Method for producing cell aggregates

A substrate with cell adhesion-inhibiting properties and high-density polymer spots addresses the limitations of conventional methods, enabling efficient production of uniform and large-scale spheroids with high cell utilization efficiency.

JP7768513B2Active Publication Date: 2025-11-12NISSAN CHEM CORP +1
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Patent Information

Application Number
JP2022501998
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-02-21
Filing Date
2021-02-19
Publication Date
2025-11-12
Estimated Expiration
2041-02-19

AI Technical Summary

Technical Problem

Conventional methods for producing cell aggregates, such as those using low-adhesion cell culture dishes, result in poor operability and mass productivity, limiting the practical application of regenerative medicine and drug discovery.

Method used

A substrate with cell adhesion-inhibiting properties is coated with a polymer that forms high-density spots, allowing almost all seeded cells to adhere and aggregate, forming multiple uniform spheroids efficiently.

Benefits of technology

The substrate enables excellent operability and mass productivity, achieving a cell utilization efficiency of 90% or more, allowing for the simple and efficient production of uniform and large-scale spheroids.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a cell aggregate producing substrate, a method for manufacturing same, a method for producing a cell aggregate, and a method for improving cell utilization efficiency when producing a cell aggregate. Provided is: a cell aggregate production substrate provided with, on a substrate capable of suppressing adhesion of cells, a plurality of spots each formed of a polymer including a repeating unit derived from a monomer represented by formula (I) [in the formula, Ua1, Ua2, Ra1, and Ra2 are each as described in the description and claims]. The proportion of the total area of the spots with respect to the surface area of the substrate is 30% or more. The diameter of the spots is 50-5000 µm, and the interval between the spots is 30-1000 µm. Also provided are a method for manufacturing the cell aggregate production substrate, a method for producing a cell aggregate using said substrate, and a method for improving cell utilization efficiency when producing a cell aggregate.
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Description

[Technical Field]

[0001] The present invention relates to a substrate for producing a cell aggregate, a method for producing the same, a method for producing a cell aggregate, and a method for improving cell utilization efficiency during the production of a cell aggregate. [Background technology]

[0002] Cell aggregates (also known as spheroids or cell clusters) are three-dimensionally cultured cell aggregates in which cells self-assemble and aggregate, forming a biomimetic structure that has been reported to maintain cellular function for a long period of time and improve physiological function. Therefore, expectations are growing for the use of cell aggregates in drug discovery research, cell therapy, and regenerative therapy.

[0003] Accordingly, the development of tissue engineering techniques that can easily, quickly, uniformly, and mass-produce cell aggregates has become an important issue for the practical application of regenerative medicine and the efficiency of drug discovery testing. However, conventional methods that utilize the random aggregation phenomenon of suspended cells using low-adhesion cell culture dishes (e.g., multi-well plates) only form one spheroid per well, which poses the problem of poor operability and mass productivity.

[0004] The present inventors have previously reported that, as a cell culture technology, a coating agent containing a copolymer containing specific anionic and cationic groups can firmly adhere to any type of substrate, and after adhesion, forms a coating film that is highly resistant to aqueous solvents and exhibits excellent adhesion inhibitory properties for biological materials (e.g., platelets, fibrinogen, etc.) (see, for example, Patent Documents 1 and 2). Furthermore, the present inventors have reported that cell culture vessels coated with the same coating agent exhibit excellent cell adhesion inhibitory properties, excellent resistance to solvents and radiation, and can be used for long-term (e.g., 14 days or more, e.g., 21 days or more) non-adherent culture, making them suitable for the production of spheroids (see, for example, Patent Documents 3 and 4). Furthermore, the present inventors have reported a coating agent that induces spontaneous aggregation (self-aggregation) of adherent cells and the production of spheroids using a cell culture vessel coated with the same coating agent (see, for example, PCT / JP2019 / 32785). However, none of these methods are satisfactory in terms of ease of operation and mass production of spheroids. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] International Publication No. 2014 / 196650 [Patent Document 2] International Publication No. 2016 / 093293 [Patent Document 3] International Publication No. 2014 / 196652 [Patent Document 4] International Publication No. 2019 / 107503 Summary of the Invention [Problem to be solved by the invention]

[0006] An object of the present invention is to provide a substrate for producing cell aggregates, which is excellent in operability and mass productivity for producing spheroids, and a method for producing the same. [Means for solving the problem]

[0007] The inventors discovered that by combining a coating agent that induces spontaneous aggregation (self-aggregation) of adherent cells with, for example, an inkjet device, and applying it in high-density spots onto a substrate that has the ability to inhibit cell adhesion (for example, a low-cell adhesion petri dish), it is possible to cause almost all of the seeded cells to adhere to the coating film (spots) and aggregate, thereby completing the present invention. That is, the present invention is as follows:

[0008] [1] A substrate having cell adhesion inhibitory properties is coated with the following formula (I): [ka] [In the formula, U a1 and U a2 each independently represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a1 represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a2 A substrate for producing cell aggregates, comprising a plurality of spots made of a polymer containing a repeating unit derived from a monomer represented by the formula [wherein represents a linear or branched alkylene group having 1 to 5 carbon atoms], wherein the ratio of the total area of ​​the spots to the surface area of ​​the substrate is 30% or more, the diameter of each spot is 50 to 5000 μm, and the spacing between spots is 30 to 1000 μm.

[0009] [2] The substrate for producing cell aggregates according to [1], which has a cell utilization efficiency of 90% or more.

[0010] [3] The substrate for producing cell aggregates according to [1] or [2], wherein the cells are stem cells.

[0011] [4] The polymer further comprises a compound represented by formula (II): [ka] [In the formula, R b The substrate for producing a cell aggregate according to any one of [1] to [3], which contains a repeating unit derived from a monomer represented by the following formula:

[0012] [5] The polymer further comprises a compound represented by the following formula (III): [ka] [In the formula, R c and R d each independently represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R e A substrate for producing cell aggregates according to any one of [1] to [4], which contains a structural unit derived from a monomer represented by the following formula: wherein n represents a linear or branched alkylene group having 1 to 5 carbon atoms, and n represents a number from 1 to 50.

