Method for producing cell suspension and method for producing adherent cells
By culturing adherent cells with microcarriers in controlled volumes and using a combination of stirring methods, the method addresses the challenge of large-scale stem cell and exosome production, achieving high yields with reduced contamination and improved cell survival.
Patent Information
- Application Number
- JP2021538009
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-03-13
- Filing Date
- 2020-12-22
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2040-12-22
AI Technical Summary
Current technologies are inadequate for efficiently producing large quantities of stem cells and exosomes, which are crucial for clinical applications and disease treatment, due to limitations in large-scale cell culture methods.
A method involving culturing adherent cells with microcarriers in sequential steps with controlled volumes, using intermittent and continuous stirring to promote cell migration and proliferation, resulting in a homogeneous cell population with high survival rates.
This method enables efficient production of large amounts of adherent cells and exosomes, maintaining cell integrity and function while reducing contamination and damage, thus enhancing the scalability and efficiency of cell culture processes.
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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a method for producing a cell suspension, a method for producing adherent cells, a method for producing a useful substance-containing liquid, and a method for producing a useful substance. [Background technology]
[0002] Adherent cells are cells that require a scaffold for proliferation. Generally, a scaffold culture carrier is used to culture adherent cells. When these adherent cells are used for cell preparations, useful substance production, etc., they need to be grown in large quantities. Biochemical Engineering Journal, 120 (2017), pp. 49-62, investigates a method for mass culturing human mesenchymal stromal cells using microcarriers as culture carriers.
[0003] On the other hand, extracellular vesicles such as exosomes are known as substances secreted from cells. International Publication No. 2009 / 105044 discusses a method for producing particles that contain at least one biological property of mesenchymal stem cells, which includes isolating the particles from mesenchymal stem cell conditioned medium (MSC-CM). Summary of the Invention [Problem to be solved by the invention]
[0004] Stem cells have the potential to proliferate and differentiate, making them promising candidates for clinical applications in the field of regenerative medicine. Clinical applications require a large number of stem cells. Furthermore, exosomes isolated from stem cells contain various physiologically active substances, making them promising candidates for disease treatment and diagnostic methods. Obtaining sufficient amounts of exosomes also requires a large number of stem cells. However, there is currently room for improvement in the technology for large-scale stem cell culture.
[0005] Therefore, the present disclosure provides a method for efficiently producing a large amount of a cell suspension. The present disclosure also provides a method for efficiently producing a large amount of adherent cells. Furthermore, the present disclosure provides a method for efficiently producing a large amount of a useful substance-containing liquid, and a method for efficiently producing a large amount of a useful substance. [Means for solving the problem]
[0006] This disclosure includes various embodiments of the present invention, examples of which are provided below.
[0007] One embodiment relates to a method for producing a cell suspension, comprising the following steps (A), (B), and (C): (A) culturing the adherent cells in a cell suspension containing the adherent cells, microcarriers, and a medium, the volume of which is 0.3 L or more; (B) culturing the adherent cells obtained through (A) in a cell suspension containing the adherent cells, microcarriers, and a medium, the volume of which is 5 L or more; and (C) culturing the adherent cells obtained through (B) in a cell suspension containing the adherent cells, microcarriers, and a medium, the volume of which is 10 L or more;
[0008] Another embodiment relates to a method for producing a cell suspension, comprising obtaining a cell suspension containing adherent cells, fresh microcarriers, and medium, intermittently stirring the cell suspension, and continuously stirring the cell suspension after the intermittent stirring.
[0009] Yet another embodiment relates to a method for producing adherent cells, comprising providing a cell suspension obtained by the production method according to any of the above embodiments, and obtaining adherent cells from the cell suspension.
[0010] Yet another embodiment relates to a method for producing a useful substance-containing liquid, which includes preparing a cell suspension obtained by a manufacturing method according to any of the above embodiments, and obtaining a useful substance-containing liquid from the cell suspension.
[0011] Yet another embodiment relates to a method for producing a useful substance, which includes preparing a cell suspension obtained by a manufacturing method according to any of the above embodiments, or a useful substance-containing liquid obtained by a manufacturing method according to any of the above embodiments, and obtaining a useful substance from the cell suspension or the useful substance-containing liquid. [Effects of the Invention]
[0012] The present disclosure provides a method for efficiently producing a large amount of a cell suspension. The present disclosure also provides a method for efficiently producing a large amount of adherent cells. Furthermore, the present disclosure provides a method for efficiently producing a large amount of a useful substance-containing liquid and a method for efficiently producing a large amount of a useful substance. [Brief explanation of the drawings]
[0013] [Figure 1] FIG. 1 is a conceptual diagram showing a method for producing a cell suspension in an example. DETAILED DESCRIPTION OF THE INVENTION
[0014] The following describes embodiments of the present invention. The present invention is not limited to the following embodiments. The following embodiments can be implemented alone or in combination.
[0015] <Method of manufacturing cell suspension> [Production method including steps (A), (B) and (C)] According to an embodiment of the present disclosure, a method for producing a cell suspension includes the following steps (A), (B), and (C): (A) culturing the adherent cells in a cell suspension containing the adherent cells, microcarriers, and a medium, the volume of which is 0.3 L or more; (B) culturing the adherent cells obtained through (A) in a cell suspension containing the adherent cells, microcarriers, and a medium, the volume of which is 5 L or more; and (C) culturing the adherent cells obtained through (B) in a cell suspension containing the adherent cells, microcarriers, and a medium, the volume of which is 10 L or more;
[0016] In the present disclosure, the above steps (A), (B), and (C) may be referred to as step (A), step (B), and step (C), respectively. However, the term "step" includes not only independent steps, but also steps that cannot be clearly distinguished from other steps, as long as the operation specified in the "step" is carried out.
[0017] According to a method for producing a cell suspension comprising steps (A), (B), and (C), adherent cells can be easily mass-cultured, and a homogeneous cell population with a good survival rate can be obtained after mass culture. For mass culture of adherent cells, a method is sometimes used in which adherent cells are detached from the scaffold culture support, subcultured, and cultured. However, subculture procedures that involve separation of adherent cells from microcarriers by detachment or the like can cause contamination or damage to the adherent cells. According to the present disclosure, a simple method for culturing a cell suspension containing fresh microcarriers by sequentially performing steps (A), (B), and (C) while maintaining a specific volume control promotes the movement of adherent cells between microcarriers, enabling efficient subculture of adherent cells and achieving mass culture of adherent cells.
[0018] A cell suspension refers to a liquid containing cells, where the cells may or may not be attached to microcarriers.
[0019] [Adherent cells] The adhesive cells are not particularly limited as long as they are cells known to exhibit adhesiveness to the selected substrate, and examples thereof include somatic cells, stem cells, etc. Examples of somatic cells include endothelial cells, epidermal cells, epithelial cells, cardiac muscle cells, myoblasts, nerve cells, bone cells, osteoblasts, fibroblasts, adipocytes, hepatocytes, kidney cells, pancreatic cells, adrenal cells, periodontal ligament cells, gingival cells, periosteal cells, skin cells, dendritic cells, macrophages, etc.
[0020] The adherent cells are preferably cells derived from animals, more preferably cells derived from mammals. Examples of mammals include humans, monkeys, chimpanzees, cattle, pigs, horses, sheep, goats, rabbits, rats, mice, guinea pigs, dogs, and cats. The adherent cells may be cells derived from tissues such as skin, liver, kidneys, muscles, bones, blood vessels, blood, and nervous tissue. While one type of cell is usually cultured alone, two or more types may also be cultured in combination. The cells may be primary cells derived from tissues, or may be cell lines established by immortalization. Furthermore, the cells may be artificially established cells.
