Immortalized myoblast cell lines and uses thereof
Immortalized human myoblasts transduced with CDK4 and hTERT vectors, selected for improved survival and secretion, address the limitations of existing methods by providing stable, high-secretion cells for encapsulated therapy in encapsulation technology.
Patent Information
- Application Number
- JP2022509142
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-08-14
- Filing Date
- 2020-08-12
- Publication Date
- 2025-09-03
- Estimated Expiration
- 2040-08-12
AI Technical Summary
Existing methods for immortalizing primary human myoblasts for therapeutic protein secretion in encapsulation technology face challenges such as immunogenicity, scalability, and reliance on antibiotic selection, limiting their clinical applicability and efficacy.
A method involving transduction of human myoblasts with lentiviral vectors encoding CDK4 and hTERT, followed by single-cell cloning and selection for improved survival and protein secretion under hypoxic conditions, results in immortalized myoblasts that maintain myogenic potential and high therapeutic protein levels.
The developed immortalized myoblasts exhibit long-term survival, stability, and high protein secretion rates, enabling effective encapsulation therapy for conditions like cancer, inflammatory disorders, and neurodegenerative diseases without immune rejection.
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Abstract
Description
[Technical Field]
[0001] The present invention relates generally to the field of encapsulation, and in particular to the development of immortalized cell lines and methods for their production for use as encapsulated cellular implants for the release of therapeutic proteins or adjuvants. [Background technology]
[0002] Background of the Invention Cell encapsulation technology allows for the long-term and / or localized administration of macromolecules in a variety of areas. This technology is based on implanting one or several biocompatible capsules containing cells genetically modified to produce a therapeutic protein of interest into a subject. This type of capsule generally consists of a semipermeable membrane that provides mechanical protection and isolates the modified cells, thus preventing contact between the transplanted cells and the host's immune cells, thereby prolonging the survival of the encapsulated cells. In addition, the semipermeable membrane allows the influx of nutrients and oxygen to the transplanted cells and the outflow of the protein of interest to the host, thus enabling continuous, long-term production.
[0003] Ex vivo gene therapy using retractable encapsulated cellular implants has been developed as an effective strategy for local and / or long-term delivery of therapeutic proteins. In particular, modulating the activity of a patient's immune system is considered an innovative approach to treating various disorders. Specifically, therapeutic schemes using genetically engineered encapsulated cells have been developed, such as the long-term administration of monoclonal antibodies for passive immunization against neurodegenerative diseases and the local delivery of cytokines as adjuvants for anti-cancer vaccines (Lathuiliere et al., 2015, Int. J. Mol. Sci., 16, 10578-10600).
[0004] Recently, a technique for anticancer immunization using encapsulated granulocyte-macrophage colony-stimulating factor (GM-CSF)-secreting cells has been developed. These cells secrete GM-CSF, a gene-modified allogeneic cell line (MVX-1 cells) that allows for the standardized release of GM-CSF, a substance with immunoprotective and enhancing activities useful for tumor regression. Patient immunization is performed in healthy skin, distant from the tumor deposit, by combining two capsules containing irradiated autologous tumor cells and MVX-1 cells that produce more than 20 ng / 24 h of human GM-CSF. This allows for the production of GM-CSF at the injection site and exposes the immune system to tumor-associated antigens (TAA) expressed by the autologous tumor cells. As shown in Mach et al., 2015, Annals of Oncology, 26(Suppl 8): 1-4. 10.1093 / annonc / mdv513, local expression of GM-CSF recruits and activates antigen-presenting cells (APCs), which induce both antibody-dependent cell-mediated cytotoxicity (ADCC) and cytotoxic T lymphocyte responses at the injection site and throughout the body (WO2017 / 064571).
[0005] Considering the treatment of facioscapulohumeral muscular dystrophy, if a primary human myoblast cell line is immortalized by retroviral transduction of CD4 and hTERT according to Stadler et al., 2011, Skeleton Muscle, 1:12, 94 (WO2019 / 152820), the resulting immortalized cells are selected using antibiotics, which is a major disadvantage for their use as a potentially immunogenic source in therapy.
[0006] Other attempts to immortalize primary human myoblasts by overexpression of hTERT, CDK4R24C mutants, and cyclin d1 have not resulted in myoblasts with myogenic potential or have not been scalable for clinical use (Min-wen Jason et al., 2019, Cell proliferation, 52(3)). [Prior art documents] [Patent documents]
[0007] [Patent Document 1] WO2017 / 064571 [Patent Document 2] WO2019 / 152820 [Patent Document 3] WO2014 / 173441 [Patent Document 4] WO200 / 1014424 [Patent Document 5] EP1960428 [Patent Document 6] US2010 / 0172917 [Non-patent literature]
[0008] [Non-Patent Document 1] Lathuiliere et al., 2015, Int.J.Mol.Sci., 16, 10578~10600 [Non-patent document 2] Mach et al., 2015, Annals of Oncology, 26(Suppl. 8): 1-4. 10.1093 / annonc / mdv513 [Non-patent document 3] Stadler et al., 2011, Skeleton Muscle, 1:12, 94 [Non-patent document 4] Min-wen Jason et al., 2019, Cell proliferation, 52(3) [Non-Patent Document 5] Giry-Laterriere, 2011, Methods Mol Biol., 737:183~209 [Non-patent document 6] Reiser et al., 2000, J Virol.2000, 74(22):10589~10599 [Non-Patent Document 7] Amendola et al., 2005, Nat Biotech, 23, 108-116 [Non-patent document 8] Salmon, 2013, Methods Mol Biol, 945, 417~448
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[0009] To optimize the application of encapsulation technology to humans, it is absolutely essential to generate implantable, safe, and viable human cell lines as a platform for in vivo secretion of recombinant proteins of interest. Therefore, there is a need to develop newly developed, competent cell lines that are particularly suitable for encapsulation technology in terms of safety and long-lasting efficacy. [Means for solving the problem]
[0010] The present invention is based on the unexpected discovery of a method for preparing and selecting immortalized human myoblasts that allows for obtaining immortalized human myoblasts with exceptional survival properties in cell encapsulation devices, in particular, immortalized human myoblasts that can differentiate under harsh metabolic conditions while maintaining high secretion levels of recombinant proteins.
[0011] In particular, the method for immortalizing human myoblasts according to the present invention comprises the steps of transducing human myoblasts isolated from donor-derived (e.g., healthy or autologous) muscle tissue with at least one lentiviral vector encoding a CDK4 protein (e.g., pCLX-type, pRRLSIN, or other suitable lentiviral vectors such as those described in Giry-Laterriere, 2011, Methods Mol Biol., 737:183-209) and at least one lentiviral vector encoding an hTERT protein (e.g., pCLX-type, pRRLSIN, or other suitable lentiviral vectors such as those described in Giry-Laterriere, 2011, supra), and selecting at least one individual immortalized clone for its improved in vitro growth and stability characteristics when encapsulated compared to the parental cell line, e.g., improved survival, using single-cell cloning techniques (without the use of selection antibiotics). In particular, selected immortalized human myoblast cell lines obtained by the methods of the present invention, such as the cell line deposited under number CCOS 1902, advantageously exhibit long-term survival and proliferation capacity in biocompatible capsules, as well as long-term retention of myoblast characteristics, such as high levels of MHC.
[0012] Furthermore, another aspect of the present invention is based on the unexpected discovery that the immortalized human myoblast cell line of the present invention can be easily genetically engineered to express a protein of interest, particularly useful in the field of encapsulation therapy technology. This provides a method for preparing genetically modified immortalized human myoblasts, comprising the step of transducing the immortalized human myoblasts of the present invention with at least one lentiviral vector (e.g., pCLX or pRRLSIN type) encoding the protein of interest under the control of a promoter that is hyperactivated under hypoxic conditions, particularly the PGK (phosphoglycerate kinase) promoter, particularly the human PGK promoter. Under the control of this promoter, protein secretion from the genetically modified immortalized human myoblasts of the present invention advantageously increases 2- to 3-fold under hypoxic conditions, making these cells even more attractive for use in cell encapsulation technology, in which the cells are exposed to hypoxic conditions. In particular, the GM-CSF-secreting genetically modified human immortalized myoblast cell lines obtained by the methods of the present invention, such as the cell line deposited under number CCOS 1901, advantageously exhibit long-term survival and proliferation capacity in implantable devices and long-term retention of myoblast characteristics, along with high levels of GM-CSF secretion, which are highly useful in cancer cell therapy.
[0013] It is an object of the present invention to provide immortalized human cell lines useful in cell encapsulation techniques.
[0014] It would be useful to provide immortalized human cell lines that are not tumorigenic and exhibit long-term survival in hypoxic conditions.
[0015] It would be useful to provide immortalized human cell lines for autogenic transplantation that could be used without being restricted to immune-privileged sites.
[0016] It would be useful to provide immortalized human cell lines with optimized properties without relying on antibiotic cell line selection.
[0017] It would be useful to provide immortalized human cell lines that can be genetically engineered to secrete high levels of proteins of interest.
[0018] It would be useful to provide genetically engineered immortalized human cells that can maintain high levels of expression of a gene for a protein of interest over time without silencing.
[0019] It would be useful to provide genetically engineered immortalized human cells that are capable of sustaining high levels of secretion of a protein of interest within an encapsulation device.
[0020] It would be useful to provide genetically engineered immortalized human cells that can be frozen and thawed after being loaded into an encapsulation device and still maintain high levels of secretion of a protein of interest.
[0021] The object of the present invention has been achieved by providing an immortalized human myoblast cell line as claimed in claims 3 and 5, a method for obtaining an immortalized human myoblast cell line as claimed in claim 1, and uses thereof.
[0022] The object of the present invention has also been achieved by providing genetically engineered immortalized human myoblasts according to claims 9 and 10, a method for obtaining genetically engineered immortalized human myoblasts according to claim 7, and their uses.
[0023] According to a first aspect of the present invention, there is disclosed herein a method for establishing an immortalized human myoblast cell line, said method comprising: a) providing at least one primary human myoblast cell expressing the surface marker CD56, and optionally at least one further surface marker selected from CD82 and CD146; b) transducing said at least one primary human myoblast cell with a lentiviral vector encoding the cyclin-dependent kinase 4 (CDK4) gene and a lentiviral vector encoding the human telomerase (hTERT) catalytic subunit gene to achieve immortalization of said primary human myoblast cell; c) from the at least one immortalized human myoblast primary cell obtained in step b), growing cells in a myoblast cell growth medium and isolating each of the obtained cells exhibiting at least one myoblast phenotype marker from the growth medium into a separate culture medium; d) separately growing each isolated cell obtained in step c) in an individual culture and growth medium; e) selecting, from all the individual culture and growth media of step d), by single cell cloning, at least one cell line that has improved stability or expression characteristics from the parent cell; f) controlling the myogenic potential of at least one selected cell line; g) selecting individual clones based on their ability to survive in the encapsulation device; h) optionally, sequentially repeating steps d) through g) to further improve the selected lines. Includes:
[0024] According to another aspect of the present invention, there is provided an immortalized human myoblast cell line derived from a primary human myoblast cell, or a composition comprising a human immortalized myoblast cell, or a progeny thereof, wherein the cells express CDK4 and hTERT and retain myoblast characteristics, and the cells do not express antibiotic resistance genes.
[0025] According to another aspect of the present invention, there is provided an immortalized human myoblast cell line deposited at CCOS under accession number 1902 (deposited on June 20, 2019), or a composition or progeny thereof.
[0026] According to another aspect of the present invention, there is provided an immortalized human myoblast cell line derived from a primary human myoblast cell, or a composition comprising a human immortalized myoblast, or a progeny thereof, obtainable by the method according to the present invention.
[0027] According to another aspect of the present invention, there is provided a method for preparing genetically engineered immortalized human myoblasts that express a therapeutic protein under hypoxic conditions.
[0028] According to another aspect of the present invention there is provided a genetically engineered immortalized human myoblast cell line according to the present invention or a composition or progeny thereof.
[0029] According to another aspect of the present invention, there is provided a genetically engineered, immortalized human myoblast cell line that secretes GM-CSF, deposited at CCOS under accession number 1901 (deposited June 20, 2019), or a composition or progeny thereof.
[0030] According to another aspect of the present invention there is provided a genetically engineered immortalized human myoblast cell line or a composition or progeny thereof obtainable from the method according to the present invention.
[0031] According to another aspect of the present invention, there is provided the genetically engineered immortalized human myoblasts of the present invention for use in encapsulated cell therapy.
