed in HEK293 cells. E1B-19K mRNA was undetectable in control CHOK1SV GS-KO™ cells and was detected after transfection and infection with wild-type Ad5. Figure 19G shows E1B-55K mRNA levels. After triple transfection, a ~1-fold induction was observed in HEK293 cells. E1B-55K mRNA was undetectable in control CHOK1SV GS-KO™ cells and was detected after transfection and infection with wild-type Ad5. Figure 19H shows E2A mRNA levels. E2A mRNA was undetectable in control samples and was present after triple transfection. Figure 19I shows E4 mRNA levels. E4 mRNA was undetectable in control samples and was present after triple transfection. Figure 19J shows VAI mRNA levels. VAI mRNA was undetectable in the control sample but was present after triple transfection. Figure 19K shows VAII mRNA levels. VAII mRNA was undetectable in the control sample but was present after triple transfection. All observed mRNA levels, except for E4, were lower in CHOK1SV GS-KO™ compared to HEK293 cells (Figures 19A-K). These data indicate that Rep-Cap mRNA induction and expression were lower in CHOK1SV GS-KO™ cells compared to HEK293 cells. [Figure 20]Figure 20 shows the titers of rAAV from triple-transfected HEK293 and CHOK1SV GS-KO™ cells. HEK293 cells were transfected with pHelper (6234, Clontech), one of pLMC32-35 or pRC-mi342 (6234, Clontech), and pLMC31 or pAAV-GFP (AAV-400, Cell Biolabs) vectors. CHOK1SV GS-KO™ cells were infected with wild-type Ad5, one of pLMC32-35 or pRC-mi342 (6234, Clontech), and pLMC31 or pAAV-GFP (AAV-400, Cell Biolabs) vectors. Three days after transfection, DNA was extracted and subjected to TaqMan-qPCR analysis for AAV expression. The titers of AAV produced by CHOK1SV GS-KO™ cells were lower than those produced by HEK293 cells, whereas the titers produced by HEK293 cells triple-transfected with pHelper (6234, Clontech), pLMC31, and pLMC32-35 were significantly higher in HEK293 cells triple-transfected with Clontech vectors (pHelper (6234, Clontech)), pRC2-mi342 (6234, Clontech), and pAAV-GFP (AAV-400, Cell Biolabs). [Figure 21] FIG. 21 shows the primer sequences (SEQ ID NOs: 43 to 74, respectively, in the order shown) used in TaqMan-qPCR and genomic DNA PCR analysis. DETAILED DESCRIPTION OF THE INVENTION
[0020] [Detailed Description of the Invention]
[0040] The use of the words "a" or "an," when used in connection with the word "comprising" in the claims and / or specification, may mean "one," but is also consistent with meaning "one or more," "at least one," and "one or more than one."
[0021]
[0041] The term "about" is used herein to indicate that a value has an inherent variation of error in the method / device used to measure the value or that such variation exists in the test subjects. Typically, the term is meant to include a variability of approximately 1%, 2%, 3%, 4%, 5%, 6%, 7%, 8%, 9%, 10%, 11%, 12%, 13%, 14%, 15%, 16%, 17%, 18%, 19%, or 20%, or less, depending on the context.
[0022]
[0042] The use of the term "or" in the claims is intended to mean "and / or" unless expressly indicated to be a mere alternative or intended to not exclusively include said alternatives, although support is provided in this disclosure for such alternatives and definitions related to "and / or."
[0023]
[0043] As used in the specification and claim(s), the words "comprising" (and any synonyms, e.g., "comprise" and "comprises"), "having" (and any synonyms, e.g., "have" and "has"), "including" (and any synonyms, e.g., "includes" and "include"), or "containing" (and any synonyms, e.g., "contains" and "contain") are inclusive or open-ended and do not exclude additional, unrecited elements or method steps. It is contemplated that any embodiment described herein can be implemented with respect to any method, system, host cell, expression vector, and / or composition of the invention. Furthermore, the compositions, systems, cells, and / or vectors of the invention can be used to practice any of the methods described herein.
[0024]
[0044] The use of the term "for example" and its corresponding abbreviation "eg" (whether italicized or not) means that the specific terms being described are representative examples and embodiments of the disclosure and are not limited to the specific examples referenced or cited, unless specifically stated otherwise.
[0025]
[0045] The present disclosure provides a mammalian cell comprising: (i) at least four distinct recombination target sites (RTS); (ii) adenovirus (Ad) genes including E1A, E1B, or a combination thereof; and (iii) a promoter operably linked to the Ad genes, wherein the RTSs, Ad genes, and promoter are integrated into a chromosome.
[0026]
[0046] "Nucleic acid," "nucleic acid molecule," or "oligonucleotide" refers to a polymeric compound comprising covalently linked nucleotides. The term "nucleic acid" includes polyribonucleic acid (RNA) and polydeoxyribonucleic acid (DNA), either of which may be single-stranded or double-stranded. DNA includes, but is not limited to, complementary DNA (cDNA), genomic DNA, plasmid or vector DNA, and synthetic DNA. RNA includes, but is not limited to, mRNA, tRNA, rRNA, snRNA, microRNA, miRNA, or miRNA.
[0027]
[0047] The term "recombinant," when used with respect to a nucleic acid molecule, peptide, polypeptide, or protein, refers to a novel combination of genetic material, or the result thereof, not known to occur in nature. Recombinant molecules can be prepared by any of the well-known techniques available in the field of recombinant technology, including, but not limited to, polymerase chain reaction (PCR), gene cleavage (e.g., using restriction endonucleases), and solid-phase synthesis of nucleic acid molecules, peptides, or proteins. In some embodiments, "recombinant" refers to a viral vector or virus that is not known to occur in nature, e.g., a viral vector or virus that has one or more mutations, nucleic acid insertions, or heterologous genes in the viral vector or virus. In some embodiments, "recombinant" refers to a cell or host cell that is not known to occur in nature, e.g., a cell or host cell that has one or more mutations, nucleic acid insertions, or heterologous genes in the cell or host cell.
[0028]
[0048] An "isolated" polypeptide, protein, peptide, or nucleic acid is a molecule that has been removed from its natural environment. An "isolated" polypeptide, protein, peptide, or nucleic acid may be prepared with an excipient (e.g., a diluent or adjuvant) and still be considered isolated.
[0029]
[0049] The terms "sequence identity" or "% identity" in the context of nucleic acid or amino acid sequences refer to the percentage of identical residues in the compared sequences when the sequences are aligned over a specified comparison window. The comparison window can be a segment of at least 10 to 1000 or more residues over which sequences can be aligned and compared. Alignment methods for determining sequence identity are well known in the art and can be performed using publicly available databases, such as BLAST (blast.ncbi.nlm.nih.gov / Blast.cgi).
[0030]
[0050] In some embodiments, a polypeptide or nucleic acid molecule has at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 97%, at least about 98%, at least about 99%, or about 100% sequence identity to a reference polypeptide or nucleic acid molecule (or a fragment of a reference polypeptide or nucleic acid molecule), respectively. In certain embodiments of the present disclosure, a polypeptide or nucleic acid molecule has at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95%, at least 97%, at least 98%, or at least 99% or 100% sequence identity to a reference polypeptide or nucleic acid molecule (or a fragment of a reference polypeptide or nucleic acid molecule), respectively. In some embodiments, a polypeptide or nucleic acid molecule has about 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, 99.5% sequence identity to a reference polypeptide or nucleic acid molecule, respectively.
[0031]
[0051] As used herein, the terms "promoter," "promoter sequence," or "promoter region" refer to a DNA regulatory region / sequence that can bind RNA polymerase and is involved in initiating transcription of a downstream coding or non-coding sequence. In some examples of the present disclosure, the promoter sequence includes a transcription start site and the minimum number of bases or elements upstream necessary to initiate transcription at a level detectable above background. In some embodiments, the promoter sequence includes a transcription start site and a protein binding domain that serves to bind RNA polymerase. Eukaryotic promoters often, but not always, contain "TATA" boxes and "CAT" boxes. Various promoters, including inducible promoters, can be used to drive gene expression, for example, in the host cells or vectors of the present disclosure. In some embodiments, the promoter is not a promoter that confers leaky expression, i.e., the promoter does not constitutively express any one of the gene products described herein.
[0032]
[0052] As used herein, the term "mammalian cell" includes cells derived from any member of the mammalian class (e.g., human cells, mouse cells, rat cells, monkey cells, hamster cells, etc.). In some embodiments, the cell is a mouse cell, a human cell, a Chinese hamster ovary (CHO) cell, a CHO-K1 cell, a CHO-DXB11 cell, a CHO-DG44 cell, a CHOK1SV™ cell including all variants (e.g., CHOK1SV POTELLIGENT™, Lonza, Slough, UK), a CHOK1SV GS-KO™ cell including all variants (e.g., XCeed™, Lonza, Slough, UK), a HEK293 cell including adherent-adapted and suspension-adapted variants, a HeLa cell, or a HT1080 cell.
[0033]
[0053] As used herein, the terms "chromosomally integrated" or "chromosomal integration" refer to the stable incorporation of a nucleic acid sequence into a chromosome of a host cell (e.g., a mammalian cell), i.e., the integration of the nucleic acid sequence into the genomic DNA (gDNA) of a chromosome of the host cell (e.g., a mammalian cell). In some embodiments, the chromosomally integrated nucleic acid sequence is stable. In some embodiments, the chromosomally integrated nucleic acid sequence is not located on a plasmid or vector. In some embodiments, the chromosomally integrated nucleic acid sequence is not excised. In some embodiments, the chromosomal integration is mediated by a clustered regularly interspaced short palindromic repeats (CRISPR) and CRISPR-associated proteins (Cas) gene editing system (CRISPR / CAS).
[0034]
[0054] As used herein, the terms "recombinant target site-specific integration" or "site-specific integration" are interchangeable and can be used to introduce one or more genes into a host cell chromosome. See Bode et al., Biol. Chem. 381:801-813 (2000), Kolb, Cloning and Stem Cells 4:381-392 (2002), and Coates et al., Trends in Biotech. 23:407-419 (2005), which are incorporated herein by reference. In some embodiments, "recombinant target site-specific integration" or "site-specific integration" refers to the integration of a nucleic acid sequence into a specific site in a chromosome. In some embodiments, site-specific integration is achieved by site-specific recombination. In some embodiments, "site-specific recombination" refers to the reorganization of two DNA partner molecules by specific enzymes that catalyze the recombination of their cognate pairs of sequences or target sites. In contrast to homologous recombination, site-specific recombination and site-specific integration require only slight DNA homology between partner DNA molecules, are independent of RecA, and do not involve DNA replication at any step. In some embodiments, site-specific recombination uses a site-specific recombinase system that catalyzes the site-specific integration of nucleic acids in host cells (e.g., mammalian cells). Recombinase systems typically consist of three elements: two specific DNA sequences (recombination target sites) and a specific enzyme (recombinase). Recombinases catalyze recombination reactions between multiple specific recombination target sites.
[0035]
[0055] Other means known to those skilled in the art may also be used to insert one or more desired nucleic acid sequences (e.g., genes). In some embodiments, one or more nucleic acid sequences (e.g., genes) are inserted into a chromosome using homologous recombination. "Homologous recombination" refers to genetic recombination in which nucleotide sequences are exchanged between two similar or identical DNA molecules. In some embodiments, a region (e.g., a gene) targeted for deletion / insertion is deleted / inserted by homologous recombination. For example, a DNA construct is used that contains an incoming sequence with a selectable marker flanked by sequences homologous to the region targeted for deletion / insertion. The DNA construct is aligned with the homologous sequence of the host chromosome, and in a double-crossover event, the targeted region is either (i) excised from the host chromosome or (ii) inserted into the chromosome. In some embodiments, homologous recombination is not used to insert a recombination target site, an adenovirus (Ad) gene (e.g., E1A, E1B, E2A, E4, VA, MIR342, or a combination thereof), and / or a promoter operably linked to an Ad gene.
[0036]
[0056] Recombinase enzymes, or recombinases, are specific enzymes that catalyze recombination in site-specific recombination. In some embodiments of the present disclosure, the recombinase used in site-specific recombination is derived from a non-mammalian system. In some embodiments, the recombinase is derived from bacteria, bacteriophage, or yeast.
[0037]
[0057] In some embodiments, the nucleic acid sequence encoding the recombinase is integrated into a host cell (e.g., a mammalian cell). In some embodiments, the nucleic acid sequence encoding the recombinase is delivered to the host cell by other methods known in molecular biology. In some embodiments, the recombinase polypeptide sequence may be delivered directly to the cell. In some embodiments, the recombinase is Cre recombinase, Dre recombinase, KD recombinase, B2B3 recombinase, Hin recombinase, Tre recombinase, λ integrase, HK022 integrase, HP1 integrase, γδ resolvase / invertase, ParA resolvase / invertase, Tn3 resolvase / invertase, Gin resolvase / invertase, φC31 integrase, BxB1 integrase, R4 integrase, or other functional recombinase enzyme. For example, Thorpe & Smith, Proc. Nat'l. Acad. Sci. USA 95: 5505-5510 (1998), Kuhstoss & Rao, J. Mol. Biol. 222:897-890 (1991), U.S. Patent No. 5,190,871, Ow & Ausubel, J. Bacteriol. 155:704-713(1983), Matsuura et al., J. Bacteriol. 178:3374-3376(1996), Sato et al., J. Bacteriol. 172:1092-1098(1990), Stragier et al., Science 243:507-512(1989), Carrasco et al., Genes Dev. 8: 74-83 (1994), Bannam et al., Mol. Microbiol. 16:535-551 (1995), Crelin & Rood, J. Bacteriol. 179:5148-5156 (1997).
[0038]
[0058] In some embodiments, the recombinase described herein is an FLP recombinase. An FLP recombinase is a protein that catalyzes a site-specific recombination reaction involved in amplifying the copy number of the 2 μm plasmid of Saccharomyces cerevisiae during DNA replication. In some embodiments, the FLP recombinase of the present disclosure is derived from a species of Saccharomyces. In some embodiments, the FLP recombinase is derived from Saccharomyces cerevisiae. In some embodiments, the FLP recombinase is derived from a strain of Saccharomyces cerevisiae. In some embodiments, the FLP recombinase is a thermostable mutant FLP recombinase. In some embodiments, the FLP recombinase is FLP1 or FLPe. In some embodiments, the nucleic acid sequence encoding the FLP recombinase comprises codons optimized for human use.
[0039]
[0059] In some embodiments, the recombinase is Cre recombinase. Cre (causes recombination) is a member of the Int family of recombinases (Argos et al. (1986) EMBO J. 5:433) and has been shown to efficiently recombine locus of X-ing over sites in bacteria as well as eukaryotic cells (Sauer (1987) Mol. Cell. Biol. 7:2087; Sauer and Henderson (1988) Proc. Natl Acad. Sci. 85:5166). In some embodiments, the Cre recombinase described and used herein is derived from a bacteriophage. In some embodiments, the Cre recombinase is derived from P1 bacteriophage.