[0021] In one embodiment, the adherent cells may be stem cells. Examples of stem cells include somatic stem cells such as mesenchymal stem cells, hematopoietic stem cells, neural stem cells, bone marrow stem cells, and germline stem cells. The adherent cells may be mesenchymal stem cells or bone marrow mesenchymal stem cells. Mesenchymal stem cells broadly refer to somatic stem cells that exist in various tissues of the human body and can differentiate into all or some of the mesenchymal cells, such as osteoblasts, chondrocytes, and adipocytes. Stem cells may also include induced pluripotent stem cells (iPS cells) and embryonic stem cells (ES cells). In one embodiment, the method for producing a cell suspension according to the present disclosure is suitable for mass production of mesenchymal stem cells.
[0022] [Microcarrier] Microcarriers are carriers that serve as scaffolds for cell growth in adherent cell culture. Microcarriers known as carriers for cell culture can be used. The microcarrier material may be organic, inorganic, or a composite of these materials, and may be soluble or insoluble. Examples of organic materials include synthetic polymers such as polystyrene, polyester, polyurethane, polyethylene, polypropylene, polyvinyl alcohol, (meth)acrylic polymers, (meth)acrylamide polymers, silicone polymers, epoxy resins, and urethane resins; and natural polymers such as cellulose, dextran, collagen, polygalacturonic acid, polyalginic acid, and gelatin. Examples of inorganic materials include glass, ceramic, metal, alloy, and metal oxide. From the viewpoint of cytocompatibility, the microcarrier material preferably contains an organic material, and more preferably contains a natural polymer. From the viewpoint of operability, soluble microcarriers are preferred, but are not limited to this. In the present disclosure, the term "soluble microcarrier" refers to a microcarrier that can be decomposed by means such as enzymes to the extent that adhered cells can be released from the microcarrier.
[0023] To promote cell adhesion, cationic functional groups may be introduced onto the surface of the microcarrier. Examples of cationic functional groups include groups containing substituted or unsubstituted amino groups such as dimethylamino groups, diethylamino groups, and amino groups. Furthermore, to promote cell adhesion, a cell adhesive polymer may be disposed on the surface of the microcarrier. The cell adhesive polymer may be a polypeptide or polysaccharide that exhibits cell adhesive properties, such as collagen, gelatin, alginic acid, Matrigel™ (BD Biosciences), hyaluronic acid, laminin, fibronectin, vitronectin, elastin, heparan sulfate, dextran, dextran sulfate, and chondroitin sulfate. The cell adhesive polymer may be a partial peptide or oligosaccharide that exhibits cell adhesive properties.
[0024] Examples of the shape of the microcarrier include spherical, flat, cylindrical, plate-like, and prismatic shapes. The microcarrier preferably includes a spherical microcarrier. The microcarrier may be a porous microcarrier having internal pores, or a microcarrier having no internal pores.
[0025] From the viewpoint of promoting cell proliferation, the average particle size (D50) of the microcarriers is, for example, 50 to 1,000 μm, preferably 100 to 500 μm, and more preferably 150 to 250 μm. The average particle size of the microcarriers is the value measured as the median diameter (D50) in physiological saline or culture medium. The average particle size of the microcarriers can be measured using a laser diffraction / scattering particle size distribution analyzer.
[0026] As the microcarriers, fresh or used microcarriers can be used, and it is preferable to use fresh microcarriers. In this disclosure, "fresh microcarriers" refers to microcarriers that have not been used as carriers (scaffolds) for cell culture, i.e., unused microcarriers. In this disclosure, "used microcarriers" refers to microcarriers that have already been used as carriers for cell culture.
[0027] The concentration of microcarriers in the suspension can be adjusted appropriately based on the shape, size, surface area, etc. of the microcarriers, but can be, for example, 0.01 to 100 g / L, 0.5 to 50 g / L, or 1 to 20 g / L.
[0028] [Culture medium] The production method according to the present disclosure uses a liquid medium as the medium. The medium preferably contains inorganic salts, amino acids, sugars, and water. The medium may further contain optional components such as serum, nucleosides and / or nucleotides, vitamins, hormones, antibiotics, growth factors, and adhesion factors. The medium may be a medium known as a basal medium for cell culture.
[0029] Any medium known to be used for culturing selected cells can be used without particular limitation. Examples include DMEM (Dulbecco's Modified Eagle's Medium), MEM (Eagle's Minimum Essential Medium), αMEM (Eagle's Minimum Essential Medium α-modified), GMEM (Glasgow's Minimum Essential Medium), IMDM (Iscove's Modified Dulbecco's Medium), Ham's F12 (Ham's Nutrient Mixture F-12), RPMI-1640 (RPMI-1640 medium), McCoy's 5A (McCoy's 5A medium), MSC growth medium 2 (Promocell), Prime XV XSFM (Irvine Scientific), and mixtures containing two or more selected from these. In addition to these, known media can also be used, particularly media known to be used for culturing stem cells. The medium used for culturing can be one that does not contain xenogeneic components. The xenogeneic component-free medium may contain a serum substitute (e.g., Knockout Serum Replacement (KSR) (Invitrogen), Chemically-defined Lipid concentrated (Gibco), Glutamax (Gibco), etc.) instead of animal-derived serum.
[0030] From the viewpoint of promoting cell proliferation, the medium preferably contains nucleosides and / or nucleotides, and more preferably contains nucleosides. The nucleosides may be ribonucleosides, deoxyribonucleosides, or a mixture thereof. The nucleotides may be ribonucleotides, deoxyribonucleotides, or a mixture thereof. Examples of bases contained in nucleosides and nucleotides include purine bases such as adenine and guanine, and pyrimidine bases such as cytosine, thymine, and uracil. When the medium contains nucleosides and / or nucleotides, the concentration of these in the medium can be 1 to 20 mg / L, or 5 to 10 mg / L.
[0031] [culture] The conditions for culturing adherent cells may be adjusted depending on the type of cell to provide conditions suitable for cell proliferation. The culture temperature may be, for example, 20 to 45°C, preferably 30 to 40°C. The carbon dioxide concentration may be, for example, 1 to 20% by volume, preferably 3 to 15% by volume. In the case of mammalian cells, a temperature of 37°C and a carbon dioxide concentration of 5% (v / v) are generally used. Examples of culture vessels include flasks, bioreactors, tanks, and culture bags.
[0032] The culture can be carried out by stirring or shaking the cell suspension. Each step may include a period during which stirring or shaking is stopped. The stirring may be intermittent stirring only, continuous stirring only, or a combination of intermittent stirring and continuous stirring. The explanations, aspects, examples, conditions, etc. of intermittent stirring and continuous stirring described below can be applied independently to steps (A), (B), and / or (C).
[0033] The culture is preferably carried out by stirring or shaking the cell suspension placed in the culture vessel, with the microcarriers suspended in the cell suspension. The stirring method can be appropriately selected depending on the type and size of the culture vessel selected according to the volume of the cell suspension, as described below, and examples include methods using a magnetic stirrer, mechanical stirrer, homomixer, homogenizer, vortex mixer, etc. The shaking method includes, for example, methods using a shaker. According to one embodiment, stirring the cell suspension is preferred from the viewpoint of obtaining a suspension in which the microcarriers are well dispersed in the cell suspension.
[0034] The stirring speed at which microcarriers can be well dispersed in the cell suspension depends on the shape and volume of the culture vessel, but generally can be 30 to 200 rpm, preferably 40 to 100 rpm, for a 1 to 50 L stirred tank bioreactor. The stirring speed may be changed during culture depending on the suspension state of the microcarriers or cells.