[0013] [6] The substrate having the cell adhesion inhibitory ability is a copolymer (P) containing a repeating unit containing a group represented by the following formula (a) and a repeating unit containing a group represented by the following formula (b): [ka] [In the formula, U a11 , U a12 , U b11 , U b12 and U b13 each independently represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; An - represents an anion selected from the group consisting of a halide ion, an inorganic acid ion, a hydroxide ion, and an isothiocyanate ion. The substrate for producing a cell aggregate according to any one of [1] to [5], which comprises a coating film containing the above on at least a part of the surface of the substrate.

[0014] [7] On a substrate that has the ability to inhibit cell adhesion, The following formula (I): [ka] [In the formula, U a1 and U a2 each independently represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a1 represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a2 represents a linear or branched alkylene group having 1 to 5 carbon atoms] in the form of multiple spots, followed by drying, wherein the total area of ​​the spots relative to the surface area of ​​the substrate is 30% or more, the diameter of each spot is 50 to 5000 μm, and the spacing between spots is 30 to 1000 μm.

[0015] [8] A method for producing a substrate for producing cell aggregates according to [7], in which the cell utilization efficiency is 90% or more.

[0016] [9] The method for producing a substrate for producing cell aggregates according to [7] or [8], wherein the coating step is carried out by an inkjet method.

[0017]

[10] On a substrate that has the ability to inhibit cell adhesion, The following formula (I): [ka] [In the formula, U a1 and U a2 each independently represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a1 represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a2represents a linear or branched alkylene group having 1 to 5 carbon atoms], and then seeding cells, wherein the total area of ​​the spots relative to the surface area of ​​the substrate is 30% or more, the diameter of each spot is 50 to 5000 μm, and the spacing between spots is 30 to 1000 μm.

[0018]

[11] The method for producing a cell aggregate according to

[10] , wherein the cell utilization efficiency is 90% or more.

[0019]

[12] On a substrate that has the ability to inhibit cell adhesion, The following formula (I): [ka] [In the formula, U a1 and U a2 each independently represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a1 represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a2 A method for improving cell utilization efficiency during the production of cell aggregates by applying, in the form of multiple spots, a polymer containing a repeating unit derived from a monomer represented by the formula: [wherein represents a linear or branched alkylene group having 1 to 5 carbon atoms], wherein the total area of ​​the spots relative to the surface area of ​​the substrate is 30% or more, the diameter of each spot is 50 to 5000 μm, and the spacing between spots is 30 to 1000 μm. [Effects of the Invention]

[0020] According to the present invention, instead of using conventional multi-well plates for producing spheroids, a substrate for producing cell aggregates of the present invention is used, which is a substrate such as the bottom surface of a petri dish or dish or the surface of a plate, which has the ability to inhibit cell adhesion and is provided with a high density of multiple spot-shaped coating films made of a specific polymer according to the present invention that induces the spontaneous aggregation (self-aggregation) of adherent cells.By simply seeding cells on the flat surface of the substrate with the coating films (spots), multiple spheroids of uniform size can be formed on a single substrate (container), resulting in excellent operability and mass productivity.Furthermore, the use of the substrate for producing cell aggregates of the present invention improves the utilization efficiency of the cells seeded during spheroid production.Therefore, the present invention allows for the simple and efficient production of uniform and large-scale spheroids. [Brief explanation of the drawings]

[0021] [Figure 1] (a) is a fluorescent microscope image of the petri dish for forming cell aggregates obtained in Example 1, in which the area coated with the polymer according to the present invention is luminous in a circular shape, demonstrating that a coating film (spot) can be formed by inkjet printing. (b) is a graph showing the relationship between the amount of inkjet droplets (amount of application) and the area of ​​the coating film formed in the production of the petri dish for forming cell aggregates in Example 1, demonstrating that the area of ​​the spot increases as the amount of droplets increases, i.e., that the size of the spot can be controlled by the amount of droplets. [Figure 2] (a) is a fluorescent microscope image of the petri dish for forming cell aggregates obtained in Example 2, and (b) is a fluorescent microscope image of the petri dish for forming cell aggregates obtained in Comparative Example 1. The ratio of the total area of ​​the spots to the bottom area of ​​the petri dish was 44% for the former and 15% for the latter. [Figure 3]The top row of (a) is a microscopic image of cells adhering to each spot on a cell aggregate formation dish (after 4 hours) in the cell aggregate production test of Example 3, and the bottom row of (a) is a microscopic image of spheroids formed by detachment of the adhered cells (after 44 hours). (b) is a graph showing the relationship between the spot area and the spheroid diameter, demonstrating that the spheroid diameter increases with increasing spot area, i.e., that the size of the spheroid can be controlled by the droplet volume. [Figure 4] (a) is a microscopic image of cells adhering to each spot on a petri dish for forming cell aggregates that has spots at a high density in the cell adhesion confirmation test of Example 4, and (b) is a microscopic image of cells adhering to each spot on a petri dish for forming cell aggregates that has spots at a low density in the cell adhesion confirmation test of Comparative Example 2. The ratio of the total area of ​​the spots to the bottom area of ​​the petri dish was 52% for the former and 15% for the latter. [Figure 5] This is a portion of a time-lapse microscopic image taken in the cell aggregate production test of Example 5, showing cells (immediately after seeding) seeded in a cell aggregate formation dish adhering to each spot on the dish over time (2 hours later) and forming cell aggregates (8 hours later). DETAILED DESCRIPTION OF THE INVENTION

[0022] [Substrate for cell aggregate production and method for producing the same] (polymer) The substrate for producing cell aggregates of the present invention comprises a plurality of spots made of a polymer on a substrate having cell adhesion-inhibiting properties. In the present invention, the term "spot" refers to a substantially circular coating film having a diameter of 50 to 5000 μm formed on the substrate by the polymer. The polymer constituting the spot portion is The following formula (I): [ka]

[0023] [In the formula, U a1 , Ua2 each independently represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a1 represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a2 represents a linear or branched alkylene group having 1 to 5 carbon atoms].

[0024] The polymer is prepared by reacting a cationic monomer represented by formula (I) with a cationic monomer represented by formula (II): [ka] [In the formula, R b represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms].

[0025] Unless otherwise defined, in this specification, examples of a "linear or branched alkyl group having 1 to 5 carbon atoms" include a methyl group, an ethyl group, an n-propyl group, an isopropyl group, an n-butyl group, an isobutyl group, an s-butyl group, a t-butyl group, an n-pentyl group, a 1-methylbutyl group, a 2-methylbutyl group, a 3-methylbutyl group, a 1,1-dimethylpropyl group, a 1,2-dimethylpropyl group, a 2,2-dimethylpropyl group, and a 1-ethylpropyl group. R a1 and R b are preferably each independently selected from a hydrogen atom and a methyl group. U a1 and U a2 are each independently preferably selected from a hydrogen atom, a methyl group, an ethyl group, an n-propyl group, an isopropyl group, and an n-butyl group, more preferably a methyl group or an ethyl group, and most preferably a methyl group.