[0040]
[0060] As used herein, the terms "recombination target site," "RTS," and "site-specific recombinase target site" refer to a short (e.g., less than 60 base pairs) nucleic acid site or sequence that is recognized by a site-specific recombinase and becomes the crossover region during a site-specific recombination event. The acronym "RTS" refers to either a single recombination target site or multiple recombination target sites. In some embodiments, the RTS is less than about 60 base pairs, less than about 55 base pairs, less than about 50 base pairs, less than about 45 base pairs, less than about 40 base pairs, less than about 35 base pairs, or less than about 30 base pairs. In some embodiments, the RTS is about 30 to about 60 base pairs, about 30 to about 55 base pairs, about 32 to about 52 base pairs, about 34 to about 44 base pairs, about 32 base pairs, about 34 base pairs, or about 52 base pairs. Examples of RTSs include, but are not limited to, lox sites, rox sites, Frt sites, att sites, and dif sites. In some embodiments, the RTS is a nucleic acid having substantially the same sequence as a sequence shown in any of Tables 1, 2, 3, or 4.
[0041]
[0061] In some embodiments, the RTS is a lox site selected from Table 1. As used herein, the term "lox site" refers to a nucleotide sequence that allows Cre recombinase to catalyze site-specific recombination. A variety of non-identical lox sites are known in the art. The sequences of various lox sites are similar in that they all contain identical 13-base pair inverted repeats flanking an 8-base pair asymmetric core region where recombination occurs. It is the asymmetric core region that accounts for the site's orientation and the variability of various lox sites. Non-limiting examples of these include naturally occurring loxP (a sequence present in the P1 genome), loxB, loxL, and loxR (which are present in the E. coli chromosome), as well as several mutant or modified lox sites (e.g., loxP511, loxΔ86, loxΔ117, loxC2, loxP2, loxP3, loxP23, loxC2, loxP2, and loxP3). In some embodiments, the RTS is a lox site selected from loxΔ86, loxΔ117, loxC2, loxP2, loxP3, and loxP23. In some embodiments, the lox RTS is a nucleic acid having at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to a sequence shown in Table 1.
[0042] [Table 1]
[0043]
[0062] In some embodiments, the RTS is an Frt site selected from Table 2. As used herein, the term "Frt site" refers to a nucleotide sequence in which the product of the FLP gene of the yeast 2 μm plasmid (FLP recombinase) can catalyze site-specific recombination. Various non-identical Frt sites are known in the art. The sequences of various Frt sites are similar in that they all contain identical 13-base pair inverted repeat sequences flanking an 8-base pair asymmetric core region where recombination occurs. It is the asymmetric core region that accounts for the site's orientation and the variability of various Frt sites. These (non-limiting) examples include naturally occurring Frt and several mutant or modified Frt sites (e.g., Frt1, Frt2). In some embodiments, the RTS is an Frt site selected from Frt(F), Frt F1(F1), Frt F2(F2), Frt F3(F3), Frt F4(F4), or Frt F5(F5). In some embodiments, the RTS is an Frt site selected from Frt F6 (F6), Frt F7 (F7), Frt F14 (F14), Frt F15 (F15), or Ff61. In some embodiments, the RTS is an Frt site selected from F2151, Fw2, F2161, and F2262. In some embodiments, the Frt recombination target site is a nucleic acid having at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to a sequence set forth in Table 2.
[0044] [Table 2]
[0045]
[0063] In some embodiments, the RTS is a rox site selected from Table 3. As used herein, the term "rox site" refers to a nucleotide sequence at which Dre recombinase can catalyze site-specific recombination. Various non-identical rox sites are known in the art. Non-limiting examples of these include roxR and roxF. In some embodiments, the rox recombination target site is a nucleic acid having at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to a sequence set forth in Table 3.
[0046] [Table 3]
[0047]
[0064] In some embodiments, the RTS is an att site selected from Table 4. As used herein, the term "att site" refers to a nucleotide sequence at which λ integrase or φC31 integrase can catalyze site-specific recombination. A variety of non-identical att sites are known in the art. Non-limiting examples of these include attP, attB, proB, trpC, galT, thrA, and rrnB. In some embodiments, the att recombination target site is a nucleic acid having at least 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99%, or 100% sequence identity to a sequence set forth in Table 4.
[0048] [Table 4]
[0049]
[0065] The term "distinct recombination target sites," as used herein, refers to non-identical or heterospecific recombination target sites. For example, although some variant Frt sites exist, recombination can generally only occur between two identical Frt sites. In some embodiments, distinct recombination target sites refer to non-identical recombination target sites that are derived from the same recombination system (e.g., LoxP and LoxR). In some embodiments, distinct recombination target sites refer to non-identical recombination target sites that are derived from different recombination systems (e.g., LoxP and Frt). In some embodiments, distinct recombination target sites refer to a combination of recombination target sites that are derived from the same recombination system and recombination target sites that are derived from different recombination systems (e.g., LoxP, LoxR, Frt, and Frt1).
[0050]
[0066] Various combinations of RTSs can be used. In some embodiments, the cells contain four RTSs. In some embodiments, the cells contain six RTSs. In some embodiments, at least one RTS is selected from SEQ ID NOs: 1-30. In some embodiments, at least one RTS is selected from SEQ ID NOs: 1-6. In some embodiments, at least one RTS is selected from SEQ ID NOs: 28-30. In some embodiments, at least one RTS is selected from SEQ ID NOs: 7-21. In some embodiments, at least one RTS is selected from SEQ ID NOs: 22-23. In some embodiments, at least one RTS is selected from SEQ ID NOs: 24-27. In some embodiments, at least one RTS is selected from SEQ ID NOs: 28-30. In some embodiments, the cells containing at least four distinct RTSs contain the following RTSs: LoxP_511, Frt_F5, Frt, and LoxP. In some embodiments, the cells containing at least four distinct RTSs contain the following RTSs: Frt_F14 and Frt_F15. In some embodiments, cells comprising at least four distinct RTSs comprise the following RTSs: LoxP_511, Frt_F5, Frt, LoxP, Frt_F14, and Frt_F15. In some embodiments, cells comprising at least four distinct RTSs may comprise the following RTSs: Frt_1, Frt_2, Frt_3, Frt_4. In some embodiments, cells comprising at least four distinct RTSs comprise the following RTSs: Frt_m5, Frt_wt, Frt_m14, Frt_m15, Frt_m7, and Frt_m6.
[0051]
[0067] The term "landing pad," as used herein, refers to a nucleic acid sequence that comprises a first recombination target site that integrates into a chromosome in a host cell. In some embodiments, the landing site comprises two or more recombination target sites that integrate into a chromosome in a host cell. In some embodiments, the cell comprises 1, 2, 3, 4, 5, 6, 7, or 8 landing pads. In some embodiments, the landing pads integrate into up to 1, 2, 3, 4, 5, 6, 7, or 8 distinct chromosomal loci.
[0052]
[0068] The term "adenovirus" as used herein refers to a non-enveloped virus of the Adenoviridae family, which has an icosahedral nucleocapsid containing double-stranded DNA. More than 50 subtypes of adenovirus have been isolated from humans, and many additional subtypes have been isolated from other mammals and birds. See, for example, Ishibashi et al., "Adenoviruses of Animals," in The Adenoviruses, Ginsberg, ed., Plenum Press, New York, NY, pp. 497-562 (1984); Strauss, "Adenovirus Infections in Humans," in The Adenoviruses, Ginsberg, ed., Plenum Press, New York, NY, pp. 451-596 (1984). These subtypes belong to the Adenoviridae family, which is currently divided into two genera: Mastadenovirus and Aviadenovirus. All adenoviruses are morphologically and structurally similar. However, in humans, adenoviruses exhibit different immunological properties, i.e., they are classified into serotypes. Two human serotypes of adenovirus (i.e., Ad2 and Ad5) have been extensively studied, providing a wealth of general information about adenoviruses.
[0053]
[0069] "Gene" refers to a collection of nucleotides that encodes a polypeptide, and includes cDNA and genomic DNA nucleic acid molecules. "Gene" can also refer to a nucleic acid fragment that can act as a regulatory sequence preceding (5' non-coding sequences) and following (3' non-coding sequences) the coding sequence. In some embodiments, the gene is integrated in multiple copies. In some embodiments, the gene is integrated in a predetermined number of copies.
[0054]
[0070] The term "adenovirus gene" or "AV gene," as used herein, refers to a gene comprised of one or more nucleic acid sequences derived from one or more adenovirus subtypes or serotypes. In some embodiments, the Ad gene is a gene involved in replication and packaging of adeno-associated virus. In some embodiments, the Ad gene is E1A, E1B, E2A, E4, VA, MIR342, or a combination thereof, or any other Ad gene. In some embodiments, the present disclosure provides a cell in which one or more Ad genes have been integrated into a chromosome. In some embodiments, the present disclosure provides a cell in which one or more of E1A, E1B, E2A, E4, VA, MIR342 have been integrated into a chromosome. In some embodiments, the Ad gene includes E1A. In some embodiments, the Ad gene includes E1A and E1B. In some embodiments, the Ad gene includes E1A, E1B, and E2A. In some embodiments, the Ad gene includes E1A, E1B, E2A, and E4. In some embodiments, the Ad genes include E1A, E1B, E2A, E4, and VA. In some embodiments, the Ad genes include E1A, E1B, E2A, E4, VA, and MIR342. In some embodiments, the Ad genes include E1A and E2A. In some embodiments, the Ad genes include E1A, E2A, and E4. In some embodiments, the Ad genes include E1A, E2A, E4, and VA. In some embodiments, the Ad genes include E1A, E2A, E4, VA, and MIR342. In some embodiments, the Ad genes include E1A and E4. In some embodiments, the Ad genes include E1A, E4, and VA. In some embodiments, the Ad genes include E1A, E4, VA, and MIR342. In some embodiments, the Ad genes include E1A and VA. In some embodiments, the Ad genes include E1A, VA, and MIR342. In some embodiments, the Ad genes include E1A and VA. In some embodiments, the Ad genes include E1A, VA, and MIR342. In some embodiments, the Ad genes include E1A and MIR342. In some embodiments, the Ad genes include E1B. In some embodiments, the Ad genes include E1B and E2A, hi some embodiments, the Ad genes include E1B, E2A, and E4.In some embodiments, the Ad genes include E1B, E2A, E4, and VA. In some embodiments, the Ad genes include E1B, E2A, E4, VA, and MIR342. In some embodiments, the Ad genes include E1B and E4. In some embodiments, the Ad genes include E1B, E4, and VA. In some embodiments, the Ad genes include E1B, E4, VA, and MIR342. In some embodiments, the Ad genes include E1B and VA. In some embodiments, the Ad genes include E1B, VA, and MIR342. In some embodiments, the Ad genes include E1B and VA. In some embodiments, the Ad genes include E1B, VA, and MIR342. In some embodiments, the Ad genes include E2A. In some embodiments, the Ad genes include E2A and E4. In some embodiments, the Ad genes include E2A, E4, and VA. In some embodiments, the Ad genes include E2A, E4, VA, and MIR342. In some embodiments, the Ad genes include E2A and VA. In some embodiments, the Ad genes include E2A, E4, VA, and MIR342. In some embodiments, the Ad genes include E2A and VA. In some embodiments, the Ad genes include E2A, VA, and MIR342. In some embodiments, the Ad genes comprise E2A and MIR342. In some embodiments, the Ad genes comprise E4. In some embodiments, the Ad genes comprise E4 and VA. In some embodiments, the Ad genes comprise E4, VA, and MIR342. In some embodiments, the Ad genes comprise E4 and MIR342. In some embodiments, the Ad genes comprise VA. In some embodiments, the Ad genes comprise VA and MIR342. In some embodiments, the Ad genes comprise MIR342. In some embodiments, the inventors have found that when the Ad genes comprise E1A, E1B, E2A, E4, VA, and MIR342, the Ad genes are integrated into the chromosome and more consistent Ad gene expression is observed. In some embodiments, the Ad genes comprise one or more selected from E1A, E1B, E2A, E4, VA, and MIR342.
[0055]
[0071] As used herein, the term "control element" refers to a genetic element that controls some aspect of the expression of a nucleic acid sequence. As used herein, a "promoter" is a control element that facilitates the initiation of transcription of an operably linked coding region. In some embodiments, the promoter is an Ad promoter. As used herein, the term "AV promoter" refers to such a control element derived from an adenoviral system. In some embodiments, the promoter is an AAV promoter. As used herein, the term "AAV promoter" refers to such a control element derived from an adeno-associated virus system. In some embodiments, the present disclosure provides a cell in which one or more AAV promoters are integrated into a chromosome in the cell. As used herein, the term "non-AV promoter" refers to such a control element derived from a non-adenoviral system. In some embodiments, the non-AV promoter is derived from a prokaryotic system. In some embodiments, the non-AV promoter is derived from a eukaryotic system. In some embodiments, the present disclosure provides a cell in which one or more promoters are integrated into a chromosome in the cell. In some embodiments, the present disclosure provides a cell in which one or more non-Ad promoters are integrated into a chromosome in the cell. In some embodiments, the present disclosure provides a cell in which one or more Ad promoters are integrated into a chromosome in the cell. In some embodiments, the promoter is a non-AAV promoter. As used herein, the term "non-AAV promoter" refers to such a control element that is not derived from an adeno-associated virus system. In some embodiments, the non-AAV promoter is derived from a prokaryotic system. In some embodiments, the non-AAV promoter is derived from a eukaryotic system. In some embodiments, the present disclosure provides a cell in which one or more non-AAV promoters are integrated into a chromosome in the cell.
[0056]
[0072] As used herein, the terms "in operable combination," "in operable order," and "operably linked" refer to the association of nucleic acid sequences in such a way that a nucleic acid molecule capable of directing transcription of a given gene and / or synthesis of a desired protein molecule is produced. The terms may also refer to the association of amino acid sequences in such a way that a functional protein is obtained. In some embodiments, the Ad gene is operably linked to a promoter, and the Ad gene is integrated into the chromosomal genome of the host cell. In some embodiments, the Ad gene is operably linked to a non-Ad promoter, and the Ad gene is integrated into the chromosomal genome of the host cell. In some embodiments, the Ad gene is operably linked to an Ad promoter, and the Ad gene is integrated into the chromosomal genome of the host cell. In some embodiments, the AAV gene is operably linked to a promoter, and the AAV gene is integrated into the chromosomal genome of the host cell. In some embodiments, the AAV gene is operably linked to a non-AAV promoter, and the AAV gene is integrated into the chromosomal genome of the host cell. In some embodiments, the AAV gene is operably linked to an AAV promoter, and the AAV gene is integrated into the chromosomal genome of the host cell. In some embodiments, the GOI gene is operably linked to a promoter, and the GOI gene is integrated into the genome of a chromosome of the host cell. In some embodiments, the GOI gene is operably linked to a non-GOI promoter, and the GOI gene is integrated into the genome of a chromosome of the host cell. In some embodiments, the recombinase gene is operably linked to a promoter, and the recombinase gene is integrated into the genome of a chromosome of the host cell. In some embodiments, the recombinase gene is operably linked to a promoter, and the recombinase gene is integrated into the genome of a chromosome of the host cell. In some embodiments, the recombinase gene is operably linked to a promoter, and the recombinase gene is not integrated into the genome of a chromosome of the host cell. In some embodiments, the recombinase gene is operably linked to a promoter, and the recombinase gene is not integrated into the genome of a chromosome of the host cell.