[0035] [Process (A)] In step (A), adherent cells are cultured in a cell suspension containing adherent cells, microcarriers, and medium, with a volume of 0.3 L or more. The culture allows the adherent cells to attach to the microcarriers and proliferate, resulting in a cell suspension containing adherent cells adhered to the microcarriers. That is, the adherent cells obtained through step (A) comprise a population of adherent cells adhered to the microcarriers. Culture can be carried out for a predetermined period of time. From the viewpoint of homogeneous and efficient mass culture of adherent cells, the volume of the cell suspension can be, for example, 0.3 L or more, 0.5 L or more, or 1 L or more. There is no particular upper limit to the volume of the cell suspension, but from the viewpoint of efficiency and economy, it can be, for example, 10 L or less, or 5 L or less.
[0036] For example, in step (A), a cell suspension containing adherent cells, fresh microcarriers, and medium and having a volume of 0.3 L or more is obtained, and the adherent cells are cultured. In the present disclosure, the cell suspension obtained in step (A) before culture may be referred to as cell suspension (A1). In addition, in the present disclosure, the cell suspension after culture in step (A) may be referred to as cell suspension (A2).
[0037] The cell suspension (A1) can be obtained, for example, by mixing at least adherent cells, fresh microcarriers, and culture medium. More specifically, the cell suspension (A1) can be obtained by mixing at least adherent cells that are not adhered to microcarriers, fresh microcarriers, and fresh culture medium. From the viewpoint of homogeneous and efficient mass culture of adherent cells, the volume of the cell suspension (A1) can be, for example, 0.3 L or more, 0.5 L or more, or 1 L or more. There is no particular upper limit to the volume of the cell suspension (A1), but from the viewpoint of efficiency and economy, it can be, for example, 10 L or less, or 5 L or less.
[0038] The concentration of adherent cells in the cell suspension (A1) is, for example, 1 × 10 3 ~2×105 cells / mL, preferably 5 x 10 3 ~1×10 5 cells / mL, more preferably 1 x 10 4 ~5×10 4 The concentration of fresh microcarriers in the cell suspension (A1) is, for example, 0.1 to 50 g / L, preferably 0.5 to 10 g / L, and more preferably 1 to 5 g / L.
[0039] The culture period in step (A) varies depending on the cell seeding density, cell type, culture conditions, etc., but can generally be the period until the cells have grown sufficiently, for example, until the cell adhesive area of the microcarrier (the area to which adherent cells can adhere) reaches 80% or more, 90% or more, 95% or more, or 100% confluence. In the present disclosure, the growth state of cells in the cell adhesive area can be observed using a fluorescence microscope (manufactured by Keyence Corporation). Specifically, the growth state of cells can be confirmed by determining the percentage of the spreading area of cells adhering to the microcarrier surface relative to the microcarrier surface area (degree of confluence). The culture period can be, for example, 2 to 14 days.
[0040] In step (A), from the viewpoint of efficiency, the culture of adherent cells can be carried out by stirring the cell suspension (A1) under appropriate culture conditions in which the temperature, carbon dioxide concentration, etc. are adjusted. The stirring may be intermittent stirring only, continuous stirring only, or a combination of intermittent stirring and continuous stirring. In one embodiment, step (A) comprises intermittently stirring the cell suspension (A1) and continuously stirring the cell suspension obtained through intermittent stirring. Intermittent stirring and continuous stirring are described below. Intermittent stirring may be performed after continuous stirring, or a combination of intermittent stirring and continuous stirring may be repeated. In another embodiment, the stirring in step (A) consists of only intermittently stirring the cell suspension (A1).
[0041] The volume of the cell suspension (A2) obtained by step (A) can be 0.3 L or more, 0.5 L or more, or 1 L or more. In step (A), medium can be added to the cell suspension (A1) during the culture process, and / or part or all of the medium contained in the cell suspension (A1) during the culture process can be replaced with fresh medium. Two or more cell suspensions (A1) during the culture process can be combined during step (A). In some cases, adherent cells that have not adhered to microcarriers can be added to the cell suspension (A1) during the culture process. There is no particular upper limit to the volume of the cell suspension (A2), but from the standpoint of efficiency and economy, it can be, for example, 10 L or less, or 5 L or less.
[0042] [Process (B)] In step (B), the adherent cells are cultured in a cell suspension containing the adherent cells obtained in step (A), microcarriers, and medium, and having a volume of 5 L or more. Through the culture, the adherent cells that adhere to the microcarriers obtained in step (A) migrate to and attach to another microcarrier, preferably a fresh microcarrier, and proliferate, thereby obtaining a cell suspension containing the adherent cells that adhere to the microcarriers. That is, the adherent cells obtained in step (B) comprise a population of adherent cells that have adhered to the microcarriers. The culture can be carried out for a predetermined period of time. The volume of the cell suspension can be, for example, 5 L or more, 8 L or more, or 10 L or more. From the viewpoint of efficient mass culture of adherent cells, the volume of the cell suspension can be, for example, 50 L or less, 40 L or less, or 30 L or less.
[0043] For example, in step (B), a cell suspension containing the adherent cells obtained through step (A), fresh microcarriers, and medium and having a volume of 5 L or more is obtained, and the adherent cells are cultured. In the present disclosure, the cell suspension obtained in step (B) before culture may be referred to as cell suspension (B1). In addition, in the present disclosure, the cell suspension after culture in step (B) may be referred to as cell suspension (B2).
[0044] The cell suspension (B1) can be obtained, for example, by mixing at least the adherent cells obtained through step (A), fresh microcarriers, and medium. More specifically, the cell suspension (B1) can be obtained by mixing at least a part or all of the cell suspension (A2), fresh microcarriers, and fresh medium. For mixing, two or more cell suspensions (A2) obtained by separately and independently performing step (A) can also be combined and used. In this case, the cell suspension (B1) contains adherent cells derived from two or more cell suspensions (A2).
[0045] In step (B), the culture vessel used in step (A) and containing the cell suspension (A1) may be used continuously, or a culture vessel different from the culture vessel used in step (A) may be used. In the former case, the cell suspension (B1) can be obtained by adding fresh microcarriers and medium to the culture vessel. In the latter case, the cell suspension (B1) can be obtained by adding the cell suspension (A1), fresh microcarriers, and medium to the culture vessel. In either case, the order of addition is not particularly limited.
[0046] From the viewpoint of efficient mass culture of adherent cells, the volume of cell suspension (B1) can be, for example, 5 L or more, 8 L or more, or 10 L or more. From the viewpoint of efficient mass culture of adherent cells, the volume of cell suspension (B1) can be, for example, 50 L or less, 40 L or less, or 30 L or less. The volume of cell suspension (B1) is preferably larger than the volume of cell suspension (A2). From the viewpoint of efficient scale-up from cell suspension (A2) to cell suspension (B1), the ratio of the volume of cell suspension (B1) to the volume of cell suspension (A2) ([volume of cell suspension (B1)] / [volume of cell suspension (A2)]) is, for example, 1.5 to 20, preferably 2 to 10, and more preferably 3 to 6. In particular, when cell suspension (B1) is obtained by mixing part or all of cell suspension (A2), fresh microcarriers, and fresh medium, from the viewpoint of efficiently scaling up from cell suspension (A2) to cell suspension (B1), the ratio of the volume of cell suspension (B1) to the total volume of cell suspension (A2) used for mixing ([volume of cell suspension (B1)] / [total volume of cell suspension (A2) used for mixing]) is, for example, 1.5 to 20, preferably 2 to 10, and more preferably 3 to 8. In the present disclosure, "scale up" means increasing the volume of the culture environment.
[0047] The concentration of adherent cells in the cell suspension (B1) is, for example, 1 x 10 3 ~2×10 5 cells / mL, preferably 5 x 10 3 ~1×10 5 cells / mL, more preferably 1 x 10 4 ~5×10 4 The concentration of fresh microcarriers in the cell suspension (B1) is, for example, 0.1 to 50 g / L, preferably 0.5 to 10 g / L, and more preferably 1 to 5 g / L.