[0026] In this specification, unless otherwise defined, examples of a "linear or branched alkylene group having 1 to 5 carbon atoms" include a methylene group, an ethylene group, a propylene group, a trimethylene group, a tetramethylene group, a 1-methylpropylene group, a 2-methylpropylene group, a dimethylethylene group, an ethylethylene group, a pentamethylene group, a 1-methyl-tetramethylene group, a 2-methyl-tetramethylene group, a 1,1-dimethyl-trimethylene group, a 1,2-dimethyl-trimethylene group, a 2,2-dimethyl-trimethylene group, and a 1-ethyl-trimethylene group. a2 is preferably selected from an ethylene group and a propylene group.

[0027] Therefore, examples of the cationic monomer represented by the formula (I) include 2-N,N-dimethylaminoethyl methacrylate and N-isopropylacrylamide, with 2-N,N-dimethylaminoethyl methacrylate being preferred. Examples of the anionic monomer represented by the formula (II) include acrylic acid and methacrylic acid, with methacrylic acid being preferred.

[0028] The molar ratio of units derived from the monomer represented by formula (I) to units derived from the monomer represented by formula (II) in the polymer is 100 / 0 to 50 / 50, preferably 98 / 2 to 50 / 50, more preferably 98 / 2 to 60 / 40, and particularly preferably 98 / 2 to 70 / 30. If the molar ratio of formula (II) is 51 or more, the anionicity of the polymer becomes excessive, resulting in a decrease in the adhesive force of cells.

[0029] The polymer preferably contains, in addition to the monomer represented by formula (I) / formula (II), a structural unit derived from a monomer having two or more carbon-carbon unsaturated bonds. Specifically, the monomer having two or more carbon-carbon unsaturated bonds is a monomer having two or more carbon-carbon double bonds, such as a polyfunctional acrylate compound, a polyfunctional acrylamide compound, a polyfunctional polyester, or an isoprene compound. The structural unit derived from such a monomer may exist as a crosslinked structure between polymers. By introducing the above-mentioned monomer having two or more carbon-carbon unsaturated bonds, the polymer can have a high molecular weight and a broader molecular weight distribution, thereby improving the adhesion and coatability of the film to the substrate.

[0030] Preferred specific examples include monomers represented by the following formulas (III) to (V). [ka]

[0031] [ka]

[0032] [ka]

[0033] In the formula, R c and R d each independently represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R e represents a linear or branched alkylene group having 1 to 5 carbon atoms, and n represents a number from 1 to 50. Among these, the monomer represented by formula (III) is preferred.

[0034] The molar ratio of the monomers represented by formulae (III) to (V) to the entire polymer is preferably 0 to 5%, and more preferably 0 to 3%. If the molar ratio of formulas (III) to (V) is 5% or more, excessive crosslinking may result in high molecular weight, which may cause gelation during production, making production difficult. R c and R d are preferably each independently selected from a hydrogen atom and a methyl group. R e is preferably selected from methylene, ethylene and propylene groups, with ethylene being most preferred. Although n is a number from 1 to 50, n is preferably a number from 1 to 30, and n is preferably a number from 1 to 10.

[0035] The difference between the mol % of the monomer represented by formula (II) relative to the total polymer and the mol % of the monomer represented by formula (II) relative to the total amount of monomers charged in the preparation step is 0 to 10 mol %. The polymer according to the present invention has a small difference between the monomer charge ratio and the measured value of the produced polymer by the production method described below, which is 0 to 10 mol %, more preferably 0 to 8 mol %.

[0036] The number average molecular weight (Mn) of the polymer is 20,000 to 2,000,000, and more preferably 50,000 to 1,000,000.

[0037] The ratio (Mw / Mn) of the weight average molecular weight (Mw) to the number average molecular weight (Mn) of the polymer is 1.01 to 10.00, preferably 1.2 to 8.0, more preferably 2.0 to 7.0, and particularly preferably 3.0 to 6.0. The weight average molecular weight (Mw) and number average molecular weight (Mn) can be determined, for example, by gel filtration chromatography as described in the examples.

[0038] By utilizing the cell aggregate production substrate of the present invention, which has multiple spots made of the above-mentioned polymer on a substrate capable of inhibiting cell adhesion, it is possible to produce multiple cell aggregates in a single container at once by adhering cells to the multiple spots and then detaching them. Note that a cell aggregate refers to a structure formed as a result of cell aggregation, and its shape is not limited to a spherical or ring shape. Compared to cell aggregates produced by non-adhesive culture on conventional low-adhesion plates, the present invention has the advantage of being able to adjust the size of the cell aggregate by specifying the adhesion area (cell aggregates of any size can be produced).

[0039] (Polymer manufacturing method) The polymer according to the present invention can be produced by thermal polymerization. For example, a monomer of formula (I) is dissolved in an organic solvent, a radical polymerization initiator is added, and then, if necessary, a monomer of formula (II) and, if necessary, a monomer having two or more carbon-carbon unsaturated bonds (e.g., a monomer represented by formulas (III) to (V)) are added to form a mixture. The mixture is thoroughly stirred to homogenize, and then, under a nitrogen flow, the temperature is raised to, for example, 51°C or higher, e.g., 51 to 180°C, 51 to 150°C, 51 to 130°C, or 51 to 100°C, for example, the reflux temperature of the solvent (e.g., 66 to 85°C for tetrahydrofuran), and the mixture is stirred for, for example, 1 to 48 hours to obtain a polymer. The resulting polymer may be purified by reprecipitation or dialysis.

[0040] In one embodiment, the polymerizable composition can be prepared by a production method including the steps of dissolving the monomer of formula (I) in a solvent, adding a polymerization initiator, and then reacting (polymerizing) the monomer of formula (II) in the solvent at a total concentration of both compounds of 0.01% by mass to 40% by mass.

[0041] Examples of organic solvents used in the polymerization include ether solvents such as tetrahydrofuran and 1,4-dioxane, aliphatic alcohol solvents having 1 to 4 carbon atoms such as methanol, ethanol and isopropanol, aromatic hydrocarbon solvents such as toluene, and mixed solvents thereof.