[0057]
[0073] In some embodiments, the control element operably links gene expression to the presence of an exogenously supplied ligand. In some embodiments, the Ad gene is operably linked to a promoter, the promoter operably links gene expression to the presence of an exogenously supplied ligand, and the Ad gene is integrated into the chromosomal genome of the host cell. In some embodiments, the AAV gene is operably linked to a promoter, the promoter operably links gene expression to the presence of an exogenously supplied ligand, and the AAV gene is integrated into the chromosomal genome of the host cell. In some embodiments, the GOI is operably linked to a promoter, the promoter operably links gene expression to the presence of an exogenously supplied ligand, and the GOI is integrated into the chromosomal genome of the host cell. In some embodiments, the recombinase gene is operably linked to a promoter, the promoter operably links gene expression to the presence of an exogenously supplied ligand, and the recombinase gene is integrated into the chromosomal genome of the host cell. In some embodiments, the recombinase gene is operably linked to a promoter, where the promoter operably links gene expression to the presence of an exogenously supplied ligand, and the recombinase gene is not integrated into the host cell's chromosomal genome. In some embodiments, E1A expression is operably linked to a promoter, where the promoter operably links gene expression to rAAV production. In some embodiments, E1A expression is operably linked to a promoter, where the promoter operably links gene expression to the presence of an exogenously supplied ligand, and gene expression operably links the presence of an exogenously supplied ligand to rAAV production.
[0058]
[0074] In some embodiments, at least one RTS, Ad gene, and promoter are integrated into a single chromosomal locus. In some embodiments, the first Ad genes E1A and E1B and the second Ad genes including E2A, E4, VA, and MIR342 are at two different loci. In some embodiments, the first Ad genes E1A and E1B and the second Ad genes including E2A, E4, VA, and MIR342 are at the same locus. In some embodiments, the first Ad genes E1A and E1B and the second Ad genes including E2A, E4, VA, and MIR342 are at the same locus, and the adeno-associated virus (AAV) genes are at a different locus. In some embodiments, the first Ad genes E1A and E1B and the second Ad genes including E2A, E4, VA, and MIR342 are at the same locus, and the adeno-associated virus (AAV) genes and the AAV vector cassette are at different loci.
[0059]
[0075] The term "chromosomal locus," as used herein, refers to a predetermined location of a nucleic acid on a chromosome of a cell, which may contain at least one gene. In some embodiments, the chromosomal locus is between about 500 base pairs and about 100,000 base pairs, between about 5,000 base pairs and about 75,000 base pairs, between about 5,000 base pairs and about 60,000 base pairs, between about 20,000 base pairs and about 50,000 base pairs, between about 30,000 base pairs and about 50,000 base pairs, or between about 45,000 base pairs and about 49,000 base pairs. In some embodiments, the chromosomal locus extends up to about 100 base pairs, about 250 base pairs, about 500 base pairs, about 750 base pairs, or about 1000 base pairs from the 5' or 3' end of the predetermined nucleic acid sequence. In some embodiments, the chromosomal locus comprises an endogenous nucleic acid sequence. In some embodiments, the chromosomal locus comprises an exogenous nucleotide sequence integrated into a chromosome using methods known to those skilled in the art of molecular biology. In some embodiments, the chromosomal locus comprises a nucleotide sequence that directs strong and stable production of a protein encoded by a gene integrated into the chromosomal locus within the genome of the host cell. In some embodiments, the chromosomal locus comprises a nucleotide sequence that directs strong and stable expression of a viral gene within the genome of the host cell. In some embodiments, the chromosomal locus comprises a nucleotide sequence that directs efficient site-specific recombination within the genome of the host cell. In some embodiments, the chromosomal locus comprises Fer1L4 (see, e.g., U.S. Patent Application No. 14 / 409,283), ROSA26, HGPRT, DHFR, COSMC, LDHA, or MGAT1. In some embodiments, the chromosomal locus comprises NL1 or NL2. In some embodiments, the chromosomal locus comprises the first intron of MID1 on the X chromosome. In some embodiments, the chromosomal locus is an expression enhancing and stability region (Regeneron, Tarrytown, NY, EESYR; see, e.g., U.S. Pat. No. 7,771,997). In some embodiments, at least a portion of the nucleic acid at the chromosomal locus is deleted.
[0060]
[0076] In some embodiments, the chromosomal locus comprises the NL1 locus, NL2 locus, NL3 locus, NL4 locus, NL5 locus, or NL6 locus set forth in Table A. In some embodiments, the disclosure relates to a mammalian cell comprising at least two distinct recombination target sites (RTS), wherein at least one RTS, Ad gene, and promoter is integrated within the NL1 locus, NL2 locus, NL3 locus, NL4 locus, NL5 locus, or NL6 locus. In some embodiments, the first Ad genes, E1A and E1B, and the second Ad genes, including E2A, E4, VA, and MIR342, are at two different loci, one of which is within the NL1 locus, NL2 locus, NL3 locus, NL4 locus, NL5 locus, or NL6 locus. In some embodiments, the first Ad genes E1A and E1B and the second Ad genes comprising E2A, E4, VA, and MIR342 are located within the NL1 locus, NL2 locus, NL3 locus, NL4 locus, NL5 locus, or NL6 locus. In some embodiments, the first Ad genes E1A and E1B and the second Ad genes comprising E2A, E4, VA, and MIR342 are located within the NL1 locus, NL2 locus, NL3 locus, NL4 locus, NL5 locus, or NL6 locus. In some embodiments, the first Ad genes E1A and E1B and the second Ad genes comprising E2A, E4, VA, and MIR342 are located within the NL1 locus, NL2 locus, NL3 locus, NL4 locus, NL5 locus, or NL6 locus. In some embodiments, the present disclosure relates to mammalian cells comprising at least three distinct recombination target sites (RTS), wherein at least one RTS, Ad gene, and promoter is integrated within the NL1 locus, NL2 locus, NL3 locus, NL4 locus, NL5 locus, or NL6 locus. In some embodiments, the present disclosure relates to mammalian cells comprising at least four distinct recombination target sites (RTS), wherein at least one RTS, Ad gene, and promoter is integrated within the NL1 locus, NL2 locus, NL3 locus, NL4 locus, NL5 locus, or NL6 locus. In some embodiments, the present disclosure relates to mammalian cells comprising at least five distinct recombination target sites (RTS), wherein at least one RTS, Ad gene, and promoter is integrated within the NL1 locus, NL2 locus, NL3 locus, NL4 locus, NL5 locus, or NL6 locus.In some embodiments, the present disclosure relates to a mammalian cell comprising at least six distinct recombination target sites (RTS), wherein at least one RTS, an Ad gene, and a promoter are integrated within the NL1 locus, the NL2 locus, the NL3 locus, the NL4 locus, the NL5 locus, or the NL6 locus.
[0061] [Table 5] TIFF0007731388000006.tif226149
[0062]
[0077] Those skilled in the art will understand that the terms "integrated within the NL1 locus" or "integrated within the NL2 locus" encompass integration anywhere within the locus and are not limited solely to the indicated genomic coordinates. Those skilled in the art will understand that the terms "integrated within the NL1 locus" or "integrated within the NL2 locus" also encompass the corresponding locus in the corresponding organism. Thus, in some embodiments, the terms "integrated within the NL1 locus" or "integrated within the NL2 locus" will encompass integration within about 50,000 bp, about 40,000 bp, about 30,000 bp, about 20,000 bp, or about 10,000 bp of the indicated genomic coordinates.
[0063]
[0078] In some embodiments, the cell comprises a site-specific recombinase gene. In some embodiments, the site-specific recombinase gene is integrated into a chromosome.
[0064]
[0079] As used herein, the term "located between two RTSs" refers to a gene located between two RTSs, i.e., one RTS is located 5' of the gene and another RTS is located 3' of the gene. In some embodiments, the RTSs are located immediately adjacent to the gene located between them. In some embodiments, the RTSs are located a predetermined distance from the gene located between them. In some embodiments, the RTSs are directional sequences. In some embodiments, the 5' and 3' ends of the gene located between the RTSs are oriented in a forward direction (i.e., they are oriented in the same direction). In some embodiments, the 5' and 3' ends of the gene located between the RTSs are oriented in a reverse direction (i.e., they are oriented in different directions).
[0065]
[0080] In some embodiments, the cells further comprise adeno-associated virus (AAV) genes, wherein the AAV genes are integrated into the chromosome. The AAV genes comprise any gene from any AAV serotype. In some embodiments, the AAV genes are Rep, Rep78, Rep68, Rep52, Rep40, Cap, VP1, VP2, VP3, or a combination thereof. In some embodiments, the AAV genes are from adeno-associated virus type 2. In some embodiments, the AAV genes are from adeno-associated virus Anc80. In some embodiments, the AAV genes include the ANC80 Rep and Cap genes. In some embodiments, the AAV genes are located between two RTSs.
[0066]
[0081] As used herein, the term "adeno-associated virus (AAV)" refers to a small, replication-defective, non-enveloped virus containing single-stranded DNA of the Parvoviridae and Dependoparvovirus families. More than 10 adeno-associated virus serotypes have been identified, with serotype AAV2 being the best characterized. Other (non-limiting) examples of AAV serotypes include ANC80, AAV1, AAV3, AAV4, AAV5, AAV6, AAV7, AAV8, AAV9, AAV10, and AAV11. In addition to these serotypes, AAV pseudotypes have been developed. AAV pseudotypes contain the capsid of one serotype and the genome of a second serotype (e.g., pseudotype AAV2 / 5 corresponds to an AAV having the genome of serotype AAV2 and the capsid of AAV5).
[0067]
[0082] As used herein, the term "recombinant AAV" or "rAAV" refers to an infectious, replication-defective virus that comprises an AAV protein shell that encapsidates (i.e., surrounds with coat protein) a heterologous gene flanked 5' and 3' by AAV ITRs.
[0068]
[0083] As used herein, the term "replication-competent adenovirus (RCA)" refers to an undesired contaminant of active adenovirus particles that is often produced during rAAV production resulting from homologous recombination between a recombinant adenovirus vector and adenovirus genes present in the producer cell genome.
[0069]
[0084] As used herein, the term "adeno-associated virus gene" refers to a gene composed of one or more nucleic acid sequences derived from one or more adeno-associated virus serotypes. In some embodiments, the AAV gene is a gene involved in AAV replication and packaging.
[0070]
[0085] The term "Rep" gene, as used herein, refers to the region of the AAV genome encoding viral replication proteins collectively required for viral genome replication, or functional homologs thereof, such as the human herpesvirus 6 (HHV-6) rep gene (known to mediate AAV-2 DNA replication), as known to those skilled in the art. Thus, the rep coding region includes at least the genes encoding AAV Rep78 and Rep68 ("long form Rep") and Rep52 and Rep40 ("short form Rep"), or functional homologs thereof. For further description of the AAV rep coding region, the rep coding region used in the present invention may be derived from any viral serotype (e.g., the AAV serotypes listed above). The region need not contain all wild-type genes, but may be modified (e.g., by nucleotide insertion, deletion, or substitution), so long as the rep gene present exhibits sufficient integration function when expressed in an appropriate target cell. See, e.g., Muzyczka, N., Current Topics in Microbiol. and Immunol. 158:97-129 (1992) and Kotin, RM, Human Gene Therapy 5:793-801 (1994).
[0071]
[0086] As used herein, the term "Cap" gene refers to a region in the AAV genome that encodes viral capsid proteins, as known to those of skill in the art. Non-limiting examples of these capsid proteins are AAV capsid proteins VP1, VP2, and VP3. The Cap genes used in this disclosure may be derived from any AAV serotype or combination of AAV serotypes.
[0072]
[0087] In some embodiments, the cell comprises a second Ad gene, wherein the second Ad gene is integrated into the chromosome. In some embodiments, the second Ad gene is E1A, E1B, E2A, E4, VA, MIR342, or a combination thereof. In some embodiments, the second Ad gene is from Ad5. In some embodiments, the second Ad gene is located between two RTSs.
[0073]
[0088] In some embodiments, the cell further comprises an AAV vector cassette, wherein the AAV vector cassette is integrated into the chromosome. In some embodiments, the AAV vector cassette is located between two RTSs.
[0074]
[0089] A "vector" or "expression vector" is a replicon, such as a plasmid, phage, virus, or cosmid, to which another DNA segment can be attached so as to effect replication and / or expression of the attached DNA segment in a cell. "Vector" includes episomal (e.g., plasmid) and non-episomal vectors. In some embodiments of the present disclosure, the vector is episomal, meaning that it is eliminated / lost from a cell population after multiple cell generations, e.g., by asymmetric segregation. The term "vector" encompasses viral and non-viral means for introducing nucleic acid molecules into cells in vitro, in vivo, or ex vivo. The term vector can also encompass synthetic vectors. Vectors can be introduced into desired host cells by well-known methods, including, but not limited to, transfection, transduction, cell fusion, and lipofection. Vectors may contain various control elements, including promoters.
[0075]
[0090] As used herein, "transfection" refers to the introduction of an exogenous nucleic acid molecule, including a vector, into a cell. A "transfected" cell contains an exogenous nucleic acid molecule within the cell, and a "transformed" cell is one in which a phenotypic change has been induced by the exogenous nucleic acid molecule within the cell. The transfected nucleic acid molecule may be integrated into the genomic DNA of the host cell and / or may be maintained extrachromosomally by the cell either transiently or long-term. Host cells or organisms that express the exogenous nucleic acid molecule or fragment are referred to as "recombinant," "transformed," or "transgenic" organisms. Many transfection techniques are commonly known in the art. See, for example, Graham et al., Virology, 52:456 (1973), Sambrook et al., Molecular Cloning, a laboratory manual, Cold Spring Harbor Laboratories, New York (1989), Davis et al., Basic Methods in Molecular Biology, Elsevier (1986), and Chu et al., Gene 13:197 (1981). Using such techniques, one or more exogenous DNA moieties (e.g., AAV vector cassettes, AAV helper constructs, and other nucleic acid molecules) can be introduced into suitable host cells.
[0076]
[0091] As used herein, the term "exchangeable cassette" or "cassette" refers to a type of mobile genetic element that contains genes and recombination sites. In some embodiments, the exchangeable cassette contains at least two RTSs. In some embodiments, the exchangeable cassette contains a reporter gene or a selection gene. In some embodiments, the cassettes are exchanged by recombinase-mediated cassette-exchange (RMCE).
[0077]
[0092] As used herein, the term "AAV vector cassette" refers to a cassette derived from an adeno-associated virus serotype vector that may lack, in whole or in part, one or more of the AAV wild-type genes, such as the Rep and / or Cap genes, but retains functionally flanking inverted terminal repeat (ITR) sequences.
[0078]
[0093] As used herein, the term "functionally flanking inverted terminal repeats" or "functionally flanking ITRs" refers to 145 base pair ITR sequences located at the 5' and 3' ends of a gene of interest (GOI) in an AAV vector cassette, the first 125 base pairs of which can form a Y- or T-shaped duplex structure. The ITR sequences represent the minimum sequences required for replication, rescue, packaging, and integration of the AAV genome.