[0048] The culture period in step (B) varies depending on the cell seeding density, cell type, culture conditions, etc., but can generally be the period until the cells have grown sufficiently, for example, until the cell adhesive area of the microcarrier reaches 80% or more, 90% or more, 95% or more, or 100% confluence. The culture period can be, for example, 2 to 10 days.
[0049] In step (B), from the viewpoint of efficiency, the culture of adherent cells can be carried out by stirring the cell suspension (B1) under appropriate culture conditions in which temperature, carbon dioxide concentration, etc. are adjusted. Stirring may be intermittent stirring only, continuous stirring only, or a combination of intermittent stirring and continuous stirring. In one embodiment, step (B) comprises intermittently stirring the cell suspension (B1) and continuously stirring the cell suspension obtained through intermittent stirring. Intermittent stirring and continuous stirring are described below. Intermittent stirring may be performed after continuous stirring, or a combination of intermittent stirring and continuous stirring may be repeated. In another embodiment, the stirring in step (B) consists of only intermittently stirring the cell suspension (B1).
[0050] The volume of the cell suspension (B2) obtained by step (B) can be, for example, 5 L or more, 8 L or more, or 10 L or more. In step (B), medium can be added to the cell suspension (B1) during the culture process, and / or part or all of the medium contained in the cell suspension (B1) during the culture process can be replaced with fresh medium. Two or more cell suspensions (B1) during the culture process can be combined during step (B). In some cases, adherent cells that have not adhered to microcarriers can be added to the cell suspension (B1) during the culture process. There is no particular upper limit to the volume of the cell suspension (B2), but from the perspective of efficient mass culture of adherent cells, it can be, for example, 50 L or less, 40 L or less, or 30 L or less.
[0051] [Process (C)] In step (C), the adherent cells are cultured in a cell suspension containing the adherent cells obtained in step (B), microcarriers, and medium, and having a volume of 10 L or more. Through the culture, the adherent cells that adhere to the microcarriers obtained in step (B) migrate to, attach to, and proliferate on another microcarrier, preferably a fresh microcarrier, thereby obtaining a cell suspension containing the adherent cells that adhere to the microcarriers. That is, the adherent cells obtained in step (C) comprise a population of adherent cells that adhere to the microcarriers. Culture can be carried out for a predetermined period of time. From the viewpoint of efficient mass culture of adherent cells, the volume of the cell suspension can be, for example, 10 L or more, 20 L or more, or 30 L or more. From the viewpoint of efficient mass culture of adherent cells, the volume of the cell suspension can be, for example, 500 L or less, 300 L or less, 150 L or less, 100 L or less, or 80 L or less.
[0052] For example, in step (C), a cell suspension containing the adherent cells obtained through step (B), fresh microcarriers, and medium and having a volume of 10 L or more is obtained, and the adherent cells are cultured. In the present disclosure, the cell suspension obtained in step (C) before culture may be referred to as cell suspension (C1). In addition, in the present disclosure, the cell suspension after culture in step (C) may be referred to as cell suspension (C2).
[0053] The cell suspension (C1) can be obtained, for example, by mixing at least the adherent cells obtained through step (B), fresh microcarriers, and medium. More specifically, the cell suspension (C1) can be obtained by mixing at least a part or all of the cell suspension (B2), fresh microcarriers, and fresh medium. For mixing, two or more cell suspensions (B2) obtained by separately and independently performing step (B) can also be combined and used. In this case, the cell suspension (C1) contains adherent cells derived from two or more cell suspensions (B2).
[0054] From the viewpoint of efficient mass culture of adherent cells, the volume of the cell suspension (C1) can be, for example, 10 L or more, 20 L or more, or 30 L or more. From the viewpoint of efficient mass culture of adherent cells, the volume of the cell suspension (C1) can be, for example, 500 L or less, 300 L or less, 150 L or less, 100 L or less, or 80 L or less. The volume of the cell suspension (C1) is preferably larger than the volume of the cell suspension (B2). From the viewpoint of efficient scale-up from the cell suspension (B2) to the cell suspension (C1), the ratio of the volume of the cell suspension (C1) to the volume of the cell suspension (B2) ([volume of the cell suspension (C1)] / [volume of the cell suspension (B2)]) is, for example, 1.5 to 20, preferably 2 to 10, and more preferably 2 to 6. In particular, when cell suspension (C1) is obtained by mixing part or all of cell suspension (B2), fresh microcarriers, and fresh medium, from the viewpoint of efficiently scaling up from cell suspension (B2) to cell suspension (C1), the ratio of the volume of cell suspension (C1) to the total volume of cell suspension (B2) used for mixing ([volume of cell suspension (C1)] / [total volume of cell suspension (B2) used for mixing]) is, for example, 1.5 to 10, preferably 1.8 to 6, and more preferably 2 to 3.
[0055] The concentration of adherent cells in the cell suspension (C1) is, for example, 1 x 10 3 ~2×10 5 cells / mL, preferably 5 x 10 3 ~1×10 5 cells / mL, more preferably 1 x 10 4 ~5×10 4 The concentration of fresh microcarriers in the cell suspension (C1) is, for example, 0.1 to 50 g / L, preferably 0.5 to 10 g / L, and more preferably 1 to 5 g / L.
[0056] The culture period in step (C) varies depending on the cell seeding density, cell type, culture conditions, etc., but can generally be the period until the cells have grown sufficiently, for example, until the cell adhesive area of the microcarrier reaches 80% or more, 90% or more, 95% or more, or 100% confluence. The culture period can be, for example, 3 to 20 days.
[0057] In step (C), from the viewpoint of efficiency, the culture of adherent cells can be carried out by stirring the cell suspension (C1) under appropriate culture conditions in which temperature, carbon dioxide concentration, etc. are adjusted. Stirring may be intermittent stirring only, continuous stirring only, or a combination of intermittent stirring and continuous stirring. In one embodiment, step (C) comprises intermittently stirring the cell suspension (C1) and continuously stirring the cell suspension obtained through intermittent stirring. Intermittent stirring and continuous stirring are described below. Intermittent stirring may be performed after continuous stirring, or a combination of intermittent stirring and continuous stirring may be repeated. In another embodiment, the stirring in step (C) consists of only intermittently stirring the cell suspension (C1).
[0058] The volume of the cell suspension (C2) obtained by step (C) can be, for example, 10 L or more, 20 L or more, or 30 L or more. In step (C), medium can be added to the cell suspension (C1) during the culture process, and / or part or all of the medium contained in the cell suspension (C1) during the culture process can be replaced with fresh medium. Two or more cell suspensions (C1) during the culture process can be combined during step (C). In some cases, adherent cells that have not adhered to microcarriers can be added to the cell suspension (C1) during the culture process. There is no particular upper limit to the volume of the cell suspension (C2), but from an economical standpoint, it can be, for example, 500 L or less, 300 L or less, 150 L or less, 100 L or less, or 80 L or less.
[0059] [Example of a production method including steps (A), (B), and (C)] In the present disclosure, the method for producing a cell suspension includes steps (A), (B), and (C). A cell suspension containing adherent cells (e.g., cell suspension (C2)) is obtained by performing steps (A), (B), and (C). The adherent cells are subcultured in each step. The method for producing a cell suspension may include each step independently two or more times. An optional step may be included between each step. In one embodiment, the total number of steps (A), (B), and (C) included in the method for producing a cell suspension is preferably six or less, more preferably five or less, and even more preferably three or four times. In one embodiment, the total number of times of "scaling up from cell suspension (A2) to cell suspension (B1)" and "scaling up from cell suspension (B2) to cell suspension (C1)" included in the method for producing a cell suspension is preferably five or less, more preferably four or less, more preferably two or three, and particularly preferably two.
