Method for cryopreserving cultured cells and cell-containing composition for use in cell transplantation therapy

The described cryopreservation method at -60°C to -25°C with cold air cooling enhances cell survival rates and maintains cell structure, addressing DMSO-related issues in existing methods, making it suitable for cell transplantation therapy.

JP7736289B2Active Publication Date: 2025-09-09YAMAGUCHI UNIV
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Patent Information

Application Number
JP2021106886
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-06-28
Filing Date
2021-06-28
Publication Date
2025-09-09
Estimated Expiration
2041-06-28

AI Technical Summary

Technical Problem

Existing cryopreservation methods using DMSO as a cryoprotectant cause cell damage and alter the undifferentiated state of stem cells, necessitating a DMSO-free method with high cell survival rates for cell transplantation therapy.

Method used

A cryopreservation method involving freezing cultured cells in a cryopreservation solution at -60°C to -25°C, using a non-throughflow cooling device, and blowing cold air to uniformly cool the cells, without DMSO, maintaining the form of cell sheets or three-dimensional cultures.

Benefits of technology

This method achieves high cell survival rates post-thawing, eliminating the need for DMSO washes and ensuring the cells are safe and efficient for transplantation therapy.

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Abstract

To provide cryopreservation method for cultured cells with high cell viability after thawing, and to provide cell-containing compositions for use in cell transplantation therapies.SOLUTION: In order to solve the above problems, provided is a cryopreservation method of cultured cells, characterized by comprising: (1) culturing cells in a culture vessel; (2) adding a cryopreservation solution to the culture vessel and immersing the cultured cells cultured in the step (1) in the cryopreservation solution; and (3) freezing the cultured cells immersed in the cryopreservation solution, and the culture vessel by allowing them to stand in an environment of -60°C or higher and -25°C or lower.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a method for cryopreserving cultured cells and a cell-containing composition for use in cell transplantation therapy. [Background technology]

[0002] Cell transplantation therapy has attracted attention as an effective treatment for various diseases and tissue damage. One of the key technologies for the commercial and clinical application of cell transplantation therapy is cryopreservation, which preserves cells for long periods without altering their properties. Cell cryopreservation is generally used for the purposes of preventing cell alteration and bacterial contamination during cell culture, ensuring a stable long-term supply, and transporting cells. However, ice crystals, which are generated during the cell freezing process and are derived from water inside and outside the cells, are known to physically damage cells. Therefore, to protect cultured cells from damage caused by ice crystals during freezing and thawing, cryopreservation solutions containing cryoprotectants such as dimethyl sulfoxide (DMSO), glycerin, and ethylene glycol are used. In particular, DMSO, which exhibits a high effect of suppressing ice crystal formation, is widely used as a cryoprotectant (Non-Patent Documents 1 to 3).

[0003] The main methods used to cryopreserve cells alive are slow freezing and vitrification. Slow freezing involves cooling cells at a slow rate over a long period of time in the presence of a cryoprotectant such as DMSO, thereby suppressing the formation of ice crystals within the cells and avoiding cell damage caused by freezing. However, slow freezing has problems such as the long time it takes to complete freezing and low cell survival rate after thawing.

[0004] Vitrification is a method in which cells immersed in a cryopreservation solution containing a high concentration of DMSO or the like are rapidly cooled in a sealed space using liquid nitrogen or the like to supercool the cryopreservation solution, thereby controlling the movement of water molecules and inhibiting the formation of ice crystals, thereby suppressing cell damage associated with freezing. Patent Document 1, for example, discloses a method for producing a frozen cell sheet, which involves freezing a cell sheet immersed in a cryopreservation solution containing a cell-permeable cryoprotectant in a gaseous atmosphere at temperatures between -269°C and -20°C. However, when vitrification is applied to cell sheets (see, for example, Patent Document 2) or three-dimensional cell cultures, which require the cultured cells to maintain a functional three-dimensional structure even after thawing from cryopreservation, it is necessary to prepare special cell culture vessels and materials, such as temperature-responsive culture vessels or mesh supports. Furthermore, the cells that can be used in the form of cell sheets or three-dimensional cell cultures with vitrification are limited to chondrocytes, epithelial cells, cardiomyocytes, and the like, which form robust structures. For this reason, vitrification has not yet been clinically applied to anything other than dispersed cultured cells, due to factors such as production efficiency and versatility.

[0005] In addition, a method for freezing cells has been disclosed, which involves rapidly cooling a portion of a container containing a cryopreservation container containing cells by contacting the metal with the cryopreservation container at -50°C or below using a metal such as aluminum as a heat transfer means, thereby generating ice nuclei in that portion, and slowly cooling other portions of the solution to freeze the cells (see Patent Document 3). [Prior art documents] [Patent documents]

[0006] [Patent Document 1] International Publication No. 2016 / 167332 Brochure [Patent Document 2] Japanese Patent Application Laid-Open No. 2019-000038 [Patent Document 3] Japanese Patent Publication No. 2020-10681 [Non-patent literature]

[0007] [Non-Patent Document 1] Lovelock, JE et al., Prevention of freezing damage to living cells by dimethyl sulphoxide., Nature (1959), 183, 1394-1395. [Non-patent document 2] Iwatani M. et al., Dimethyl sulfoxide has an impact on epigenetic profile in mouse embryoid body., Stem cells (2006), 24(11), 2549-2556. [Non-patent document 3] Katkov, II et al., Cryopreservation by slow cooling with DMSO diminished production of Oct-4 pluripotency marker in human embryonic stem cells., Cryobiology (2006), 53(2), 194-205. Summary of the Invention [Problem to be solved by the invention]

[0008] As described above, cryopreservation solutions containing DMSO are commonly used for the cryopreservation of cultured cells. However, DMSO has toxicity to cells and tissues that depends on the concentration, temperature, time, and type of cell or tissue. Therefore, when thawed cultured cells are used in patients or individuals, they must be washed to transfer them to a DMSO-free environment. It has also been reported that DMSO alters the methylation state of DNA and the expression levels of undifferentiated marker genes (Non-Patent Documents 2 and 3). This raises concerns that DMSO may alter the undifferentiated state of stem cells and cause phenotypic changes. Therefore, a cryopreservation method with high cell viability that does not require DMSO is desired. An object of the present invention is to provide a method for cryopreserving cultured cells that has a high cell survival rate after thawing, and a cell-containing composition. [Means for solving the problem]

[0009] As a result of extensive research into the above-mentioned problems, the inventors have discovered that the survival rate of cultured cells can be improved by freezing the cultured cells immersed in a cryopreservation solution in an environment of -60°C or higher and -25°C or lower before cryopreserving the cultured cells, and have completed the present invention.

[0010] That is, the present invention provides the following [1] to

[11] . [1] (1) culturing cells in a culture vessel; (2) adding a cryopreservation solution to the culture vessel and immersing the cultured cells cultured in step (1) in the cryopreservation solution; (3) a step of freezing the cultured cells and the culture vessel immersed in the cryopreservation solution by leaving them in an environment of −60° C. or higher and −25° C. or lower; A method for cryopreserving cultured cells, comprising: According to this cryopreservation method, before cryopreserving cultured cells, they are subjected to a freezing treatment using a cryopreservation solution in an environment of -60°C or higher and -25°C or lower, thereby suppressing cell damage caused by freezing and improving the survival rate of cultured cells after thawing. [2] The method for cryopreserving cultured cells according to [1] above, wherein in step (3), the freezing treatment is carried out by blowing cold air onto the culture vessel. This cryopreservation method allows cultured cells to be cooled and frozen uniformly, suppressing cell damage caused by freezing, and thereby improving the survival rate of cultured cells after thawing. [3] The method for cryopreserving cultured cells according to [2] above, wherein in step (3), the freezing treatment is carried out by blowing cold air onto the cells using a non-throughflow cooling device. This cryopreservation method allows cultured cells to be cooled and frozen more uniformly, suppressing cell damage caused by freezing, and thereby improving the survival rate of cultured cells after thawing. [4] A method for cryopreserving cultured cells according to any one of [1] to [3] above, characterized in that a cryopreservation solution is added to the culture vessel while the cultured cells obtained by culturing in step (1) are attached to the culture vessel. This feature makes it possible to prevent the cultured cells from unintentionally detaching from the culture vessel after thawing. [5] The method for cryopreserving cultured cells according to any one of [1] to [4] above, wherein the freezing treatment is carried out in a non-stepwise manner in an environment of -50°C or higher and -25°C or lower, on cultured cells immersed in a cryopreservation solution in an environment of 0°C or higher. According to this feature, by carrying out the freezing treatment non-stepwise, the survival rate of the cultured cells after thawing can be further improved. [6] The method for cryopreserving cultured cells according to any one of [1] to [5] above, wherein a cryopreservation solution containing no dimethyl sulfoxide is used in step (2). According to this cryopreservation method, the cultured cells can be safely used after thawing by performing the freezing treatment using a cryopreservation solution that does not contain DMSO. [7] The method for cryopreserving cultured cells according to any one of [1] to [6] above, wherein the freezing treatment is characterized in that the supercooled state of the cryopreservation solution is released within 10 minutes from the start of the freezing treatment. According to this feature, the survival rate of cultured cells after thawing can be further improved by rapidly carrying out the freezing treatment. [8] The method for cryopreserving cultured cells according to any one of [1] to [7] above, wherein the cultured cells obtained by culturing in step (1) are in the form of a cell sheet or a three-dimensional cell culture construct. According to this feature, by adopting cell sheets or three-dimensional cell culture bodies as the form of cultured cells, the survival rate of the cultured cells can be improved even after thawing, and the form of the cell sheets or three-dimensional cell culture bodies can be maintained. [9] The method for cryopreserving cultured cells according to [8] above, wherein in step (3), the cell sheet or three-dimensional cell culture adheres to the culture vessel after the freezing treatment. This feature makes it possible to prevent shrinkage of the cell sheet or three-dimensional cell culture construct due to unintended detachment of the cell sheet or three-dimensional cell culture construct.