[0032] According to another aspect of the present invention, there is provided a pharmaceutical composition comprising at least one genetically engineered human immortalized myoblast according to the present invention and a pharmaceutically acceptable carrier, diluent, or excipient thereof.
[0033] In another aspect, the present invention provides the genetically engineered immortalized human myoblast of the invention for use in the prevention and / or treatment of a disorder or disease, in particular cancer, an inflammatory disorder, an infectious disease, particularly a viral infection, or a neurodegenerative disorder.
[0034] According to another aspect, the present invention provides the use of the genetically engineered immortalized human myoblasts of the present invention for preparing a pharmaceutical composition or an implantable encapsulated cell device for the prevention and / or treatment of a disorder or disease, in particular cancer, an inflammatory disorder, an infectious disease, particularly a viral infection, or a neurodegenerative disorder.
[0035] According to another aspect, the present invention provides a biocompatible implantable device or kit comprising at least one human immortalized myoblast according to the present invention in a cell culture medium.
[0036] According to another aspect, the present invention provides a method for preventing or treating an associated disorder or disease, particularly cancer, an inflammatory disorder, an infectious disease, particularly a viral infection, or a neurodegenerative disorder, in a subject in need thereof, comprising administering a therapeutically effective amount of genetically engineered human immortalized myoblasts of the present invention. [Brief explanation of the drawings]
[0037] [Figure 1] 1 is a graph showing the proliferative potential, expressed as cell population doublings (N) over months (M), after transduction of immortalized human myoblasts of the invention (I) compared to primary myoblast cells (P), i.e., before step d) of the method of the invention, as measured by cell counting at each passage as described in Example 1. [Figure 2] 1 is a graph depicting the proliferative potential of nine selected clones as described in Example 1, expressed as cell population doublings (N) versus weeks (W) after clonal selection from an immortalized human myoblast population (I). [Figure 3]Graph (A) shows the preserved myogenic characteristics of clones obtained by the method of the present invention after immortalization and sorting (after step d)) compared to the immortalized population as measured by the maintenance of their ability to express myogenic markers over time, as quantified by flow cytometry, as described in Example 1, compared to the immortalized cell population before sorting (I), and graph (B) shows their preserved ability to fuse and differentiate into myotubes, as quantified by immunohistochemistry, compared to primary cells (P3) and immortalized cell populations after 10 and 24 passages (P10) and (P24), respectively. [Figure 4] 1 shows the GM-CSF secretion rate achieved by genetically modified human immortalized myoblasts of the present invention (clone 2) as measured by ELISA immediately after transduction (A), versus weeks after transduction (W) for clone 2 (B), and over different weeks after transduction for various clones after selection step (iv) of the method (C), as described in Example 3. [Figure 5] 1 is a graph showing the proliferative potential of 10 selected clones, expressed as population doublings (N) versus weeks (W) after clonal selection from a population of genetically modified immortalized human myoblasts as described in Example 3. [Figure 6] Graphs showing the preserved myogenic characteristics of clones obtained by the method of the invention after sorting (after step iv)) as measured by the maintenance over time of their ability to express myogenic markers, quantified by flow cytometry (A), and their preserved ability to fuse and differentiate into myotubes, quantified by immunohistochemistry (B), compared to the parental population (MOI=10 and 100), as described in Example 2. [Figure 7] FIG. 1 is a graph showing the GM-CSF secretion rates, as measured by ELISA, achieved by various encapsulated selected clones compared to control encapsulated cells (MVX-1) over different weeks after in vivo implantation, as described in Example 3. [Figure 8]Graphs showing the stability over time of in vitro proliferation rate as unencapsulated cells, expressed as cell population doublings (N) versus weeks (W) after the clones were sorted from a genetically modified, immortalized human myoblast population (A), the in vitro secretion rate as unencapsulated cells versus weeks (W) after sorting (B), the in vitro secretion rate as encapsulated cells versus weeks (W) after encapsulation (C), and the in vivo secretion rate in mice as encapsulated cells compared to control encapsulated cells (MVX-1), as measured by quantification of GM-CSF in serum (D) and tissue surrounding the capsule (E) compared to before implantation. [Figure 9] 9A-9E are diagrams depicting an implantable encapsulation device used in experiments with encapsulated cells of the present invention, where a is a schematic diagram of an implantable capsule according to one embodiment of the present invention; b is a cross-sectional view taken along line II-II in FIG. 9A; c is a cross-sectional view similar to FIG. 9B, with the internal matrix of the capsule removed; d is a detailed view of circle IV in FIG. 9C, of the cell-containing portion 2 of an implantable encapsulation device housing immortalized myoblasts 24 according to the present invention; and e is a detailed view of circle V in FIG. 9B. [Figure 10] Graphs showing the GM-CSF secretion rate, as measured by ELISA, achieved by frozen encapsulated genetically modified human immortalized myoblasts (M) formulated in 5% (A) and 10% (B and C) glycerol as freezing medium, as described in Example 3, versus time after thawing (hours), at different incubation times with freezing medium, and compared to control encapsulated cells (MVX-1). [Figure 11]Graphs demonstrating the ability of immortalized myoblast cells obtained from clone 2 in Example 1 to produce biologically active monoclonal antibodies transduced with lentiviral vectors encoding the heavy and light chains of rituximab, as described in Example 4. A: IgG secreted by genetically modified cells of the present invention and commercially available rituximab behave identically when incubated with fluorescently tagged anti-CD20 antibody. B and C: Myoblast-produced IgG was effective in degranulation assays that tested the induction of a cytotoxic response (overexpression of IFN-γ (B) or CD107a (C)) after exposure of B cell lines to either rituximab or myoblast-produced anti-CD20. [Figure 12] 9 is a graph comparing the release of huGM-CSF from two different capsules and two types of cells, as described in Example 5. A: In vitro GM-CSF release in capsule supernatant for group A: capsules according to one embodiment of the present invention (shown in FIG. 9) containing genetically modified human immortalized myoblasts secreting the same therapeutic protein, GM-CSF; group B: control cell line, K562 human erythroleukemia cells expressing human GM-CSF, loaded into the same capsules according to one embodiment of the present invention (shown in FIG. 9); and group C: conventional capsules containing the same control cell line, K562 human erythroleukemia cells expressing human GM-CSF; B: GM-CSF release from explanted capsules that had been implanted subcutaneously in mice for one week (same group as in A); C: GM-CSF levels in the serum of mice in which capsules had been implanted for one week (same group as in A); D: amount of GM-CSF detected in the subcutaneous tissue surrounding the implanted capsules after one week (same group as in A). [Figure 13] 1 is a graph depicting the biological activity of monoclonal antibodies produced by myoblast-immortalized cells according to the present invention (myoblasts transduced to express monoclonal human IgG:C2 directed against human CTLA4) compared to ipilimumab (Yervoy™, Bristol-Myers Squibb) biosimilar (C1) as a positive control in a CTLA-4 blocking reporter gene assay as described in Example 3. [Figure 14] 10 is an image showing immunohistochemistry on Alzheimer's disease brain sections using anti-amyloid beta monoclonal antibodies produced by immortalized myoblasts, as described in Example 4. [Figure 15] FIG. 1 depicts a dot blot detecting COVID-19 spike protein in pure or diluted (1:5, 1:25) culture supernatants of transduced immortalized myoblasts using two different primary antibodies, AQ806 and AI334, as described in Example 6. DETAILED DESCRIPTION OF THE INVENTION
[0038] As used herein, "treatment" and "treating" and the like generally refer to obtaining a desired pharmacological and physiological effect. The effect may be prophylactic, in that a disease, its symptoms, or condition is prevented or partially prevented, and / or may be therapeutic, in that a disease, condition, symptom, or adverse effect resulting from the disease is partially or completely cured. The term "treatment," as used herein, covers any treatment of disease in a mammal, particularly a human, and includes (a) preventing the disease from occurring in a subject who may be predisposed to the disease but has not yet been diagnosed as having the disease, e.g., asymptomatic early prophylactic intervention; and (b) inhibiting the disease, i.e., arresting its progression, or relieving the disease, i.e., reversing the disease and / or its symptoms or condition, e.g., ameliorating or repairing damage. In particular, the methods, uses, formulations, and compositions according to the present invention are useful for encapsulated cell therapy.
[0039] As used herein, the term "subject" refers to a mammal. For example, mammals contemplated by the present invention include humans, primates, domesticated animals such as cattle, sheep, pigs, horses, laboratory rodents, other companion animals, etc.
[0040] As used herein, the term "effective amount" refers to an amount of at least one compound of the present invention or a pharmaceutical formulation thereof according to the present invention that elicits a desired biological or medicinal response in a tissue, system, animal, or human. In one embodiment, the effective amount is a "therapeutically effective amount" for alleviating the symptoms of the disease or condition being treated. In another embodiment, the effective amount is a "prophylactically effective amount" for preventing the symptoms of the disease or condition being prevented. The term also encompasses an amount of a compound of the present invention (i.e., an "effective amount") sufficient to alleviate disease progression, particularly to alleviate or inhibit the progression of a disorder, thereby eliciting a desired response.
[0041] The term "efficacy" of a treatment according to the invention can be measured based on changes in the course of the disease in response to a use or method according to the invention. For example, efficacy of cancer treatment may be measured by a reduction in tumor size, or an increase in overall survival (OS) or progression-free survival (PFS), or the achievement of disease stabilization (SD), or a decrease in serum tumor markers such as prostate-specific antigen (PSA), cancer antigen 125 (CA125), carcinoembryonic antigen (CEA), or a decrease in metabolic activity, genetic abnormalities such as circulating tumor deoxyribonucleic acid (ctDNA), etc.
[0042] The term "myogenic potential" refers to the ability of cells to form myotubes, which can be tested by standard techniques such as those described herein, or by flow cytometry, Western blotting.
[0043] The term "human myoblast phenotypic marker" refers to phenotypic traits for human myoblasts, such as CD56+, CD146+, CD82+, which can be assessed by fluorescence-activated cell sorting (FACS) or by immunohistochemistry or Western blot. According to a particular embodiment, the at least one myoblast phenotypic marker is selected from CD56+, CD146+, and CD82+.
[0044] The term "cell growth medium" refers to a medium suitable for growing myoblasts, such as a culture medium supplemented with at least one growth factor, such as epidermal growth factor, creatine, uridine, dexamethasone, fetal bovine serum, fetuin, bovine serum albumin, insulin, pyruvate, etc. According to a particular embodiment, growth medium may also refer to a cell growth medium as defined above.
[0045] The term "pharmaceutical formulation" refers to a preparation that is in a form that clearly allows the biological activity of the active ingredient to be effective and that does not contain unnecessary ingredients that would be toxic to the subject to whom the formulation is to be administered.
[0046] Method for preparing immortalized human myoblasts according to the present invention According to one aspect, the present invention provides a method for establishing an immortalized human myoblast cell line, comprising: a) providing at least one primary human myoblast cell expressing the surface marker CD56, and optionally at least one further surface marker selected from CD82 and CD146; b) transducing said at least one primary human myoblast cell with a lentiviral vector encoding the cyclin-dependent kinase 4 (CDK4) gene and a lentiviral vector encoding the human telomerase (hTERT) catalytic subunit gene to achieve immortalization of said primary human myoblast cell; c) from the at least one immortalized human myoblast primary cell obtained in step b), growing cells in a myoblast cell growth medium and isolating each of the obtained cells exhibiting at least one myoblast phenotype marker from the growth medium into a separate culture medium; d) separately growing each isolated cell obtained in step c) in an individual culture and growth medium; e) selecting, from all the individual culture and growth media of step d), by single cell cloning, at least one cell line that has improved stability or expression characteristics from the parent cell; f) controlling the myogenic potential of at least one selected cell line; g) selecting individual clones based on their ability to survive in the encapsulation device; h) Optionally, steps d) to g) are sequentially repeated to further improve the selected line. The present invention provides a method comprising:
[0047] According to a particular embodiment, step a) of the method of the invention can be performed using two separate lentiviral vectors or one single bicistronic vector, such as those described in Reiser et al., 2000, J Virol. 2000, 74(22):10589-10599; Amendola et al., 2005, Nat Biotech, 23, 108-116.
[0048] According to one particular embodiment, the lentiviral vector used in step b) is a pCLX type vector, such as that described in Salmon, 2013, Methods Mol Biol, 945, 417-448.