[0060] Examples of the production method include a production method comprising one step (A), one step (B), and one step (C); a production method comprising a plurality of separate and independent steps (A), one step (B) using a combination of two or more cell suspensions (A2) obtained above, and one step (C) (a total of four or more steps); a production method comprising one step (A), a first step (B), a second step (B) using the cell suspension (B2) obtained above, and one step (C) (a total of four steps);
[0061] Examples of optional steps included in the method for producing a cell suspension include thawing frozen cells, washing the cells, seeding the cells, adding microcarriers, adding medium or at least one component contained in the medium to the cell suspension, replacing at least a portion of the medium contained in the cell suspension, allowing the cell suspension to stand, separating the cells from the microcarriers, and performing medium replacement, cell culture, or medium replacement and cell culture before step (A) or after step (C). In one embodiment, the method for producing a cell suspension does not include separating the adherent cells from the microcarriers, such as detaching the adherent cells from the microcarriers. Eliminating the step of separating the adherent cells from the microcarriers can reduce contamination and damage to the adherent cells, maintain the functions of the adherent cells, and improve the economic and time efficiency of cell culture.
[0062] [Method for producing a cell suspension including intermittent stirring and continuous stirring] According to another embodiment of the present disclosure, a method for producing a cell suspension includes obtaining a cell suspension containing adherent cells, microcarriers, and a medium, intermittently stirring the cell suspension, and continuously stirring the cell suspension obtained through the intermittent stirring. Examples of the cell suspension include, but are not limited to, the above-mentioned cell suspension (A1), cell suspension (B1), and cell suspension (C1). The adherent cells, microcarriers, and medium are as described above. The method for producing a cell suspension may include any of the following steps: thawing frozen cells, washing the cells, seeding the cells, adding the medium and at least one component contained in the medium to the cell suspension, replacing at least a portion of the medium contained in the cell suspension, allowing the cell suspension to settle, and separating the cells from the microcarriers.
[0063] According to the present disclosure, mass cultivation of adherent cells can be achieved using a manufacturing method that includes intermittent and continuous stirring. Generally, in culturing adherent cells using microcarriers, continuous stirring is performed to obtain a well-dispersed state of the microcarriers in the cell suspension for culture. In contrast, the present disclosure enables the achievement of a well-suspended state of the microcarriers through a simple method that combines intermittent and continuous stirring, thereby achieving mass cultivation of adherent cells. To further explain this, the precipitation of microcarriers that can occur during continuous and intermittent stirring is thought to be due to variations in microcarrier weight resulting from the amount of adherent cells attached, or the aggregation of microcarriers to which no adherent cells are attached. It can be inferred that such precipitation can be eliminated by the simple method of combining intermittent and continuous stirring, thereby enabling the achievement of a well-suspended state of the microcarriers and achieving mass cultivation of adherent cells. Furthermore, in the present disclosure, in addition to this stirring method, a so-called "bead to bead" culture method is combined, in which fresh microcarriers are added to the culture system, causing adherent cells to migrate from the already adhered microcarriers to other microcarriers with a larger adhesive surface area, resulting in efficient proliferation. However, the present disclosure is not limited to this theory, and thereby enables larger-scale culture.
[0064] In the present disclosure, intermittent stirring refers to alternating between stirring and not stirring at predetermined time intervals. For example, intermittent stirring refers to alternating between stirring for a predetermined time and not stirring for a predetermined time. The alternating may be a combination of stirring and not stirring repeated two or more times ("stirring followed by not stirring" is counted as one combination). The stirring time and the non-stirring time may be the same or different. Furthermore, in two or more repetitions, the stirring time and / or non-stirring time may be the same or different between each repetition. The non-stirring time may be the time during which the cell suspension is allowed to stand.
[0065] The stirring time is, for example, 0.5 to 60 minutes, preferably 1 to 20 minutes, and more preferably 3 to 10 minutes. The time without stirring is, for example, 0.1 to 10 hours, preferably 0.5 to 6 hours, and more preferably 1 to 3 hours. Examples of combinations include "stirring for 0.5 to 60 minutes" followed by "no stirring for 0.1 to 10 hours," "stirring for 1 to 20 minutes" followed by "no stirring for 0.5 to 6 hours," and "stirring for 3 to 10 minutes" followed by "no stirring for 1 to 3 hours."
[0066] The time for intermittent stirring (the total time for performing two or more cycles of "stirring" followed by "not stirring") is, for example, 1 to 80 hours, preferably 10 to 40 hours, and more preferably 20 to 30 hours.
[0067] Continuous stirring, which is performed after intermittent stirring, refers to stirring that is continued for a predetermined period of time. The stirring time is, for example, 1 to 14 days, preferably 2 to 10 days, and more preferably 3 to 7 days. In cell culture, stirring may be temporarily stopped, for example, to add medium to the cell suspension or to replace the medium. This temporary stop does not usually mean the time during which the cell suspension is simply left to stand. The stirring time does not have to be the sum of the stirring time before the temporary stop and the stirring time after the temporary stop. In other words, the stirring time may be measured by dividing it into sections based on the stoppage of stirring.
[0068] Intermittent stirring and continuous stirring may be performed consecutively, or a predetermined period of no stirring may be included between intermittent stirring and continuous stirring. The predetermined period of time is, for example, 0.1 to 24 hours, preferably 0.5 to 5 hours, and more preferably 1 to 2 hours. No stirring may mean leaving the cell suspension to stand. Intermittent stirring may be performed after continuous stirring, or a combination of intermittent stirring and continuous stirring may be repeated.
[0069] The total culture time, including intermittent agitation and continuous agitation, can be appropriately set depending on the type of adherent cells to be cultured, the purpose, and the culture conditions.
[0070] <Method for producing adherent cells> According to an embodiment of the present disclosure, a method for producing adherent cells includes preparing a cell suspension obtained by any of the above embodiments, and obtaining adherent cells from the cell suspension. The method for producing adherent cells may include any of the following steps: The cell suspension obtained by the method for producing a cell suspension includes adherent cells adhered to microcarriers.
[0071] The adherent cells adhered to the microcarriers in the cell suspension can be recovered from the cell suspension using known separation methods such as removal of the supernatant or centrifugation, thereby obtaining the adherent cells in a state where they are adhered to the microcarriers. The adherent cells can then be detached from the microcarriers using known detachment methods such as enzyme treatment and recovered, thereby obtaining the adherent cells. Alternatively, the adherent cells can be obtained by dissolving the microcarriers using known lysis methods and recovering the adherent cells. In another embodiment, a predetermined enzyme or the like can be added to a cell suspension containing adherent cells adhered to microcarriers to detach the adherent cells from the microcarriers, or to dissolve the microcarriers, or both, to make the adherent cells into a recoverable state. The recoverable adherent cells can then be collected using a known separator such as a filter, thereby obtaining the adherent cells.
[0072] <Method for producing useful substance-containing liquid and method for producing useful substance> The cell suspension obtained by the method for producing a cell suspension may contain microcarriers, adherent cells adhered to the microcarriers, and useful substances. The useful substances may be substances secreted from the adherent cells, such as extracellular vesicles such as exosomes, microvesicles, and apoptotic bodies; and functional proteins such as cytokines, hormones, and antibodies.
[0073] According to an embodiment of the present disclosure, a method for producing a useful substance-containing liquid includes preparing a cell suspension obtained by any of the above embodiments, and obtaining a useful substance-containing liquid from the cell suspension. The method for producing a useful substance-containing liquid may further include an optional step.
[0074] An optional step in the method for producing a useful substance-containing solution includes, for example, an additional culturing step for recovering the useful substance. In the additional culturing step, a recovery medium may be used to efficiently recover the useful substance produced within the cells by the above-described method for producing a cell suspension. Examples of recovery media include media that do not contain exosome-containing additives such as FBS and that can support cell growth, and can be selected appropriately depending on the type of useful substance, the type of cells, and the like. For example, when the useful substance contains exosomes, examples of recovery media include DMEM / F12 containing FGF-2, insulin, transferrin, and selenium.