[10] The method for cryopreserving cultured cells according to any one of [1] to [9] above, wherein the cells cultured in step (1) are fibroblasts, corneal epithelial cells, retinal cells, cardiomyocytes, mesenchymal stem cells, or pluripotent stem cells. According to this feature, by selecting fibroblasts, corneal epithelial cells, retinal cells, cardiomyocytes, mesenchymal stem cells, or pluripotent stem cells as cultured cells, the survival rate of cultured cells after thawing can be further improved.

[11] A cell-containing composition for use in cell transplantation therapy, which contains cultured cells preserved by the method for freezing and preserving cultured cells described in any one of [1] to

[10] above, and has a cell survival rate of 40% or more upon thawing. According to this cell-containing composition, the survival rate of the cultured cells contained in the composition after thawing is 50% or more by the cryopreservation method described in [1] to

[10] , and therefore the cell-containing composition can be used for cell transplantation therapy with high production efficiency. [Effects of the Invention]

[0011] According to the present invention, a method for cryopreserving cultured cells that results in a high survival rate of the cultured cells after thawing can be provided. Furthermore, if a DMSO-free cryopreservation solution is used, there is no need to wash away DMSO after thawing the cultured cells, and therefore a cell-containing composition that is safe and highly efficient to produce can be provided. [Brief explanation of the drawings]

[0012] [Figure 1] FIG. 1 shows the effect of freezing treatment on the viability of cultured cells after thawing. [Figure 2] Figures showing the effect of freezing temperature on the survival of cultured cells after thawing. (A) A graph showing the survival rate of cultured cells at different freezing temperatures. (B) Images showing the survival state of cultured cells at different freezing temperatures. [Figure 3]1 is a graph showing cell viability of samples frozen at −35° C. using various cryopreservation solutions containing / not containing DMSO. [Figure 4] The photographs are taken three days after thawing samples frozen at -35°C using various cryopreservation solutions with or without DMSO, and four hours after thawing the samples and carrying out the MTS reaction. [Figure 5] The results show the results of examining HGF in the culture supernatant of samples frozen at -35°C using various cryopreservation solutions with and without DMSO. [Figure 6] The cell layered sheet was frozen using a non-contact cold air cooling device (3D freezer in the figure) or a contact programmable freezer, and then thawed, and the cell viability was examined 24 hours later. [Figure 7] Figures showing temperature changes of cryopreservation solution with respect to freezing temperature. (A) Temporal changes of cryopreservation solution at a freezing temperature of -35°C. (B) Temporal changes of cryopreservation solution at a freezing temperature of -45°C. (C) Temporal changes of cryopreservation solution at a freezing temperature of -55°C. [Figure 8A] FIG. 1 shows the temperature change of a cryopreservation solution containing DMSO (Stem Cell Banker (registered trademark)) when frozen. [Figure 8B] FIG. 1 shows the temperature change of a cryopreservation solution containing DMSO (Bambanker (registered trademark) hRM) when frozen. [Figure 8C] FIG. 1 is a graph showing the temperature change of a cryopreservation solution containing DMSO (Bambanker (registered trademark)) when frozen. [Figure 8D] FIG. 1 shows the temperature change of a cryopreservation solution (Cell Reservoir One) that does not contain DMSO when frozen. [Figure 8E] FIG. 1 is a diagram showing the temperature change of a cryopreservation solution when freezing is performed using a DMSO-free cryopreservation solution (Cryoscarless (registered trademark) DMSO-free). [Figure 8F] FIG. 1 shows the temperature change of a cryopreservation solution (Stem Cell Keep) that does not contain DMSO when frozen. [Figure 8G] FIG. 1 shows the temperature change of a cryopreservation solution (Cellvation (registered trademark)) that does not contain DMSO when frozen. [Figure 8H] FIG. 1 shows the temperature change of a cryopreservation solution (ReproCryo RM) that does not contain DMSO when frozen. DETAILED DESCRIPTION OF THE INVENTION

[0013] Hereinafter, embodiments of the method for cryopreserving cultured cells and the cell-containing composition according to the present invention will be described in detail. The methods for cryopreserving cultured cells and cell-containing compositions described in the embodiments are merely examples for the purpose of explaining the present invention, and the present invention is not limited thereto.

[0014] [Definition] As used herein, "freezing" refers to a solid state in which no ice crystals are formed inside or outside the cells, or only a small amount of ice crystals are formed inside or outside the cells. From the viewpoint of reducing damage to cells due to freezing and thawing, it is preferable that ice crystals are not formed inside the cells, but it is difficult to completely suppress ice crystal formation. As used herein, the term "freezing treatment" refers to freezing cultured cells. The freezing treatment also includes freezing cultured cells immersed in a cryopreservation solution. As used herein, "cryopreservation" refers to the stable maintenance of cells for a long period of time by freezing cultured cells and halting their cellular activity at extremely low temperatures. The cryopreservation temperature is, for example, between -269°C and -80°C. As used herein, the term "supercooled state" refers to a state in which water inside and outside cells remains liquid even when cooled past its freezing point, preventing the formation of ice crystals. As used herein, the term "immersion" refers to immersion in a liquid.

[0015] As used herein, the term "treatment" refers to measures aimed at slowing or stopping the progression or worsening of symptoms associated with the loss, dysfunction, or malfunction of cells, tissues, or organs, and at alleviating, improving, or curing symptoms associated with the loss, dysfunction, or malfunction of cells, tissues, or organs. As used herein, the term "prevention" refers to a measure aimed at suppressing or preventing the onset and recurrence of symptoms associated with the loss, dysfunction, or malfunction of cells, tissues, or organs. As used herein, "symptoms associated with the loss, dysfunction or malfunction of cells, tissues or organs" refer to diseases caused by cells, tissues or organs not functioning normally, and examples include spinal cord injury, knee joint cartilage damage, ischemic heart disease, age-related macular degeneration, corneal epithelial stem cell deficiency, aplastic anemia, severe limb ischemia and intractable skin ulcers.

[0016] As used herein, the terms "subject," "individual," and "patient" refer to those in need of cell transplantation therapy, those likely to require cell transplantation therapy, those desiring to undergo cell transplantation therapy or preventative treatment, those undergoing cell transplantation therapy or preventative treatment, and those who have undergone cell transplantation therapy or preventative treatment, particularly humans and non-human animals. Specific examples of non-human animals include non-human primates, cows, horses, pigs, sheep, goats, rabbits, dogs, cats, guinea pigs, hamsters, mice, rats, and chickens. As used herein, "differentiation" refers to the specialization of function or morphology of an unspecialized cell. Cells in an undifferentiated state are said to be "undifferentiated."

[0017] [Cryopreservation method for cultured cells] The cryopreservation method of the present invention is a method for cryopreserving cultured cells, characterized by comprising the steps of: (1) culturing cells in a culture vessel; (2) adding a cryopreservation solution to the culture vessel and immersing the cultured cells cultured in step (1) in the cryopreservation solution; and (3) allowing the cultured cells immersed in the cryopreservation solution and the culture vessel to stand in an environment of -60°C or higher and -25°C or lower to perform a freezing treatment, thereby improving the survival rate of the cultured cells after thawing. First, each step of the cryopreservation method will be described in detail. The content of a specific component contained in each step refers to the content in the composition, etc., unless otherwise specified.

[0018] <Step (1): Cell culture> Step (1) is a step of culturing cells in a culture vessel, thereby preparing cultured cells adhered to the culture vessel for cryopreservation.

[0019] (Culture container) The culture vessel is a vessel for culturing cells in a culture medium. There are no particular limitations on the culture vessel, as long as it is suitable for the type of cells to be cultured and the intended use. Examples of culture vessels include dishes, Petri dishes, tissue culture dishes, multi-dishes, flasks, tissue culture flasks, microplates, microwell plates, multi-plates, multi-well plates, chamber slides, Petri dishes, tubes, trays, culture bags, and roller bottles. The material of the culture vessel is not particularly limited as long as it is impermeable to the culture medium, and examples of the material for the culture vessel include polystyrene, polyethylene, polypropylene, polyvinyl alcohol, polyethylene terephthalate, cellulose, silicon, nylon 6,6, glass, and metals such as stainless steel and aluminum. The area of ​​the culture vessel is not particularly limited. For example, the area of ​​the culture vessel is 0.3 cm 2 More than 300cm 2 The lower limit is more preferably 0.35 cm.2 More preferably, 1.0 cm 2 More than 1.9 cm, especially preferred 2 On the other hand, the upper limit is more preferably 200 cm 2 Less than 100cm, more preferably 2 Less than 50cm is especially preferable 2 The following is the result.