[0042] To efficiently promote the polymerization reaction, it is desirable to use a radical polymerization initiator. Examples of radical polymerization initiators include azo polymerization initiators such as dimethyl 1,1'-azobis(1-cyclohexanecarboxylate) (VE-073, Fujifilm Wako Pure Chemical Industries, Ltd.), 2,2'-azobis(2,4-dimethylvaleronitrile) (V-65, Fujifilm Wako Pure Chemical Industries, Ltd.), 2,2'-azobis(isobutyronitrile) (AIBN, Fujifilm Wako Pure Chemical Industries, Ltd.), 2,2'-azobis[N-(2-carboxyethyl)-2-methylpropionamidine]n hydrate (VA-057, Fujifilm Wako Pure Chemical Industries, Ltd.), and 2,2'-(N-butyl-2-methylpropionamide) (VAm-110, Fujifilm Wako Pure Chemical Industries, Ltd.). The amount of the polymerization initiator added is 0.05% by mass to 5% by mass based on the total weight of the monomers used in the polymerization. The use of a polymerization initiator not only improves the efficiency of the polymerization reaction, but also makes it possible to adjust the physical properties of the polymer by modifying the terminal functional groups.

[0043] For example, the polymer of the present invention may be modified with a functional molecule by modifying the terminal functional group, provided that the polymer's purpose is not impaired. A typical example of a functional molecule is a fluorescently labeled molecule, and reagents for introducing such molecules are commercially available under the name Alexa Fluor (trademark), for example.

[0044] (spot) The substrate for producing cell aggregates of the present invention is provided with a plurality of spots (coating films) made of the polymer, characterized in that the ratio of the total area of ​​the spots to the surface area of ​​the substrate is 30% or more, the diameter of each spot is 50 to 5000 μm, and the spacing between spots is 30 to 1000 μm. The ratio of the total area of ​​the spots to the surface area of ​​the substrate, the diameter of each spot, and the spacing between spots can be appropriately selected from predetermined ranges depending on the type of cells and substrate used, the desired size of the cell aggregates, etc., but the ratio of the total area of ​​the spots to the surface area of ​​the substrate is preferably 30% or more, 40% or more, or 50% or more, and preferably 99% or less, the diameter of each spot is 50 to 5000 μm, preferably 300 to 3000 μm, and the spacing between spots is 30 to 1000 μm, preferably 100 to 500 μm. The present invention enables the formation of multiple uniformly sized spheroids on a single substrate (container) at once by arranging independent micro-sized areas (spots) to which cells can adhere at high density, preferably in a regular pattern, on a substrate that has the ability to inhibit cell adhesion.

[0045] Furthermore, with the cell aggregate production substrate of the present invention, almost all of the seeded cells can be adhered to the spots and aggregated. Specifically, with the cell aggregate production substrate of the present invention, the cell utilization efficiency reaches 90% or more, preferably 95% or more, and more preferably 99% or more. The cell utilization efficiency is calculated by seeding cells onto the cell aggregate production substrate of the present invention, and after a predetermined incubation operation, dividing the number of adhered cells (for example, the number of seeded cells minus the number of non-adherent cells contained in the medium removed from the substrate after the incubation operation) by the number of seeded cells, and expressing this as a percentage.

[0046] The multiple spots (coating films) made of the above polymer that are provided on the substrate for producing cell aggregates of the present invention are formed by applying the above polymer in spots onto a substrate having the ability to inhibit cell adhesion, and then drying the substrate.

[0047] The step of applying the polymer onto a substrate may be carried out using a coating film-forming agent containing the polymer, which can be produced by mixing the polymer with a water-containing solution by a method known per se. The aqueous solution may be water, a salt-containing aqueous solution such as physiological saline or phosphate buffer solution, or a mixed solvent of water or a salt-containing aqueous solution with an alcohol. Examples of the alcohol include alcohols having 2 to 6 carbon atoms, such as ethanol, propanol, isopropanol, 1-butanol, 2-butanol, isobutanol, t-butanol, 1-pentanol, 2-pentanol, 3-pentanol, 1-heptanol, 2-heptanol, 2,2-dimethyl-1-propanol (neopentyl alcohol), 2-methyl-1-propanol, 2-methyl-1-butanol, 2-methyl-2-butanol (t-amyl alcohol), 3-methyl-1-butanol, 3-methyl-3-pentanol, cyclopentanol, 1-hexanol, and the like. Examples of suitable solvents include 2-methyl-1-pentanol, 2-methyl-2-pentanol, 2-methyl-3-pentanol, 3-methyl-1-pentanol, 3-methyl-2-pentanol, 3-methyl-3-pentanol, 4-methyl-1-pentanol, 4-methyl-2-pentanol, 4-methyl-3-pentanol, and cyclohexanol. These solvents may be used alone or in combination. In addition to the polymer and solvent, the coating film-forming agent may also contain other substances, if necessary, within the range that does not impair the performance of the resulting coating film, such as pH adjusters, crosslinking agents, preservatives, surfactants, primers that improve adhesion to the substrate, antifungal agents, and sugars.

[0048] (substrate) Examples of substrates onto which the coating film forming agent is applied include petri dishes, dishes, plates, and trays commonly used for cell culture, and "on the substrate" refers to the surface of these that comes into contact with cells or cell culture medium, and in the case of a petri dish or dish, for example, it means the bottom surface.

[0049] Examples of the substrate material include glass, metal, metal-containing compounds, metalloid-containing compounds, activated carbon, and resin. Examples of metals include typical metals (alkali metals: Li, Na, K, Rb, Cs; alkaline earth metals: Ca, Sr, Ba, Ra), magnesium group elements: Be, Mg, Zn, Cd, Hg, aluminum group elements: Al, Ga, In, rare earth elements: Y, La, Ce, Pr, Nd, Sm, Eu, tin group elements: Ti, Zr, Sn, Hf, Pb, Th, iron group elements: Fe, Co, Ni, earth elements: V, Nb, Ta, chromium group elements: Cr, Mo, W, U, manganese group elements: Mn, Re, noble metals: Cu, Ag, Au, and platinum group elements: Ru, Rh, Pd, Os, Ir, Pt, etc. Examples of metal-containing compounds or metalloid-containing compounds include ceramics, which are sintered bodies whose basic component is a metal oxide and which are hardened by heat treatment at high temperatures; semiconductors such as silicon; inorganic solid materials such as molded bodies of inorganic compounds such as metal oxides or metalloid oxides (silicon oxide, alumina, etc.); metal carbides or metalloid carbides; metal nitrides or metalloid nitrides (silicon nitride, etc.); and metal borides or metalloid borides; aluminum, nickel titanium, and stainless steel (SUS304, SUS316, SUS316L, etc.).