[0049] According to one particular embodiment, said at least one primary human myoblast cell ready for transduction in step b) can be isolated from human muscle tissue by standard methods, such as enzymatic digestion, as described in Laumonier et al., 2017, J Vis Exp., 26(125).
[0050] According to a further particular embodiment, the proliferation of the cells in step c) is carried out until the death of the non-immortalized cells.
[0051] According to a further particular embodiment, the propagation of the cells in step c) is carried out for at least 1.5 months, ie the period necessary to allow the non-immortalized cells to die.
[0052] According to one particular embodiment, the selection of primary human myoblast cells expressing the surface marker CD56, and optionally the further surface markers CD82 and / or CD146, can be achieved by flow cytometry.
[0053] According to a particular embodiment, the myoblasts selected in step c) of the method of the invention exhibit the myoblast phenotypic markers CD56+, CD146+, and CD82+. That the method of the invention allows the selection of this triple positive cell subpopulation is even more particularly unexpected, since it has been found that not all CD56-positive cells are CD82-positive cells. According to a further particular embodiment, the method according to the invention advantageously comprises a selection / enrichment step based on the surface markers described herein.
[0054] According to one particular embodiment, step d) is carried out until the cells show stable proliferation and viability when maintained in culture for 4 weeks.
[0055] According to another aspect of the present invention, there is provided a method for preparing genetically engineered immortalized human myoblasts that express a therapeutic protein under hypoxic conditions, comprising the steps of: i) providing at least one immortalized human primary myoblast cell; ii) transducing said at least one immortalized human primary myoblast cell with a lentiviral vector for expressing a target protein under the control of a phosphoglycerate kinase (PGK) promoter (e.g., human PGK); iii) separately growing each isolated cell obtained in step ii) in an individual culture and growth medium; iv) selecting at least one cell line from all the individual culture and growth media of step iii) that secretes the highest level of the target protein, for example by ELISA or Western blotting; v) controlling the myogenic potential of at least one selected cell line A method is provided which includes:
[0056] According to one particular embodiment, the at least one cell line selected in step iv) is a cell line that exhibits a target protein secretion level of at least 1 pg / cell / day.
[0057] According to one particular embodiment, the target protein is a human glycoprotein.
[0058] According to one particular embodiment, the target protein is human GM-CSF.
[0059] According to one particular embodiment, the target protein is a human monoclonal antibody.
[0060] According to one particular embodiment, the target protein is selected from rituximab, ipilimumab, and gantenerumab.
[0061] According to one particular embodiment, the target protein is an antigen.
[0062] According to one particular embodiment, the target protein is a viral antigen.
[0063] In one particular embodiment, the target protein is the COVID-19 spike protein or an antigenic fragment thereof.
[0064] According to one particular embodiment, the method according to the invention uses, in the proliferation step, at least one growth factor selected from fetuin, epidermal growth factor or insulin.
[0065] According to one particular aspect, the method according to the invention makes it possible to grow cells without the need to coat the culture plates.
[0066] According to another aspect, the present invention provides a method of immunotherapeutic treatment of a subject, comprising administering to said subject in need thereof at least one genetically engineered human immortalized myoblast according to the present invention.
[0067] According to another aspect, the present invention provides a method of treating cancer in a subject, the method comprising administering to the subject at least one genetically engineered human immortalized myoblast cell according to the present invention.
[0068] According to another aspect, the present invention provides a method of vaccination against viral infection in a subject, the method comprising administering to a subject in need thereof a therapeutically effective amount of genetically engineered human immortalized myoblast cells of the present invention, wherein the cells express a viral antigen.
[0069] Cells according to the present invention According to one particular aspect of the present invention, there is provided an immortalized human myoblast cell line derived from primary human myoblast cells, or a composition comprising human immortalized myoblasts, or progeny thereof, which express CDK4 and hTERT in the absence of expression of antibiotic resistance genes and retain myoblast characteristics, such as the ability to differentiate into myotubes.
[0070] According to another aspect of the present invention, the immortalized human myoblast cell line according to the present invention exhibits a proliferation rate corresponding to a doubling time of about 24 to about 72 hours for at least 6 months.
[0071] According to another aspect of the present invention, the immortalized human myoblast cell line according to the present invention exhibits a survival time of at least about 48 hours under hypoxic conditions in standard myoblast culture medium.
[0072] According to one particular embodiment of the present invention, the immortalized human myoblasts according to the present invention can continue to grow stably in myoblast culture medium for up to at least six months.
[0073] The immortalized human myoblasts of the present invention have demonstrated long-term survival in encapsulation devices while maintaining high levels of secretion of proteins of interest, thus providing a unique and highly advantageous platform for further development of new cell lines genetically engineered to secrete proteins of interest in a variety of applications.
[0074] For example, genetically engineered immortalized human myoblasts can typically secrete proteins at rates of about 1 to about 15 pg / cell / day under standard myoblast culture conditions.
[0075] According to another aspect of the present invention, there is provided a genetically engineered immortalized human myoblast cell line, or a composition comprising genetically engineered immortalized human myoblast cells, or progeny thereof, which express CDK4, hTERT, express at least one therapeutic protein or antigen, retain myoblast characteristics, and are capable of secreting said therapeutic protein or antigen.
[0076] For example, genetically engineered immortalized human myoblasts according to the present invention can express and secrete GM-CSF. In one particular embodiment, genetically engineered immortalized human myoblasts according to the present invention can typically secrete GM-CSF at a rate of about 1 to about 5 pg / cell / day for about 6 months under standard myoblast culture conditions.
[0077] According to another aspect of the present invention, there are provided genetically engineered immortalized human myoblast cell lines that express human, humanized, or chimeric monoclonal antibodies (e.g., the anti-CD20 monoclonal antibodies rituximab, ipilimumab, and gantenerumab), or recombinant proteins (e.g., mouse or human hormones or growth factors), or antigens (e.g., viral antigens such as COVID-19 spike protein antigens).
[0078] Compositions according to the present invention The present invention provides cells and pharmaceutical compositions thereof, as well as methods for treating subjects, preferably mammalian subjects, most preferably human patients, suffering from a medical disorder.
[0079] In another embodiment, the present invention provides a pharmaceutical composition comprising at least one cell of the present invention and a pharmaceutically acceptable carrier, diluent, or excipient thereof.
[0080] The immortalized cells of the invention or preparations thereof can be administered in accordance with the invention as a pharmaceutical formulation, which may contain one or more agents, in any of the forms described herein. For use as encapsulated cells, the cells can be prepared as various types of suspensions or other fluid formulations in cell growth medium, preferably animal-derived component-free medium.
[0081] In one embodiment, the cells may be suspended in a suitable fluid medium, such as a growth or differentiation medium. The fluid medium may include a physiologically acceptable aqueous solution for the growth or maintenance of living cells. For example, the fluid medium may include glucose, salts, minerals, buffers, amino acids, hormones, and growth factors required by the cells for in vitro and / or in vivo use. Suitable fluid media for encapsulated cells include, for example, PBS, HBSS, MyoCult, or a cell growth medium described herein.
[0082] In one embodiment, cells are encapsulated in a hydrogel, such as polyethylene glycol (PEG), alginate, or chitosan hydrogel. PEG-based encapsulation is described in more detail in Lathuillere et al., 2014, Biomaterials 35 780-790. Cells may be grown on a support matrix, such as polyvinyl alcohol (PVA), PEG, polyethylene, or polyester, as described in Li, 2000, Tissue Eng., 6(2):151-63; Li, 1999, Tissue Eng., 5(5):453-66; Uludag, 2000, Adv Drug Deliv Rev., 42(1-2):29-64.
[0083] In one embodiment, cells encapsulated in a device that requires cryopreservation may be prepared in a formulation containing a cryoprotectant, such as described in Elliott et al., 2017, Cryobiology; 76:74-91.
[0084] Implantable device or kit containing the cells of the present invention The immortalized myoblasts of the present invention can be used for ECT and thus encapsulated in cellular implants, such as flat plates as described in Lathuillere et al., 2014, supra, or WO2014 / 173441, or hollow fibers as described in Lathuillere et al., 2015, supra, depending on the protein secreted and the implantation site of the device. Alternative devices, such as those described in Orive et al., 2019, Prog Retin Eye Res, 68:67-82, may also be used.
[0085] According to one particular embodiment, an implantable device is provided containing an effective amount of the immortalized human myoblasts of the present invention.
[0086] In another particular aspect, a kit for cell-based therapy in a mammal is provided, comprising an effective amount of the immortalized human myoblasts of the present invention for preparing a cell-encapsulated implant and instructions for use thereof.
[0087] According to another particular aspect, a kit for cell-based therapy in a mammal is provided, comprising an implantable device containing an effective amount of said immortalized human myoblasts and instructions for use thereof.
[0088] According to further embodiments, the kits of the invention may further comprise antigenic material (eg, one or more antigens) useful for anti-cancer or anti-infection vaccination.
[0089] According to one particular embodiment, the cell chamber of the implantable device contains up to 1.0 x 10 cells, depending on the application and the protein to be secreted. 4 pieces~8×l0 5 Between 1.0 x 10 immortalized human myoblasts according to the present invention (e.g., 1.0 x 10 4 , 5.0×10 4 , 1.0×10 5 , 3.0×10 5 , 5.0×10 5 , or 8 x 10 5 Pieces or 106 Those skilled in the art will recognize that the exact number of cells in each chamber may vary depending on the growth rate of the encapsulated cells / cell line and / or the volume of the individual chambers used in the construction of the device.
[0090] According to one particular embodiment, immortalized human myoblasts secreting GM-CSF can be conditioned as described in WO2017 / 064571 in an implantable capsule for use in personalized anti-tumor cell immunotherapy.
[0091] In one particular embodiment, an implantable device containing at least one immortalized human myoblast according to the present invention can be cryopreserved, and the cryopreserved device can be shipped under vapor-phase liquid nitrogen (e.g., -190°C) conditions and / or dry ice (e.g., -70°C) conditions using any method known in the art.
[0092] Cryopreserved devices can be thawed prior to implantation using any method known in the art, typically in a 37° C. water bath or dry bath.
[0093] According to a particular embodiment, the viability and / or functionality of the cells before encapsulation and / or after thawing and before implantation can be assessed to confirm their suitability for use in, for example, transplantation. This can be achieved using a variety of methods known in the art. For example, the cells can be stained using vital stains, such as trypan blue, ethidium bromide, acridine orange, The Live / Dead Assay Kit (Molecular Probes, Thermo Fisher Scientific, Waltham, MA), etc. In preferred embodiments, a population of cells suitable for transplantation has a viability of at least about 50%, at least about 75%, at least about 95%, or at least about 99%. In other embodiments, morphometric characteristics of the cells can be determined as a measure of the suitability of the cells for use in transplantation.
[0094] Administration method The cells and formulations thereof according to the present invention can be administered by implantation of a biocompatible implantable device containing an effective amount of the immortalized human myoblasts of the present invention, which allows for the slow release of proteins secreted by the living cells within the implant.
[0095] In another aspect, the cells and preparations thereof according to the present invention can be administered in microcapsules or microspheres, as described in Acarregui et al., 2013 Biomacromolecules, 14(2), 322-330, or in hydrophobic or hydrophilic, biodegradable or mineral matrices.
[0096] In another aspect, the cells and formulations thereof according to the present invention may be injected directly as a cell suspension.
[0097] According to one particular embodiment, an implantable device suitable for the cells of the present invention can be as follows.
[0098] Disclosed herein is an implantable capsule including a cell storage portion including a porous membrane surrounding a cell storage chamber for storing therein immortalized cells in a liquid medium for secreting a therapeutic agent, the implantable capsule further comprising a cell support matrix inserted into the cell storage chamber configured to align the immortalized cells within the cell storage chamber.
[0099] In one embodiment, the cell support matrix comprises at least one yarn.
[0100] In one advantageous embodiment, said at least one yarn consists of or comprises a polyester material.
[0101] In one advantageous embodiment, the cell support matrix comprises a plurality of said yarns.
[0102] In an advantageous embodiment, the plurality of yarns is in the range of 5 to 20 yarns, preferably in the range of 5 to 15 yarns, for example around 10 yarns.
[0103] In one advantageous embodiment, the yarn extends within the cell containment chamber for substantially the entire length of the chamber or at least 80 percent of the length of the cell containment chamber.
[0104] In one advantageous embodiment, the cell containing chamber comprises polyester yarn.