[0020] The surface of the culture vessel may be coated with a cell adhesive substance to improve adhesion to cells. Examples of cell adhesive substances include extracellular matrices such as collagen, fibronectin, laminin, vitronectin, proteoglycans, and glycosaminoglycans; cell adhesion factors such as the cadherin family, selectin family, and integrin family; collagen gels; hydrophilic polymers; and hydrophilic compounds such as corona-discharged polystyrene. These cell adhesive substances may be used alone or in combination of two or more. These cell adhesive substances may be appropriately selected from known substances depending on the type of cells to be cultured, such as adherent cells or suspension cells.

[0021] (cell) The cells are not particularly limited as long as they are clinically useful cells for treating or preventing symptoms associated with cell, tissue, or organ loss, dysfunction, or dysfunction, or culturable cells for use in non-clinical trials, and are cells isolated from a living organism. Examples of cultured cells include biological tissue cells, mesenchymal stem cells capable of differentiating into cells belonging to mesenchymal tissue, pluripotent stem cells capable of differentiating into various biological tissues, and stem cells and progenitor cells that can be induced to differentiate. The cultured cells may be adherent cells or suspension cells. However, when suspension cells are used, it is preferable to coat the culture vessel with the above-mentioned cell adhesive substance. Specific examples of biological tissue cells include fibroblasts, corneal epithelial cells, retinal cells, nerve cells, muscle cells, cardiac muscle cells, myoblasts, bone cells, osteoblasts, chondrocytes, adipocytes, hepatocytes, pancreatic cells, kidney cells, gingival cells, periosteal cells, and skin cells. Specific examples of mesenchymal stem cells include adipose tissue-derived mesenchymal stem cells, bone marrow-derived mesenchymal stem cells, umbilical cord blood-derived mesenchymal stem cells, and umbilical cord-derived mesenchymal stem cells. Specific examples of pluripotent stem cells include induced pluripotent stem cells, embryonic stem cells, nuclear transfer embryonic stem cells, embryonic tumor cells, and embryonic germ cells. These cells may be cultured alone or in combination of two or more types. These cells may be appropriately selected from known cells depending on the intended use of the cells.

[0022] The origin of the cells to be cultured is not particularly limited. Examples of the origin of the cells include mammals, birds, amphibians, fish, insects, plants, and microorganisms. Specific examples of mammals and birds include humans, monkeys, chimpanzees, cows, horses, pigs, sheep, goats, rabbits, dogs, cats, guinea pigs, hamsters, mice, rats, and chickens.

[0023] The form of the cultured cells is not particularly limited as long as it is useful for the intended use, and examples of the form of the cultured cells include a dispersed state, a cell sheet, and a three-dimensional cell culture. Dispersed cultured cells are cells that adhere to the culture vessel either alone or in contact with other cells.

[0024] A cell sheet has a sheet structure in which cells are physically and functionally connected to each other via adhesion molecules, extracellular matrix, etc. The method for producing a cell sheet may be performed by a method known to those skilled in the art and is not particularly limited. Examples of methods for producing a cell sheet include those taught in documents such as WO 2016 / 068217, the above-mentioned Patent Document 2, JP 2011-006490 A, and WO 2015 / 068505. The cell sheet may have a single-layer structure consisting of one cell layer, or a laminated structure consisting of two or more cell layers. The laminated structure is not particularly limited, but examples include multi-layer structures such as two-layer, three-layer, four-layer, and five-layer structures. The thickness of the cell sheet is not particularly limited. The thickness of the cell sheet is, for example, 0.001 mm or more and 2.0 mm or less. The lower limit is more preferably 0.01 mm or more, even more preferably 0.03 mm or more, and particularly preferably 0.05 mm or more. On the other hand, the upper limit is more preferably 1.5 mm or less, even more preferably 1.2 mm or less, and particularly preferably 1.0 mm or less. By keeping the thickness of the cell sheet within the above range, a high cell survival rate within the cell sheet and excellent shape retention ability that is advantageous for cell transplantation can be achieved.

[0025] A three-dimensional cell culture construct has a desired three-dimensional structure in which cells are physically and functionally connected to each other via adhesion molecules, extracellular matrix, etc. The method for producing a three-dimensional cell culture construct may be performed by any method known to those skilled in the art and is not particularly limited. Examples of methods for producing a three-dimensional cell culture construct include those taught in documents such as JP 2012-120696 A, JP 2017-176025 A, and JP 2015-149905 A. The thickness of the three-dimensional cell culture construct is not particularly limited. The thickness of the three-dimensional cell culture construct is, for example, 0.01 mm or more and 10 mm or less. The lower limit is more preferably 0.1 mm or more, even more preferably 0.5 mm or more, and particularly preferably 1.0 mm or more. On the other hand, the upper limit is more preferably 5 mm or less, even more preferably 4 mm or less, and particularly preferably 3 mm or less.

[0026] (Support) The cell sheet and three-dimensional cell culture may include a support having a mesh structure, etc., as long as the cells can adhere to the culture vessel. The support is a scaffold material that can attach and hold the cells to be cultured and enhance cell-cell interactions during culture. The material of the support is not particularly limited, and examples of the material for the support include fibers made of collagen, polyvinylidene difluoride, polyester, polyethylene, polypropylene, polyisoprene, polybutadiene, polyurethane, polyurea, silicone, polytetrafluoroethylene, polyvinylidene fluoride, polyethylene oxide, polyethylene glycol, polycaprolactone, silk fibroin, and derivatives and copolymers thereof. These support materials may be used alone or in combination of two or more. The support material may be appropriately selected from known materials depending on the cells to be cultured, etc.

[0027] The shape of the support is not particularly limited as long as it is suitable for the application of the cells to be cultured, and examples of the shape of the support include a sheet, a block, a cylinder, a disk, and a sphere. The length of the fibers constituting the support is not particularly limited. The length of the fibers constituting the support is, for example, 30 μm or more and 500 μm or less. The lower limit is more preferably 40 μm or more, even more preferably 45 μm or more, and particularly preferably 50 μm or more. On the other hand, the upper limit is more preferably 400 μm or less, even more preferably 350 μm or less, and particularly preferably 300 μm or less. The pore size of the network structure of the support is not particularly limited. The pore size of the network structure of the support is, for example, 30 μm or more and 700 μm or less. The lower limit is more preferably 40 μm or more, even more preferably 45 μm or more, and particularly preferably 50 μm or more. On the other hand, the upper limit is more preferably 600 μm or less, even more preferably 550 μm or less, and particularly preferably 500 μm or less. The three-dimensional opening ratio of the support is not particularly limited. The three-dimensional opening ratio of the support is, for example, 50% or more and 96% or less. The lower limit is more preferably 60% or more, even more preferably 70% or more, and particularly preferably 80% or more. On the other hand, the upper limit is more preferably 94% or less, even more preferably 92% or less, and particularly preferably 90% or less.

[0028] The support may have a cellularly useful substance physically or chemically disposed on its surface. The cellularly useful substance is a substance that contributes to improving affinity with cells, improving cellular function, inducing cell differentiation, introducing genes into cells, etc. Examples of cellularly useful substances include extracellular matrices such as fibronectin, laminin, and pronectin F; cell adhesion factors such as collagen, poly-D-lysine, and poly-L-lysine; biological molecules such as calcium phosphate and calcium phosphate; biomolecules such as peptides and proteins; proteins expressed on cell membranes; antibodies against glycolipids; and physiologically active substances. These useful cellular substances may be used alone or in combination of two or more. These useful cellular substances may be appropriately selected from known substances depending on the cells to be cultured, etc.

[0029] (Culture method) The method for culturing cells is not particularly limited, and conventional means used in technical fields such as medicine, pharmaceuticals, quasi-drugs, cosmetics, food, and veterinary medicine, as well as basic technical fields such as regenerative medicine and bioengineering, can be used. Examples of methods for culturing cells include adding a culture medium to a culture vessel and seeding the cells to be cultured, allowing the cultured cells to adhere to the culture vessel, and culturing them under an optimal environment until they reach the desired state.

[0030] (Culture solution) The culture medium used in the above-mentioned cell culture method is a solution containing components necessary for cell culture. The culture medium is not particularly limited as long as it is suitable for the cells to be cultured. Examples of culture medium components include sugars, amino acids, vitamins, inorganic salts, trace metals, and additives. These culture medium components may be blended alone or in combination of two or more. These culture medium components may be appropriately selected from known components depending on the cells to be cultured, etc.

[0031] Specific examples of sugars include monosaccharides such as glucose, fructose, mannose, and galactose; disaccharides such as sucrose, sucralose, trehalose, maltose, and lactose; trisaccharides such as glucosylsucrose, lactosucrose, and raffinose; tetrasaccharides such as acarbose and maltotetraose; cyclodextrins; and oligosaccharides.