[0050] The resin may be a natural resin or a derivative thereof, or a synthetic resin. Preferred examples of natural resins or derivatives thereof include cellulose, cellulose triacetate (CTA), nitrocellulose (NC), and cellulose with immobilized dextran sulfate. Preferred examples of synthetic resins include polyacrylonitrile (PAN), polyester polymer alloy (PEPA), polystyrene (PS), polysulfone (PSF), polyethylene terephthalate (PET), polymethyl methacrylate (PMMA), polyvinyl alcohol (PVA), polyurethane (PU), ethylene vinyl alcohol (EVAL), polyethylene (PE), polyester, polypropylene (PP), polyvinylidene fluoride (PVDF), polyethersulfone (PES), polycarbonate (PC), polyvinyl chloride (PVC), polytetrafluoroethylene (PTFE), ultra-high molecular weight polyethylene (UHPE), polydimethylsiloxane (PDMS), acrylonitrile-butadiene-styrene resin (ABS), and Teflon (registered trademark). In the production of the substrate for producing cell aggregates of the present invention, since no high temperature treatment is required when applying the polymer onto the substrate, resins with low heat resistance can also be used.

[0051] The substrate may be made of one material or a combination of two or more materials. Among these materials, glass, silicon, silicon oxide, polystyrene (PS), polypropylene (PP), polyethersulfone (PES), polyethylene terephthalate (PET), polycarbonate (PC), polyvinyl chloride (PVC), Teflon (registered trademark), cycloolefin polymer (COP), polydimethylsiloxane (PDMS), or stainless steel (SUS304, SUS316, SUS316L, etc.) is preferred, either alone or in combination, and glass, polystyrene (PS), polypropylene (PP), stainless steel (SUS304, SUS316, SUS316L, etc.), or polydimethylsiloxane (PDMS) is particularly preferred.

[0052] The coating step is carried out so that the ratio of the total area of ​​the formed spots to the surface area of ​​the substrate is 30% or more, the diameter of each spot is 50 to 5000 μm, and the spacing between spots is 30 to 1000 μm. Coating methods that can be used include, for example, inkjet printing, screen printing, slit coating, and roll-to-roll methods, but inkjet printing is preferred. The inkjet device and inkjet head used in the inkjet method are not particularly limited, and can be appropriately selected from commercially available products depending on the physical properties and droplet volume of the polymer or coating film-forming agent.

[0053] Furthermore, the coating film on the substrate obtained by this method can be used as a substrate for producing cell aggregates either as is without a drying step after the coating step, or after washing with water or the medium of the sample to be subjected to cell culture (e.g., water, buffer solution, culture medium, etc.).

[0054] The substrate may be subjected to a drying step, which is carried out in the atmosphere or under vacuum, preferably at a temperature in the range of −200° C. to 200° C. The drying step removes the solvent in the coating film-forming agent, thereby completely fixing the coating film-forming agent to the substrate.

[0055] The coating film can be formed by drying at room temperature (10°C to 35°C, preferably 20°C to 30°C, e.g., 25°C), but to form the coating film more quickly, drying may be performed at, for example, 40°C to 50°C. If the drying temperature is lower than -200°C, an uncommon refrigerant must be used, which is insufficient for versatility, and drying takes a long time due to solvent sublimation, resulting in poor efficiency. If the drying temperature is higher than 200°C, thermal decomposition of the polymer occurs. A more preferred drying temperature is 10°C to 180°C, and even more preferred is 20°C to 150°C.

[0056] The coating film (spot) of the substrate for producing cell aggregates of the present invention is produced through the above-mentioned simple steps. Furthermore, in order to remove impurities, unreacted monomers, etc. remaining in the coating film, a step of washing with at least one solvent selected from water and an aqueous solution containing an electrolyte may be carried out. Washing is preferably performed using running water or ultrasonic cleaning. The aqueous solution containing water and an electrolyte may be heated, for example, to a temperature in the range of 40°C to 95°C. Preferred aqueous solutions containing electrolytes are PBS, saline (containing only sodium chloride), Dulbecco's phosphate-buffered saline, Tris-buffered saline, HEPES-buffered saline, and Veronal-buffered saline, with PBS being particularly preferred. After adhesion, the coating film remains firmly adhered to the substrate without elution even when washed with water, PBS, alcohol, etc.

[0057] The maximum and minimum thicknesses of the coating film of the substrate for producing cell aggregates of the present invention are in the range of 1 to 1000 nm, preferably 5 to 500 nm.

[0058] The substrate is one that has been subjected to a cell adhesion-inhibiting treatment before the coating and drying process of the coating film. A substrate having cell adhesion-inhibiting ability can be produced, for example, by a process of applying a known coating film-forming composition having cell adhesion-inhibiting ability (for example, as described in WO2014 / 196650 and WO2016 / 093293). The coating film-forming composition having cell adhesion-inhibiting ability includes a copolymer (P) containing a repeating unit containing a group represented by the following formula (a) and a repeating unit containing a group represented by the following formula (b): [ka] [In the formula, U a11 , U a12 , U b11 , U b12 and U b13 each independently represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; An - represents an anion selected from the group consisting of a halide ion, an inorganic acid ion, a hydroxide ion, and an isothiocyanate ion. and a solvent, and then applying the composition for forming a coating film to the surface of a container or a substrate, followed by drying. The copolymer (P) according to the present invention may further contain, as an optional third component, an ethylenically unsaturated monomer, or a polysaccharide or a derivative thereof copolymerized therein. Examples of the ethylenically unsaturated monomer include one or more ethylenically unsaturated monomers selected from the group consisting of (meth)acrylic acid and its esters; vinyl acetate; vinylpyrrolidone; ethylene; vinyl alcohol; and hydrophilic functional derivatives thereof. Examples of polysaccharides or derivatives thereof include cellulose-based polymers such as hydroxyalkyl cellulose (e.g., hydroxyethyl cellulose or hydroxypropyl cellulose), starch, dextran, and curdlan.