[0105] In one advantageous embodiment, the cell storage portion further includes a membrane support mounted within the cell storage chamber configured to provide structural support for the porous membrane, the membrane support consisting of or including a coil made of a biocompatible material, for example, a stainless steel coil.
[0106] In one advantageous embodiment, the capsule further comprises an extractor portion coupled to the extractor end of the cell containing portion configured to allow the implantable capsule to be extracted from the implantation site by a surgical tool, the extractor portion comprising a withdrawal string.
[0107] In one advantageous embodiment, the withdrawal string is made of polypropylene string.
[0108] In one advantageous embodiment, the extractor portion comprises an anchor tube (8) having a cavity into which the anchor portion (15) of the withdrawal line (9) is inserted and bonded.
[0109] In one advantageous embodiment, the anchor tube consists of or comprises a polyurethane material.
[0110] In one advantageous embodiment, the extractor portion is connected to the cell storage portion by a connection portion including a connector, the connector including a portion inserted into the extractor end of the porous membrane and a second portion inserted into the connection end of the anchor tube.
[0111] In one advantageous embodiment, the connector is bonded to the anchor tube and the cell containing portion by means of an adhesive, in particular a light curing adhesive, for example of the light curing urethane methacrylate type.
[0112] In one advantageous embodiment, the capsule has an outer diameter in the range 0.5 to 3 mm, preferably in the range 0.8 to 1.5 mm, and a length in the range 5 to 25 mm, preferably in the range 8 to 20 mm.
[0113] In one advantageous embodiment, the ratio of the length to the diameter of the capsule is in the range 5-20.
[0114] 9, an implantable capsule 1 according to one embodiment of the invention comprises a cell-containing portion 2 and an extractor portion 3 connected to each other by a connector 4. The cell-containing portion 2 has a substantially cylindrical outer shape with a diameter that may typically be in the range of 0.5 to 3 mm and a length that may typically be in the range of 5 to 20 mm, for example around 10 mm. The ratio L / D of the length L to the diameter D is preferably in the range of 5 to 20, preferably in the range of 5 to 15. The capsule can be implanted in the patient's tissue by means of an implantation tool that is per se well known in the field of implants and does not need to be described further here.
[0115] The cell-containing portion 2 includes a porous membrane 5 configured to allow therapeutic agents produced by the encapsulated cells 24 to pass through the membrane into the surrounding tissue and to allow body fluids, electrolytes, and nutrients for the cells 24 to pass from the surrounding tissue through the membrane and into the capsule. Thus, the porosity and type of membrane can depend on the particular application and type of cells contained within the capsule. In one example, the membrane is in the form of a polyethersulfone (PES) membrane having a porosity of around 0.65 μm, for example, configured to allow passage of target molecules through the membrane. An example of a membrane that can be used in the present invention is described in detail below.
[0116] An exemplary embodiment of the membrane comprises polyethersulfone due to its biocompatible chemical composition, structural properties, and inherent membrane performance such as excellent flow rate, downstream cleanliness, low protein binding affinity, etc. This material can be extruded into a variety of shapes and as small diameter tubing.
[0117] Depending on the protein to be secreted and the site of implantation of the device, the cell-containing portion 2 may take the form of a flat plate such as described in Lathuillere et al., 2014, Biomaterials, 35 780-790, or WO2014 / 173441, or a hollow fiber such as those described in Lathuillere et al., 2015, supra.
[0118] The cell storage section 2 may be, for example, approximately 1.0 × 10 4 Cell ~8×l0 5 Between cells (e.g., 1.0 × 10 4 , 5.0×10 4 , 1.0×10 5 , 3.0×10 5 , 5.0×10 5 , 8×10 5 , or 10 6 An effective amount of cells, such as 100,000 cells (e.g., 100,000 cells), may be contained depending on the application and the protein to be secreted. Those skilled in the art will recognize that the exact number of cells in the cell-containing portion may vary depending on the growth rate of the encapsulated cells / cell line and / or the volume of the cell-containing portion.
[0119] The porous membrane 5 surrounds the cell-containing chamber 13 and a membrane support 6 within the cell-containing chamber 13. The membrane support serves to mechanically support the porous membrane, maintaining the volumetric stability of the cell-containing chamber 13 and preventing membrane rupture. In the illustrated embodiment, the membrane support is in the form of a coil, in particular a stainless steel coil known per se, for example as described in WO 2017 / 0645701. The membrane support 6 also serves to secure the extractor part 3 by the connector 4.
[0120] In the illustrated embodiment, the connection part 4 includes a connector 10 having a portion 10a inserted into the membrane support 6, specifically, in this example, into a cylinder surrounded by a stainless steel coil. The diameter of the connector insertion portion 10a can be set to fit snugly onto the extractor end of the coil, ensuring a firm connection. The connection part 4 further includes a fixing portion 10b for hooking the anchor 8 of the extractor part 3, such that, in the illustrated embodiment, the anchor 8 is in the form of a tube, preferably a polyurethane (PU) tube, into which the second end 10b of the connector 10 fits snugly. An adhesive 18a can be applied to the connector 10 prior to insertion of the extractor end 12b of the cell-containing part and the connecting end 8a of the anchor 8 on the connector 10. The adhesive can advantageously be in the form of a light-curing adhesive, for example, of the light-curing urethane methacrylate type (e.g., Dymax 1187 M SV).
[0121] The extractor portion 3 serves to provide a means for withdrawing the implant from the patient's tissue at the end of its use. In the illustrated embodiment, the extractor portion further includes a withdrawal string 9 including an anchor portion 15 secured to the anchor tube 8 and a thread portion 16 extending beyond the anchor tube configured to allow the thread to be captured by a surgical tool and used to withdraw the implantable capsule. In the illustrated embodiment, the withdrawal string 9 is made of a biocompatible yarn or thread, e.g., a polypropylene-type thread (e.g., Prolene™ suture). In one embodiment, a single thread extends into the hollow anchor tube 8 and includes a knot 15a, with the anchor portion 15 held within the tube by an adhesive, e.g., a light-curable adhesive as described above, which increases the strength of the withdrawal string's bond to the anchor tube. The withdrawal string is therefore flexible and very thin to reduce patient discomfort and allow for easy implant removal.
[0122] It may be mentioned that the extractor portion 3 may have different shapes and configurations with the aim of allowing a surgical tool to grasp the implant and extract it from the patient's tissue.
[0123] In one variation, the withdrawal string may be secured directly to or integral with connector 10, without the presence of an anchor tube. In such a variation, the connector may include an opening to allow the thread to pass through, for example, to allow the implanted capsule to be withdrawn from the patient's tissue. Advantageously, polyurethane tubing, or any other material with reasonable mechanical and biological properties, provides a structure to support the attachment of the withdrawal string. This may also be used as a support for tweezers during handling, whether during assembly or implantation.
[0124] The cell-containing portion 2 further includes a cell support matrix 7 inserted within the cell-containing chamber 13. In a preferred embodiment, the cell support matrix 7 includes one or more yarns 14, preferably multiple yarns, of a biocompatible material extending longitudinally within the cell-containing chamber 13. In a preferred embodiment, the yarns extend from at or nearest the extractor end 12b of the membrane 5 to at or nearest the cell-loading end 12a. The yarns preferably span the entire length or a majority of the length of the cell-containing chamber 13. In a preferred embodiment, the yarns may be advantageously made of clinical-grade polyester (PE), which is known and approved for surgical implant applications. Such polyester yarns are typically used for suturing tissue within a patient's body. An example of a polyester yarn that can be used in a preferred embodiment of the present invention is 44 / 27-PET-5540-FTT-SS (Textile Development Associates). This material is a 40-denier, 27-filament yarn made of textured polyester.
[0125] The cell support matrix 7 has been found to significantly improve the performance of immortalized cells housed in the cell containment chambers, particularly for adherent cells, increasing their activity and durability in therapeutic drug release over time. Such adherent cells include, for example, genetically engineered cells useful in cell therapy, such as genetically engineered immortalized human myoblasts, mouse myoblasts, human retinal pigment epithelial cells, stem cells, stem cell-derived cell lines, and the like. Somehow, it has been found that these cells 24 tend to align along the fibers of the yarn 14, thus improving cell density and spacing, optimized for therapeutic drug release and nutrient uptake. Advantageously, the yarn also provides a large overall surface area for cells to attach to.
[0126] In one exemplary embodiment, immortalized human myoblasts secreting GM-CSF are loaded into cell-containing portion 2 of the capsule of the present invention. Such capsules are useful in personalized anti-tumor cell immunotherapy.
[0127] Cells are placed in the cell housing in a cell growth medium appropriate for the cell type, such as Ham's F12 or DMEM supplemented with growth factors or fetal bovine serum, and for cells to be frozen, a freezing medium / cryopreservative, such as glycerol, is also added to the cell growth medium.
[0128] In one exemplary embodiment, cell-containing chamber 13 may contain, for example, 5 to 20 yarns 14 arranged parallel to the chamber and spanning substantially the entire length of the chamber. The yarns may be inserted into cell-containing chamber 13 by pulling one end of the yarn through the chamber, and connector 4 may be attached to extractor end 12b of cell-containing portion 2 after membrane support 6 and yarns 14 have been attached to porous membrane 5.
[0129] It may be stated that the cell support matrix 7 may be pre-assembled to the membrane support 6, for example by inserting it through the inside of the coil, and then the pre-assembled coil and cell support matrix may be inserted into the tubular porous membrane 5.
[0130] Thus, the cell support matrix 7, particularly in the form of yarns 14, has the highly beneficial effect of optimizing the ordered distribution of cells within the cell-containing chamber for a given volume, improving secretion yield and rate. Furthermore, this configuration allows for easy lengthening or shortening of the cell-containing section by simply changing the cut length of the yarns to the corresponding length of the porous membrane tube and coil of membrane support 6. Moreover, the use of well-characterized implantable biocompatible polyesters does not adversely affect the safety of the device.
[0131] It has also been observed that the presence of the cell support matrix 7 allows the contained cells to be frozen and defreezed without affecting cell viability. This is particularly advantageous because the presence of matrix 7 improves the freezing and thawing properties of the capsules, allowing them to be stored for extended periods in a frozen state ready for use in treating a patient when required. In particular, the improved distribution of cells, and in particular attached cells, along the yarns appears to contribute to maintaining a high percentage of viability during the freezing and thawing process.
[0132] Cells in liquid medium can be inserted into the cell storage chamber 13 by a cell loading device 20 (only partially and diagrammatically shown in the illustration) that includes an outlet nozzle 22 inserted into the cell loading end 12a of the porous membrane 5.
[0133] The implantable capsule 1 can also be supplied in a pre-assembled arrangement with a cell loading device attached. In this embodiment, the nozzle 22 of the cell loading device can be adhered to the cell loading end 12a of the membrane, for example, by adhesive 18c, such as a light-curable adhesive as already described above. The cell loading device can include a catheter tube to allow cells in a liquid medium to be injected into the cell-containing chamber of the capsule through the catheter tube, with air contained within the cell-containing capsule being forced through the porous membrane 5.
[0134] However, as mentioned above, the capsules may be filled with immortalized cells and media in a ready-to-use state, with the cell-containing end 12 hermetically sealed with a plug (not shown), and then frozen until needed for patient treatment.
[0135] The implantable devices of the present invention can be implanted in a living subject at a variety of sites, including under the skin (e.g., subcutaneously). Alternatively, the devices may be implanted intrathecally, intracerebrally, intraosseously, intratumorally, intrapleurally, intraocularly, or intraperitoneally.
[0136] The dosage administered to an individual as a single or multiple dose will vary depending on a variety of factors, including pharmacokinetic properties, the patient's condition and characteristics (sex, age, weight, health, size), the severity of symptoms, concurrent treatments, frequency of treatment, and the desired effect.
[0137] combination According to the present invention, the cells and pharmaceutical preparations thereof can be administered alone or in combination with co-agents useful in the prevention and / or treatment of cancer, particularly cancer cell antigens and / or immune checkpoint inhibitors, such as PD-1, PD-L1, or CTLA4 inhibitors, or co-agents useful in the prevention and / or treatment of autoimmune disorders.
[0138] The present invention encompasses administration of the cells of the present invention or formulations thereof, wherein the cells of the present invention or formulations thereof are administered to a subject prior to, simultaneously with, or sequentially with other therapeutic regimens or co-agents.
[0139] The cells of the present invention or formulations thereof according to the present invention that are administered simultaneously with said co-agents can be administered in the same or different compositions and by the same or different routes of administration.