[0079]
[0094] As used herein, the terms "auxiliary genes," "helper genes," and "auxiliary helper genes" are used interchangeably to refer to a first gene that assists in the replication or packaging of an rAAV. In some embodiments, the helper genes comprise viral genes. In some embodiments, the helper genes comprise Ad genes. In some embodiments, the helper genes comprise AAV genes. In some embodiments, the helper genes comprise AAV genes, Rep, Cap, or a combination thereof. In some embodiments, the helper genes comprise prokaryotic genes. In some embodiments, the helper genes comprise eukaryotic genes. In some embodiments, the helper genes comprise a gene encoding an RNA. In some embodiments, the helper genes comprise an interferon (IFN) antagonist. In some embodiments, the helper genes encode a protein that is a protein kinase R (PKR) inhibitor. In some embodiments, the helper genes comprise a gene encoding an influenza NS1 protein. In some embodiments, the helper genes include genes encoding the vaccinia virus E3L protein (see, e.g., de Vries et al, Gene Ther. 15:545-52, (2008)). In some embodiments, the helper genes encode virally encoded soluble IFN-α / β receptor decoys that counteract the IFN response in infected cells. In some embodiments, the helper genes encode NS1, E3L, or similar proteins. In some embodiments, the helper genes encode NS1, E3L, or proteins with homologous sequences or motifs.
[0080]
[0095] As used herein, the term "gene of interest" or "GOI" is used to describe a heterologous gene. As used herein, the term "heterologous gene" or "HG," when used in reference to a nucleic acid sequence, such as a coding sequence or a regulatory sequence, refers to a nucleic acid sequence (e.g., a gene) that is not normally associated with and / or not normally associated with a particular cell. In some embodiments, a heterologous gene is a construct in which the coding sequence itself is not found in nature (e.g., a synthetic sequence with codons different from the native gene). Allelic variation or naturally occurring mutational events do not give rise to heterologous DNA as used herein.
[0081]
[0096] In some embodiments, the gene of interest comprises a reporter gene, a selection gene, a gene of therapeutic interest, or a combination thereof.
[0082]
[0097] As used herein, a "reporter gene" is a gene whose expression confers an easily identifiable and measurable phenotype on a cell. In some embodiments, a reporter gene comprises a fluorescent protein gene. In some embodiments, a reporter gene comprises a selection gene.
[0083]
[0098] The term "selection gene" as used herein refers to the use of a gene encoding an enzymatic activity to confer the ability to grow in a medium lacking a normal essential nutrient; in addition, a selection gene may confer antibiotic or drug resistance to the cells in which the selection gene is expressed. A selection gene may be used to confer a particular phenotype on a host cell. If the host cell must express the selection gene when growing in a selective medium, the gene is called a positive selection gene. A selection gene can also be used to select for host cells containing a particular gene; a selection gene used in this way is called a negative selection gene.
[0084]
[0099] The term "therapeutic gene," as used herein, refers to any functionally relevant nucleotide sequence. That is, a therapeutic gene of the present disclosure may include a necessary gene encoding a protein that is incomplete or missing in the genome of a target cell, or a gene encoding a non-native protein with a desired biological or therapeutic effect (e.g., antiviral function), or the sequence may correspond to a molecule with antisense or ribozyme function. Representative (non-limiting) examples of suitable therapeutic genes include genes used to treat inflammatory diseases, autoimmune, chronic and infectious diseases (including disorders such as AIDS, cancer, neurological diseases, cardiovascular diseases, and hypercholesterolemia), various blood disorders such as various anemias, thalassemias, and hemophilia, and genetic defects (e.g., cystic fibrosis, Gaucher disease, adenosine deaminase (ADA) deficiency, emphysema, etc.). Several antisense oligonucleotides (e.g., short oligonucleotides complementary to sequences surrounding the translation start site (AUG codon) of mRNA) that are useful in antisense therapy for cancer and viral diseases have been described in the prior art and are also examples of suitable therapeutic genes.
[0085]
[0100] In some embodiments, the cells are substantially free of helper virus. As used herein, a "helper virus" refers to any non-AAV virus that is added to enable replication and packaging of an adeno-associated virus. Representative (non-limiting) examples of helper viruses are adenovirus and herpesvirus. In some embodiments, the term substantially free of helper virus refers to cells having fewer than 100, fewer than 10, or fewer than 1 helper virus per cell. In some embodiments, the term substantially free of helper virus refers to a population of cells in which no helper virus is present, or in which no helper virus is detectable using known detection methods. In some embodiments, no wild-type helper virus is present in the cells. In some embodiments, the term "wild-type virus" refers to any complete non-AAV virus that can replicate in a cell independently of any other virus.
[0086]
[0101] In some embodiments, the invention provides a mammalian cell comprising (i) at least four distinct recombination target sites (RTSs), (ii) adenovirus (Ad) genes E2A, E4, VA, MIR342, or a combination thereof, and (iii) a promoter operably linked to the Ad genes, wherein the RTSs, Ad genes, and promoters are integrated into a chromosome. In some embodiments, the cell is a mouse cell, a human cell, a CHO cell, a CHO-K1 cell, a CHO-DXB11 cell, a CHO-DG44 cell, a CHOK1SV™ cell including all variants (e.g., CHOK1SV™ POTELLIGENT™), a CHOK1SV GS-KO™ cell including all variants (e.g., XCEED™), a HEK293 cell including adherent-adapted and suspension-adapted variants, a HeLa cell, or a HT1080 cell.
[0087]
[0102] In some embodiments, the cell comprises four RTSs. In some embodiments, the cell comprises six RTSs. In some embodiments, at least one RTS is selected from SEQ ID NOs: 1-30. In some embodiments, the RTS, Ad gene, and promoter are integrated into a single chromosomal locus. In some embodiments, the chromosomal locus is Fer1L4, ROSA26, HGPRT, DHFR, COSMC, LDHa, MGAT1, GRIK1, NL1, NL2, NL3, NL4, NL5, NL6, the first intron of MID1 on the X chromosome, or the expression enhancing and stability region (EESYR). In some embodiments, the cell comprises a site-specific recombinase gene. In some embodiments, the site-specific recombinase gene is integrated into the chromosome. In some embodiments, the cell further comprises a second Ad gene, wherein the second Ad gene is integrated into the chromosome. In some embodiments, the second Ad gene comprises E1A, E1B, E2A, E4, VA, MIR342, or a combination thereof. In some embodiments, the second Ad gene is from Ad5. In some embodiments, the second Ad gene is located between two RTSs. In some embodiments, the cell further comprises adeno-associated virus (AAV) genes, wherein the AAV genes are integrated into the chromosome. In some embodiments, the AAV genes include Rep, Cap, or a combination thereof. In some embodiments, the AAV genes are from adeno-associated virus type 2. In some embodiments, the AAV genes are located between two RTSs. In some embodiments, the cell further comprises an AAV vector cassette, wherein the AAV vector cassette is integrated into the chromosome. In some embodiments, the AAV vector cassette is a reporter gene, a selection gene, a therapeutic gene, or a combination thereof. In some embodiments, the AAV vector cassette is located between two RTSs. In some embodiments, the cell is substantially free of helper virus.
[0088]
[0103] In some embodiments, the present disclosure provides a mammalian cell comprising (i) at least four distinct recombination target sites (RTSs) and (ii) adeno-associated virus (AAV) genes, including Rep, Cap, or a combination thereof, wherein the RTSs and AAV genes are integrated into a chromosome. In some embodiments, the cell is a mouse cell, a human cell, a CHO cell, a CHO-K1 cell, a CHO-DXB11 cell, a CHO-DG44 cell, a CHOK1SV™ cell including all variants (e.g., CHOK1SV™ POTELLIGENT®), a CHOK1SV GS-KO™ cell including all variants, a HEK293 cell including adherent-adapted and suspension-adapted variants, a HeLa cell, or an HT1080 cell. In some embodiments, the cell comprises four RTSs. In some embodiments, the cell comprises six RTSs. In some embodiments, at least one RTS is selected from SEQ ID NOs: 1-30. In some embodiments, the RTSs and the AAV are integrated into a single chromosomal locus. In some embodiments, the chromosomal locus is Fer1L4, ROSA26, HGPRT, DHFR, COSMC, LDHa, MGAT1, GRIK1, NL1, NL2, the first intron of MID1 on chromosome X, or the expression enhancing and stability region (EESYR). In some embodiments, the cell comprises a site-specific recombinase gene. In some embodiments, the site-specific recombinase gene is integrated into the chromosome. In some embodiments, the cell further comprises an Ad gene and a promoter operably linked to the Ad gene, thereby integrating the Ad gene and promoter into the chromosome. In some embodiments, the Ad gene comprises E1A, E1B, E2A, E4, VA, MIR342, or a combination thereof. In some embodiments, the Ad gene is from Ad5. In some embodiments, the AAV gene is located between the two RTSs. In some embodiments, the cell further comprises an AAV vector cassette. In some embodiments, the AAV vector cassette comprises a reporter gene, a selection gene, a gene of therapeutic interest, or a combination thereof. In some embodiments, the gene of interest is located between two RTSs.In some embodiments, the cells are substantially free of helper virus. In some embodiments, the cells are completely free of helper virus.
[0089]
[0104] In some embodiments, the disclosure provides a Chinese hamster ovary (CHO) cell comprising six distinct recombination target sites (RTSs), at least one RTS selected from the group consisting of SEQ ID NOs: 1-30; adenovirus (Ad) genes comprising E1A and E1B; and a promoter operably linked to the Ad genes, wherein the RTSs, Ad genes, and promoter are integrated into the chromosome; a second Ad gene comprising E2A, E4, VA, and MIR342, the second Ad gene being located between the two RTSs; adeno-associated virus (AAV) genes comprising Rep and Cap, the AAV genes being located between the two RTSs; and an AAV vector cassette comprising a reporter gene, a selection gene, or a gene of therapeutic interest, located between the two RTSs.
[0090]
[0105] In some embodiments, the present disclosure provides a Chinese hamster ovary (CHO) cell comprising adenovirus (Ad) genes including E1A and E1B and a promoter operably linked to the Ad genes, a second Ad gene including E2A, E4, VA, and MIR342, adeno-associated virus (AAV) genes including Rep and Cap, and an AAV vector cassette comprising a reporter gene, a selection gene, a gene of therapeutic interest, or a combination thereof.
[0091]
[0106] In some embodiments, the present disclosure provides methods for producing recombinant adeno-associated virus (rAAV) producer cells, the methods comprising: providing a cell comprising at least four distinct recombination target sites (RTS), adenovirus (Ad) genes comprising E1A, E1B, or a combination thereof, and a promoter operably linked to the Ad genes, wherein the RTS, Ad genes, and promoter are integrated into a chromosome; transfecting the provided cell with a vector comprising a replaceable cassette encoding an adeno-associated virus (AAV) gene, a second Ad gene, an AAV vector cassette, or a combination thereof; integrating the replaceable cassette into the chromosome; and selecting rAAV producer cells having the replaceable cassette integrated into the chromosome. In some embodiments, the transfection is with two vectors: a first vector comprising a replaceable cassette comprising the second Ad gene and the AAV gene, and a second vector comprising a replaceable cassette comprising the AAV vector cassette. In some embodiments, transfection is performed with two vectors: a first vector containing a replaceable cassette containing a second Ad gene and a second vector containing a replaceable cassette containing an AAV gene. In some embodiments, transfection is performed with three vectors: a first vector containing a replaceable cassette containing a second Ad gene, a second vector containing a replaceable cassette containing an AAV gene, and a third vector containing a replaceable cassette containing an AAV vector cassette. In some embodiments, each replaceable cassette further contains two RTSs that match the two RTSs of the cell. In some embodiments, the inventors have found that the use of SSI eliminates the need for cloning from transfected cells because the cells are homologous in their genetic makeup.
[0092]
[0107] The term "matching," with respect to two RTS sequences, refers to two sequences that have the ability to bind a recombinase and affect site-specific recombination between the two sequences. In some embodiments, an RTS on a replaceable cassette that matches an RTS of a cell refers to an RTS on the cassette that has substantially the same sequence as the RTS of the cell. In some embodiments, the replaceable cassette contains substantially the same sequence as one or two RTSs integrated into a chromosome in the cell.
[0093]
[0108] In some embodiments, the term "integrate" refers to the integration (e.g., insertion) of an exchangeable cassette into a chromosome. In some embodiments, the integration is mediated by a site-specific recombinase.
[0094]
[0109] In some embodiments, the term "selecting" refers to identifying cells that contain a marker integrated into a chromosome. In some embodiments, selection is achieved by detecting the presence of the marker using well-known methods. In some embodiments, selection is achieved by detecting the absence of the marker using well-known methods.
[0095]
[0110] In some embodiments, the second Ad gene comprises E1A, E1B, E2A, E4, VA, MIR342, or a combination thereof. In some embodiments, the AAV gene is Rep, Cap, or a combination thereof. In some embodiments, the AAV vector cassette comprises a reporter gene, a selection gene, a gene of therapeutic interest, or a combination thereof.
[0096]
[0111] In some embodiments, the present disclosure provides a method for producing a recombinant adeno-associated virus (rAAV), comprising the steps of (i) infecting a host cell with rAAV, (ii) producing AAV packaged with an AAV vector cassette, and (iii) purifying the packaged rAAV, wherein the host cell comprises at least four distinct recombination target sites (RTS), adenovirus (Ad) genes including E1A, E1B, or a combination thereof, and a promoter operably linked to the Ad genes, wherein the RTS, Ad genes, and promoter are integrated into a chromosome, and the host cell also comprises a second Ad gene including E1A, E1B, E2A, E4, VA, MIR342, or a combination thereof, adeno-associated virus (AAV) genes including Rep, Cap, or a combination thereof, and an AAV vector cassette comprising a reporter gene, a selection gene, a therapeutic gene, or a combination thereof. In some embodiments, a live wild-type helper virus is not required for the production and packaging of the rAAV. In some embodiments, expression of E1A is not required for rAAV production. In some embodiments, a minimum of 1.0 x 10 9Active rAAV of 10 ... In some embodiments, the inventors have found that the use of SSIs in preparing rAAV producer cells results in pools of producer cells that are homogenous in the ratio of helper genes to therapeutic genes, and in some embodiments, the inventors have found that the use of SSIs in preparing rAAV producer cells results in more consistent rAAV product quality.
[0097]
[0112] As used herein, "amino acid" refers to a compound containing a carboxyl (-COOH) and an amino (-NH2) group. "Amino acid" refers to both natural and non-natural, i.e., synthetic, amino acids. Natural amino acids (along with their three-letter and one-letter codes) include alanine (Ala; A), arginine (Arg, R), asparagine (Asn; N), aspartic acid (Asp; D), cysteine (Cysteine; C), glutamine (Gln; Q), glutamic acid (Glu; E), glycine (Gly; G), histidine (His; H), isoleucine (Ile; I), leucine (Leu; L), lysine (Lys; K), methionine (Met; M), phenylalanine (Phe; F), proline (Pro; P), serine (Ser; S), threonine (Thr; T), tryptophan (Trp; W), tyrosine (Tyr; Y), and valine (Val; V).
[0098]
[0113] The terms "peptide," "polypeptide," and "protein" are used interchangeably herein to refer to polymeric forms of amino acids of any length, including coded and non-coded amino acids, chemically or biochemically modified or derivatized amino acids, and polypeptides with modified peptide backbones.
[0099]
[0114] Desired cell lines, such as prokaryotic and / or eukaryotic cell lines, can be cultured using any suitable apparatus, facilities, and methods described herein. Additionally, in some embodiments, the apparatus, facilities, and methods are suitable for culturing suspension cells or anchorage-dependent (adherent) cells, and are suitable for manufacturing operations configured for the production of pharmaceutical and biopharmaceutical products, such as polypeptide products, nucleic acid products (e.g., DNA or RNA), or mammalian or microbial cells and / or viruses used in cell and / or viral and microbial therapy.