[0059] The hydrophilic functional derivative refers to an ethylenically unsaturated monomer having a hydrophilic functional group or structure. Examples of the hydrophilic functional group or structure include a betaine structure, an amide structure, an alkylene glycol residue, an amino group, and a sulfinyl group.

[0060] The betaine structure means a monovalent or divalent group of a compound having an amphoteric center of a quaternary ammonium type cation structure and an acidic anion structure, such as a phosphorylcholine group: [ka] An example of an ethylenically unsaturated monomer having such a structure is 2-methacryloyloxyethyl phosphorylcholine (MPC).

[0061] The amide structure has the following formula: [ka] [where R 16 , R 17 and R 18are each independently a hydrogen atom or an organic group (e.g., a methyl group, a hydroxymethyl group, a hydroxyethyl group, etc.). It means a group represented by the formula: Examples of ethylenically unsaturated monomers having such a structure include (meth)acrylamide and N-(hydroxymethyl)(meth)acrylamide. Furthermore, monomers or polymers having such a structure are disclosed, for example, in JP-A-2010-169604.

[0062] The alkylene glycol residue refers to an alkyleneoxy group (-Alk-O-) remaining after one or both terminal hydroxyl groups of alkylene glycol (HO-Alk-OH; where Alk is an alkylene group having 1 to 10 carbon atoms) undergo a condensation reaction with another compound, and also encompasses poly(alkyleneoxy) groups in which alkyleneoxy units are repeated. Examples of ethylenically unsaturated monomers having such a structure include 2-hydroxyethyl (meth)acrylate and methoxypolyethylene glycol (meth)acrylate. Furthermore, monomers or polymers having such a structure are disclosed, for example, in JP 2008-533489 A.

[0063] Amino groups have the formula: -NH2, -NHR 19 or -NR 20 R 21 [where R 19 , R 20 and R 21 are each independently an organic group (for example, a linear or branched alkyl group having 1 to 5 carbon atoms). The amino group in the present invention includes quaternized or salified amino groups. Examples of ethylenically unsaturated monomers having such a structure include dimethylaminoethyl (meth)acrylate, 2-(t-butylamino)ethyl (meth)acrylate, and methacryloylcholine chloride.

[0064] The sulfinyl group has the formula: [ka] [where R 22 is an organic group (for example, an organic group having 1 to 10 carbon atoms, preferably an alkyl group having 1 to 10 carbon atoms having one or more hydroxy groups, etc.) An example of a polymer having such a structure is a copolymer disclosed in JP-A-2014-48278.

[0065] The straight-chain or branched alkyl group having 1 to 5 carbon atoms is the same as that described above. For example, the composition for forming a coating film described in WO2014 / 196650 can be used as the composition for forming a coating film. The method for applying the coating film-forming composition is not particularly limited, and a typical application method such as spin coating, dip coating, or solvent casting can be used.

[0066] The drying step of the coating film is carried out in the atmosphere or under vacuum at a temperature ranging from −200° C. to 180° C. The drying step removes the solvent from the composition for forming a coating film, and also forms ionic bonds between the copolymers of formula (a) and formula (b), thereby completely fixing the composition to the substrate.

[0067] The coating film can be formed by drying at room temperature (10°C to 35°C, e.g., 25°C), but drying at 40°C to 50°C may be used to form the coating film more quickly. A drying process at extremely low to low temperatures (around -200°C to -30°C) using the freeze-drying method may also be used. Freeze-drying is also called vacuum freeze-drying, and is a method in which the material to be dried is cooled with a refrigerant and the solvent is removed by sublimation in a vacuum. Common refrigerants used in freeze-drying include a mixture of dry ice and methanol (-78°C) and liquid nitrogen (-196°C).

[0068] If the drying temperature is below -200°C, an uncommon refrigerant must be used, resulting in a lack of versatility and inefficiency due to the long drying time required due to solvent sublimation. If the drying temperature is above 200°C, the ionic bonding reaction on the coating film surface will proceed too much, causing the surface to lose its hydrophilicity and preventing the biomaterial adhesion inhibitory effect from being exerted. A more preferred drying temperature is 10°C to 180°C, and even more preferred is 25°C to 150°C.

[0069] After drying, the coating film is preferably washed with running water or ultrasonically with one or more solvents selected from water and electrolyte-containing aqueous solutions to remove impurities, unreacted monomers, etc. remaining on the film and to adjust the ion balance of the copolymer in the film. The water and electrolyte-containing aqueous solution may be heated, for example, to a temperature between 40°C and 95°C. Preferred electrolyte-containing aqueous solutions are PBS, saline (containing only sodium chloride), Dulbecco's phosphate-buffered saline, Tris-buffered saline, HEPES-buffered saline, and Veronal-buffered saline, with PBS being particularly preferred. After adhesion, the coating film remains firmly attached to the substrate without elution even when washed with water, PBS, alcohol, etc. Even if biological materials adhere to the formed coating film, they can be easily removed by subsequent washing with water, etc., and the substrate surface on which the coating film is formed exhibits the ability to inhibit adhesion of biological materials. The thickness of the coating film is preferably 5 to 1000 nm, and more preferably 5 to 500 nm.

[0070] In addition, the substrate may be a commercially available cell culture dish that has been treated to reduce cell adhesion, or a cell culture vessel that has the ability to inhibit cell adhesion.For example, the cell culture vessel described in JP 2008-61609 A can be used, but is not limited to this.

[0071] Having the ability to inhibit cell adhesion means that the relative absorbance (WST OD450nm) (%) ((absorbance (WST OD450nm) of the example) / (absorbance (WST OD450nm) of the comparative example)) when compared to a sample without a coating film or without low cell adhesion treatment, measured using a fluorescence microscope using the method described in the examples of WO2016 / 093293, for example, is 50% or less, preferably 30% or less, and more preferably 20% or less.