[0140] According to one embodiment, there is provided a pharmaceutical formulation comprising at least one cell of the invention in combination with at least one co-agent useful for the prevention and / or treatment of cancer, and at least one pharmaceutically acceptable carrier.
[0141] subject In another aspect, the cells, devices, kits, and methods of the present invention are useful for treating a subject in need of treatment with a therapeutic protein.
[0142] In one particular aspect, the cells, devices, kits, and methods of the invention provided are useful for the treatment of cancer.
[0143] In one particular embodiment, the cancer is selected from non-Hodgkin's lymphoma, head and neck cancer, melanoma, lung, bladder, renal cell carcinoma, triple-negative breast cancer, colorectal, gastric, pancreatic, ovarian, prostate, sarcoma, and chordoma.
[0144] In another particular aspect, the cells, devices, kits, and methods of the invention provided are useful for immunotherapeutic treatment.
[0145] In another particular aspect, the cells, devices, kits, and methods of the invention provided are useful for treating inflammatory disorders.
[0146] In another particular aspect, the cells, devices, kits, and methods of the invention provided are useful for treating neurodegenerative disorders.
[0147] According to one particular embodiment, the neurodegenerative disorder is selected from Alzheimer's disease and Parkinson's disease.
[0148] In another particular aspect, the cells, devices, kits and methods of the invention provided are useful for the prevention and / or treatment of infectious diseases, particularly viral infections.
[0149] According to one particular embodiment, the viral infection is a COVID-19 viral infection.
[0150] In another particular aspect, the immortalized cells and methods according to the invention can be used for vaccination with tumor antigens (e.g., tumor or viral antigens) or to enhance the ability of a patient's own immune system to increase the effectiveness of the immune response against neoplastic cells or viral particles.
[0151] For example, as described in Gupta et al., 2010, Moving Forward. Discov Med., 50:52-60, cells secreting the GM-CSF immunostimulatory cytokine can be practically used as part of personalized anti-tumor cellular immunotherapy.
[0152] According to one particular aspect, the immortalized cells and methods according to the invention can be used for the production of other proteins (e.g., antibodies or antibody fragments) that modulate the strength of the immune response, in particular that block the CTLA-4 protein (immune checkpoint inhibitors) for the treatment of cancer, in particular melanoma.
[0153] For applications in the field of oncology, the following proteins may be useful to secrete from encapsulated cells in the context of the present invention: Trastuzumab (Herceptin®), pertuzumab (Perjeta®) for breast cancer (HER2+), rituximab (Rituxan®) for lymphoma and CML (chronic myeloid leukemia), blinatumomab (Biincyto®) for acute lymphocytic leukemia (ALL), obinutuzumab (Gazyva®), ofatumumab (Arzerra®) for chronic lymphocytic leukemia (CLL), cetuximab (Erbitux®) for colon cancer and head and neck cancer, panitumumab (Vectibix®) for colon cancer, necitumumab (Portrazza®) for lung cancer, bevacizumab (Avastin®) for colon cancer or recurrent brain tumors, ramucirumab (Rambu®) for gastric cancer. sirumab (Cyramza®), nivolumab (Opdivo®) for advanced cancers such as melanoma, lung, head and neck, bladder, and kidney cancer, pembrolizumab (Keytruda®), atezolizumab (Tecentriqu®), durvalumab (lmfizi®), avelumab (Bavencio®), ipilimumab (Yervoy®) for melanoma and kidney cancer, daratumumab (Darzalex®) or elotuzumab (empliciti®) for multiple myeloma, dinutuximab (Unitixin®) for neuroblastoma, olaratumab (Lartuvo®) for soft tissue sarcoma, and catumaxomab (Removab®) for refractory ovarian cancer.
[0154] For applications in the field of inflammatory disorders, the following proteins may be useful for secretion by encapsulated cells in the context of the present invention: Adalimumab (Humira®), infliximab (Remicade®), golimumab (Simponi®) for colon inflammatory disorders, rheumatoid polyarthritis, ankylosing spondylitis, and psoriasis; belimumab (Benlysta®) for systemic lupus erythematosus; tocilizumab (Actemra®), sarilumab (Kevzara®) for rheumatoid polyarthritis or juvenile polyarthritis; brodalumab (Siliq®), ixekizumab (Taltz®), secukinumab (Cosentyx®) for psoriasis; guselkumab (Tremfya®) for psoriasis; and uste for psoriasis and Crohn's disease. kinumab (Stelara®), vedolizumab (Entyvio®) for ulcerative colitis and Crohn's disease, canakinumab (llaris®) for cryopyrin-associated periodic syndrome, daclizumab (Zinbryta®) or natalizumab (Tysabri®) for multiple sclerosis, ocrelizumab (Ocrevus®), dupilumab (Dupixent®) for atopic dermatitis, mepolizumab (Nucala®), reslizumab (Cinqai®) and benralizumab (Fasenra®) for asthma, ranibizumab (Lucentis®) for macular degeneration.
[0155] For applications in other therapeutic fields, therapeutic proteins, in particular insulin or antibodies, as described in Kaplon et al., 2019, Mabs, 11(2):219-238.
[0156] For applications in the field of neurodegenerative disorders, the following proteins may be practical to secrete into encapsulated cells in the context of the present invention: Gantenerumab, Aducanumab, Crenezumab, Gosuranemab, Semolinemab, or Zagotenemab for Alzheimer's disease, progressive supranuclear palsy, or frontotemporal dementia, and PRX002 / RG7935 (Prasinezumab), BIIB-054 (Cinpanemab), or MEDI1341 / TAK-341 (AstraZeneca, Takeda Pharmaceuticals) for Parkinson's disease or multiple system atrophy.
[0157] According to one particular aspect, in the field of vaccines, the following proteins may be useful to be secreted by encapsulated cells in the context of the present invention:
[0158] In one particular embodiment, antigens and vaccine adjuvants can be secreted by genetically engineered immortalized human myoblasts according to the invention, with the antigen-secreting cells and the vaccine adjuvant-secreting cells, such as GM-CSF, being contained in separate biocompatible devices (administered in close proximity to each other), or these different secreting cells being loaded into the same implantable biocompatible implantable device.
[0159] According to another particular embodiment, the immortalized human myoblasts according to the invention may be transduced to express both at least one antigen and at least one vaccine adjuvant.
[0160] According to another particular embodiment, human immortalized myoblasts according to the invention may be transduced to express several antigens for the same pathogen (e.g., spike protein and E protein from COVID-19), or genetically engineered human immortalized myoblasts according to the invention secreting several antigens for the same pathogen may be used in parallel (e.g., in the same implantable device).
[0161] Methods and uses according to the present invention The present invention provides genetically engineered human immortalized myoblasts according to the invention for use in the prevention and / or treatment of a disorder or disease, in particular cancer, an inflammatory disorder, or a neurodegenerative disorder.
[0162] The present invention further provides the use of genetically engineered immortalized human myoblasts according to the invention for the preparation of a pharmaceutical preparation (e.g., an encapsulated cell preparation) useful for the prevention and / or treatment of a disorder or disease, in particular cancer, an inflammatory disorder, or a neurodegenerative disorder.
[0163] The present invention further provides a method for preventing or treating a related disorder or disease, particularly cancer, an inflammatory disorder, or a neurodegenerative disorder, in a subject, comprising administering a therapeutically effective amount of the genetically engineered human immortalized myoblasts of the present invention to a subject in need thereof.
[0164] In one aspect, the genetically engineered immortalized human myoblasts of the present invention are useful in (e.g.) cancer treatment, e.g., the genetically engineered immortalized human myoblasts of the present invention secrete GM-CSF.
[0165] In particular, the genetically engineered human immortalized myoblasts of the present invention are useful in cancer treatment.
[0166] In another aspect, the genetically engineered immortalized human myoblasts of the present invention are useful in treating inflammatory disorders (e.g., rheumatoid arthritis). For example, the genetically engineered immortalized human myoblasts of the present invention secrete anti-TNFα antibodies.
[0167] All references cited herein are incorporated by reference in their entirety. Having described the invention, the following examples are offered by way of illustration and not by way of limitation. [Example]
[0168] The following studies have been conducted to support the efficacy of the cells and methods of the present invention.
[0169] The following abbreviations have the following definitions: DAPI (4,6 diamidino-2-phenylindole); DMEM (Dulbecco's modified Eagle's medium); DPBS (Dulbecco's phosphate buffered saline); EDTA (ethylenediaminetetraacetic acid); FBS (fetal bovine serum); HBSS (Hank's buffered salt solution), MEF (myocyte enhancer factor); PFA (paraformaldehyde).
[0170] Example 1 Preparation of immortalized human myoblast cell lines An immortalized human myoblast cell line was prepared according to the method of the present invention as detailed below. The following reagents were used: Myoblast Growth Medium (GM): Ham's F10 (GIBCO 41550021) - 15% FBS (GIBCO 10101145) - Bovine serum albumin (Sigma-Aldrich A4503; 0.5 mg / ml) - Fetuin (Desert Biological Company 302070; 0.5mg / ml) - Epidermal growth factor (R&D Systems 236-GMP-200; 10ng / ml) - Dexamethasone (PharmaServe 8016; 0.39 μg / ml) - Insulin (Sigma-Aldrich I9278; 0.04 mg / ml) - Creatine monohydrate (ParmaServ 8114; 149 μg / ml) - Pyruvate (Gibco 11360039; 100 μg / ml) - Uridine (U3003; 50μg / ml) - Gentamicin (Gibco 15710049; 5 μg / ml) Supplemented with
[0171] Myoblast Differentiation Medium (DM): DMEM (GIBCO 61965026) - Bovine serum albumin (Sigma-Aldrich A4503; 0.5 mg / ml) - Epidermal growth factor (R&D Systems 236-GMP-200; 10ng / ml) - Insulin (Sigma-Aldrich I9278; 10 μg / ml) - Creatine Monohydrate (ParmaServ 8114; 149 μg / ml) - Pyruvate (Gibco 11360039; 100 μg / ml) - Uridine (U3003; 50μg / ml) - Gentamicin (Gibco 15710049; 10 μg / ml) Supplemented with
[0172] Blocking solution: DPBS (Sigma D8537) - Goat serum (Sigma G9023, 2%) - Tween 20 (AppliChem A1389, 0.2%) plus
[0173] HBSS (GIBCO 14175053) PFA 4% (Santa Cruz sc-281692) Triton X-100 (AppliChem A1388) Fluid blocker (Arcus Biologicals NAN-012) Ab mouse anti-MF20 (Hybridoma Bank) Ab rabbit anti-MEF2 (Santa Cruz sc-313) Antibody goat anti-mouse Alexa 488 (Life Technologies A11029) Ab goat anti-rabbit Alexa 546 (Life Technologies A11035) DAPI Fluoromount-G (SouthernBiotech 0100-20)
[0174] 1.1 Human myoblast cell source Human myoblast cells were obtained from human muscle tissue obtained as a small myonecrotic tissue fragment excised during reconstructive surgery from a 32-year-old non-smoking female donor with no significant medical history or chronic disease who had sustained trauma to the left knee due to anterior cruciate ligament injury, with informed consent. Eligibility criteria for tissue donation were established in accordance with the FDA guidelines "Eligibility Determination for Donors of Human Cells, Tissues, and Cellular and Tissue-Based Products (HCT / Ps)." The criteria were: - Over 18 years of age - Healthy subjects: No chronic conditions, including muscle diseases, have been identified - Planned plastic surgery - Negative screening test for the following infectious diseases: HIV types 1 and 2, HBV, HCV, Treponema pallidum, HTLV 1 and 2, and West Nile virus The study protocol was approved by the Ethics Committee in Geneva.