[0075] A useful substance-containing liquid can be obtained by separating the microcarriers and adherent cells in the cell suspension from the useful substance and recovering the liquid containing the useful substance. For separation, known separation methods such as supernatant recovery and centrifugation can be used. For example, a useful substance-containing liquid can be obtained by removing the microcarriers and adherent cells from the cell suspension. The useful substance-containing liquid may be substantially free of microcarriers and adherent cells. In this specification, "a useful substance-containing liquid that is substantially free of microcarriers and cells" means, for example, that there are two or fewer cells and one or fewer microcarriers with a particle size of 50 μm or more per 100 mL of useful substance-containing liquid.
[0076] According to an embodiment of the present disclosure, a method for producing a useful substance includes preparing a cell suspension obtained by any of the above embodiments or a useful substance-containing liquid obtained by any of the above embodiments, and obtaining a useful substance from the cell suspension or the useful substance-containing liquid. The method for producing a useful substance may further include an optional step.
[0077] The useful substance can be obtained by separating the useful substance from other components in the useful substance-containing solution and recovering the useful substance. For separation, known separation methods such as removal of the supernatant and centrifugation can be used. For example, the useful substance can be obtained by isolating it from a cell suspension.
[0078] In one embodiment, the useful substance comprises exosomes. Exosomes are vesicles containing a lipid bilayer. The diameter of exosomes is, for example, 50 to 1000 nm, 50 to 300 nm, or 50 to 200 nm. Because exosomes contain various physiologically active substances such as proteins, nucleic acids, carbohydrates, and lipids, they are expected to be used in disease treatments and diagnostics, pharmaceuticals, cosmetics, and the like.
[0079] When adherent cells are present in a cell suspension, exosomes are secreted from the adherent cells into the cell suspension. Exosomes derived from adherent cells are not particularly limited as long as they are obtained from the above-mentioned adherent cells. For example, exosomes described in International Publication No. 2009 / 105044 can be used.
[0080] The useful substance-containing liquid may be filtered, concentrated, or both filtered and concentrated. For example, the useful substance-containing liquid may be filtered using a membrane with a size or molecular weight cutoff. Alternatively, the useful substance-containing liquid may be filtered or concentrated using tangential flow filtration or ultrafiltration.
[0081] The useful substance in the useful substance-containing liquid can be isolated from the useful substance-containing liquid and used. In this case, the useful substance in the useful substance-containing liquid can be isolated from the useful substance-containing liquid by subjecting the useful substance-containing liquid to a known process such as spray drying or freeze drying.
[0082] When the useful substance-containing liquid is an exosome-containing liquid, the exosomes in the exosome-containing liquid can be separated from other components based on the properties of the exosomes. Exosomes can be isolated from the exosome-containing liquid based on the properties of the exosomes.
[0083] For example, exosomes can be isolated based on molecular weight, size, shape, composition, or biological activity. Specifically, exosomes can be isolated by ultracentrifugation, density gradient ultracentrifugation, size exclusion chromatography, ion exchange chromatography (e.g., CIMmultus TM EV separation (BIA separations), protein separation (e.g., MagCapture TM These methods include separation by capture using the Exosome Isolation Kit PS (Fujifilm Wako Pure Chemical Industries, Ltd.), separation by capture using antibodies, and separation of precipitates using polymers such as polyethylene glycol. These methods can be performed alone or in combination.
[0084] The properties of exosomes can be used to track exosome activity in the method for producing an exosome-containing solution and the method for producing exosomes. For example, exosome activity can be confirmed using static light scattering, dynamic light scattering, a UV-visible detector, a fluorescence detector, or a differential refractive index detector.
[0085] <Example of embodiment> The following are embodiments of the present invention, but the embodiments of the present invention are not limited to the following. [1] A method for producing a cell suspension, comprising the following (A), (B), and (C): (A) culturing the adherent cells in a cell suspension containing the adherent cells, microcarriers, and a medium, the volume of which is 0.3 L or more; (B) culturing the adherent cells obtained through (A) in a cell suspension containing the adherent cells, microcarriers, and a medium, the volume of which is 5 L or more; and (C) culturing the adherent cells obtained through (B) in a cell suspension containing the adherent cells, microcarriers, and a medium, the volume of which is 10 L or more; [2] (A) comprises obtaining a cell suspension containing adherent cells, fresh microcarriers, and a medium, the cell suspension having a volume of 0.3 L or more, and culturing the adherent cells; (B) comprises obtaining a cell suspension containing the adherent cells obtained through (A), fresh microcarriers, and a medium, and having a volume of 5 L or more; and culturing the adherent cells; (C) comprises obtaining a cell suspension containing the adherent cells obtained through (B), fresh microcarriers, and a medium, and having a volume of 10 L or more; and culturing the adherent cells. A method for producing the cell suspension described in [1] above. [3] A method for producing a cell suspension described in [1] or [2] above, wherein the adherent cells obtained through (A) and the adherent cells obtained through (B) comprise a population of cells adhered to microcarriers. [4] (B) comprises mixing the adherent cells obtained through (A), fresh microcarriers, and fresh medium to obtain a cell suspension; (C) comprises mixing at least the adherent cells obtained through (B), fresh microcarriers, and fresh medium to obtain a cell suspension; A method for producing a cell suspension according to [2] or [3] above. [5] A method for producing a cell suspension according to any one of [1] to [4] above, wherein the volume of the cell suspension in (B) is larger than the volume of the cell suspension in (A), and the volume of the cell suspension in (C) is larger than the volume of the cell suspension in (B). [6] The method for producing a cell suspension according to any one of [1] to [5] above, wherein the volume of the cell suspension in (C) is 30 L or more. [7] The method for producing a cell suspension according to any one of [1] to [6] above, wherein at least one selected from the group consisting of (A), (B), and (C) comprises intermittently stirring the cell suspension; or The method for producing a cell suspension according to any one of [1] to [6] above, wherein at least one selected from the group consisting of (A), (B) and (C) comprises intermittently stirring the cell suspension, and continuously stirring the cell suspension obtained through the intermittent stirring. [8] A method for producing a cell suspension, comprising obtaining a cell suspension containing adherent cells, microcarriers, and a medium, intermittently stirring the cell suspension, and continuously stirring the cell suspension obtained through the intermittent stirring, wherein the cell suspension containing adherent cells, microcarriers, and a medium may be at least one cell suspension selected from the group consisting of (A), (B), and (C) above. [9] Preparing a cell suspension obtained by the manufacturing method according to any one of [1] to [8] above; and Obtaining adherent cells from the cell suspension A method for producing adherent cells, comprising:
[10] Preparing a cell suspension obtained by the manufacturing method according to any one of [1] to [8] above; and Obtaining a useful substance-containing liquid from the cell suspension A method for producing a useful substance-containing liquid, comprising:
[11] Preparing a cell suspension obtained by the manufacturing method described in any one of [1] to [8] above, or a useful substance-containing liquid obtained by the manufacturing method described in
[10] above; and Obtaining a useful substance from the cell suspension or the useful substance-containing liquid A method for producing a useful substance, comprising:
[12] The method for producing a pharmaceutical composition according to
[10] or
[11] above, wherein the useful substance comprises at least one selected from the group consisting of extracellular vesicles and functional proteins. [Example]
[0086] The embodiments of the present invention will be described in more detail with reference to examples, but the embodiments of the present invention are not limited to the following examples.