[0100]
[0115] In some embodiments, the cells express or produce a product, such as, for example, a therapeutic or diagnostic recombinant product. As described in more detail below, examples of products produced by the cells include, but are not limited to, antibody molecules (e.g., monoclonal antibodies, bispecific antibodies), antibody mimetics (polypeptide molecules that specifically bind to an antigen but are structurally unrelated to antibodies (e.g., DARPins, affibodies, adnectins, or IgNARs)), fusion proteins (e.g., Fc fusion proteins, chimeric cytokines), other recombinant proteins (e.g., glycosylated proteins, enzymes, hormones), viral therapeutics (e.g., anti-cancer oncolytic viruses, viral vectors for gene therapy and viral immunotherapy), cellular therapeutics (e.g., pluripotent stem cells, mesenchymal stem cells, and adult stem cells), vaccines or lipid-encapsulated particles (e.g., exosomes, virus-like particles), RNA (e.g., siRNA), or DNA (e.g., plasmid DNA, etc.) (antibiotics), or amino acids. In embodiments, the devices, facilities, and methods may be used in the manufacture of biosimilars.
[0101]
[0116] As described above, in embodiments, the devices, facilities, and methods allow for large-scale production of eukaryotic or prokaryotic products (e.g., proteins, peptides, antibiotics, amino acids, nucleic acids (e.g., DNA or RNA) synthesized by eukaryotic cells (e.g., mammalian cells) or lower eukaryotic cells (e.g., yeast cells or filamentous fungal cells), or prokaryotic cells (e.g., gram-positive or gram-negative cells), and / or eukaryotic cells. In some embodiments, the use of microorganisms and their spores in microbiome therapy is also disclosed. Unless otherwise specified herein, the devices, facilities, and methods may include any desired capacity or production capability, including, but not limited to, bench scale, pilot scale, and full production scale.
[0102]
[0117] Furthermore, unless otherwise specified herein, the apparatus, facilities, and methods may comprise any suitable reactor, including, but not limited to, stirred tank, airlift, fiber, microfiber, hollow fiber, ceramic matrix, fluidized bed, fixed bed, and / or spouted bed bioreactors. As used herein, a "reactor" may comprise a fermenter or culture unit, or any other reaction vessel, and the term "reactor" is used interchangeably with "fermenter." The terms "fermenter" or "culture" refer to the cultivation of both microorganisms and mammalian tissue. For example, in some embodiments, an exemplary bioreactor unit may perform one or more or all of the following functions: feeding nutrients and / or carbon sources; injecting appropriate gases (e.g., oxygen); pumping and venting fermentation or cell culture media; separating gas and liquid phases; maintaining temperature; maintaining oxygen and CO2 levels; maintaining pH levels; agitating (e.g., rotating); and / or cleaning / sanitizing. An exemplary reactor unit (e.g., a culture unit) may include multiple reactors within the unit; for example, the unit may have 1, 2, 3, 4, 5, 10, 15, 20, 25, 30, 35, 40, 45, 50, 60, 70, 80, 90, or 100 or more unit bioreactors, and / or a facility may have multiple units with single or multiple reactors within the facility. In various embodiments, the bioreactor may be suitable for batch, semi-fed-batch, fed-batch, perfusion, and / or continuous fermentation processes. The diameter of the reactor may be adjusted accordingly. In embodiments, the bioreactor may have a volume ranging from about 100 mL to about 50,000 L.Non-limiting examples include 100mL, 250mL, 500mL, 750mL, 1L, 2L, 3L, 4L, 5L, 6L, 7L, 8L, 9L, 10L, 15L, 20L, 25L, 3 0L, 40L, 50L, 60L, 70L, 80L, 90L, 100L, 150L, 200L, 250L, 300L, 350L, 400L, 450L, 500L, 550L, 600 Included are reactors with capacities of 1 L, 650 L, 700 L, 750 L, 800 L, 850 L, 900 L, 950 L, 1000 L, 1500 L, 2000 L, 2500 L, 3000 L, 3500 L, 4000 L, 4500 L, 5000 L, 6000 L, 7000 L, 8000 L, 9000 L, 10,000 L, 15,000 L, 20,000 L, and / or 50,000 L. Furthermore, suitable reactors may be multi-use, single-use, disposable, or non-disposable, and may be formed from any suitable material, such as alloys (e.g., stainless steel (e.g., 316L or any other suitable stainless steel) and Inconel), plastic, and / or glass.
[0103]
[0118] In embodiments, unless otherwise specified herein, the apparatus, facilities, and methods described herein may include any other suitable operational units and / or equipment not described, such as operational units and / or equipment for separation, purification, and isolation of such products. Any suitable facility and environment may be used, such as a conventional field-assembled facility, a modular, mobile, and temporary facility, or any other suitable construction, facility, and / or layout. For example, in some embodiments, a modular cleanroom may be used. Furthermore, unless otherwise specified, the apparatus, systems, and methods described herein may be housed and / or performed in a single location or facility, or may be housed and / or performed in separate or multiple locations and / or facilities.
[0104]
[0119] Non-limiting examples of facilities, equipment, and / or systems that may be suitable include, but are not limited to, those described in U.S. Patent Application Publication Nos. 2013 / 0280797, 2012 / 0077429, 2011 / 0280797, 2009 / 0305626, and U.S. Patent Nos. 8,298,054, 7,629,167, and 5,656,491, the entire disclosures of which are incorporated herein by reference.
[0105]
[0120] In embodiments, the cells are eukaryotic cells (e.g., mammalian cells). For example, mammalian cells can be human, rodent, or bovine cell lines or cell strains. Examples of such cells, cell lines or cell strains include mouse myeloma (NS0) cell lines, Chinese hamster ovary (CHO) cell lines, HT1080, H9, HepG2, MCF7, MDBK Jurkat, NIH3T3, PC12, BHK (baby hamster kidney cells), VERO, SP2 / 0, YB2 / 0, YO, C127, L cells, COS (e.g., COS1 and COS7), QC1-3, HEK293, VERO, PER.C6, HeLa, EBl, EB2, EB3, oncolytic, or hybridoma cell lines. Preferably, the mammalian cells are CHO cells. In one embodiment, the cells are CHO cells. In one embodiment, the cell is a CHO-K1 cell, a CHOK1SV™ cell, a DG44 CHO cell, a DUXB11 CHO cell, a CHOS, a CHO GS knockout cell, a CHO FUT8 GS knockout cell, a CHOZN, or a CHO-derived cell. A CHO GS knockout cell (e.g., a GSKO cell) is, for example, a CHOK1SV GS-KO (part of Lonza's Xceed® Expression system (Lonza, Slough, UK)). A CHO FUT8 knockout cell is, for example, a CHOK1SV™ Potelligent® (Lonza, Slough, UK). The eukaryotic cell may be an avian cell, cell line, or cell line (e.g., EBx® cells, EB14, EB24, EB26, EB66, or EBvl3).
[0106]
[0121] In some embodiments, the eukaryotic cells are stem cells. The stem cells may be, for example, pluripotent stem cells, including embryonic stem cells (ESCs), adult stem cells, induced pluripotent stem cells (iPSCs), tissue-specific stem cells (e.g., hematopoietic stem cells), and mesenchymal stem cells (MSCs).
[0107]
[0122] In one embodiment, the cells are differentiated forms of any of the cells described herein. In one embodiment, the cells are derived from any primary cell in culture. In some embodiments, the cells are not derived from stem cells. For example, in some embodiments, the cells are used in immunotherapy as cells (e.g., lymphocytes) extracted and isolated from an individual patient or obtained from an established cell bank. In some embodiments, the cells may include genetically engineered cells (e.g., CAR-T cells, etc.).
[0108]
[0123] In embodiments, the cells are hepatocytes (e.g., human hepatocytes, animal hepatocytes, or non-parenchymal cells). For example, the cells may be plateable human hepatocytes for metabolism studies, plateable human hepatocytes for induction studies, plateable Qualyst Transporter Certified™ human hepatocytes, human suspension hepatocytes (including hepatocytes pooled from 10 donors and 20 donors), human hepatic Kupffer cells, human hepatic stellate cells, dog hepatocytes (including single and pooled beagle hepatocytes), mouse hepatocytes (including CD-1 and C57BI / 6 hepatocytes), rat hepatocytes (including Sprague-Dawley, Wistar ham, and Wistar hepatocytes), monkey hepatocytes (including cynomolgus or rhesus monkey hepatocytes), cat hepatocytes (including domestic and shorthair cat hepatocytes), and rabbit hepatocytes (including New Zealand White hepatocytes). Hepatocytes are commercially available, for example, from Triangle Research Labs, LLC (6 Davis Drive, Research Triangle Park, North Carolina, USA 27709).
[0109]
[0124] In one embodiment, the eukaryotic cell is a lower eukaryotic cell, such as a yeast cell (e.g., a species of the genus Pichia (e.g., Pichia pastoris, Pichia methanolica, Pichia kluyveri, and Pichia angusta), a species of the genus Komagataella (e.g., Komagataella pastoris, Komagataella pseudopastoris, or Komagataella phaffii), a species of the genus Saccharomyces (e.g., Saccharomyces cerevisiae, Saccharomyces kluyveri, Saccharomyces uvarum ... uvarum), Kluyveromyces (e.g., Kluyveromyces lactis, Kluyveromyces marxianus), Candida (e.g., Candida utilis, Candida cacaoi, Candida boidinii), Geotrichum (e.g., Geotrichum fermentans), Hansenula polymorpha, Yarrowia lipolytica, or Schizosaccharomyces pombe). Pichia pastoris species are preferred. Examples of Pichia pastoris strains are X33, GS115, KM71, KM71H and CBS7435.
[0110]
[0125] In one embodiment, the eukaryotic cell is a fungal cell, such as a fungal cell of Aspergillus (e.g., A. niger, Aspergillus fumigatus, A. orzyae, A. nidula), Acremonium (e.g., A. thermophilum), Chaetomonium (e.g., C. thermophilum), Chrysosporium (e.g., C. thermophilum), Cordyceps (e.g., C. militaris), Corynascus, Ctenomyces, Fusarium (e.g., F. oxysporum), Glomerella (e.g., G. graminicola), Hypocrea (e.g., H. germanica), or the like. H. jecorina), Magnaporthe (e.g. M. oryzae), Myceliophthora (e.g. M. thermophile), Nectria (e.g. N. heamatococca), Neurospora (e.g. N. crassa), Penicillium, Sporotrichum (e.g. S. thermophile), Thielavia (e.g. T. terrestris, T. heterothallica), Trichoderma (e.g. T. reesei) or Verticillium (e.g. V. dahlia).
[0111]
[0126] In one embodiment, the eukaryotic cell is an insect cell (e.g., an Sf9, Mimic™ Sf9, Sf21, High Five™ (BT1-TN-5B1-4) or BT1-Ea88 cell), an algae cell (e.g., an Amphora, a diatom, Dunaliella, Chlorella, Chlamydomonas, a Cyanophyta (cyanobacteria), Nannochloropsis, Spirulina or Ochromonas), or a plant cell (e.g., a cell from a monocotyledonous plant (e.g., corn, rice, wheat or green foxtail), or a cell from a dicotyledonous plant (e.g., cassava, potato, soybean, tomato, tobacco, alfalfa, Physcomitrella patens or Arabidopsis).
[0112]
[0127] In one embodiment, the cell is a bacterium or a prokaryotic cell. In some embodiments, the prokaryotic cell is a Gram-positive cell (e.g., Bacillus, Streptomyces, Streptococcus, Staphylococcus, or Lactobacillus). Bacillus that can be used includes, for example, B. subtilis, B. amyloliquefaciens, B. licheniformis, B. natto, or B. megaterium. In an embodiment, the cell is B. subtilis (e.g., B. subtilis 3NA and B. subtilis 168). For example, Bacillus can be obtained from the Bacillus Genetic Stock Center (Biological Sciences 556, 484 West 12th Avenue, Columbus, OH 43210-1214).
[0113]
[0128] In one embodiment, the prokaryotic cells are Gram-negative cells, such as Salmonella spp. or E. coli (e.g., TG1, TG2, W3110, DH1, DHB4, DH5a, HMS 174, HMS174(DE3), NM533, C600, HB101, JM109, MC4100, XL1-Blue, and Origami), and cells derived from E. coli B-strains (e.g., BL-21 or BL21(DE3)), all of which are commercially available. Suitable host cells are commercially available from microorganism collections, such as, for example, DSMZ (Deutsche Sammlung von Mikroorganismen and Zellkulturen GmbH, Braunschweig, Germany) or the American Type Culture Collection (ATCC). In some embodiments, the cells include other microbial flora utilized as therapeutic agents. These include the microbiota present in the human microbiome, which belong to the Firmicutes, Bacteroidetes, Proteobacteria, Verrumicrobia, Actinobacteria, Fusobacteria, and Cyanobacteria groups. Microbiota include aerobic, strict anaerobic, or facultative anaerobic organisms, and include cells or spores. Therapeutic microbiota also include genetically engineered organisms and the vectors used in their engineering. Other microbiome-related therapeutic organisms include archaea, fungi, and viruses. See, for example, The Human Microbiome Project Consortium. Nature 486, 207-214 (14 June 2012); Weinstock, Nature, 489(7415): 250-256 (2012); Lloyd-Price, Genome Medicine 8:51 (2016).
[0114]
[0129] In some embodiments, the cultured cells are used to produce proteins for therapeutic use, such as antibodies (e.g., monoclonal antibodies) and / or recombinant proteins. In embodiments, the cultured cells produce peptides, amino acids, fatty acids, or other useful biochemical intermediates or metabolites. For example, in embodiments, molecules having molecular weights from about 4000 daltons to greater than about 140,000 daltons can be produced. In embodiments, these molecules can have a range of complexity and can include post-translational modifications such as glycosylation.