[0175] 1.2 Primary myoblast cell isolation and expansion process Human muscle tissue was rinsed with DMEM under sterile conditions in a cell culture hood. Fat and fibrous tissue were removed with tweezers and scissors. The tissue was placed in a Petri dish with 5 ml of trypsin-EDTA 0.05% and cut into millimeter-sized pieces with scissors. The muscle pieces were transferred to a sterile dissociation bottle with trypsin. The volume of trypsin-EDTA 0.05% was adjusted to 90 ml for a maximum of 3 g of tissue. The tissue was incubated at 37°C for 60 minutes with agitation. Digestion was suspended with 10% FBS. The muscle solution was then filtered through a 70 μm cell strainer and centrifuged at 1000 rpm for 5 minutes at room temperature (RT) to pellet the cells. After discarding the supernatant, the pellet was dissolved in DMEM and filtered through a 40 μm cell strainer. Cells were seeded at 200,000 cells per 60 mm Petri dish in 3.5 ml of growth medium (GM). Cells were incubated at 37°C and 5% CO2. When cells reached 75% confluence, the GM was removed and the cells were washed with HBSS. A minimal volume of trypsin-EDTA 0.05% was applied to cover the cell surface and incubated at 37°C for 3 minutes. The reaction was stopped with an equal volume of GM. The cells were collected and centrifuged at 1000 rpm for 5 minutes at room temperature. The supernatant was discarded, and the cells were washed with GM and centrifuged again. For cell staining, the cells were resuspended in 200 μl of GM and the following antibodies were added: 3 μl of anti-CD56-AlexaFluor488, 0.5 μl of anti-CD82-PE, and 3 μl of anti-CD146-PECy7. After a 30-minute incubation at 4°C, cells were washed and sorted by flow cytometry using a MoFlo Astrios EQ (Beckman Coulter). Myoblasts were defined as CD56+ CD146+ CD82+.
[0176] 1.3 Immortalization of myoblasts using lentiviral vectors encoding CDK4 and hTERT (steps b) and c) Immortalization of the resulting myoblasts was achieved by transduction of two genes, cyclin-dependent kinase 4 (CDK4) and human telomerase catalytic subunit (hTERT), as previously proposed (Zhu et al., 2007, Aging Cell, 6, 515–523). The transgenes were cloned into the third-generation pCLX lentiviral vector backbone under the control of the human phosphoglycerate kinase (hPGK) promoter, as described in Salmon, 2013, Methods Mol Biol., 945:417–48. The detailed viral infectivity was titrated in HeLa target cells and expressed in transducing units per ml (TU / ml) (Barde et al., 2010, Curr Protoc Neurosci, Chapter 4, Unit 4, 21, 10.1002 / 0471142301.ns0421s53).
[0177] On day 0, primary human myoblasts were seeded in 500 μl of GM in a 24-well plate at 20,000-30,000 cells per well. On day 1, the cells were infected with lentivirus. To achieve immortalization, a multiplicity of infection (MOI) of 3 (number of viral replicates / cell) was applied to the cells for each vector (pCLX-PGK-hTERT and pCLX-PGK-CDK4 as described herein). On day 2, 500 μl of fresh GM was added to each well. On day 3, the cells were passaged in new culture dishes.
[0178] Cells were maintained in culture at 37°C under 5% CO2, and proliferation was quantified using an automated cell counter (Countess, ThermoFischer). The population doubling at each passage was determined as log N / log 2, where N is the number of cells harvested at confluence divided by the number of cells initially seeded. As can be seen in Figure 1, primary myoblast cells stopped proliferating after 45 days, whereas lentiviral-transduced cells continued to proliferate stably for up to 6 months.
[0179] This confirms that transduction of primary myoblast cells with lentiviral vectors encoding CDK4 and hTERT can efficiently immortalize the cells.
[0180] 1.4 Myoblast proliferation and cloning (steps d) and e) As previously described in Laumonier et al., 2017, supra, once cells reached 75% confluence, they were scraped, washed, and stained with anti-CD56-AlexaFluor488, anti-CD82-PE, and anti-CD146-PECy7. After 30 minutes of incubation at 4°C, cells were washed and sorted by flow cytometry using a MoFlo Astrios EQ (Beckman Coulter) at one cell per well in 96-well plates. Myoblasts were defined as CD56+ CD146+ CD82+. Individual clones were then cultured and expanded in growth medium and selected from the immortalized myoblast population (I) using single-cell cloning by sorting one cell per well into 96-well plates. A total of 33 clones were isolated, and the growth rates of nine selected clones (1-3, 5-6, 13, 17, and 20-21) that retained qualitative morphological characteristics were quantified using automated cell counts at each passage and found to remain stable over time, as can be seen in Figure 2.
[0181] 1.5 Control of the potential of myoblasts to differentiate into myotubes (step f) To assess the myogenic potential of myoblast clones obtained after immortalization and selection (after step d) by the method of the present invention, the maintenance of their myogenic marker expression (triple positivity for CD56, CD82, and CD146) over time was quantified by flow cytometry, and their preserved ability to fuse and differentiate into myotubes was quantified as follows: Cells were plated in GM in 35 mm culture dishes. When the cells reached 100% confluence, the GM was removed, the cells were washed with HBSS, and differentiation medium was added. After 72 hours, the cells were washed twice with DPBS and fixed with 4% PFA at 4°C for 15 minutes. After washing three times with DPBS, a circle was drawn around the cells with a water-repellent pen. Blocking solution was applied for 30 minutes at room temperature. Primary antibodies (mouse anti-MF20 diluted 1 / 1000 in blocking solution and rabbit anti-MEF diluted 1 / 300 in blocking solution) were incubated overnight at 4°C. After washing three times with DPBS and incubating with blocking solution for 5 minutes, secondary antibodies (goat anti-mouse Alexa 488 diluted 1 / 1000 in blocking solution or goat anti-rabbit Alexa 546 diluted 1 / 1000 in blocking solution) were incubated for 1 hour at room temperature. After washing three times with DPBS, coverslips were mounted with DAPI Fluoromount-G. For quantification of the differentiation percentage and fusion index, seven images per condition were randomly acquired at 20x magnification under a fluorescent microscope. The number of MEF-positive nuclei and DAPI nuclei was quantified.
[0182] As can be seen in Figure 3, the immortalized myoblast cells obtained by the method of the present invention maintained myoblast phenotypic markers, such as the expression of myogenic markers (CD56, CD82, and CD146), as well as the ability to fuse and differentiate into myotubes. As can be seen, some clones exhibited stable myogenic marker expression, while others lost expression, indicating lower stability; therefore, the clone exhibiting the highest stability was used for further experiments. Specifically, clone 61.27, deposited under CCOS 1901 (derived from the above-mentioned clone 2, deposited under CCOS 1902), was used for encapsulation studies.
[0183] The obtained immortalized myoblast cell line was characterized as follows to confirm its suitability for the encapsulation technique.
[0184] Myoblast encapsulation ability The encapsulation potential of the resulting immortalized myoblast cells was tested as follows: GM was removed, and cells at 75% confluence were washed with HBSS. A minimal volume of TrypLE (Thermo Fisher) was added to cover the cell surface and incubated at 37°C for 3 minutes. The cells were then gently scraped off the surface of the dish. The reaction was stopped with an equal volume of HBSS. The cells were collected and counted in duplicate using an automated cell counter (Countess II device, Thermo Fisher). The cells were centrifuged at 1,000 rpm for 5 minutes at room temperature and resuspended in 25 μl of GM per 800,000–1,000,000 cells. For the genetically engineered immortalized myoblast cells secreting GM-CSF, 25 μl of the cell suspension was loaded into capsules containing hollow fibers with an internal matrix, as described in Figure 9 and Example 5. Immortalized human cells of hematopoietic origin (MVX-1) genetically modified to produce GM-CSF, encapsulated in a device as described in WO 2017 / 064571, were used as a control. The vasculon (the tube used to insert the capsule) was cut off, and the capsule was sealed using UV-sensitive adhesive (Dymax). The capsules were then placed in 2 ml of GM in a 12-well plate for 24 hours before implantation.
[0185] Based on their proliferation rate and differentiation potential, six clones (#1, #2, #6, #13, #17, and #21) were selected for evaluation. These clones were encapsulated and continued in culture for up to one month. The capsules were then fixed and processed for histological analysis. A qualitative assessment of survival was then performed, which concluded that clones #2 and #13 had good survival characteristics based on the viable cell density within the device (the presence of viable cells in the center of the device and the spreading of cells within the device), and they were then selected for genetic engineering to express GM-CSF, as detailed below.
[0186] Myoblast cell culture under hypoxic conditions The behavior of the resulting immortalized myoblast cells under hypoxic conditions was tested as follows: Cells were seeded and cultured under standard conditions for 24 hours to allow cell attachment. The culture dishes were then placed in a hypoxic incubator chamber at 37°C with 1% oxygen for 24 hours. When recombinant proteins in the culture medium needed to be quantified, fresh medium pre-incubated in the hypoxic chamber for 24 hours was added to the cells for 2 hours before quantification.
[0187] Example 2 Alternative method for selecting human immortalized myoblasts in step d) Alternatively, in the method for establishing an immortalized human myoblast cell line according to the present invention, the isolation of immortalized human myoblast clones in steps c) and d) can be carried out in an encapsulated myoblast cell population according to steps c1) to c4).
[0188] The immortalized myoblast cell population obtained in 1.3 was encapsulated in an implantable device with an internal matrix as depicted in FIG.
[0189] The devices were implanted into the subcutaneous tissue of mice for three weeks. After three weeks, the devices were removed and placed in culture medium. The capsules were cut and their contents (cells and matrix) were spread in culture medium in a dish. The cells were allowed to grow in culture for several weeks. The cells were then scraped, stained, and subjected to FACS sorting of human myoblasts (defined as CD56+ CD146+ CD82+). Individual human myoblast clones were isolated from this myoblast population.
[0190] The myogenic potential (differentiation into myotubes) of three of these clones appeared unaffected. The proliferation rates of these clones were also monitored for several weeks, with doubling times ranging from approximately 24 to approximately 72 hours for at least six months.
[0191] Example 3 Preparation of genetically modified immortalized human myoblast cell lines The immortalized human myoblast cell lines obtained by the method of the present invention are useful for preparing genetically modified cells for producing proteins of interest, in particular for secreting proteins in capsules.
[0192] 3.1 Myoblast transduction to secrete recombinant GM-CSF (step ii) To express human or murine GM-CSF, human or murine GM-CSF cDNA was cloned into the pCLX lentiviral vector under expression of the human PGK promoter as described in Salmon, 2013, supra.
[0193] The human PGK promoter contains a hypoxia-responsive element (HRE), an enhancer that upregulates gene expression under hypoxic conditions (Firth et al., 1994, Proc. Natl. Acad. Sci. USA, 91, 6496–6500). To confirm this, primary myoblast cells were infected (MOI = 5) with a lentiviral vector encoding GFP under the control of the phosphoglycerate kinase (PGK) or ubiquitin (UBI) promoter. After 36 hours in 1% oxygen, the cells were fixed and fluorescence quantified by flow cytometry. We observed that the PGK promoter drove stronger expression in myoblasts than the UBI promoter, and that the PGK promoter, in contrast to the UBI promoter, upregulated GFP expression in myoblasts under hypoxic conditions.
[0194] Therefore, the PGK promoter was used in the genetic engineering of the immortalized human myoblasts of the present invention because it may enhance the secretion of target proteins when the myoblasts are encapsulated. Therefore, clones #2 and #13 obtained in Example 1 were transduced with different concentrations of the above lentivirus, and different MOIs (3 to 100) were applied to the cells.
[0195] The ability of genetically modified immortalized human myoblasts to secrete recombinant proteins was quantified as follows.
[0196] Cells were seeded into T75 cell culture flasks. Upon reaching 75% confluence, the cells were washed with HBSS and 5 ml of fresh growth medium was added for 2 hours at 37°C. The medium was then collected for GM-CSF quantification, and cells were counted using an automated cell counter (Countess II instrument, Thermo Fisher). Depending on the protein to be quantified, different ELISA kits were used (human GM-CSF ELISA kit #KHC2011, mouse GM-CSF ELISA kit #BMS612, human (total) IgG ELISA kit #BMS2091, Thermo Fisher). The protocols were applied according to the manufacturer's instructions. Results were reported in pg / cell / day. As shown in Figure 4A, GM-CSF expression was achieved from the genetically modified immortalized human myoblasts of the present invention.
[0197] GM-CSF secretion from the cell population generated from the transduced immortalized clone #2 was monitored weekly for 9 weeks, confirming that transduction with lentiviral vectors was effective in generating highly stable GM-CSF-secreting cell lines, as shown in Figure 4B.
[0198] 3.2 Isolation of human GM-CSF-secreting clones (steps iii) and iv) From two GM-CSF-expressing populations (clones #2.100 and #13.10), 125 individual clones were selected and GM-CSF expression was measured for each clone. The 10 clones that secreted the highest levels of GM-CSF, ranging from approximately 1 to 4 pg / cell / day for each population, were monitored for their GM-CSF secretion (Figure 4C) and proliferation (Figure 5A) over several weeks. These data confirm that the secretion and proliferation rates of GM-CSF-secreting clones remained stable over time.