[0087] Example 1: Preparation of cell suspension and adherent cells <Two-dimensional culture of hMSCs> Human mesenchymal stem cells (hMSCs) at passage 2 obtained from Lonza, Inc. were prepared. Eagle's Minimum Essential Medium alpha modified (MEM alpha, nucleosides (manufactured by Gibco)) containing nucleosides and 10% (by volume) fetal bovine serum (FBS) (manufactured by Biological Industries) was used as the culture medium. hMSCs were seeded in a tissue culture flask at a density of 3,000 cells / cm 2 and cultured in an incubator at 37 °C and 5% (by volume) CO2 for 7 days. Using an enzyme solution (TrypLE Select, manufactured by Thermo Fisher Scientific), the cells were detached from the flask to obtain passage 3 hMSCs. Passage 3 hMSCs were seeded in a multi-layer cell culture vessel (10-layer Nunc EasyFill Cell Factory, manufactured by Thermo Fisher Scientific) at a density of 3,000 cells / cm 2 and cultured for 7 days, followed by enzyme treatment to obtain passage 4 cells. The obtained passage 4 hMSCs were cryopreserved in liquid nitrogen.
[0088] <Large-scale culture of hMSCs (production of cell suspension)> The following steps (A), (B), and (C) were performed to sequentially increase the culture scale and perform large-scale culture of hMSCs. Figure 1 shows the concept of a method for producing a cell suspension including steps (A), (B), and (C). The lower figures in steps (B) and (C) represent the migration of adherent cells between microcarriers, so-called bead-to-bead cell transfer. In the examples, unused microcarriers, that is, microcarriers to which adherent cells were not adhered to 100% of the area of the cell-adhesive region, were used as fresh microcarriers. The cell-adhesive region (surface area / mass) of Cytodex 1 is 4,400 cm 2 / g.
[0089] [Step (A)] Two disposable 2L bioreactors (UniVessel® SU, Sartorius Stedim Biotech) were used for culturing hMSCs. Each bioreactor was filled with 1L of the same medium as above, and the temperature (37°C), pH (7.4), and dissolved oxygen concentration (DO) (100%) were controlled for 4 hours using a controller (BIOSAT® B, Sartorius Stedim Biotech). The cryopreserved hMSCs were thawed in a 37°C water bath and washed. Each bioreactor was filled with 2.27g of fresh microcarriers (Cytodex 1, GE Healthcare Bio-Sciences) and 3x104 hMSCs at passage 4. 7 Cells were inoculated to obtain a cell suspension. The resulting cell suspension was intermittently agitated. The intermittent agitation conditions consisted of six cycles of 5 minutes of agitation followed by 25 minutes of no agitation (standing still). The cell suspension was then left standing overnight (without agitation). 1 L of fresh medium was added to each bioreactor, increasing the volume of the cell suspension to 2 L. From day 1 to day 8 of culture, the agitation speed was increased from 70 rpm to 85 rpm, and continuous agitation was performed. A 50% volumetric medium change was performed on day 8 of culture, and the culture was continued until day 9.
[0090] In step (A), a 1 L volume of cell suspension was subjected to intermittent stirring for 3 hours, and after leaving it to stand overnight (15 hours), a 2 L volume of cell suspension was subjected to continuous stirring for 7 days.
[0091] [Process (B)] A 50 L culture bag (Flexsafe STR, Sartorius Stedim Biotech) was placed in a bag holder, and 15 L of the same medium as above was added to the culture bag. The temperature, pH, and dissolved oxygen concentration (DO) of the medium were controlled overnight using a control tower (BIOSAT® STR, Sartorius Stedim Biotech). 1 L of a suspension containing 18.2 g of fresh microcarriers dispersed in medium and 4 L of the cell suspension obtained in step (A) on day 9 of culture were added to the 50 L culture bag to obtain a 20 L cell suspension. The resulting cell suspension was intermittently stirred for 25 hours. The intermittent stirring conditions consisted of 12 cycles of 5 minutes of stirring followed by 2 hours of no stirring (standing still). The cell suspension was then continuously stirred for 4 days.
[0092] In step (B), a 20 L volume of cell suspension was subjected to intermittent stirring for 25 hours, followed by continuous stirring for 4 days.
[0093] [Process (C)] On day 13, 1 L of a suspension of 34.1 g of fresh microcarriers dispersed in medium and 29 L of warmed fresh medium were added to the culture bag. The volume of the cell suspension was increased to 50 L. As in step (B), the cell suspension was stirred intermittently for 25 hours. The cell suspension was then continuously stirred for 7 days, with a 50% volumetric medium change on day 20. After the medium change, the cell suspension was continuously stirred for 7 days.
[0094] In step (C), a 50 L volume of cell suspension was subjected to intermittent stirring for 25 hours, followed by continuous stirring for a total of 14 days.
[0095] [Assessment of cell density, viability, and total cell number] In Processes (A) to (C), samples were collected daily from the cell suspension during cell culture. Using the collected samples, the cell density (cells / mL), viability (%), and total cell number (cells) were evaluated. The evaluation results are shown in Table 1. In the column for Process (A) in the table, the results for a total cell suspension volume of 4 L are shown. For the cell density on "Day 0", it was calculated assuming a total volume of 4 L.
[0096]
Table 1
[0097] In each process, the cell density increased over time and reached 2.9×10 5 cells / mL on the 27th day. The viability of the cells temporarily decreased after adding fresh microcarriers to the cell suspension but was maintained at 83.7% or more throughout the entire culture period and reached 98.1% on the 27th day. The total cell number increased from 6.00×10 7 cells to 1.46×10 10 cells, and the total cell number increased 243-fold during the 27-day culture.
[0098] [Observation by fluorescence microscopy] Using the samples collected on Days 0, 9, 10, 13, 14, and 27 in Table 1, the cells adhered to the microcarriers were observed with a fluorescence microscope (manufactured by Keyence Corporation). In the samples collected on Days 0, 10, and 14, the formation of aggregates of microcarriers was suppressed, and it was confirmed that cells adhered to most of the microcarriers. In the samples collected on Days 9, 13, and 27, it was confirmed that the cells had grown to confluence on the surface of the microcarriers.
[0099] <Recovery of hMSCs (Production of adherent cells)> A sample for cell recovery was taken from the stirred cell suspension on day 27 into a culture vessel. The sample was left to stand, and after the microcarriers had settled, the supernatant was removed. The microcarriers were then washed twice with magnesium- and calcium-free phosphate-buffered saline (PBS). An enzyme solution (TrypLE Select, Thermo Fisher Scientific) was added to the microcarriers, and the culture vessel was shaken for 12 minutes using a small, thermostatically controlled shaker (BioShaker, Taitec Corporation). Detachment of the cells from the microcarriers was confirmed using a phase-contrast microscope (OLYMPUS). Culture medium was added to the suspension containing the detached cells and microcarriers, and the cells were separated from the microcarriers and collected using a mesh filter (Falcon™ mesh, 50 μm hole size, Corning).
[0100] The recovered cells were confirmed to have proliferation capacity, express surface markers (CD73, CD90, and CD105), and maintain trilineage differentiation potential into adipocytes, osteocytes, and chondrocytes.
[0101] [Example 2: Production of useful substance-containing liquid] <Production of exosome-containing liquid (liquid containing useful substances)> The cells to be cultured are adipose-derived mesenchymal stem cells (manufactured by Lonza), and the adipose-derived stem cells are cultured using the method described in steps (A), (B), and (C) of Example 1, except that in step (C), a 50 L volume of cell suspension is subjected to intermittent stirring for 25 hours, and the intermittent stirring is followed by continuous stirring for a total of 12 days, to obtain a 50 L volume of cell suspension containing adipose-derived stem cell lineage stem cells. Step (C) is terminated on day 12 after the start of step (C). After culturing, the cells are collected and washed with 50 L of PBS. After removing the PBS, 50 L of DMEM / F12 (Gibco) containing 10 ng / mL FGF-2 (BioVision) and 1x ITS (insulin, transferrin, and selenium; InVitria) is added. The cells are cultured for 48 hours with stirring at an appropriate speed to obtain a cell suspension. The cell suspension is filtered using a tangential flow filtration device (Repligen) with a 0.65 μm module to remove floating adherent cells, microcarriers, and cell debris, yielding an exosome-containing solution.