[0032] Specific examples of amino acids include L-glutamic acid, L-glutamine, L-arginine, L-cystine, glycine, L-histidine, L-isoleucine, L-leucine, L-lysine, L-methionine, L-phenylalanine, L-serine, L-threonine, L-tryptophan, L-tyrosine, L-valine, L-alanine, L-asparagine, L-aspartic acid, L-cysteine, and L-hydroxyproline.

[0033] Specific examples of vitamins include sodium ascorbate, choline, folic acid, niacin, biotin, pantothenic acid, pyridoxine, riboflavin, thiamine, thymidine, and vitamin B12.

[0034] Specific examples of inorganic salts include sodium chloride, sodium hydroxide, sodium sulfate, sodium phosphate, disodium hydrogen phosphate, sodium carbonate, sodium bicarbonate, potassium chloride, potassium hydroxide, potassium sulfate, potassium phosphate, dipotassium hydrogen phosphate, potassium carbonate, potassium bicarbonate, calcium chloride, calcium sulfate, calcium nitrate, calcium phosphate, calcium carbonate, magnesium chloride, magnesium sulfate, magnesium nitrate, magnesium phosphate, and magnesium carbonate. Specific examples of trace metals include iron sulfate, iron nitrate, copper sulfate, copper nitrate, and zinc sulfate.

[0035] Specific examples of additives include serum such as fetal bovine serum, horse serum, and human serum; growth factors such as FGF2, EGF, HGF, VEGF, and PDGF; proteins such as albumin; antioxidants such as glutathione, ascorbic acid, and ascorbic acid derivatives; antibiotics such as penicillin and streptomycin; pH adjusters such as HEPES; organic acids such as lactic acid and propionic acid; lipids such as cholesterol; fatty acids such as linolenic acid; amines such as ethanolamine and putrescine; reducing agents such as mercaptoethanol and 3-mercapto-1,2-propanediol; thickeners such as sodium alginate, polyvinylpyrrolidone, carboxymethylcellulose, and pullulan; and pH indicators such as phenol red.

[0036] Examples of culture media containing the above-mentioned culture medium components include AIM V medium, HFDM-1 Medium, equilibrated buffers such as Dulbecco's phosphate buffered saline (D-PBS) and Hank's balanced salt solution (HBSS), Dulbecco's Modified Eagle Medium (DMEM), Eagle's Minimum Essential Medium (EMEm), α-MEM (Minimum Essential Medium alpha Modification), Iscove's Modified Dulbecco's Medium (IMDM), Glasgow's MEM (GMEM), Ham's F-10 medium, Ham's F-12 medium, Ham's F-12K medium, RPMI medium 1640, M-199 medium, L-15 medium, McCoy's 5A Medium, MCDB105 medium, MCDB107 medium, MCDB131 medium, MCDB153 medium, MCDB201 medium, NCTC109 medium, NCTC135 medium, Waymouth's Examples of basal culture media include MB752 / 1 medium, CMRL-1066 medium, Williams'medium E, Brinster's BMOC-3 Medium, and E8 medium. These basal culture media may be used alone or in combination of two or more. Furthermore, depending on the type and condition of the cells, culture media components may be added, removed, increased, or decreased. These basal culture media may be appropriately selected from known media depending on the cells to be cultured.

[0037] The surface of the culture vessel may be coated with a material whose physical properties change in response to stimuli such as temperature or light. However, when the cultured cells are in the form of a cell sheet or three-dimensional cell culture, if the cell sheet or three-dimensional cell culture unintentionally detaches from the culture vessel after freezing, the cell sheet or three-dimensional cell culture is likely to shrink, potentially reducing its functionality as a cell sheet or three-dimensional cell culture. Therefore, when the cultured cells are in the form of a cell sheet or three-dimensional cell culture, it is preferable to select a culture vessel material that can maintain the cell sheet or three-dimensional cell culture adhered to the culture vessel after freezing. Note that "the cell sheet or three-dimensional cell culture adhered to the culture vessel after freezing" also includes situations in which the frozen cell sheet or three-dimensional cell culture is in contact with the culture vessel via the cell adhesive substance. It also does not include situations in which the frozen cell sheet or three-dimensional cell culture unintentionally detaches from the culture vessel and remains on the cell vessel under its own weight.

[0038] Examples of the temperature-responsive material include (meth)acrylamide compounds, N-alkyl-substituted (meth)acrylamide derivatives such as N-ethylacrylamide, N-isopropylacrylamide, Nn-propylacrylamide, Nn-propylmethacrylamide, N-isopropylmethacrylamide, N-cyclopropylacrylamide, N-ethoxyethylacrylamide, N-ethoxyethylmethacrylamide, N-cyclopropylmethacrylamide, N-tetrahydrofurfurylacrylamide, and N-tetrahydrofurfurylmethacrylamide, and N,N-diethylacrylamide. and N,N-dialkyl-substituted (meth)acrylamide derivatives such as N,N-dimethyl(meth)acrylamide and N,N-ethylmethylacrylamide; and (meth)acrylamide derivatives having a cyclic group such as 1-(1-oxo-2-propenyl)-pyrrolidine, 1-(1-oxo-2-methyl-2-propenyl)-pyrrolidine, 1-(1-oxo-2-propenyl)-piperidine, 1-(1-oxo-2-methyl-2-propenyl)-piperidine, 4-(1-oxo-2-propenyl)-morpholine, and 4-(1-oxo-2-methyl-2-propenyl)-morpholine.

[0039] Examples of photoresponsive materials include light-absorbing polymers having azobenzene groups, copolymers of vinyl derivatives of triphenylmethane leucohydroxide and acrylamide monomers, and N-isopropylacrylamide gels containing spirobenzopyran. These temperature-responsive materials and light-responsive materials may be used alone or in combination of two or more. These temperature-responsive materials and light-responsive materials may be appropriately selected from known materials depending on the cells to be cultured, etc.

[0040] (Culture conditions) The culture conditions are not particularly limited as long as they can bring the cultured cells into the desired state. Typical culture conditions include, for example, a 37°C, 5% CO2 environment using a prepared basal culture medium. The culture conditions may be appropriately set depending on the cells to be cultured. The cell culture period is not particularly limited as long as the cultured cells reach the desired state, and may be, for example, 28 days or less, 21 days or less, 14 days or less, 7 days or less, 5 days or less, or 3 days or less.

[0041] The number of cells seeded in the culture vessel is not particularly limited as long as it is suitable for the cells to be cultured and the culture vessel. For example, the number of cells seeded in the culture vessel is 1 × 10 4 cells / mL or more 1×10 10 The lower limit is preferably 2 x 10 cells / mL or less. 5 cells / mL or more, more preferably 5 x 10 5 cells / mL or more, particularly preferably 1 x 10 6 On the other hand, the upper limit is preferably 1 × 10 cells / mL or more. 9 cells / mL or less, more preferably 1 x 10 8 cells / mL or less, particularly preferably 1 x 10 7 cells / mL or less.

[0042] The density of the cells to be cultured is not particularly limited as long as it is suitable for the cells to be cultured, the culture vessel, and the intended use of the cultured cells. The planar density of the cells to be cultured is, for example, 5 × 10 4 cells / cm 2 More than 1×10 10 cells / cm 2 The lower limit is more preferably 1×10 5 cells / cm 2 More preferably, 2 × 10 5 cells / cm 2 More preferably, 5 × 10 5 cells / cm 2 On the other hand, the upper limit is more preferably 1×10 9 cells / cm 2 Less than 5 × 10, more preferably 8 cells / cm 2 Below 1 × 10, particularly preferably 8 cells / cm 2 The following is the result. The cell density of the cell sheet or three-dimensional culture medium to be cultured is, for example, 5 × 10 1 cells / cm 3 5x10 or more 10 cells / cm 3 The lower limit is more preferably 5×10 2 cells / cm 3 More preferably, 5 × 10 3 cells / cm 3 More preferably, 5 × 10 4 cells / cm 3 On the other hand, the upper limit is more preferably 5×10 9 cells / cm 3 or less, more preferably 1 × 10 9 cells / cm 3 Below 5 × 10, particularly preferably 8 cells / cm 3 The following is the result.

[0043] When the cells to be cultured are stem cells or progenitor cells, differentiation-inducing factors may be added to the culture medium to induce differentiation during culture. Examples of differentiation-inducing factors include activin A, BMP4, bFGF, VEGF, SCF, VEGF, DKK1, BMP signal inhibitors (e.g., NOGGIN), TGFβ / activin / NODAL signal inhibitors (e.g., SB431542), Wnt signal inhibitors (e.g., IWR-1, IWP-2, IWP-4), and retinoic acid signal inhibitors. These differentiation-inducing factors may be formulated singly or in combination of two or more. These differentiation-inducing factors may be appropriately selected from known factors depending on the differentiation state of the target cells, etc.

[0044] <Step (2): Cryopreservation solution replacement> Step (2) is a step of adding a cryopreservation solution to the culture vessel to immerse the cultured cells in the cryopreservation solution, thereby preparing the cultured cells for freezing.