[0199] The stability of myogenic marker expression (triple positive for CD56, CD82, and CD146) over time for the isolated GM-CSF-secreting myoblast clones, as well as their ability to fuse and differentiate into myotubes, was assessed as detailed above and confirmed as shown in Figure 6.
[0200] The obtained genetically modified immortalized myoblasts were characterized as follows to confirm their suitability for the encapsulation technique.
[0201] Myoblast encapsulation ability To determine whether the obtained immortalized myoblast cells could be encapsulated, six clones were selected based on their GM-CSF secretion levels, growth rate, and myogenic characteristics, i.e., myogenic marker expression and ability to differentiate into myotubes, and were assayed as described above, encapsulated, and then tested in vivo (in mouse subcutaneous tissue).
[0202] Implantation of hollow fiber encapsulation devices in mice All mouse experiments were performed in accordance with the Swiss National Regulations for the Care and Use of Laboratory Animals. Animals were bred and housed in a specific pathogen-free environment and had free access to water and food. Rag2 / Il2rg double knockout adult mice (Shinkai, 1992, Cell, 6;68(5):855-67) were anesthetized with isoflurane, and capsules were implanted into the subcutaneous tissue using a trocar. The wound was closed with surgical staples, and the animals were allowed to recover in their home cages. Analgesia was provided by a subcutaneous injection of 0.1 mg / kg buprenorphine 20 minutes before anesthesia and 2 mg / ml acetaminophen in drinking water for 3 days. At the end of the experiment, mice were sacrificed by a lethal injection of sodium pentobarbital. The devices were dissected and either fixed in place for histological analysis or re-submerged in culture medium for further quantification of recombinant protein expression. Histological processing was performed as previously described (Schwenter et al., 2011, Cancer Gene Ther., 18, 553-562).
[0203] GM-CSF secretion levels from the capsules were measured before implantation and after explantation (at 1 and 3 weeks). GM-CSF levels in mouse serum were also measured. Histological analysis of the explanted capsules was also performed to qualitatively measure cell survival. This experiment was performed using an encapsulation device with an internal matrix, as described in Example 5 and Figure 9. Secretion levels were compared to those obtained using immortalized human cells of hematopoietic origin (MVX-1) genetically modified to produce GM-CSF, which were encapsulated in a device as described in WO2017 / 064571 and are currently being used in ongoing clinical trials NCT02193503 (Phase I) and NCT02999646 (Phase II in HNSCC).
[0204] As can be seen in Figure 7, all encapsulated clones showed secretion levels much higher than MVX-1 cells, thus confirming the advantageous effect of the immortalized cells of the present invention, particularly for use in encapsulation therapy.
[0205] Clone #61.27 (deposited under CCOS1901, derived from clone 2, deposited under 1902) was then selected based on its high secretion rate (approximately 3 pg / cell / day) and the highest serum GM-CSF levels (suggesting high levels of GM-CSF delivery by clone #61.27). Clone #62.14 was selected because GM-CSF delivery remained stable over time, suggesting high cell viability. The growth rates of these two clones were monitored in vitro for six months as unencapsulated and encapsulated cells, as shown in Figure 8. GM-CSF secretion rates were also monitored in vitro for several months. FIG. 8 shows the stability over time of the in vitro proliferation rate as unencapsulated cells, expressed as cell population doublings (N) versus the number of weeks (W) after the clones were selected from a population of genetically modified, immortalized human myoblasts (A), the in vitro secretion rate as unencapsulated cells versus weeks (W) after selection (B), the in vitro secretion rate as encapsulated cells versus weeks (W) after encapsulation (C), and the in vivo secretion rate in mice as encapsulated cells compared to control encapsulated cells (MVX-1), as measured by quantification of GM-CSF in serum (D) and tissue surrounding the capsule (E) compared to before implantation.
[0206] These clones were loaded into encapsulation devices as described in Example 5 and shown in Figure 9, and GM-CSF secretion was monitored in vitro for several months as described above and compared to encapsulated cells (MVX-1) as defined above.
[0207] Freezing and thawing of encapsulation devices preloaded with human myoblasts The effect of different freezing conditions on GM-CSF expression levels after thawing was examined. Capsules were loaded with the indicated genetically modified GM-CSF-secreting immortalized myoblast cells (clones 61.27 and 62.14) in freezing medium containing different concentrations of glycerol (used as a cryopreservant). Prior to freezing, the loaded capsules were suspended in freezing medium and incubated for variable periods. For freezing, the capsules were placed in silicone tubes prefilled with freezing medium and transferred to cryotubes. The cryotubes were quickly transferred to CoolCell freezer containers (Biocision) and placed at -80°C overnight before being transferred to liquid nitrogen for long-term storage.
[0208] For thawing, the frozen capsules in the silicone tubes were transferred to pre-warmed GM in a 10 cm Petri dish. After gentle agitation, the capsules were removed from the silicone tubes and placed in a 12-well culture plate containing GM.
[0209] As can be seen in Figure 10, the GM-CSF-secreting myoblasts of the present invention performed much better than the control cell line (MVX1) after glycerol freezing (Figure 10C). The use of 10% glycerol as the freezing medium (Figures 10B and 10C) and cell incubation times of 0 to 30 minutes with the freezing medium before freezing were well tolerated.
[0210] Example 4 A viable, diverse, genetically modified, immortalized human myoblast cell line for the production of therapeutic proteins Ability to genetically engineer immortalized myoblast cells according to the invention to express complex molecules of therapeutic interest, such as antibodies.
[0211] Therapeutic polymers Myoblast transduction to secrete recombinant anti-human CD20 IgG (step ii) To express anti-human CD20 IgG, the variable region of the rituximab heavy chain was inserted into a human IgG1 heavy chain backbone, and the variable region of the rituximab light chain was inserted into a human kappa light chain backbone. The two sequences were synthesized and cloned into the third-generation pLV-hPGK-WPRE lentiviral vector (Vectorbuilder) as set forth in SEQ ID NOs: 6 and 7. The heavy and light chain vectors were used to infect cells using the same MOI for both transgenes, as described in Lathuiliere, 2016, Methods Mol Biol., 1448:139-155.
[0212] Myoblast-immortalized cells obtained from clone 2 in Example 1 were transduced with a lentiviral vector encoding the heavy and light chains of rituximab, a commercialized therapeutic anti-CD20 monoclonal antibody, using a previously described method (Lathuiliere et al., 2016, supra) at different doses of lentivirus (MOI) as described in Example 2. IgG secretion in the culture medium was then quantified, and the functionality of the secreted anti-CD20 IgG was verified by flow cytometry. In a competition assay, human PBMCs (peripheral blood mononuclear cells) were preincubated with different concentrations of either myoblast-produced anti-CD20 IgG or commercial rituximab, and then incubated with a fluorescently tagged anti-CD20 antibody. These experiments confirmed that the produced IgG behaved exactly like rituximab in this assay, as shown in Figure 11A. Furthermore, myoblast-produced IgG was also effective in degranulation assays, which examined the induction of cytotoxic responses (IFN-γ or CD107a overexpression) after B cell lines were exposed to either rituximab or myoblast-produced anti-CD20, as shown in Figure 11B and Figure 11C.
[0213] The resulting anti-CD20 IgG-secreting myoblasts were then loaded into implantable devices as described in Example 5 and FIG. 9 (two cell populations tested for CD20.30 and CD20.100, 10 6The capsules (cells / device) were implanted into the subcutaneous tissue of mice. Prior to implantation, IgG secretion from the capsules was quantified in the culture medium. Anti-CD20 IgG plasma levels were then quantified every two weeks from live animals.
[0214] Transduction of myoblasts to secrete anti-CTLA4 IgG To express anti-human CTLA4 IgG, the variable region of the ipilimumab heavy chain (WO200 / 1014424) was inserted into a human IgG1 heavy chain backbone, and the variable region of the ipilimumab light chain (WO2001 / 014424) was inserted into a human kappa light chain backbone. The two sequences were synthesized and cloned into the third-generation pLV-hPGK-WPRE lentiviral vector (Vectorbuilder) as set forth in SEQ ID NOs: 2 and 3. The heavy and light chain vectors were infected into cells using the same MOI for both transgenes, as described in Lathuiliere, 2016, Methods Mol Biol., 1448:139-155.
[0215] Myoblast-immortalized cells obtained from clone 2 in Example 1 were transduced with a lentiviral vector encoding the heavy and light chains of ipilimumab, a commercialized therapeutic anti-CTLA4 monoclonal antibody, using a previously described method (Lathuiliere et al., 2016, supra) at different doses of lentivirus (MOI) as described in Example 2. IgG secretion in the culture medium was then quantified by ELISA, and the biological activity of the secreted anti-CTLA4 IgG was demonstrated in a CTLA-4 blocking bioassay, as shown in Figure 13. In this study, aAPC / Raji cells and CTLA-4 effector cells served as antigen-presenting cells and effector cells, respectively. CTLA-4 effector cells were Jurkat T cells expressing human CTLA-4 and a luciferase reporter gene, whose expression was regulated by the upstream NFAT-RE. The aAPC / Raji cells were Raji cells that express endogenous CD80 / CD86 and cell surface proteins that can activate TCR.
[0216] When a positive control or secreted anti-CTLA-4 antibody was added, it was able to block the interaction between CTLA-4 and CD80 / CD86, relieving immunosuppression and resulting in T cell activation and NFAT-induced luciferase expression. The blocking activity of the anti-CTLA-4 antibody was evaluated by measuring luciferase activity. As shown in Figure 13, the myoblast-produced antibody expressed by genetically engineered immortalized human myoblasts according to the present invention was compared with an ipilimumab biosimilar as a positive control. The assay demonstrated that the myoblast-produced anti-CTLA-4 antibody exhibited significant blocking activity against the interaction between CTLA-4 and CD80 / CD86. EC 50 was comparable to the positive control (Yervoy™, Bristol-Myers Squibb), i.e., 1.519 compared to 1.573 for the control.
[0217] Transduction of myoblasts to secrete anti-amyloid beta (gantenerumab) To express anti-human amyloid beta IgG, the variable region of the gantenerumab heavy chain (EP1960428) was inserted into a human IgG1 heavy chain backbone, and the variable region of the gantenerumab light chain (EP1960428) was inserted into a human kappa light chain backbone. The two sequences were synthesized and cloned into the third generation pLV-hPGK-WPRE lentiviral vector (Vectorbuilder) as set forth in SEQ ID NOs: 3 and 4. The heavy and light chain vectors were infected into cells using the same MOI for both transgenes, as described in Lathuiliere, 2016, supra.
[0218] Next, the immortalized myoblast cells obtained from clone 2 in Example 1 were transduced with a lentiviral vector encoding the heavy and light chains of gantenerumab, an anti-amyloid-beta monoclonal antibody currently undergoing Phase III clinical trials, prepared as described above, using a method previously described (Lathuiliere et al., 2016, supra), at different doses (MOI) of lentivirus as described in Example 2. IgG secretion in the culture medium was then quantified by ELISA. The functionality of the antibody was tested by immunohistochemistry on brain sections from human Alzheimer's disease cases. Briefly, sections were deparaffinized, antigen retrieval was performed in citrate buffer, and the sections were incubated with the supernatant of transduced human myoblasts overnight at 4°C. After washing in PBS, secondary antibodies were incubated for 2 hours at room temperature. The sections were washed and imaged under a microscope. Positive staining was observed in the sections, indicating that the secreted antibody was functional (arrows, Figure 14).
[0219] Cross-species proteins To test whether the immortalized human myoblasts of the present invention can be genetically engineered to produce proteins from different species, the immortalized myoblast clones obtained in Example 1 were transduced with different doses (MOI) of lentiviral vector encoding murine GM-CSF (mu-GM-CSF) protein. Individual mu-GM-CSF-secreting clones were then isolated from the transduced population, and one clone was selected and encapsulated into an implantable form as described in Example 5 and Figure 9 (10 6 cell / device). Delivery of muGM-CSF was quantified in vitro for several weeks.
[0220] The bioactivity of secreted muGM-CSF was confirmed in in vivo experiments, where a significant cellular immune response was detected around subcutaneously implanted encapsulated devices. MuGM-CSF secretion levels were measured before implantation and at different time points after explantation (1, 3, 5, and 7 days). Some capsules were maintained in vitro throughout the experiment as a reference for comparison. A decrease in secretion levels was observed, consistent with previous findings that the massive immune infiltrate generated by GM-CSF bioactivity affects encapsulated cell survival. The influx of inflammatory cells may reduce the diffusion of oxygen and nutrients toward encapsulated cells.