[0115]
[0130] In embodiments, the protein is, for example, Botox, Myoblock, Neuroblock, Dysport (or other serotypes of botulinum neurotoxin), alglucosidase alfa, daptomycin, YH-16, choriogonadotropin alfa, filgrastim, cetrolexin, interleukin-2, aldesleukin, cteceleulin, denileukin difitox, interferon alfa-n3 (injection). , interferon alpha-nl, DL-8234, interferon, Suntory (gamma-1a), interferon gamma, thymosin alpha 1, tasonermin, DigiFab, viperatab, etitab, CroFab, nesiritide, abatacept, alefacept, rebif, eptotermin alpha, teriparatide (osteoporosis), calcitonin injectable (bone disease), calcitonin (nasal, osteoporosis), etanercept, hemoglobin glutamate 250 (bovine), drotrecogin α, collagenase, carperitide, recombinant human epidermal growth factor (topical gel, wound healing), DWP401, darbepoetin α, epoetin ω, epoetin β, epoetin α, desirudin, lepirudin, bivalirudin, nonacog α, mononine, eptacog α (activated), recombinant factor VIII + VWF, recombinant, recombinant factor VIII, factor VIII (recombinant), alphnmate, octocog α, factor VIII, palifermin, indikinase, tenecteplase, alteplase, pamiteplase, reteplase, nateplase, monteplase, follicle-stimulating hormone α, rFSH, hpFSH, mi Kafungin, pegfilgrastim, lenograstim, nartograstim, sermorelin, glucagon, exenatide, pramlintide, iniglucerase, galsulfase, leucotropin, molgramostim, triptorelin acetate, hysterelin (subcutaneous implant, Hydron), deslorelin, hysterelin, nafarelin, leuprolide sustained-release depot (ATRIGEL), leuprolide implant (DUROS), goserelin, Eutropin, KP-102 program, somatropin, mecasermin (growth failure), enlfavirtide, Org-33408, insulin glargine,Insulin glulisine, insulin (inhaled), insulin lispro, insulin detemir (deternir), insulin (buccal, RapidMist), mecasermin linfavert, anakinra, cermoleukin, 99mTc-apsitide injection, myelopid, betaseron, glatiramer acetate, Gepon, sargramostim, oprelvekin, human leukocyte-derived alpha interferon, Bilive, insulin (recombinant), Recombinant human insulin, insulin aspart, mecasenin, Roferon-A, interferon-α2, alphaferon, interferon alfacon-1, interferon α, Avonex recombinant human luteinizing hormone, dornase α, trafermin, ziconotide, taltirelin, divotermin α, atosiban, becaplermin, eptifibatide, Zemaila, CTC-111, Shanvac-B, HPV vaccine (tetravalent) ), octreotide, lanreotide, ancestim, agalsidase beta, agalsidase alfa, laronidase, copper acetate prezatide (topical gel), rasburicase, ranibizumab, Actimmune, PEG-Intron, Tricomin, recombinant mite allergy desensitizing injection, recombinant human parathyroid hormone (parathyroid hormone) 1-84 (sc, osteoporosis), epoetin delta, transgenic antithrombin III, grandistro Granditropin, Vitrase, recombinant insulin, interferon-α (oral lozenge), GEM-21S, vapreotide, idursulfase, omapatrilat, recombinant serum albumin, certolizumab pegol, glucarpidase, human recombinant C1 esterase inhibitor (angioedema), lanoteplase, recombinant human growth hormone, enfuvirtide (needle-free injection, Biojector 2000), VGV-1, interferon-α, lucinactant, aviptadil (inhalation, pulmonary disease), icatibant, ecallantide, omiganan, Aurograb, pexiganan acetate, ADI-PEG-20, LDI-200, degarelix,Cintredelin besudotox, Favld, MDX-1379, ISAtx-247, liraglutide, teriparatide (osteoporosis), tifacogin, AA4500, T4N5 liposomal lotion, catumaxomab, DWP413, ART-123, Chrysalin, desmoteplase, amediplase, corifollitropin alfa, TH-9507, teduglutide, Diamyd, DWP-412, growth hormone (sustained-release infusion), recombinant G-CSF, insulin (inhaled, AIR) , insulin (inhaled, Technosphere), insulin (inhaled, AERx), RGN-303, DiaPep277, interferon beta (hepatitis C virus infection (HCV)), interferon alpha-n3 (oral), belatacept, transdermal insulin patch, AMG-531, MBP-8298, Xerecept, Opevacan, AIDSVAX, GV-1001, LymphoScan, ranpirnase, Lipoxysan, ruspultide, MP52 (β -tricalcium phosphate carrier, bone regeneration), melanoma vaccine, sipuleucel-T, CTP-37, Insegia, vitespen, human thrombin (freezing, surgical bleeding), thrombin, TransMID, alfimeprase, Puricase, terlipressin (intravenous, hepatorenal syndrome), EUR-1008M, recombinant FGF-I (injectable, vascular disease), BDM-E, rotigaptide, ETC-216, P-113, MBI-594AN, duramycin (inhalation, cystic fibrosis), SC V-07, OPI-45, endostatin, angiostatin, ABT-510, Bowman-Birk inhibitor concentrate, XMP-629, 99mTc-hynic-annexin V, kahalalide F, CTCE-9908, teverelix (extended release), ozalelix, romidepsin, BAY-504798, interleukin 4, PRX-321, Pepscan, ivoctadekin, rh lactoferrin, TRU-015,IL-21, ATN-161, cilengitide, Albuferon, Biphasix, IRX-2, omega-interferon, PCK-3145, CAP-232, pasireotide, huN901-DMI, ovarian cancer immunotherapy vaccine, SB-249553, Oncovax-CL, Oncovax-P, BLP-25, CerVax-16, multi-epitope peptide melanoma vaccine (MART-1, gp100, tyrosinase), nemifitide, rAAT (inhaled), rAAT (dermatological), CGRP (inhaled, asthma), pegsunercept, thiamin Mosin β4, plitidepsin, GTP-200, ramoplanin, GRASPA, OBI-1, AC-100, salmon calcitonin (oral, Eligen), calcitonin (oral, osteoporosis), examorelin, capromorelin, Cardeva, verafermin, 131I-TM-601, KK-220, T-10, ularitide, deperestat, hematide, Chrysalin (topical), rNAPc2, recombinant factor V111 (PEGylated liposomal), bFGF, PEGylated recombinant staphylokinase variant, V-10153, sonolysis Prolease, NeuroVax, CZEN-002, islet cell neogenesis treatment, rGLP-1, BIM-51077, LY-548806, exenatide (controlled release, Medisorb), AVE-0010, GA-GCB, avorelin, ACM-9604, linaclotid eacetate, CETi-1, Hemospan, VAL (injectable), rapid-acting insulin (injectable, Viadel), intranasal insulin, insulin (inhaled), insulin (oral, eligen), recombinant methionyl human leptin, pitrakinra (subcutaneous injection, eczema), pitrakinra (dry powder for inhalation, asthma), Multikine, RG-1068, MM-093, NBI-6024, AT-001, PI-0824, Org-39141, Cpn10 (autoimmune disease / inflammation), talactoferrin (topical), rEV-131 (eye), rEV-131 (respiratory disease), oral recombinant human insulin (diabetes), RPI-78M,Oprelvekin (oral), CYT-99007 CTLA4-Ig, DTY-001, Balategrast, Interferon alfa-n3 (topical), IRX-3, RDP-58, Tauferon, Bile salt-stimulated lipase, Melispase, Alkaline phosphatase, EP-2104R, Melanotan-II, Brimelanotide, ATL-104, Recombinant human microplasmin, AX-200, SEMAX, ACV-1, Xen-2174, CJC-1008, Dynorphin A, SI-6603, LAB GHRH, AER-002, BGC-728, malaria vaccine (virosomes, PeviPRO), ALTU-135, parvovirus B19 vaccine, influenza vaccine (recombinant neuraminidase), malaria / HBV vaccine, anthrax vaccine, Vacc-5q, Vacc-4x, HIV vaccine (oral), HPV vaccine, Tat toxoid, YSPSL, CHS-13340, PTH(1-34) liposome cream (Novasome vasome), Ostabolin-C, PTH analogues (topical, psoriasis), MBRI-93.02, MTB72F vaccine (tuberculosis), MVA-Ag85A vaccine (tuberculosis), FARA04, BA-210, recombinant plague FIV vaccine, AG-702, OxSODrol, rBetV1, Der-p1 / Der-p2 / Der-p7 allergen targeting vaccine (mite allergy), PR1 peptide antigen (leukemia), mutant ras vaccine, HPV-16 E7 lipopeptide vaccine, labyrinthin vaccine (adenocarcinoma), CML vaccine, WT1-peptide vaccine (cancer), IDD-5, CDX-110, Pentrys, Norelin, CytoFab, P-9808, VT-111, Iclocaptide, Telbermin (skin disease, diabetic foot ulcer), Rupintrivir, reticulose, rGRF, HA, α-galactosidase A, ACE-011, ALTU-140, CGX-1160, angiotensin therapeutic vaccine, D-4F, ETC-642, APP-018, rhMBL, SCV-07 (oral drug, tuberculosis), DRF-7295, ABT-828, ErbB2-specific immunotoxin (anticancer), DT3SSIL-3, TST-10088PRO-1762, Combotox, cholecystokinin-B / gastrin receptor binding peptide, 111In-hEGF, AE-37, trasnizumab-DM1, antagonist G, IL-12 (recombinant), PM-02734, IMP-321, rhIGF-BP3, BLX-883, CUV-1647 (, topical), L-19-based radioimmunotherapeutic agent (cancer), Re-188 P-2045, AMG-386, DC / 1540 / KLH vaccine (cancer), VX-001, AVE-9633, AC-9301, NY-ESO-1 vaccine (peptide), NA17.A2 peptide, melanoma vaccine (therapeutic pulsed antigen), prostate cancer vaccine, CBP-501, recombinant human lactoferrin (dry eye), FX-06, AP-214, WAP-8294A (injectable), ACP-HIP, SUN-11031, peptide YY[3-36] (obesity, nasal cavity), FGLL, atacicept, BR 3-Fc, BN-003, BA-058, human parathyroid hormone 1-34 (nose, osteoporosis), F-18-CCR1, AT-1100 (celiac disease / diabetes), JPD-003, PTH(7-34) liposome cream (Novasome), duramycin (ocular, dry eye), CAB-2, CTCE-0214, glycoPEGylated erythropoietin, EPO-Fc, CNTO-528, AMG-114, JR-013, factor XIII, aminocandin, PN-951, 716155, SUN-E7001 , TH-0318, BAY-73-7977, Teverelix (immediate release), EP-51216, hGH (controlled release, Biosphere), OGP-I, sifuvirtide, TV4710, ALG-889, Org-41259, rhCC10, F-991, thymopentin (pulmonary disease), r(m)CRP, liver-selective insulin, subalin, L19-IL-2 fusion protein, elafin, NMK-150, ALTU-139, EN-122004, rhTPO, thrombopoietin receptor agonist (thrombocytopenic disorders), AL-108, AL-208, nerve growth factor antagonist (pain), SLV-317, CGX-1007, INNO-105, oral teriparatide (Erigen), GEM-OS1, AC-162352, PRX-302, LFn-p24 fusion vaccine (Therapore), EP-1043, pediatric S pneumonia vaccine, malaria vaccine, meningococcal group B vaccine, neonatal group B streptococcal vaccine, anthrax vaccine, HCV vaccine (gpE1+gpE2+MF-59), otitis media treatment,HCV vaccine (core antigen + ISCOMATRIX), hPTH(1-34) (transdermal, ViaDerm), 768974, SYN-101, PGN-0052, Aviscumin, BIM-23190, tuberculosis vaccine, multi-epitope tyrosinase peptide, cancer vaccine, enkastim, APC-8024, GI-5005, ACC-001, TTS-CD3, vascular-targeted TNF (solid tumors) (desmopressin) (buccal, sustained release), onercept, and TP-9201.
[0116]
[0131] In some embodiments, the polypeptide is adalimumab (HUMIRA), infliximab (REMICADE™), rituximab (RITUXAN™ / MABTHERA™), etanercept (ENBREL™), bevacizumab (AVASTIN™), trastuzumab (HERCEPTIN™), pegrillgrastim (NEULASTA™), or any other suitable polypeptide, including biosimilars and biobetters.
[0117]
[0132] Other suitable polypeptides are those listed in Table 6 below and in Table 1 of U.S. Patent Application Publication No. 2016 / 0097074. One of skill in the art will recognize that the present disclosure also encompasses combinations of the products and / or conjugates described herein (i.e., multi-proteins, modified proteins (conjugated to PEG, toxins, other active ingredients)).
[0118] [Table 6] TIFF0007731388000008.tif210149 TIFF0007731388000009.tif210149 TIFF0007731388000010.tif85149
[0119]
[0133] In some embodiments, the polypeptide is a hormone, blood clotting / clotting factor, cytokine / growth factor, antibody molecule, fusion protein, protein vaccine, or peptide set forth in Table 7.
[0120] [Table 7] TIFF0007731388000012.tif215149
[0121]
[0134] In some embodiments, the protein is a multispecific protein (eg, a bispecific antibody shown in Table 8).
[0122] [Table 8] TIFF0007731388000014.tif164149 TIFF0007731388000015.tif171149 TIFF0007731388000016.tif157149 TIFF0007731388000017.tif179149 TIFF0007731388000018.tif113149
[0123]
[0135] To realize the benefits of this system for therapeutic proteins, CHOK1SV SSIs containing multiple RTS sites can be tested for the expression of therapeutic proteins, as outlined in Table 10. The experiment can be divided into three phases: Phase 1: Testing the use of multi-site SSIs to increase qP; Phase 2: Testing the ability of multi-site SSIs to express a tri-gene bispecific mAb across two SSISs; Phase 3: Expressing ancillary genes at one site to support the expression of a DtE protein encoded at the other site.
[0124]
[0136] Phase 1: A limitation of some cell lines containing a single RTS site is that a single copy of the required transcription unit is not sufficient to generate adequate titers for clinical manufacturing. Therefore, we can evaluate the option of using multiple RTSs to increase the integrated copy number of the mAb gene. In such a method, the mAb gene can be targeted to landing pads A and B. The homogeneity of the pool can be determined by FACS sorting and analysis of the supernatant by protein A HPLC.
[0125]
[0137] Phase 2: For the majority of next-generation antibodies (e.g., tetravalent bispecific antibodies), assembly of multiple heavy or light chains is a recurring challenge. To obtain optimal product quality with minimal unwanted by-products, it is effective to select appropriate CHO clones that stably and reproducibly express all four antibody chains. As a result, extensive product analysis using ELISA, RP-HPLC, or CD-SDS is often required during clone selection. However, in cell lines containing multiple RTSs, the genes encoding the multi-chain proteins are spatially separated into two sites with individual promoters. This ensures early alignment of the copy number and relative expression of each chain with the transfectant pool, allowing for effective empirical fine-tuning of the obtainability of individual polypeptide chains by manipulating the promoter strength or copy number of the encoding transcription unit. Benefits include more uniform product quality, a reduced proportion of misfolded multi-chain recombinant proteins produced from SSI production pools and cell lines, and a dramatic reduction in the need for early characterization. Test molecule: cergutumab amunaleukin.
[0126]
[0138] Phase 3: Expression of endogenous proteins resulting in increased secretion capacity of the CHOK1SV GS-KO™ cell line is an established method to increase product titer. Candidates can be identified from WO 2015 / 018703A1 and evaluated against cell lines containing multiple distinct recombination target sites (RTS) in Tables 9 and 10. Product titer can be measured by Protein A HPLC, and antibody aggregates can be evaluated by SDS-PAGE and IEF. Test molecules: rituximab, cB72.3, infliximab, and etanercept.