[0102] <Production of exosome concentrate (liquid containing useful substances)> From the 50 L of exosome-containing solution obtained above, a tangential flow filtration device (Repligen) was used to remove particles with a diameter of 200 nm or greater using a 0.2 μm filter. The solution was then concentrated to a volume of 50 mL using a 500 kDa molecular weight cutoff (MWCO) filter to obtain an exosome-enriched solution.
[0103] <Production of purified exosome solution (solution containing useful substances) 1> 50 mL of the exosome concentrate obtained above was centrifuged at 35,000 rpm for 70 minutes using an XE-90 ultracentrifuge and a SW 41 Ti swinging bucket rotor (both manufactured by Beckmann Coulter) to sediment the exosomes. After removing the supernatant, 10 mL of PBS was added to the sedimented exosomes, which were then mixed using a vortex mixer. The exosomes were then sedimented at 35,000 rpm for 70 minutes. After removing the supernatant, 30 μL of PBS was added and the exosomes were recovered by pipetting.
[0104] <Production of purified exosome solution (solution containing useful substances) 2> 50 mL of the exosome concentrate obtained above was used for MagCapture. TMExosomes were purified using the Exosome Isolation Kit PS (Fujifilm Wako Pure Chemical Industries, Ltd.) according to the protocol provided with the kit.
[0105] <Production of purified exosome solution (solution containing useful substances) 3> 50 mL of the exosome concentrate obtained above was purified using an FPLC AKTA pure 150 (AKTA) chromatography system and a 1 mL monolith column (BIA Separations). Exosomes were loaded onto a monolith column pretreated according to the protocol using a mobile phase of 50 mM HEPES buffer and 20 mM NaCl aqueous solution (pH 7.0). The column was washed by flowing the mobile phase for 1 hour. After washing, the mobile phase was changed to 50 mM HEPES buffer and 2.0 M NaCl aqueous solution, and the loaded exosomes were recovered by flowing the mobile phase at 1 mL / min.
[0106] <Exosome particle size distribution and concentration measurement> The particle size distribution and concentration of exosomes in the exosome purified solution obtained above are measured using the nanoparticle tracking system Zeta View (Particle Metrix) according to the EV measurement method included with the software. The measurement conditions are sensitivity 82, shutter 100. This allows the particle size distribution and concentration of exosomes to be confirmed. For example, the particle size distribution (based on scattered light intensity) is 20 to 500 nm, and the concentration is 10 10 ~10 11 The result is particles / mL.
[0107] <Evaluation of exosomal protein expression> Using 20 μL of the purified exosome solution, the total exosomal protein content was quantified using a DC assay (Bio-Rad). A 0.5 μg protein aliquot was added to the exosome solution and mixed with 4 μL of 4× SDS-PAGE Sample buffer (Tokyo Chemical Industry Co., Ltd.). Distilled water was added to the resulting mixture to a total volume of 16 μL, and the mixture was then heated at 37°C for 5 minutes. The mixture was then applied to a 10% polyacrylamide gel (ATTO) and separated using an electrophoresis apparatus (ATTO) at 150 V for 30 minutes at 500 ng / lane. After electrophoresis, the proteins in the gel were transferred to a polyvinylidene fluoride (PVDF) membrane (ATTO) using a transfer apparatus (both ATTO) at 100 V for 15 minutes. After blocking the membrane with blocking buffer (Nacalai Tesque), it was reacted with 1 μg / mL anti-human CD9 mouse IgG, anti-human CD63 mouse IgG, and anti-human CD81 mouse IgG antibodies (all from Cosmo Bio) at 4°C for 18 hours. After washing the reacted membrane with TBS buffer, it was reacted with 0.2 μg / mL mouse-HRP antibody at room temperature for 1 hour. After washing the reacted membrane with TBS buffer, it was illuminated with ImmunoStar LD (Fujifilm Wako Pure Chemical Industries, Ltd.), and the expression of CD9, CD63, and CD81 was confirmed using a chemiluminescence imaging system (Fujifilm Wako Pure Chemical Industries, Ltd.). This allows for the confirmation of the expression of CD9, CD63, and CD81 in exosomes. Furthermore, the expression of exosomal proteins, such as Hsp70, TSG101, and tubulin, can be assessed using various other antibodies.
[0108] The disclosure of this application is related to the subject matter described in Japanese Patent Application No. 2020-43974, filed on March 13, 2020, the entire disclosure of which is incorporated herein by reference. In addition, the entire disclosures of the documents described herein are incorporated herein by reference.
Claims
1. 1. A method for producing a cell suspension, comprising: The following (A), (B), and (C): (A) obtaining a cell suspension (A1) containing adherent cells, fresh microcarriers, and a medium and having a volume of 0.3 L to 5 L, and culturing the adherent cells using the cell suspension (A1) in a cell suspension having a volume of 0.3 L to 5 L; (B) obtaining a cell suspension (B1) containing adherent cells including a population of cells adhered to the microcarriers obtained through (A), fresh microcarriers, and a medium, and having a volume of 5 L to 40 L; and culturing the adherent cells in the cell suspension (B1) having a volume of 5 L to 40 L; and (C) obtaining a cell suspension (C1) having a volume of 10 L or more and 500 L or less, the cell suspension (C1) containing adherent cells including a population of cells adhered to the microcarriers obtained through (B), fresh microcarriers, and a medium; and culturing the adherent cells in the cell suspension (C1) having a volume of 10 L or more and 500 L or less. Including, the adherent cells comprise stem cells; The cell suspensions (A1), (B1), and (C1) are cell suspensions before culture in the above (A), (B), or (C), respectively, and the concentrations of adherent cells in the cell suspensions (A1), (B1), and (C1) are 1×10 3 ~5 x 10 4 cells / mL, and the cells the concentration of fresh microcarriers in suspension (A1), (B1), or (C1) is 0.1 to 50 g / L; (A), (B), and (C) respectively comprise intermittently stirring the cell suspension (A1), (B1), or (C1) for 1 to 40 hours, and continuously stirring the cell suspension obtained through the intermittent stirring for 2 to 14 days, and the intermittent stirring comprises alternately stirring for 1 to 20 minutes and no stirring for 0.1 to 10 hours, The volume of the cell suspension in (B) is larger than the volume of the cell suspension in (A), and the volume of the cell suspension in (C) is larger than the volume of the cell suspension in (B). Method for producing cell suspensions.
2. (B) comprises mixing at least the adherent cells obtained through (A), fresh microcarriers, and fresh medium to obtain a cell suspension; (C) comprises mixing at least the adherent cells obtained through (B), fresh microcarriers, and fresh medium to obtain a cell suspension; The method for producing the cell suspension according to claim 1 .
3. The method for producing a cell suspension according to claim 1 or 2, wherein the volume of the cell suspension in (C) is 30 L or more.
4. Producing a cell suspension by the production method according to any one of claims 1 to 3; and Obtaining adherent cells from the cell suspension A method for producing adherent cells, comprising:
5. Producing a cell suspension by the production method according to any one of claims 1 to 3; and Obtaining a useful substance-containing liquid from the cell suspension A method for producing a useful substance-containing liquid, comprising:
6. Producing a cell suspension by the production method according to any one of claims 1 to 3, or producing a useful substance-containing liquid by the production method according to claim 5; and Obtaining a useful substance from the cell suspension or the useful substance-containing liquid A method for producing a useful substance, comprising:
7. The method according to claim 5 or 6, wherein the useful substance comprises at least one selected from the group consisting of extracellular vesicles and functional proteins.