[0072] (cell) In the present invention, a cell is the most basic unit constituting an animal or plant, and has as its elements a cytoplasm and various organelles inside the cell membrane. In this case, the nucleus containing DNA may or may not be contained inside the cell. For example, animal-derived cells in the present invention include germ cells such as sperm and eggs, somatic cells that constitute an organism, stem cells (e.g., pluripotent stem cells), progenitor cells, cancer cells isolated from an organism, cells isolated from an organism that have acquired immortalization and are stably maintained ex vivo (cell lines), cells isolated from an organism that have been artificially genetically modified, and cells isolated from an organism that have undergone artificial nucleus replacement. Examples of somatic cells that make up a living organism include, but are not limited to, fibroblasts, bone marrow cells, B lymphocytes, T lymphocytes, neutrophils, erythrocytes, platelets, macrophages, monocytes, osteocytes, bone marrow cells, pericytes, dendritic cells, keratinocytes, adipocytes, mesenchymal cells, epithelial cells, epidermal cells, endothelial cells, vascular endothelial cells, hepatocytes, chondrocytes, cumulus cells, nervous system cells, glial cells, neurons, oligodendrocytes, microglia, astrocytes, cardiac cells, esophageal cells, muscle cells (e.g., smooth muscle cells or skeletal muscle cells), pancreatic beta cells, melanocytes, hematopoietic progenitor cells (e.g., CD34-positive cells derived from umbilical cord blood), and mononuclear cells. Somatic cells include cells collected from any tissue, such as skin, kidney, spleen, adrenal gland, liver, lung, ovary, pancreas, uterus, stomach, colon, small intestine, large intestine, bladder, prostate, testis, thymus, muscle, connective tissue, bone, cartilage, vascular tissue, blood (including umbilical cord blood), bone marrow, heart, eye, brain, or neural tissue. Stem cells are cells that have the ability to replicate themselves and differentiate into cells of multiple lineages. Examples include, but are not limited to, embryonic stem cells (ES cells), embryonic tumor cells, embryonic germ stem cells, induced pluripotent stem cells (iPS cells), neural stem cells, hematopoietic stem cells, mesenchymal stem cells, liver stem cells, pancreatic stem cells, muscle stem cells, germ stem cells, intestinal stem cells, cancer stem cells, and hair follicle stem cells. Pluripotent stem cells include ES cells, embryonic germ stem cells, and iPS cells. Progenitor cells are cells that are in the process of differentiating from stem cells into specific somatic cells or germ cells. Cancer cells are cells that derive from somatic cells and have acquired the ability to proliferate indefinitely.A cell line is a cell that has acquired the ability to proliferate indefinitely through artificial manipulation outside of a body. Among these, adherent cells that survive and proliferate by adhering to a scaffold are preferred, and stem cells are more preferred.

[0073] [Method of manufacturing cell aggregates] The method for producing a cell aggregate of the present invention is a method for producing a cell aggregate by applying a compound represented by the following formula (I): [ka]

[0074] [In the formula, U a1 and U a2 each independently represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a1 represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a2 represents a linear or branched alkylene group having 1 to 5 carbon atoms], and then seeding cells, wherein the total area of ​​the spots relative to the surface area of ​​the substrate is 30% or more, the diameter of each spot is 50 to 5000 μm, and the spacing between spots is 30 to 1000 μm, and the method for producing cell aggregates is carried out, for example, by the method described in the Examples.

[0075] The polymer contains a repeating unit derived from the monomer represented by formula (I) and a repeating unit derived from the monomer represented by formula (II):

[0076] [ka] [In the formula, R b represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms].

[0077] The cells seeded in the above method are as described above, but are preferably adherent cells, and more preferably stem cells. Other details and preferred embodiments of the substrate, polymer, etc. used in the method for producing a cell aggregate of the present invention are as described above in [Substrate for producing a cell aggregate and method for producing the same].

[0078] [Method for improving cell utilization efficiency during production of cell aggregates] The method of the present invention for improving cell utilization efficiency during the production of a cell aggregate comprises: [ka] [In the formula, U a1 and U a2 each independently represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a1 represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a2 represents a linear or branched alkylene group having 1 to 5 carbon atoms] in the form of a plurality of spots, wherein the total area of ​​the spots is 30% or more of the surface area of ​​the substrate, the diameter of each spot is 50 to 5000 μm, and the interval between the spots is 30 to 1000 μm.

[0079] The details and preferred embodiments of the substrate, polymer, etc. used in the method of improving cell utilization efficiency during the production of cell aggregates of the present invention are as described above in [Substrate for producing cell aggregates and method for producing the same]. [Example]

[0080] The present invention will be described in more detail below with reference to examples, but the present invention is not limited to these examples.

[0081] <Method for measuring molecular weight> The weight average molecular weights shown in the synthesis examples below are the results obtained by gel filtration chromatography (hereinafter abbreviated as GFC). (Measurement conditions) Equipment: HLC-8320GPC (Tosoh Corporation) GFC column: TSKgel G 6000 + 3000 PWXL-CP ·Flow rate: 1.0mL / min Eluent: Salt-containing aqueous / organic mixed solvent Column temperature: 40℃ Detector: RI Injection concentration: polymer solids 0.05% by mass ·Injection volume: 100μL Calibration curve: Cubic approximation curve Standard sample: Polyethylene oxide (Agilent) x 10 types

[0082] <Synthesis Example 1> Preparation of polymer used as a coating film forming agent for cell culture by thermal polymerization (1) 10.00 g of 2-(dimethylamino)ethyl methacrylate (Tokyo Chemical Industry Co., Ltd.) was added to 41.94 g of tetrahydrofuran and thoroughly dissolved. Next, 0.01 g of dimethyl 1,1'-azobis(1-cyclohexanecarboxylate) (VE-073, Fujifilm Wako Pure Chemical Industries Co., Ltd.), 0.48 g of methacrylic acid (Tokyo Chemical Industry Co., Ltd.), and 0.21 g of polyethylene glycol dimethacrylate (n≒4) (Tokyo Chemical Industry Co., Ltd.) were added to the tetrahydrofuran solution while maintaining the temperature below 20 °C. After thorough stirring, the homogenized mixture containing all of the above ingredients was added to a three-neck flask equipped with a condenser, and nitrogen was purged. The mixture was heated to the reflux temperature while stirring. The reaction mixture was heated and stirred for 24 hours under the above conditions, yielding a polymer. The reaction product was reprecipitated in hexane, a poor solvent, and the precipitate was collected by filtration and dried under reduced pressure. The resulting powder was dissolved in pure water, and the solution was transferred to a dialysis tube. Dialysis was carried out for 72 hours to purify the reaction product. The solution containing the reaction product was filtered through a 1.0 μm glass fiber filter (AS ONE Corporation, model number: SYGF0605MNXX104), and the resulting filtrate was freeze-dried to obtain a polymer. The weight-average molecular weight of this polymer measured by GFC was 660,000, and the polydispersity index was 3.8 (hereinafter referred to as "Synthesis Example Polymer 1").