[0127] [Table 9]
[0128] [Table 10] [Example]
[0129] Example 1: Transient AAV production of CHOK1SV GS-KO™ by co-infection with Adenovirus 5 virus
[0139] To determine whether CHOK1SV GS-KO™ (Lonza, Slough, UK) cells were biologically capable of producing and assembling rAAV vector proteins, CHOK1SV GS-KO™ cells were transfected with two plasmids, pRC2-mi342 (6234, Clontech) and pAAV-GFP (AAV-400, Cell Biolabs) control vector (Catalog No. AAV-400, Cell Biolabs, San Diego, USA) in the presence of wild-type Ad5 virus (Catalog No. ATCC® VR-1516™, ATCC, Manassas, USA) (Figure 6). Under native conditions, CHOK1SV GS-KO™ cells do not accept adenovirus because they lack viral receptors. However, in the presence of cationic transfection reagents (lipofectamine or PEI), negatively charged adenovirus 5 can enter CHOK1SV GS-KO™ cells, providing all helper elements. This concept was used to design the present evaluation experiments, in which CHOK1SV GS-KO™ cells were provided with all elements (Rep-Cap and GOI by transfection, and Ad5 elements by infection). Cells were harvested 72 hours post-transfection / infection and lysed by four freeze / thaw cycles, followed by benzonase treatment to digest any plasmid DNA. Lysates were tested for AAV titer by qPCR and for transgene (green fluorescent protein: GFP) expression by transduction efficiency into HEK293. As a control for this experiment, adherent HEK293 cells were used. Cell lysates from triple-transfected HEK293 cells (pHelper (6234, Clontech), pRC2-mi342 (6234, Clontech), and pAAV-GFP (AAV-400, Cell Biolabs) (Figure 6)) were analyzed in the same manner as CHOK1SV GS-KO™ cells transfected with pRC2-mi342 (6234, Clontech) (pAAV-GFP) and infected with wild-type Ad5.An outline of the experiment and its results are shown in Figure 1. After transfection, green fluorescence was detected in CHOK1SV GS-KO™ cells, indicating successful transfection (Figure 1B, left panel). When HEK293 cells were transduced with a lysate from transfected CHOK1SV GS-KO™ cells, only low green fluorescence was detected in the HEK293 cells (Figure 1B, right panel), suggesting low-level AAV production. qPCR data showed an AAV titer of 6.8E+09 vg / mL (Figure 1C). As expected, the positive control, triple-transfected HEK293, produced a high AAV titer of 1.8e+12, whereas no AAV was produced in the negative control (HEK293 GFP transfection). In summary, this is the first experiment to demonstrate that CHOK1SV GS-KO™ cells are capable of producing AAV when provided with all known genomic elements required for AAV packaging.
[0130] Example 2: Transient rAAV production of CHOK1SV GS-KO™ without viral co-infection
[0140] To determine whether CHOK1SV GS-KO™ cells could produce rAAV in the absence of wild-type Ad5 virus, we generated cells expressing Ad5 E1A and E1B using an approach similar to that described by Howe et al., 2005. Plasmid constructs expressing E1A under the control of the TET-on promoter (pMF30, Figure 2) and E1B under the control of the constitutive human CMV promoter (pMF23, Figure 3) and the Ad5 E1A-E1B open reading frame (pXC17.4_17AV5PerProKZ, Figure 4) were constructed. CHOK1SV GS-KO™-derived pools were constructed by transfecting pMF30 and selecting for cells viable in glutamine-free medium supplemented with 50 μM L-MSX (Figure 5A). Next, this CHOK1SV GS-KO™ E1A was transfected with pMF23, and viable cells were selected in glutamine-free medium supplemented with 50 μM L-MSX and 10 μg / mL puromycin (Figure 5A). Although a water control was included in all genomic DNA PCRs, it was clear that E1A PCR products were amplified in HEK293F and HEK293L cells and pXC17.4_17AV5PerProKZ (Figure 1B). CHOK1SV GS-KO™ MOCK (MOCK) and CHOK1SV GS-KO™ E1A E1B (E1A E1B) pools were treated with doxycycline (2 μg / ml) for 0 (untreated), 2, 3, 4, and 7 days to activate the TET promoter and E1A transcription. mRNA was then isolated for reverse transcription-PCR using primers for E1A (Figure 1D) and E1B (Figure 1E). The results showed that the levels of E1A 243R and E1A 171R were elevated in the doxycycline-treated CHOK1SV GS-KO™ E1A E1B pool and HEK293L cells. The amount of E1B mRNA product was unchanged after doxycycline treatment but was significantly elevated in HEK293L cells.E1A protein was detected in the CHOK1SV GS-KO™ E1A E1B pool treated with doxycycline for 7 days (E1A E1B), but not in the CHOK1SV GS-KO™ MOCK (MOCK) protein lysate (Figure 5F). Next, we tested the rAAV production capacity of this CHOK1SV GS-KO™ E1A_E1B pool in the presence or absence of doxycycline (2 μg / ml). To ensure high expression of E1A and E1B proteins, we also transiently transfected CHOK1SV GS-KO™ cells with the E1A-E1B plasmid (pXC17.4_17AV5PerProKZ, Figure 4). These data indicate that E1A protein expression can be achieved in CHO cells without the need for wild-type Ad infection. Confirming E1B integration and expression was more difficult.
[0131] Example 3: Persistent rAAV production in CHOK1SV GS-KO™ and HEK293 without viral co-infection
[0141] As loci identified from recombinant CHOK1SV™ cell lines, landing pads suitable for subsequent RMCE were integrated into the CHOK1SV GS-KO™ and HEK293 genomes (Fer1L4, NL1, 2, 3, 4, 5, and 6; see WO 2013 / 190032 A1 and EP 2711428 A1). A schematic representation of the arrangement of elements within these landing pads is shown in Figures 7A, B, and C. The placement of Frt sites between the SV40E promoter and the selectable marker allows for their use in the next round of RMCE. The use of incompatible Frt sites (A, B, C, D, E, and F) and different reporter / selectable markers ensures independent identification of these sites. Figure 8 shows various configurations of AAV, Ad5 and GOI genes in CHO and HEK293-derived SSI cell lines after RMCE, with configurations 1 (Figure 8A), 2 (Figure 8B) and 3 (Figure 8C).
[0132]
[0142] To generate the HEK293 SSI host, a standalone copy of the University of California, Santa Cruz (UCSC) Human Genome Database (version: March 2006 (NCBI36 / hg18)) was used to perform a BLAT search against the human genome for the CHOK1SV-derived vector integration site and landing pad location. Sequences with at least 25 base pairs of CHOK1SV sequence with 95% (or greater) similarity were identified. Regions of similarity were visualized using the IGV viewer (Broad Institute version 2.4). Crispr-Cas9 gRNAs were designed using an in-house Crispr-Cas9 design tool. The loci for CHOK1SV and HEK293 are summarized in Table A.
[0133] Example 4: Supplementary gene expression enhances rAAV production in CHOK1SV GS-KO™
[0143] The mammalian innate immune system detects viral infection by recognizing viral signatures and activates antiviral responses (e.g., RIG-1 IFNα responses). There is growing evidence that RNA silencing or RNA interference (RNAi) is a useful antiviral mechanism in mammalian cells. Mammalian viruses encode IFN antagonists (e.g., influenza NS1 protein and vaccinia virus E3L protein) that inhibit PKR (see, e.g., de Vries et al., Gene Ther., 15:545-52 (2008)), and soluble IFN-α / β receptor decoys encoded by vaccinia virus counteract the IFN response of infected cells. Co-expression of IFN antagonists can be considered as a possible approach to overcome the low Ad5 and AAV gene expression observed in Examples 2 and 3.
[0134] Example 5: rAAV production in CHOK1SV GS-KO™ using site-specific integration Section 1: Construction of the dual landing pad CHOK1SV GS-KO™ SSI host
[0144] The CHOK1SV GS-KO™ SSI host was generated by inserting two landing pads into the genome of the CHOK1SV GS-KO™ host (Figure 9). Landing pad A is located in the Fer1L4 gene (see Table 10) and consists of the SV40 early promoter (SV40E), a hygromycin phosphotransferase-eGFP fusion gene (Hpt-eGFP), and an SV40 polyadenylation sequence (pA). The Hpt-eGFP gene and SV40 pA are flanked by incompatible Frt sites (Frt_5 and Frt_wt, respectively) to facilitate RMCE of the recombinant gene into the CHOK1SV GS-KO™ genome. Landing pad B is located in the NL1 locus (see Table A) and consists of the SV40 early promoter (SV40E), a puromycin N-acetyltransferase-DsRed fusion gene (PAC-DsRed), and an SV40 polyadenylation sequence (pA). The PAC-DsRed gene and SV40 pA are flanked by incompatible Frt sites (Frt14 and Frt15, respectively). Placing an Frt site between the SV40E promoter and the selectable marker in both landing pads allows their use in the next round of RMCE. The targeting vector designed for RMCE in the CHOK1SV GS-KO™ SSI host contains a positive selectable marker (e.g., GS) located immediately 3′ of an Frt site compatible with the desired landing pad (Figure 9). The remainder of the vector contains a transcription unit for the GOI followed by an Frt site compatible with the second Frt site in the landing pad. The targeting vector DNA (Figure 10) is cotransfected with a vector expressing Flp recombinase. Transfected cells are incubated for 24 hours, and then selective pressure is applied (e.g., removal of glutamine from the medium). Successful RMCE is indicated by the loss of the Hpt-eGFP or PAC-DsRed gene and its replacement with a positive selectable marker gene. The cells appear dark under a fluorescent microscope or by flow cytometer analysis. Non-exchanged cells that reverted during positive selection are easily removed by FACS.
[0135] Section 2: Construction of Rep-Cap and GOI expression vectors compatible with the CHOK1SV GS-KO™ SSI host
[0145] To generate a pool of CHOK1SV GS-KO™ SSI host-derived vectors expressing Rep-Cap and GOI genes (Figure 9), five vectors were designed (pLMC31-35, Figures 10A-E). pLMC31 (Figure 10A) is a targeting vector for generating GOI (eGFP)-producing cell lines from CHOK1SV GS-KO™ SSI hosts. Transcription of eGFP is driven by the hCMV major intermediate-early gene 1 (hCMV) promoter and uses the β-globin polyadenylation (pA) sequence. All transcription cassettes are flanked by inverted terminal repeats (ITRs), the only cis-acting elements required for viral replication and packaging. The neomycin phosphotransferase I (nptI) gene is located immediately 3' of Frt14, and transcription of RMCE is well driven by the SV40E promoter located in the landing pad of the NL1 locus. pLMC32-35 (Figure 10B-E) are targeting vectors containing a Rep-Cap expression cassette and a different conformation of the AAV p5 promoter to generate the AAV Rep-Cap-producing CHOK1SV GS-KO™ SSI host cell line (Figure 10B-E). Normal Rep78 expression driven by the wild-type p5 promoter has been shown to inhibit AAV production. The purpose of adopting the different conformation is to reduce Rep78 expression while maintaining Cap expression to maximize AAV production. A glutamine synthetase (GS) cDNA was placed adjacent to the 3′ side of Frt5, and optimal RMCE transcription was driven by the SV40E promoter located in the landing pad of the Fer1L4 locus. pLMC32 (Figure 10B) contains a minimal p5 (open box) with two enhancer elements removed. An intact p5 (black and white box) located 3′ of the Cap gene enhances Cap expression. pLMC33 (Figure 10C) also has a minimal p5 promoter (white box) (similar to pLMC32), but does not have a p5 promoter 3' of the Cap gene. mutThe promoter (black and gray boxes) contains a mutated (GGGGGGGG) TATA box. pLMC34 (Figure 10D) contains the p5 promoter (black and white boxes) 5' of Rep and a p5 promoter with a mutated TATA box to GGGGGGG. mut The promoters (black and gray boxes) are located at the 3' end of the Cap. pLMC35 (Figure 10E) has TATA mutations in both p5 promoters (black and gray boxes). pLMC32-35 use the GS cDNA selection marker.
[0136] Section 3: rAAV production in CHOK1SV GS-KO™ and HEK293 cells by triple transfection with four Rep-Cap constructs
[0146] We examined the ability of the GOI (pLMC31) and Rep-Cap (pLMC32-35) expression vectors to sustain rAAV production in HEK293 cells cotransfected with wild-type Ad5 virus and either CHOK1SV GS-KO™ or pHelper (6234, Clontech) vectors. Western blot analysis confirmed wild-type Ad5 transduction into CHOK1SV GS-KO™ cells by E1A protein expression (Fig. 11A). We also confirmed high levels of Rep and Cap protein expression by the pLMC31-35 vector in HEK293 cells, low levels of Rep protein expression, and undetectable Cap protein expression in CHOK1SV GS-KO™ cells (Fig. 11B and 11C). TaqMan-qPCR analysis demonstrated that these pLMC32-35 vectors increased AAV titers 3-5-fold in HEK293 cells compared with the original Clontech plasmids (5#, pRC2-mi342 (6234, Clontech), and pAAV-GFP), whereas production levels were low in CHOK1SV GS-KO™ cells (Figure 20). qPCR titers were confirmed by infectivity assays, demonstrating high levels of viral transduction in HEK293 samples and low levels of infection in CHOK1SV GS-KO™ samples (Figure 12). In summary, these data confirm the functionality of the pLMC32-35 vectors for AAV production in HEK293 and CHO cells and suggest that rAAV production is possible in CHO cells when stably expressed.
[0137] Section 4: Generation of CHO cells stably expressing Rep-Cap and GOI by site-specific integration (SSI)
[0147] To determine whether CHOK1SV GS-KO™ SSI hosts stably integrated with the GOI and Rep / Cap could support rAAV production, the GOI (pLMC31) and each Rep-Cap vector (pLMC32-35) were cotransfected into CHOK1SV GS-KO™ SSI hosts with the FLP recombinase expression vector (pMF4). Two sets of pools were generated by simultaneous or sequential integration of the Rep-Cap and GOI (Figure 13). PCR analysis using primers designed to anneal to either the Rep-Cap, the Fer1L landing pad, the GOI, or the NL1 landing pad (Figure 14) demonstrated successful integration of the Rep / Cap into the landing pad located in the Fer1L4 gene in the majority of pools (Figure 15A). PCR products for the remaining Fer1L4 landing pad were detected in all but two pools (pools 18 and 19 in "A" pool), indicating complete SSI in these pools (Figure 15B). However, the GOI was integrated only into the landing pad at the NL1 locus in the pool generated by sequential targeting (pool "B") (Figure 16A), whereas the remaining landing pad was detected in all pools (Figure 16B). Western blot analysis identified five pools that stably expressed Rep, whereas Cap protein expression was undetectable (Figure 17). To verify Rep-Cap expression in CHOK1SV GS-KO™ cells, the mRNA expression of these genes was analyzed by TaqMan-qPCR assay using primers to detect different isoforms of Rep and Cap (Figures 18 and 21). CHOK1SV GS-KO™ cells transfected with Rep-Cap2, GOI, and pHelper (6234, Clontech) vector induced ~5-fold higher Rep mRNA levels (Fig. 19A-C) and ~7-fold higher Rep and Cap mRNA levels (Fig. 19D) compared with GOI (pLMC31) and Rep-Cap (pLMC32-35) vectors (Fig. 19A-C).E1A, E1B, E2A, E4, and VA I mRNA levels were detectable only when CHOK1SV GS-KO™ cells were transfected with Rep-Cap2, GOI, and pHelper (6234, Clontech), but not when transfected with GOI (pLMC31) and Rep-Cap (pLMC32-35) (Figure 19E-J). VA II mRNA levels were undetectable in CHOK1SV GS-KO™ cells (Figure 19K). All observed mRNA levels, except for E4, were lower in CHOK1SV GS-KO™ compared to HEK293 cells (Figure 19A-K). These data indicate that Rep-Cap mRNA induction and expression were lower in CHOK1SV GS-KO™ cells compared to HEK293 cells. In summary, CHOK1SV GS-KO™ cells are capable of expressing Ad5 helper genes and Rep-Cap, but the expression levels of these genes need to be further optimized.