[0045] In the step of adding the cryopreservation solution, the cryopreservation solution can be added to the culture vessel while the cultured cells cultured in step (1) are adhered to the culture vessel. Here, the state in which the cultured cells cultured in step (1) are adhered to the culture vessel means that the cultured cells cultured in step (1) are not detached from the culture vessel and remain adhered to the culture vessel during the culture process.

[0046] Furthermore, if the cultured cells obtained by culturing in step (1) are in the form of a cell sheet or three-dimensional cell culture at the stage of adding the cryopreservation solution, i.e., before or after adding the cryopreservation solution but before freezing, the cell sheet or three-dimensional cell culture may be temporarily detached from the culture vessel and then left to stand in the culture vessel to facilitate detachment of the cell sheet or three-dimensional cell culture from the culture vessel after thawing. The method for detaching the cell sheet or three-dimensional cell culture from the culture vessel is not particularly limited, but physical methods such as enzyme treatment using dispase, trypsin, or collagenase, or directly picking the cell sheet or three-dimensional cell culture from the culture vessel with tweezers, or detaching the cell sheet or three-dimensional cell culture from the culture vessel by pipetting, may also be used.

[0047] An example of a method for immersing cultured cells in a cryopreservation solution is to replace the culture medium in the culture vessel with a cryopreservation solution and then immerse the cultured cells in the cryopreservation solution. The method for replacing the culture medium in the culture vessel with a cryopreservation solution is not particularly limited, and conventional methods used in fields such as medicine, pharmaceuticals, quasi-drugs, cosmetics, food, and veterinary medicine, as well as basic technologies such as regenerative medicine and bioengineering, can be used. Specific examples of replacement methods include removing the culture medium from the culture vessel using a pipette and adding a cryopreservation solution to the culture vessel once the cultured cells have reached the desired state; removing a portion of the culture medium from the culture vessel and adding a cryopreservation solution; or adding a cryopreservation solution to the culture medium in the culture vessel. Furthermore, if the cultured cells obtained by culturing in step (1) are in the form of a cell sheet or a three-dimensional cell culture, a culture vessel other than the one used for culturing in step (1) may be prepared, the cultured cell sheet or three-dimensional cell culture may be detached and transferred to the other culture vessel, and the cell sheet or three-dimensional cell culture may be immersed in a cryopreservation solution in the other culture vessel.

[0048] (cryopreservation solution) A cryopreservation solution is a solution for reducing cell damage caused by cryopreservation. There are no particular limitations on the cryopreservation solution, as long as it is suitable for cryopreserving cells. The cryopreservation solution may contain culture solution components contained in the culture solution, cryoprotectants, etc. The culture solution components, such as sugars, amino acids, vitamins, inorganic salts, trace metals, and additives, may be any that satisfy the explanation in the above section (Culture Solution). Furthermore, it is preferable that the cryopreservation solution has a solidification onset temperature in the range of -15°C or higher and -5°C or lower.

[0049] Cryoprotectants are substances used to reduce damage to cells caused by freezing and thawing during cryopreservation. Examples of cryoprotectants include cell-impermeable cryoprotectants and cell-permeable cryoprotectants. From the viewpoint of safety, cell-impermeable cryoprotectants are preferred. Specific examples of cell-impermeable cryoprotectants include, for example, albumin, sucrose, trehalose, dextran, polyethylene glycol, polyvinyl alcohol, polyvinylpyrrolidone, polylysine, and the like. Specific examples of cell-permeable cryoprotectants include, for example, glycerol, ethylene glycol, propylene glycol, propanediol, and the like. These cryoprotectants may be used alone or in combination of two or more. These cryoprotectants may be appropriately selected from known cryoprotectants depending on the type of cells, the composition of the cryopreservation solution, etc.

[0050] Examples of commercially available cryopreservation solutions that do not contain DMSO include StemCellBanker (registered trademark) DMSO-free GMP grade (Nippon Zenyaku Kogyo Co., Ltd.), Bambanker (registered trademark) DMSO-free (Nippon Genetics Co., Ltd.), CryoScarless (registered trademark) DMSO-free (BioVerde), StemCellKeep (BioVerde), CryoNovo (registered trademark) X12 (Cosmo Bio Co., Ltd.), CryoNovo (registered trademark) P24 (Cosmo Bio Co., Ltd.), DMSO-free cell cryopreservation solution for cryopreservation of human ES / iPS cells (ReproCell Co., Ltd.), Cell Reservoir One (Nacalai Tesque, Inc.), TheliKeep (registered trademark: BioVerde), Cellvation (registered trademark: Protide Pharmaceuticals), ReproCryo RM (ReproCell Co., Ltd.), and SOFORO Cryo (SARAYA). In addition, commercially available cryopreservation solutions containing DMSO include, for example, Stem Cell Banker (registered trademark) GMP Grade (Nippon Zenyaku Kogyo Co., Ltd.), Bambanker (registered trademark) hRM (Nippon Genetics Co., Ltd.), and Bambanker (registered trademark) (Nippon Genetics Co., Ltd.).

[0051] <Step (3): Freezing treatment> Step (3) is a step of freezing the cultured cells immersed in the cryopreservation solution, which allows the cultured cells to be frozen while suppressing the formation of ice crystals inside and outside the cells, thereby improving the survival rate of the cultured cells to be cryopreserved. The method of freezing is not particularly limited, and any conventional means used in technical fields such as medicine, pharmaceuticals, quasi-drugs, cosmetics, food, and veterinary medicine, as well as basic technical fields such as regenerative medicine and bioengineering, can be used. Examples of freezing methods include rapidly cooling cultured cells and culture vessels in an environment of 0°C or higher, after replacing the extracellular fluid with a cryopreservation solution, to the freezing temperature.

[0052] The freezing treatment of the present invention involves lowering the environmental temperature in which the cultured cells and culture vessel are placed from an environment of 0°C or higher, preferably 0°C to 25°C, where cell culture and extracellular fluid replacement are performed, to the freezing treatment temperature. It is preferable to raise the freezing treatment temperature non-stepwise, and not to lower the environmental temperature of the cultured cells and culture vessel from 0°C or higher slowly. The cooling device used for the freezing process is not particularly limited, and examples include quick-freezing devices and cryogenic refrigeration devices. A cooling device that does not come into contact with a heat transfer device and sprays cold air onto the culture vessel from multiple directions, preferably all directions, rather than contacting the culture vessel with a heat transfer device to freeze the culture vessel and cells, is preferable from the perspective of freezing cells at a uniform temperature and increasing the survival rate of the cells after thawing. Specific examples of freezing devices that spray cold air onto the culture vessel include cooling devices that cool the object to be cooled by circulating cold air with a cooling fan, such as the non-through-flow cooling device equipped with a cooling fan disclosed in Japanese Patent Application Laid-Open No. 2005-127666. The term "non-through-flow system" refers to a system in which the majority of the through-flow air from the object to be cooled does not pass through (through-flow) the cooler.

[0053] (Freezing conditions) The temperature of the freezing treatment is not particularly limited as long as it can freeze the cultured cells and the cryopreservation solution. The freezing treatment temperature is, for example, −60° C. or higher and −25° C. or lower. The lower limit is more preferably −55° C. or higher, even more preferably −52° C. or higher, and particularly preferably −50° C. or higher. On the other hand, the upper limit is more preferably −25° C. or lower, even more preferably −30° C. or lower, and particularly preferably −35° C. or lower. The freezing time is not particularly limited as long as the cultured cells and cryopreservation solution are frozen. The freezing time is, for example, 10 minutes or less. More preferably, it is 7 minutes or less, even more preferably 6 minutes or less, and particularly preferably 5 minutes or less. The freezing time refers to the time it takes for the cultured cells and cryopreservation solution to be released from their supercooled state and frozen, and does not include the time during which the freezing temperature is maintained after the cultured cells and cryopreservation solution have frozen. By setting the freezing temperature and time within the above ranges, the method for cryopreserving cultured cells of the present invention can suppress the formation of ice crystals and improve the survival rate of cultured cells after thawing.

[0054] The culture vessel to be frozen may or may not be covered with a lid, a seal, a film, etc. From the viewpoint of preventing bacterial contamination of cultured cells and improving quality, it is preferable to cover the culture vessel before the freezing treatment.

[0055] <Other processes> (Freezing preservation method) The cryopreservation step is a step of cryopreserving the frozen cultured cells and culture vessel, which allows the cells to be stably maintained for a long period of time. The method of cryopreservation is not particularly limited, and conventional means used in technical fields such as medicine, pharmaceuticals, quasi-drugs, cosmetics, food, and veterinary medicine, as well as basic technical fields such as regenerative medicine and bioengineering, can be used.

[0056] The cryopreservation method is not particularly limited as long as the cells can be stably cryopreserved. Examples of cryopreservation methods include contact with the liquid or gas phase of a cooling agent, and use of an ultra-low temperature freezer. From the viewpoint of temperature, the preferred cryopreservation method is contact with the liquid or gas phase of a cooling agent. Examples of coolants include liquid nitrogen, liquid ethane, liquid propane, liquid helium, and dry ice.