[0221] All these data confirm that the immortalized human myoblasts of the present invention exhibit exceptional long-term survival in an encapsulated environment, maintaining myoblast characteristics for over 100 days. These immortalized human myoblasts can be genetically engineered to produce high levels of proteins of interest (e.g., antibodies, antibody fragments, growth factors, cytokines, etc.) in the encapsulated environment in which they can proliferate. Finally, once encapsulated, these cells can be frozen in place after loading and later thawed, an important feature that makes them highly advantageous for further clinical applications.
[0222] Example 5 Comparing the behavior of immortalized cells of the present invention in different devices In the following experiment, two types of implantable capsules are compared: capsules as described in Figure 9 for groups A and B, and a capsule as described in WO2017 / 064571 (conventional capsule) for group C for comparison. Group A: Capsules are loaded with cells of the present invention (an immortalized human myoblast cell line expressing human GM-CSF (cell line deposited under the number CCOS1901). Group B: Capsules are loaded with a control cell line: K562 human erythroleukemia cells, which express human GM-CSF. Group C: Capsules are loaded with the same control cell line: K562 human erythroleukemia cells expressing human GM-CSF.
[0223] Conventional capsules do not contain a support matrix, and therefore are not suitable for loading adherent cells, such as human myoblasts. To compare the efficiency of two different capsules to produce huGM-CSF over time, the K562 human erythroleukemia cell line, which expresses human GM-CSF, was used as a surrogate cell line for producing the protein of interest. Groups B and C provide a direct comparison of the performance of the two different capsules because they house the same genetically engineered cell line according to the present invention, expressing the same therapeutic protein of interest.
[0224] Approximately 800,000 cells were loaded into the capsules under sterile culture conditions. The capsules were maintained in culture medium at 37°C and 5% CO2. Delivery of human GM-CSF was quantified in the culture medium using an ELISA (Kit No. KHC2011, Thermo Fischer) and reported in ng / 24 h (Figure 12A).
[0225] The capsules were then implanted into the subcutaneous tissue of mice for one week. After sacrifice, the capsules were removed from the animals and placed in culture medium to quantify human GM-CSF delivery (FIG. 12B). In addition, GM-CSF was quantified in mouse serum (FIG. 12C) and the subcutaneous tissue surrounding the capsule (FIG. 12D).
[0226] These data confirm that culturing a known genetically engineered K562 human erythroleukemia cell line expressing human GM-CSF in a macrocapsule containing a matrix according to one embodiment of the present invention is an improvement over capsules as previously described in WO 2017 / 064571. However, the combination of the novel genetically engineered immortalized myoblasts according to the present invention in a macrocapsule containing a matrix according to one embodiment of the present invention is by far the most efficient for achieving sustained and stable GM-CSF production both in vitro and in vivo.
[0227] Example 6 A feasible variety of genetically modified immortalized human myoblast cell lines for producing antigens of interest Whether the immortalized myoblast cells according to the present invention can be genetically engineered to express and secrete an antigen of interest, for example, for the purpose of vaccination, was tested as follows.
[0228] To express the COVID-19 spike protein trimer [NC_045512.2(21563..25384)], the DNA sequence encoding residues 1–1,208 of the COVID-19 S protein (UNIPROT P0DTC2 SPIKE_SARS2) was modified by proline substitutions at positions 986 and 987, GSAS substitution at positions 682–685 of the furin cleavage site, addition of a T4 fibritin trimerization domain, and codon optimization for expression in human cells (SEQ ID NO: 1). This modified sequence was then synthesized and cloned into the third-generation pLV-hPGK-WPRE lentiviral vector (Vectorbuilder). Myoblasts were infected at various MOIs. Secretion of the spike protein in the culture medium was assessed by dot blot analysis. Briefly, 3 ml of pure or diluted culture supernatant was applied to a nitrocellulose membrane, blocked in PBS with 3% milk powder, washed three times in PBS, and probed overnight with 1 mg / ml AI 334 (US2010 / 0172917; Yuan et al., 2020, Science, 8;368(6491):630-633) or AQ 806 (https: / / oap.unige.ch / journals / abrep / article / view / 186; https: / / oap.unige.ch / journals / abrep / article / view / 219; Wrap et al., 2020, Cell, 28;181(5):1004-1015) antibodies (available from the Geneva Antibody Facility https: / / www.unige.ch / medecine / antibodies / cov-resources / ). After incubation with an HRP-conjugated secondary antibody, the membrane was denatured. Analysis demonstrated that the spike protein was secreted into the supernatant of transduced immortalized myoblasts (Figure 15).
[0229] These data confirm that the immortalized myoblast cells of the present invention can be successfully modified to express a wide variety of proteins of therapeutic interest. In the case of viral antigens, the immortalized myoblast cells of the present invention genetically engineered to express them can be advantageously used in vaccination strategies, especially in combination with agents that enhance the immune response. [Explanation of symbols]
[0230] 1 capsule 2 Cell storage area 12 Cell storage end 12a Cell loading end 12b Extractor end 5 Porous membrane, PES membrane 13 Cell Storage Room 6. Membrane support, coil, stainless steel coil 7. Cell Support Matrix 14 yarn, polyester yarn 3 Extractor part 8 anchor tube 8a Connection end 9 Removal line 15 Anchor part 15a knots 16 Thread part 18a Adhesive 4 Connecting part 10 Connectors 18b Adhesives, (photo)curable adhesives 20 Cell loading device 22 outlet nozzle, connection (to the capsule of the cell loading device) 18c adhesive 24 cells D Membrane diameter (internal) L membrane length L / D length / diameter ratio
[0231] [Sequence table] SEQ ID NO:1 - DNA sequence for spike protein expression by immortalized myoblasts
[0232] [ka]
[0233] [ka]
[0234] SEQ ID NO:2 - Lentiviral vector construct encoding the light chain of ipilimumab (pLV-hPGK-WPRE)
[0235] [ka]
[0236] [ka]
[0237] [ka]
[0238] [ka]
[0239] SEQ ID NO: 3 - Lentiviral vector construct encoding the heavy chain of ipilimumab (pLV-hPGK-ipi-HC-WPRE)
[0240] [ka]
[0241] [ka]
[0242] [ka]
[0243] [ka]
[0244] SEQ ID NO: 4 - Lentiviral vector construct encoding the heavy chain of gantenerumab (pLV-hPGK-Gant HC-WPRE)
[0245] [ka]
[0246] [ka]
[0247] [ka]
[0248] [ka]
[0249] SEQ ID NO: 5 - Lentiviral vector construct encoding the light chain of gantenerumab (pLV-hPGK-Gant LC-WPRE)
[0250] [ka]
[0251] [ka]
[0252] [ka]
[0253] [ka]
[0254] SEQ ID NO: 6 - Lentiviral vector construct encoding the light chain of rituximab (pLV-hPGK-ritux-LC-WPRE)
[0255] [ka]
[0256] [ka]
[0257] [ka]
[0258] [ka]
[0259] SEQ ID NO: 7 - Lentiviral vector construct encoding the heavy chain of rituximab (pLV-hPGK-ritux-HC-WPRE)
[0260] [ka]
[0261] [ka]
[0262] [ka]
[0263] [ka]
Claims
1. 1. A method for establishing an immortalized human myoblast cell line, comprising: a) providing at least one human primary myoblast cell expressing the myoblast phenotypic markers CD56, CD82, and CD146; b) transducing said at least one human primary myoblast cell with a lentiviral vector encoding the cyclin-dependent kinase 4 (CDK4) gene and a lentiviral vector encoding the catalytic subunit gene of human telomerase (hTERT) to achieve immortalization of said human primary myoblast cell; c) from the at least one immortalized human primary myoblast obtained in step b), growing cells in a myoblast cell growth medium and isolating each of the obtained cells that display at least one of the myoblast phenotypic markers from the growth medium into a separate culture medium; d) separately growing each isolated cell obtained in step c) in an individual culture and growth medium; e) selecting, from all the individual culture and growth media of step d), by single cell cloning from the parent cells, at least one cell line having improved stable expression of said myoblast phenotypic markers; f) selecting individual clones based on the myogenic potential of at least one selected cell line, wherein myogenic potential is the ability of the cells to form myotubes; g) selecting individual clones based on their ability to survive in the encapsulation device A method comprising:
2. The method of claim 1 , further comprising the steps of: h) Further improving the selected cell line by sequentially repeating steps d) to g).
3. 3. The method of claim 1 or 2, wherein step b) is carried out using two separate lentiviral vectors.
4. The method according to any one of claims 1 to 3, wherein the lentiviral vector is selected from a pCLX-type lentiviral vector and a single bicistronic vector.
5. 5. The method of any one of claims 1 to 4, wherein the encapsulation device comprises a cell support matrix comprising at least one yarn, and wherein the cells within the encapsulation device are aligned along the fibers of the yarn.
6. An immortalized human myoblast cell line derived from primary human myoblasts, which expresses CDK4 and hTERT in the absence of expression of antibiotic resistance genes, retains the ability to differentiate into myotubes, and is triple positive for CD56, CD82, and CD146, or a composition comprising said immortalized human myoblast cell.
7. An immortalized human myoblast cell line deposited at CCOS under accession number 1902 or a composition comprising said immortalized human myoblast cell line.
8. 1. A method for preparing genetically engineered immortalized human myoblasts that express a therapeutic protein under hypoxic conditions, comprising: i) providing at least one immortalized human primary myoblast obtained by the method of claim 1 or according to claim 6, ii) transducing said at least one immortalized human primary myoblast cell with a lentiviral vector for expressing a target protein under the control of a phosphoglycerate kinase (PGK) promoter; iii) separately growing each isolated cell obtained in step ii) in an individual culture and growth medium; iv) selecting at least one cell line from all the individual culture and growth media of step iii) that has the highest secretion level of the target protein; v) controlling the myogenic potential of at least one selected cell line A method comprising:
9. The method of claim 8, wherein the phosphoglycerate kinase (PGK) promoter is a human PGK promoter.
10. The method of claim 8, wherein the target protein is human GM-CSF.
11. The method of claim 8, wherein the target protein is a human monoclonal antibody.
12. The method of claim 8, wherein the target protein is selected from rituximab, ipilimumab, and gantenerumab.
13. The method of claim 8, wherein the target protein is an antigen.
14. The method of claim 13, wherein the target protein is a viral antigen.
15. The method described in claim 13, wherein the target protein is a COVID-19 spike protein or an antigenic fragment thereof.
16. A composition comprising an immortalized human myoblast cell line described in claim 6 or 7, which has been genetically engineered to further express at least one therapeutic protein or antigen, retain myoblast characteristics, and be capable of secreting said therapeutic protein or antigen.
17. A genetically engineered and immortalized human myoblast cell line that secretes GM-CSF, deposited at CCOS under accession number 1901, or a composition comprising said genetically engineered and immortalized human myoblast cell line.
18. 17. A pharmaceutical composition comprising at least one immortalized human myoblast according to claim 16 and a pharmaceutically acceptable carrier, diluent or excipient thereof.
19. 17. A pharmaceutical preparation for the prevention and / or treatment of a disorder or disease, comprising the genetically engineered immortalized human myoblasts of claim 16.
20. A pharmaceutical preparation for the prevention and / or treatment of a disorder or disease according to claim 19, selected from the group consisting of cancer, inflammatory disorders, infectious diseases, viral infections, and neurodegenerative disorders.
21. 21. The pharmaceutical formulation of claim 20, wherein the cancer is selected from non-Hodgkin's lymphoma, head and neck cancer, melanoma, lung, bladder, renal cell carcinoma, triple-negative breast cancer, colorectal, gastric, pancreatic, ovarian, prostate, sarcoma, and chordoma.
22. 21. The pharmaceutical formulation according to claim 19 or 20 for the prevention and / or treatment of viral infections.
23. 23. The pharmaceutical preparation of claim 22, wherein the prevention is vaccination with a viral antigen.
24. 23. The pharmaceutical formulation of claim 22, wherein the viral infection is an infection caused by coronavirus 19 (COVID-19).
25. 17. A biocompatible implantable device or kit for the prevention and / or treatment of a disorder or disease, comprising at least one immortalized human myoblast according to claim 16 in a cell culture medium, wherein the disorder or disease is selected from the group consisting of cancer, inflammatory disorders, infectious diseases, viral infections, and neurodegenerative disorders.
Citation Information
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