[0138]
[0148] A preferred embodiment of the present invention is as follows. [1] A mammalian cell comprising: (i) at least four distinct recombination target sites (RTS); (ii) adenovirus (Ad) genes including E1A, E1B, or a combination thereof; and (iii) a promoter operably linked to the Ad genes, wherein the RTSs, the Ad genes, and the promoter are integrated into a chromosome. [2] The cell according to [1], which is a mouse cell, a human cell, a Chinese hamster ovary (CHO) cell, a CHO-K1 cell, a CHO-DXB11 cell, a CHO-DG44 cell, a CHOK1SV™ cell including all variants, a CHOK1SV GS-KO™ (glutamine synthetase knockout) cell including all variants, a HEK293 cell including adherent-adapted and suspension-adapted variants, a HeLa cell, or an HT1080 cell. [3] The cell according to [1] or [2], which contains four RTSs. [4] The cell according to [1] or [2], which contains six RTSs. [5] The cell according to any one of [1] to [4], wherein at least one RTS is selected from the group consisting of SEQ ID NOs: 1 to 30. [6] The cell according to any one of [1] to [5], wherein at least one RTS, the Ad gene, and the promoter are integrated into a single chromosomal locus. [7] The cell described in [6], wherein the chromosomal locus is Fer1L4, ROSA26, HGPRT, DHFR, COSMC, LDHa, MGAT1, GRIK1, NL1, NL2, the first intron of MID1 on the X chromosome, or an expression enhancement and stability region. [8] The cell according to any one of [1] to [7], further comprising a site-specific recombinase gene. [9] The cell described in [8], wherein the site-specific recombinase gene is integrated into a chromosome.
[10] The cell according to any one of [1] to [9], further comprising a second Ad gene, wherein the second Ad gene is integrated into a chromosome.
[11] The cell according to
[10] , wherein the second Ad gene comprises E1A, E1B, E2A, E4, VA, MIR342, or a combination thereof.
[12] The cell according to
[11] , wherein the second Ad gene is derived from adenovirus type 5.
[13] The cell according to any one of
[10] to
[12] , wherein the second Ad gene is located between the two RTSs.
[14] The cell according to any one of [1] to
[13] , further comprising an adeno-associated virus (AAV) gene, wherein the AAV gene is integrated into a chromosome.
[15] The cell described in
[14] , wherein the AAV gene includes Rep, Cap, or a combination thereof.
[16] The cell described in
[16] , wherein the AAV gene is derived from adeno-associated virus type 2.
[17] The cell according to any one of
[14] to
[16] , wherein the AAV gene is located between the two RTSs.
[18] The cell according to any one of [1] to
[17] , further comprising an AAV vector cassette, wherein the AAV vector cassette is integrated into a chromosome.
[19] The cell described in
[18] , wherein the AAV vector cassette comprises a reporter gene, a selection gene, a gene of therapeutic interest, or a combination thereof.
[20] The cell according to
[18] or
[19] , wherein the AAV vector cassette is located between two of the RTSs. [twenty one] The cell according to any one of [1] to
[20] , which is substantially free of a helper virus. [twenty two] A mammalian cell comprising: (i) at least four distinct recombination target sites (RTS); (ii) adenovirus (Ad) genes E2A, E4, VA, MIR342, or a combination thereof; and (iii) a promoter operably linked to the Ad genes, wherein the RTSs, the Ad genes, and the promoter are integrated into a chromosome. [twenty three] The cell according to
[22] , which is a mouse cell, a human cell, a Chinese hamster ovary (CHO) cell, a CHO-K1 cell, a CHO-DXB11 cell, a CHO-DG44 cell, a CHOK1SV™ cell including all variants, a CHOK1SV GS-KO™ (glutamine synthetase knockout) cell including all variants, a HEK293 cell including adherent-adapted and suspension-adapted variants, a HeLa cell, or an HT1080 cell. [twenty four] The cell according to
[22] or
[23] , comprising four RTSs. [twenty five] The cell according to
[22] or
[23] , comprising six RTSs.
[26] The cell according to any one of
[22] to
[25] , wherein at least one RTS is selected from the group consisting of SEQ ID NOs: 1 to 30.
[27] The cell according to any one of
[22] to
[26] , wherein the RTS, the Ad gene, and the promoter are integrated into a single chromosomal locus.
[28] The cell according to
[27] , wherein the chromosomal locus is Fer1L4, ROSA26, HGPRT, DHFR, COSMC, LDHa, MGAT1, GRIK1, NL1, NL2, the first intron of MID1 on the X chromosome, or an expression enhancement and stability region.
[29] The cell according to any one of
[22] to
[27] , further comprising a site-specific recombinase gene.
[30] The cell described in
[29] , wherein the site-specific recombinase gene is integrated into a chromosome.
[31] The cell according to any one of
[22] to
[30] , further comprising a second Ad gene, wherein the second Ad gene is integrated into a chromosome.
[32] The cell according to
[31] , wherein the second Ad gene comprises E1A, E1B, E2A, E4, VA, MIR342, or a combination thereof.
[33] The cell according to
[32] , wherein the second Ad gene is derived from adenovirus type 5.
[34] The cell according to any one of
[31] to
[33] , wherein the second Ad gene is located between the two RTSs.
[35] The cell according to any one of
[22] to
[34] , further comprising an adeno-associated virus (AAV) gene, wherein the AAV gene is integrated into a chromosome.
[36] The cell described in
[35] , wherein the AAV gene includes Rep, Cap, or a combination thereof.
[37] The cell described in
[36] , wherein the AAV gene is derived from adeno-associated virus type 2.
[38] The cell according to any one of
[35] to
[37] , wherein the AAV gene is located between the two RTSs.
[39] The cell according to any one of
[22] to
[38] , further comprising an AAV vector cassette, wherein the AAV vector cassette is integrated into a chromosome.
[40] The cell described in
[39] , wherein the AAV vector cassette comprises a reporter gene, a selection gene, a therapeutic gene, or a combination thereof.
[41] The cell according to
[39] or
[40] , wherein the AAV vector cassette is located between two of the RTSs.
[42] The cell according to any one of
[20] to
[41] , which is substantially free of a helper virus.
[43] A mammalian cell comprising (i) at least four distinct recombination target sites (RTS) and (ii) adeno-associated virus (AAV) genes including Rep, Cap, or a combination thereof, wherein the RTS and the AAV genes are integrated into a chromosome.
[44] The cell described in
[43] , wherein the AAV gene is derived from adeno-associated virus type 2.
[45] The cell according to
[43] or
[44] , which is a mouse cell, a human cell, a Chinese hamster ovary (CHO) cell, a CHO-K1 cell, a CHO-DXB11 cell, a CHO-DG44 cell, a CHOK1SV™ cell including all variants, a CHOK1SV GS-KO™ (glutamine synthetase knockout) cell including all variants, a HEK293 cell including adherent-adapted and suspension-adapted variants, a HeLa cell, or an HT1080 cell.
[46] A cell according to any one of
[43] to
[45] , which contains four RTSs.
[47] A cell according to any one of
[43] to
[45] , which contains six RTSs.
[48] A cell according to any one of
[43] to
[47] , wherein at least one RTS is selected from the group consisting of SEQ ID NOs: 1 to 30.
[49] The cell according to any one of [43 to
[48] , wherein the RTS and the AAV gene are integrated into a single chromosomal locus.
[50] The cell according to
[49] , wherein the chromosomal locus is Fer1L4, ROSA26, HGPRT, DHFR, COSMC, LDHa, MGAT1, GRIK1, NL1, NL2, the first intron of MID1 on the X chromosome, or an expression enhancement and stability region.
[51] The cell according to any one of
[43] to
[50] , further comprising a site-specific recombinase gene.
[52] The cell described in
[51] , wherein the site-specific recombinase gene is integrated into a chromosome.
[53] The cell according to any one of
[43] to
[52] , further comprising an Ad gene and a promoter operably linked to the Ad gene, whereby the Ad gene and the promoter are integrated into a chromosome.
[54] The cell according to
[53] , wherein the Ad gene comprises E1A, E1B, E2A, E4, VA, MIR342, or a combination thereof.
[55] The cell according to
[54] , wherein the Ad gene is derived from adenovirus type 5.
[56] The cell according to any one of
[43] to
[55] , wherein the AAV gene is located between the two RTSs.
[57] The cell according to any one of
[43] to
[56] , further comprising an AAV vector cassette.
[58] The cell described in
[57] , wherein the AAV vector cassette comprises a reporter gene, a selection gene, a therapeutic gene, or a combination thereof.
[59] The cell according to
[57] or
[58] , wherein the target gene is located between the two RTSs.
[60] The cell according to any one of
[43] to
[59] , which is substantially free of a helper virus.
[61] a. Six distinct recombination target sites (RTS); b. Adenovirus (Ad) genes including E1A and E1B; c. a promoter operably linked to the Ad gene, wherein the RTS, the Ad gene, and the promoter are chromosomally integrated; d. A second Ad gene comprising E2A, E4, VA, and MIR342, said second Ad gene being located between two of said RTSs; e. Adeno-associated virus (AAV) genes including Rep and Cap, the AAV genes being located between the two RTSs; f. An AAV vector cassette containing a reporter gene, a selection gene, or a therapeutic gene, positioned between the two RTSs; Chinese hamster ovary (CHO) cells, including
[62] Chinese hamster ovary (CHO) cells containing adenovirus (Ad) genes including E1A and E1B and a promoter operably linked to the Ad genes, a second Ad gene including E2A, E4, VA, and MIR342, adeno-associated virus (AAV) genes including Rep and Cap, and an AAV vector cassette containing a reporter gene, a selection gene, a gene of therapeutic interest, or a combination thereof.
[63] 1. A method for producing recombinant adeno-associated virus (rAAV) producer cells, comprising: a. providing a cell comprising at least four distinct recombination target sites (RTS), adenovirus (Ad) genes including E1A, E1B, or a combination thereof, and a promoter operably linked to the Ad genes, wherein the RTS, the Ad genes, and the promoter are chromosomally integrated; b. transfecting the cells provided in (a) with a vector comprising an exchangeable cassette encoding an adeno-associated virus (AAV) gene, a second Ad gene, an AAV vector cassette, or a combination thereof; c. integrating the exchangeable cassette into a chromosome; d. Selecting rAAV producer cells having the exchangeable cassette integrated into the chromosome; A method comprising:
[64] The method according to
[63] , wherein the transfection (b) is performed using two vectors: a first vector containing an exchangeable cassette containing the second Ad gene and the AAV gene, and a second vector containing an exchangeable cassette containing the AAV vector cassette.
[65] The method of
[63] , wherein the transfection (b) is performed using two vectors: a first vector containing an exchangeable cassette containing the second Ad gene, and a second vector containing an exchangeable cassette containing the AAV gene.
[66] The method of
[63] , wherein the transfection (b) is performed using three vectors: a first vector containing a replaceable cassette containing the second Ad gene, a second vector containing a replaceable cassette containing the AAV gene, and a third vector containing a replaceable cassette containing the AAV vector cassette.
[67] The method according to any one of
[63] to
[66] , wherein each exchangeable cassette further contains two RTSs that match the two RTSs of the cell.
[68] The method according to any one of
[63] to
[67] , wherein the second Ad gene comprises E1A, E1B, E2A, E4, VA, MIR342, or a combination thereof.
[69] The method according to any one of
[63] to
[68] , wherein the AAV gene comprises Rep, Cap, or a combination thereof.
[70] The method according to any one of
[63] to
[69] , wherein the AAV vector cassette comprises a reporter gene, a selection gene, a gene of therapeutic interest, or a combination thereof.
[71] A method for producing a recombinant adeno-associated virus (rAAV), comprising the steps of: (i) infecting a host cell with rAAV; (ii) producing rAAV packaged with an AAV vector cassette; and (iii) purifying the packaged rAAV, wherein the host cell is a. at least four distinct recombination target sites (RTS); b. Adenovirus (Ad) genes including E1A, E1B, or a combination thereof; c. a promoter operably linked to the Ad gene, wherein the RTS, the Ad gene, and the promoter are chromosomally integrated; d. a second Ad gene comprising E1A, E1B, E2A, E4, VA, MIR342, or a combination thereof; e. Adeno-associated virus (AAV) genes including Rep, Cap, or a combination thereof; f. AAV vector cassettes containing a reporter gene, a selection gene, a therapeutic gene, or a combination thereof; A method comprising:
[72] The method of
[71] , wherein live wild-type helper virus is not required for the production and packaging of rAAV.
[73] The method of
[71] or
[72] , wherein expression of E1A is not required for production of rAAV.
[74] At least 1.0 x 10 9 The method according to any one of
[71] to
[73] , wherein active rAAV of 1000 vg / ml is obtained after purification.
Claims
1. (i) at least four distinct recombination target sites (RTSs); (ii) a first adenovirus (Ad) gene comprising E2A, E4, VA, MIR342, or a combination thereof; (iii) a second adenovirus (Ad) gene comprising E1A, E1B, or both; (iv) a promoter operably linked to the first Ad gene; and (v) an adeno-associated virus (AAV) gene comprising Rep and Cap, wherein the AAV genes, at least one pair of the RTSs, the first Ad gene, and the promoter are integrated into a chromosome, the mammalian cell being a Chinese hamster ovary (CHO) cell or an HEK293 cell including an adherent-adapted and a suspension-adapted variant, the mammalian cell having less than 100 helper viruses per cell, and one or both of the AAV genes and the first Ad gene and the promoter being located between two of the RTSs.
2. The cell according to claim 1, which is a CHO cell, a CHO-K1 cell, a CHO-DXB11 cell, a CHO-DG44 cell, a CHOK1 SV™ cell including all variants, or a CHOK1 SV GS-KO™ (glutamine synthetase knockout) cell including all variants.
3. The cell of claim 1 or 2, comprising four RTSs.
4. The cell of claim 1 or 2, comprising six RTSs.
5. The cell of any one of claims 1 to 4, wherein at least one RTS is selected from SEQ ID NOs: 1 to 30.
6. A cell described in any one of claims 1 to 5, wherein at least two of the RTSs, the first Ad gene and the promoter are integrated into a single chromosomal locus.
7. 7. The cell of claim 6, wherein the chromosomal locus is Fer1L4, ROSA26, HGPRT, DHFR, COSMC, LDHa, MGAT1, GRIK1, NL1, NL2, the first intron of MID1 on the X chromosome, or an expression enhancement and stability region.
8. The cell according to any one of claims 1 to 7, further comprising a site-specific recombinase gene.
9. The cell of claim 8 , wherein the site-specific recombinase gene is integrated into a chromosome.
10. A cell described in any one of claims 1 to 9, wherein the second Ad gene is integrated into a chromosome.
11. The cell of claim 1 , wherein the second Ad gene further comprises E2A, E4, VA, MIR342, or a combination thereof.
12. The cell of claim 11 , wherein the second Ad gene is derived from adenovirus type 5.
13. The cell of any one of claims 10 to 12, wherein the second Ad gene is located between the two RTSs.
14. The cell of claim 1 , wherein the AAV gene is derived from adeno-associated virus type 2.
15. The cell of claim 1 , wherein the AAV gene is located between the two RTSs.
16. The cell of claim 15, further comprising an AAV vector cassette, wherein the AAV vector cassette is integrated into a chromosome.
17. The cell of claim 16, wherein the AAV vector cassette comprises a reporter gene, a selection gene, a gene of therapeutic interest, or a combination thereof.
18. 18. The cell of claim 16 or 17, wherein the AAV vector cassette is located between two of the RTSs.
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