[0057] (Crozen storage conditions) The cryopreservation temperature is not particularly limited as long as the cells can be stably cryopreserved. The cryopreservation temperature is, for example, −269° C. or higher and −80° C. or lower. The lower limit is more preferably −220° C. or higher, even more preferably −196° C. or higher, and particularly preferably −150° C. or higher. On the other hand, the upper limit is more preferably −120° C. or lower, even more preferably −100° C. or lower, and particularly preferably −80° C. or lower. The time required to reach the temperature required for cryopreservation is not particularly limited, and is, for example, within 5 minutes, more preferably within 3 minutes, even more preferably within 2 minutes, and particularly preferably within 1 minute.

[0058] Due to the above-mentioned features, the method for cryopreserving cultured cells of the present invention can improve the survival rate of cultured cells after thawing by rapidly freezing them. Furthermore, by using a cryopreservation solution that does not contain DMSO, the cytotoxicity of DMSO is avoided and the differentiation state of the cells is not affected, making it possible to provide a cell-containing composition that is highly clinically safe.

[0059] [Cell-containing composition for use in cell transplantation therapy] The cell-containing composition of the present invention contains cultured cells cryopreserved by the above-mentioned "method for cryopreserving cultured cells" of the present invention, and is characterized by having a cell viability of 40% or more upon thawing. In particular, when a DMSO-free cryopreservation solution is used, there is no need to remove DMSO by washing the cultured cells after thawing, which improves safety and production efficiency. Cell transplantation therapy suppresses and prevents the onset and recurrence of symptoms associated with cell, tissue, and organ loss, dysfunction, and dysfunction. Diseases that can be treated with cell transplantation therapy include spinal cord injury, knee joint cartilage damage, ischemic heart disease, age-related macular degeneration, corneal epithelial stem cell deficiency, aplastic anemia, severe limb ischemia, and intractable skin ulcers. Furthermore, the cells used in cell transplantation therapy may be autologous cells, allogeneic non-autologous cells, or xenogeneic cells. Preferred cells are human autologous cells from the viewpoints of clinical application and safety, and human non-autologous cells from the viewpoints of clinical application and productivity. First, the steps of preparing the cell-containing composition will be described in detail. The content of a specific component contained in each step will be the content in the composition, etc., unless otherwise specified.

[0060] (Decompression process) The method of thawing is not particularly limited, and any conventional means used in technical fields such as medicine, pharmaceuticals, quasi-drugs, cosmetics, food, and veterinary medicine, as well as basic technical fields such as regenerative medicine and bioengineering, can be used. Examples of methods for thawing include using a water bath, an incubator, a hot plate, or immersion in a thawing liquid at a temperature higher than the freezing temperature.

[0061] The thawing solution is not particularly limited as long as it does not damage the cultured cells. Examples of components contained in the thawing solution include sucrose, glucose, maltose, trehalose, and fructose. The thawing solution may also contain the components described above in the section (Culture Solution). The temperature of the melting liquid is not particularly limited as long as it is higher than the freezing temperature. The temperature of the melting liquid is, for example, 20°C or higher and 45°C or lower. The lower limit is more preferably 25°C or higher, even more preferably 28°C or higher, and particularly preferably 30°C or higher. On the other hand, the upper limit is more preferably 40°C or lower, even more preferably 39°C or lower, and particularly preferably 38°C or lower.

[0062] The cell viability upon thawing is not particularly limited, as long as it is 40% or higher. Examples of cell viability upon thawing include, more preferably, 50% or higher, 60% or higher, 70% or higher, even more preferably 80% or higher, and particularly preferably 90% or higher. Furthermore, with regard to HGF in the culture supernatant after thawing, the HGF (pg / mL) in the culture supernatant after thawing, followed by medium replacement with an equal volume of culture medium and culturing for 3 days under atmospheric oxygen (approximately 20%), 37°C, and 5% CO2 conditions, is 40% or higher, preferably 60% or higher, more preferably 80% or higher, and even more preferably 100% or higher, compared to the HGF (pg / mL) in the culture supernatant without freezing treatment (storage at room temperature using PBS instead of a cryopreservation solution).

[0063] The temperature for the thawing treatment is not particularly limited as long as thawing can be performed while suppressing damage to cells. The temperature for the thawing treatment is, for example, 4°C or higher and 50°C or lower. The lower limit is more preferably 30°C or higher, even more preferably 33°C or higher, and particularly preferably 36°C or higher. On the other hand, the upper limit is more preferably 45°C or lower, even more preferably 40°C or lower, and particularly preferably 38°C or lower. The thawing time is not particularly limited, and is, for example, within 15 minutes, more preferably within 10 minutes, even more preferably within 1 minute, and particularly preferably within 30 seconds.

[0064] (Cleaning process) If necessary, the thawed cultured cells may be washed immediately after the thawing process with a cell washing solution. The cell washing solution is not particularly limited and may contain the components described above in the section (Culture Solution). The temperature of the cell washing solution is not particularly limited. The temperature of the cell washing solution is, for example, 20°C or higher and 45°C or lower. The lower limit is more preferably 25°C or higher, even more preferably 28°C or higher, and particularly preferably 30°C or higher. On the other hand, the upper limit is more preferably 40°C or lower, even more preferably 39°C or lower, and particularly preferably 38°C or lower. The number of times the cultured cells are washed is not particularly limited, and may be one or more times (for example, two, three, four, five times, etc.).

[0065] (How to use) The cell-containing composition of the present invention is prepared by detaching thawed cultured cells or supports from culture vessels and formulating them, and can be used for treatments such as cell transplantation therapy, prevention, and the like. The peeling method and formulation method are not particularly limited, and conventional means used in technical fields such as medicine, pharmaceuticals, quasi-drugs, cosmetics, food, and veterinary drugs, as well as basic technical fields such as regenerative medicine and bioengineering, can be used. Examples of the detachment method include enzyme treatment, detachment agent treatment, physical treatment, temperature stimulation treatment in the case of cells cultured on a culture vessel coated with a temperature-responsive material, and light stimulation treatment in the case of cells cultured on a culture vessel coated with a light-responsive material. Examples of enzymes used in the enzymatic treatment include dispase, trypsin, chymotrypsin, collagenase, elastase, hyaluronidase, thermolysin, papain, caspase, and pepsin. Examples of compounds used in the stripping agent treatment include ethylenediaminetetraacetic acid (EDTA) and glycoletherdiaminetetraacetic acid (EGTA). The enzyme treatment, release agent treatment, physical treatment, temperature stimulation treatment, and light stimulation treatment may be used alone or in combination of two or more. These release treatments may be appropriately selected from known treatments depending on the cells to be cultured, etc.

[0066] The method of administering the cell-containing composition is not particularly limited as long as it is medically acceptable, and examples of the method of administering the cell-containing composition include intravenous administration, subcutaneous administration, and surgical treatment. The dose, number of doses, and duration of administration of the cell-containing composition are not particularly limited and may be appropriately determined depending on the condition of the subject to be treated.

[0067] Due to the above-mentioned characteristics, the cell-containing composition of the present invention has a high cell survival rate after cryopreservation, and can improve production efficiency. Furthermore, when a DMSO-free cryopreservation solution is used, clinical safety can be improved. [Example]

[0068] Hereinafter, examples of the present invention will be described, but the present invention is not limited to these examples, and various modifications are possible within the technical concept of the present invention.

[0069] [Example 1] Freezing treatment and cell viability (Preparation of cell-layered sheets) Culture vessel (2 cm) in a 24-well plate (polystyrene) 2 2 mL of a culture medium consisting of 2% serum-containing AIM V (CTS AIM V Medium, Thermo Fisher Scientific) and an equal volume of HFDM-1 culture medium (2% serum-containing HFDM culture medium (HFDM-1(+) (2102P, Cell Science Institute)) was added to the wells of the culture vessel. 5 × 10 human fibroblasts isolated by the method described in JP 2019-000038 A were added to the wells to which the culture medium had been added. 5 The cells were seeded and cultured for one day under atmospheric oxygen (approximately 20%), 37°C, and 5% CO2 conditions to produce a cell-layered sheet. The resulting cell-layered sheet adhered to the culture vessel.

[0070] (freezing treatment) The culture vessel containing the cell layered sheet was placed on ice, and without peeling off the cell layered sheet, the bottom of the cell layered sheet was left attached to the culture vessel, and the culture medium in the well of the culture vessel was replaced with 300 μL of cryopreservation solution cooled to 4° C. The cryopreservation solutions used were Stem Cell Banker (registered trademark) (Nihon Zenyaku Kogyo Co., Ltd.), which contains DMSO, and Stem Cell Banker (registered trademark) DMSO-free GMP grade (Nihon Zenyaku Kogyo Co., Ltd.), which does not contain DMSO. The samples in which the cell layered sheet was immersed in a cryopreservation solution and adhered to the culture vessel (the cell layered sheet adhered to the culture vessel while immersed in a cryopreservation solution) were frozen for 5 minutes at a fan speed of 40 Hz using a non-throughflow, non-contact cold air cooling device (3D Freezer (registered trademark) KSS-40BLW-2400V, Koga Sangyo Co., Ltd.) in a temperature environment of -35°C, -45°C, or -55°C, with or without a lid on the 24-well plate culture vessel. For samples that were not frozen, only the culture medium was replaced.

[0071] (cryopreservation) The frozen and unfrozen samples were cryopreserved at −80° C. for 2 hours using a cryopreservation device (Forma −86C ULT Freezer, Thermo Scientific).

[0072] (Decompression process) The frozen samples were thawed by removing them from the cryopreservation device and leaving them on a plate (Thermo Plate, Tokai Hit Co., Ltd.) set at 37°C for 10 minutes.

[0073] (Measurement of cell viability) The thawed samples were cultured under atmospheric oxygen (approximately 20%), 37°C, and 5% CO2 for two days, and then under hypoxic conditions (5%), 33°C, and 5% CO2 for one day, after which cell survival was measured. The viable cell activity in the samples was measured using an MTS assay system (CellTiter 96® AQueous One Solution Cell Proliferation Assay, Promega). Cell viability was evaluated by measuring the absorbance at 490 nm using a spectrophotometer (2030 ARVO X4, PerkinElmer) for samples treated with CellTiter 96® AQueous One Solution Reagent for 1 hour. The cell viability values ​​in Figures 1 and 2 were calculated as a percentage of the cell viability values ​​for each group relative to the control group. Furthermore, "No freezing" in Figure 1 represents samples that were not frozen and then cryopreserved, while "control group" represents samples that were not frozen or cryopreserved.

[0074] (statistical analysis) Statistical analysis was performed using statistical processing software (GraphPad Prism8, GraphPad Software). In addition, the cell viability in Figure 2 was expressed as the average (standard deviation) of three samples per group using one-way ANOVA analysis, and a P value of less than 0.05 was determined to be statistically significant and is marked with an *.

[0075] (Result 1: Effect of freezing on cell survival) Figure 1 shows the cell viability of samples frozen at -45°C. As shown in Figure 1, when comparing the group using a DMSO-containing cryopreservation solution with the group using a DMSO-free cryopreservation solution, the cell viability of the group using the DMSO-free cryopreservation solution decreased to about 40% of that of the control group without freezing. However, freezing significantly increased the viability to the same level as the control group or the group using the DMSO-containing stem cell banker. Furthermore, the bottom of the frozen cell laminated sheet adhered to the culture vessel without spontaneous detachment, regardless of whether it was with or without a lid.

[0076] Therefore, it was found that the post-thaw cell viability was improved by freezing at -45°C, even in the case of a cryopreservation solution that did not contain DMSO. The increase in cell viability due to freezing in the group using the DMSO-free cryopreservation solution was not confirmed in samples in which the culture vessel was not covered with a lid during freezing. This is presumably because the airflow in the cooling device caused the cryopreservation solution to cool rapidly, distorting the shape of the ice crystals and causing cell damage due to the formation of ice crystals.

[0077] (Result 2: Effect of freezing temperature on cell viability) Figure 2(A) shows the cell viability of samples frozen at -35°C, -45°C, and -55°C using a DMSO-free stem cell banker. As shown in Figure 2(A), when comparing the groups frozen at -45°C and -55°C, cell viability was significantly improved with freezing at -45°C compared to freezing at -55°C. Furthermore, when comparing the groups frozen at -35°C and -45°C, freezing at -45°C tended to increase cell viability compared to freezing at -35°C, and the variability in cell viability among samples was small. This is also evident from the images showing cell viability in Figure 2(B), where almost no variability was observed between the group frozen at -45°C and the group frozen at -35°C.

[0078] Therefore, it was found that the cell viability after thawing was 50% or more when frozen at -35°C, -45°C, or -55°C. Furthermore, in the group frozen at -45°C, the cell viability was approximately 90%, indicating that variation between samples was further reduced. The cell-layered sheet remained attached to the culture vessel without peeling even after cryopreservation and subsequent freezing treatments. Furthermore, by adding dispase, the cell-layered sheet could be peeled off from the culture vessel while maintaining its shape.

[0079] The above results 1 and 2 demonstrated that freezing cells at temperatures between -55°C and -35°C before cryopreservation improved cell survival, even when using a cryopreservation solution that did not contain DMSO.

[0080] [Example 2] Freezing treatment and cell viability 2 (Preparation of cell-layered sheets) Culture vessel (2 cm) in a 24-well plate (polystyrene) 2 Each well was filled with 5 × 10 cells of human fibroblast origin isolated by the method described in JP 2019-000038 A (product number 3820-024, manufactured by AGC Technoglass Co., Ltd.). 5The cells were seeded in a culture vessel in 2 mL of a culture medium consisting of 2% serum-containing AIM V (CTS AIM V Medium, Thermo Fisher Scientific) and an equal volume of HFDM-1 culture medium (2% serum-containing HFDM culture medium (HFDM-1(+) (2102P, Cell Science Institute)). The cells were cultured for 3 days under atmospheric oxygen (approximately 20%), 37°C, and 5% CO2.

[0081] (freezing treatment) The culture medium in the wells containing the above cells was replaced with 0.5 mL of 10 PU / mL dispase (Product No. 386-02271, Godo Shusei Co., Ltd.). After 40 minutes of incubation under atmospheric oxygen (approximately 20%), 37°C, and 5% CO2 conditions, the well solution was removed and the wells were washed twice with 2 mL of PBS (Product No. 1102P, Cell Science Institute). Cell sheets were prepared by detaching the cells from the wells with forceps. The culture vessel containing the cell sheet was placed on ice, and the solution in the well was replaced with 300 μL of cryopreservation solution cooled to 4°C, allowing the cell sheet to be immersed in the cryopreservation solution. The cryopreservation solutions used were: (1) Stem Cell Banker® (Nippon Zenyaku Kogyo Co., Ltd.), (2) Bambanker® hRM (Nippon Genetics Co., Ltd.), and (3) Bambanker® (Nippon Genetics Co., Ltd.). In addition, the cryopreservation solutions used were (4) Cell Reservoir One (Nacalai Tesque), (5) Cryoscarless (registered trademark) DMSO-free (BioVerde), (6) StemCellKeep (BioVerde), (7) Cellvation (registered trademark: Protide Pharmaceuticals), and (8) ReproCryo RM (ReproCell). The samples were frozen in a 24-well plate with the lid on, using a non-contact, non-throughflow cold air cooling device (3D Medical Freezer, Koga Sangyo Co., Ltd.) at a temperature of -35°C and a fan speed of 40 Hz for 20 minutes. Control cell laminate sheets were stored at room temperature with PBS added instead of the freezing solution.

[0082] (cryopreservation) The frozen samples were cryopreserved at −80° C. for 2 hours using a cryopreservation device (Forma −86C ULT Freezer, Thermo Scientific).

[0083] (Decompression process) The frozen samples were thawed by removing them from the cryopreservation device and leaving them on a plate (Thermo Plate, Tokai Hit Co., Ltd.) set at 37°C for 14 minutes.

[0084] (Measurement of cell viability and HGF in culture supernatant) After thawing and washing with PBS, the samples were cultured in an equal volume of 2% serum-containing AIM V and HFDM-1 culture medium. The culture medium was then replaced with atmospheric oxygen (approximately 20%), 37°C, and 5% CO2 for 3 days, and the cells were used to measure cell viability and HGF in the culture supernatant.

[0085] The viable cells in the samples were measured using the MTS assay system in the same manner as in Example 1. The cell survival rate was determined by determining the cell survival value in the same manner as in Example 1, and calculating the cell survival value of each group relative to the control group as a percentage.

[0086] HGF in the culture supernatant was measured by transferring the culture supernatant on day 7 after 3 days of culture at 37°C and 5% CO2 to a 2.0 mL tube and centrifuging at 3000 rpm for 5 minutes. The supernatant was then aliquoted into a new 1.5 mL tube and the HGF concentration in the supernatant was measured using the Human HGF Quantikine ELISA Kit (DHG00B, R&D Systems). Absorbance measurements and concentration calculations were performed using an iMark Microplate Reader (BIO-RAD) and MPM6.exe (BIO-RAD).

[0087] (result) Figure 3 shows the cell viability of samples frozen at -35°C, and Figure 4 shows photographs of a sample 3 days after thawing and 4 hours after MTS reaction when frozen at -35°C. The control sample was stored at room temperature with PBS added instead of the freezing solution. As shown in Figure 3, when comparing the group using a DMSO-containing cryopreservation solution with the group using a DMSO-free cryopreservation solution, cell viability decreased in the group using a DMSO-free cryopreservation solution, but remained above 40%. In particular, cell viability was above 50% with (6) Stem Cell Keep and (8) ReproCryo RM, above 75% with (5) Cryoscarless (registered trademark) DMSO-free, and nearly 100% with (4) Cell Reservoir One. Furthermore, as shown in Figure 4, there was little variation, and the cells were found to be frozen uniformly.

[0088] Furthermore, as shown in Figure 5, the HGF content in the culture supernatant was approximately 60% or more compared to the control, with (6) Stem Cell Keep containing more than 80% HGF, (4) Cell Reservoir One and (7) Cellvation containing more than 100% HGF, and (8) ReproCryo RM containing more than 120% HGF compared to the control.

[0089] The results in Figures 3 to 5 demonstrate that various cell preservation solutions can be used with the non-throughflow, non-contact, cold air cooling device, and that it is possible to freeze not only cells but also high-density cell-layered sheets. Furthermore, it was confirmed that thawed cell-layered sheets secrete HGF. Furthermore, when cell-layered sheets detached with dispase were frozen in a culture vessel, they maintained their viability and secreted HGF.

[0090] [Example 3] Effect of freezing method on cell viability We investigated the effects on cell viability when cooling by blowing cold air using a non-contact, non-throughflow cold air cooling device, and when cooling by a slow freezing method in which the culture well plate is in contact with a cooling plate.

[0091] A cell-layered sheet was prepared using the same method as in Example 1. The culture vessel containing the cell-layered sheet was placed on ice, and the solution in the well was replaced with 300 μL of Stem Cell Banker® (Nippon Zenyaku Kogyo Co., Ltd.) cryopreservation solution precooled to 4°C, allowing the cell-layered sheet to be immersed in the cryopreservation solution. The cell-layered sheet was then frozen using a non-contact, non-throughflow cold air cooling device (3D Freezer KSS-40BLW-2400V, Koga Sangyo Co., Ltd.) or a contact-type programmable freezer (VIA Freeze, Strex), which cools the culture vessel by contacting a cooled plate with the culture vessel. Freezing in the 3D freezer was performed at a temperature of -45°C for 5 minutes at a fan speed of 40 Hz. Freezing in the programmable freezer was performed using the following settings: 4°C 5-minute hold, 4°C to -30°C at -2.0°C / min, 5-minute hold at -30°C, and -1.0°C / min from -30°C to -80°C. Thereafter, the cells were cryopreserved and thawed in the same manner as in Example 1, and the cell survival rate was determined 24 hours after thawing. As a control, a cell-layered sheet that had not been subjected to a freezing treatment was used.

[0092] (result) FIG. 6 shows the cell viability of samples that were not frozen (control) or were frozen using two different methods. As shown in Figure 6, it was clear that freezing using a non-contact, non-throughflow cold air cooling device resulted in a higher cell survival rate than slow freezing using a contact type device.

[0093] [Reference example 1] The following test was carried out to confirm the temperature change that occurs when the cryopreservation solution is frozen in an environment of -55°C or higher and -35°C or lower. (Temperature measurement of cryopreservation solution) The 24-well plate culture vessels, which were capped with Stem Cell Banker® DMSO-free GMP-grade cryopreservation solution, were cooled using a non-contact, non-throughflow cold air cooling device (3D Freezer KSS-40BLW-2400V, Koga Sangyo Co., Ltd.) at temperatures of -35°C, -45°C, and -55°C, with a fan speed of 40 Hz. The temperature change of the cryopreservation solution over time was measured for six specimens per group using a temperature measuring device (ADL12, AS ONE Corporation). The temperature of the lid of the culture vessel was also measured in the same manner.

[0094] (result) 7(A) to (C) show the temperature changes of the cryopreservation solution after freezing at −35° C., −45° C., and −55° C. The areas surrounded by dotted lines in the figures show peaks characteristic of a supercooled state. As shown in Figure 7, when comparing the temperature changes of the cryopreservation solution under environments of -35°C, -45°C, and -55°C, the supercooled state was observed earlier with lower temperature treatment.

[0095] Therefore, it was confirmed that the cryopreservation solution became supercooled within 5 minutes after freezing at -35°C, -45°C, and -55°C. The freezing initiation temperature was above -15°C and below -5°C in all cases.

[0096] From the above results, it was revealed that the cryopreservation solution was frozen through a supercooled state when rapidly cooled in an environment of -55°C or higher and -35°C or lower.

[0097] [Reference example 2] Using various cryopreservation solutions, we investigated the temperature changes during freezing of cell preservation solutions when freezing using a non-contact cold air cooling device with a non-throughflow method and when slow freezing using a programmable freezer.

[0098] (Temperature measurement of cryopreservation solution) Cryopreservation solution was added to three wells of a 6-well plate (2 mL of cryopreservation solution per well) and frozen using a non-contact cold air cooling device (3D Medical Freezer, Koga Sangyo Co., Ltd.) or a contact-type programmable freezer (Strex). Temperature changes over time in the cryopreservation solution were measured in three wells per group using a temperature measuring device (ADL12, AS ONE Corporation). The cryopreservation solutions used were the same as in Example 2: (1) Stem Cell Banker (registered trademark) (Nippon Zenyaku Kogyo Co., Ltd.), (2) Bambanker (registered trademark) hRM (Nippon Genetics Co., Ltd.), and (3) Bambanker (registered trademark) (Nippon Genetics Co., Ltd.). The cryopreservation solutions used were (4) Cell Reservoir One (Nacalai Tesque), (5) Cryoscarless (registered trademark) DMSO-free (BioVerde), (6) StemCellKeep (BioVerde), (7) Cellvation (registered trademark: Protide Pharmaceuticals), and (8) ReproCryo RM (ReproCell). The freezing conditions using the non-contact cold air cooling device (3D medical freezer) were the same as those in Example 2, and the freezing conditions using the programmable freezer were the same as those in Example 3.

[0099] (result) As shown in Figures 8A-H, when a non-contact cold air cooling device was used, the temperature reached -30°C in about 20 minutes after the start of cooling, and a peak characteristic of a supercooled state was observed within 5 minutes of the start of cooling. On the other hand, when frozen using a programmable freezer, it took more than 30 minutes to reach -30°C, and a peak characteristic of a supercooled state was observed 15 minutes or more after the start of cooling.

[0100] 8A to 8H, it was clear that freezing treatment using a non-contact cold air cooling device at −35° C. caused the sample to go into a supercooled state and freeze quickly. [Industrial Applicability]

[0101] The method for cryopreserving cultured cells and the cell-containing composition of the present invention not only enable long-term cell preservation, but also provide cultured cells with high post-thaw survival rates and clinical safety, thereby enabling a safe and stable supply of target cells in fields such as regenerative medicine.

Claims

1. (1) culturing cells in a culture vessel; (2) adding a cryopreservation solution containing no dimethyl sulfoxide to the culture vessel and immersing the cultured cells cultured in the step (1) in the cryopreservation solution; (3) a step of covering the culture vessel and freezing the cultured cells and the culture vessel immersed in the cryopreservation solution by leaving them in an environment of −60° C. or higher and −25° C. or lower; (4) a step of freezing and storing the cultured cells frozen in the step (3) at −80° C. or lower; A method for cryopreserving cultured cells, comprising:

2. 2. The method for cryopreserving cultured cells according to claim 1, wherein in step (3), the freezing treatment is carried out by blowing cold air onto the culture vessel.

3. 3. The method for cryopreserving cultured cells according to claim 2, wherein in step (3), the freezing treatment is carried out by blowing cold air onto the cells using a non-cross-flow cooling device.

4. The method for cryopreserving cultured cells according to any one of claims 1 to 3, characterized in that a cryopreservation solution is added to the culture vessel while the cultured cells obtained by culturing in step (1) are adhered to the culture vessel.

5. A method for freezing and preserving cultured cells described in any one of claims 1 to 4, characterized in that the freezing treatment is carried out in a non-stepwise manner in an environment of -50°C or higher and -25°C or lower on cultured cells immersed in a freezing preservation solution in an environment of 0°C or higher.

6. A method for freezing and preserving cultured cells described in any one of claims 1 to 5, characterized in that the freezing treatment removes the supercooled state of the freezing preservation solution within 10 minutes from the start of the freezing treatment.

7. A method for freezing and preserving cultured cells described in any one of claims 1 to 6, characterized in that the cultured cells obtained by culturing in step (1) have the form of a cell sheet or a three-dimensional cell culture.

8. A method for freezing and preserving cultured cells as described in claim 7, characterized in that in step (3), a cell sheet or three-dimensional cell culture is adhered to the culture vessel after the freezing treatment.

9. A method for freezing and preserving cultured cells described in any one of claims 1 to 8, characterized in that the cells cultured in step (1) are fibroblasts, corneal epithelial cells, retinal cells, cardiac muscle cells, mesenchymal stem cells, or pluripotent stem cells.

10. (1) A step of culturing cells in a culture vessel; (2) adding a cryopreservation solution containing no dimethyl sulfoxide to the culture vessel and immersing the cultured cells cultured in the step (1) in the cryopreservation solution; (3) a step of covering the culture vessel and freezing the cultured cells and the culture vessel immersed in the cryopreservation solution by leaving them in an environment of −60° C. or higher and −25° C. or lower; (4) a step of freezing and storing the cultured cells frozen in the step (3) at −80° C. or lower; (5) thawing the cultured cells cryopreserved in step (4) and detaching them from the culture vessel; A method for producing a cell-containing composition comprising the steps of:

Citation Information

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