[0083] <Synthesis Example 2> Preparation of polymer used as a coating film forming agent for cell culture by thermal polymerization (2) 10.00 g of 2-(dimethylamino)ethyl methacrylate (Tokyo Chemical Industry Co., Ltd.) was added to 31.46 g of ethanol and thoroughly dissolved. Next, 0.01 g of dimethyl 1,1'-azobis(1-cyclohexanecarboxylate) (VE-073, Fujifilm Wako Pure Chemical Industries Co., Ltd.), 0.48 g of methacrylic acid (Tokyo Chemical Industry Co., Ltd.), and 0.21 g of polyethylene glycol dimethacrylate (n≒4) (Tokyo Chemical Industry Co., Ltd.) were added to the ethanol solution while maintaining the temperature below 20 °C. After thorough stirring, the homogenized mixture containing all of the above ingredients was placed in a three-neck flask equipped with a condenser, purged with nitrogen, and heated to the reflux temperature while stirring. The mixture was heated and stirred for 4 hours while maintaining the above environment, yielding a polymer as the reaction product. The reaction product was reprecipitated in hexane, a poor solvent, and the precipitate was collected by filtration and dried under reduced pressure. The resulting powder was dissolved in pure water, and the solution was transferred to a dialysis tube. The reaction product was purified by dialysis for 72 hours. The solution containing the reaction product was filtered through a 1.0 μm glass fiber filter (AS ONE Corporation, model number: SYGF0605MNXX104), and the resulting filtrate was freeze-dried to obtain a polymer. The weight-average molecular weight of this polymer measured by GFC was 770,000, and the polydispersity index was 4.1 (hereinafter referred to as "Synthesis Example Polymer 2").

[0084] <Synthesis Example 3> Preparation of fluorescently labeled polymer for use as a coating film forming agent for cell culture by thermal polymerization (3) 10.00 g of 2-(dimethylamino)ethyl methacrylate (Tokyo Chemical Industry Co., Ltd.) was added to 31.46 g of ethanol and thoroughly dissolved. Next, 0.01 g of dimethyl 1,1'-azobis(1-cyclohexanecarboxylate) (VE-073, Fujifilm Wako Pure Chemical Industries Co., Ltd.), 0.48 g of methacrylic acid (Tokyo Chemical Industry Co., Ltd.), 0.26 g of aquarylamide (Tokyo Chemical Industry Co., Ltd.), and 0.21 g of polyethylene glycol dimethacrylate (n≒4) (Tokyo Chemical Industry Co., Ltd.) were added to the ethanol solution while maintaining the temperature below 20 °C. After thorough stirring, the resulting homogeneous mixture was placed in a three-necked flask equipped with a condenser, purged with nitrogen, and heated to the reflux temperature while stirring. The mixture was heated and stirred for 4 hours under the above conditions to obtain a polymer as the reaction product. The reaction product was reprecipitated in hexane, a poor solvent, and the precipitate was collected by filtration and dried under reduced pressure. 0.1 g of the resulting powder was dissolved in 9.9 mL of purified water. 0.003 g of 1-(3-dimethylaminopropyl)-3-ethylcarbodiimide hydrochloride (Tokyo Chemical Industry Co., Ltd.) was dissolved in 2.4 mL of purified water and added to the solution prepared above, followed by stirring and mixing. 0.005 g of Alexa Fluor™ 488 Carboxylic Acid, tris(triethylammonium) salt (Thermo Fisher Scientific Co., Ltd.) was dissolved in 0.6 mL of dimethyl sulfoxide (Junsei Chemical Co., Ltd.) and the resulting mixture was added dropwise to the solution prepared above. The reaction was allowed to proceed for 12 hours with stirring at room temperature. The resulting reaction solution was transferred to a dialysis tube. Dialysis was performed for 72 hours to purify the reaction product. The solution containing the reaction product was filtered through a 1.0 μm glass fiber filter (AS ONE Corporation, model number: SYGF0605MNXX104), and the resulting filtrate was freeze-dried to obtain a polymer. The weight-average molecular weight of this polymer measured by GFC was 900,000, and the polydispersity index was 5.5 (hereinafter referred to as "Synthesis Example Polymer 3").

[0085] <Test Example 1> (Polymer 1 Composition analysis by H-NMR measurement) The nuclear magnetic resonance (NMR) spectra of Synthesis Example Polymers 1 to 3 were measured using a nuclear magnetic resonance spectrometer (manufactured by BRUKER, model number: ASC End500) with heavy water (DO) as the standard. Representative peaks common to Synthesis Example Polymers 1 to 2 are shown below.

[0086] 1 H-NMR (in D2O) δ 0.8-1.2 (br, -CH2-C(CH3)-), 1.6-2.0 (br, -CH2-C(CH3)-), 2.2-2.4 (br, -N(CH3)2), 2.5-2.7 (br, -CH2-N(CH3)2), 4.0-4.2 (br, -O-CH2-).

[0087] Here, the ratio of the number of functional amino groups in the side chain to the number of functional carboxyl groups in the side chain was calculated from the number of protons A in the methyl group -CH2-C(CH3)- (δ 0.8-1.2) in the main chain (three per monomer molecule in the case of a DMAEMA homopolymer) and the number of methyl protons B in the -O-CH2- group (δ 4.0-4.2) in the side chain (two per monomer molecule in the case of a DMAEMA homopolymer). The results were 89 / 11 in Synthesis Example 1, 90 / 10 in Synthesis Example 2, and 84 / 16 in Synthesis Example 3. Detailed results are shown in Table 1. Table 1 shows the weight average molecular weight Mw and molecular weight distribution (PDI: Mw / Mn) measured by GFC for the polymers synthesized in Synthesis Examples 1 to 3.

[0088] [Table 1]

[0089] Example 1: Inkjet coating film formation and diameter control (1) Preparation of low cell adhesion dishes A coating solution was prepared from a copolymer-containing varnish according to the manufacturing method described in Example 30 of WO2014 / 196650. 500 μL of the prepared coating solution was added to a 40 mm diameter Aznol Petri dish (AS ONE Corporation, #1-8549-01) and left to stand at room temperature for 1 hour, after which excess coating solution was removed. Then, 2 mL of sterile water was added per well and then removed for washing. Washing was repeated two more times in the same manner, followed by drying at room temperature for 30 minutes to obtain a low-cell-adhesion Petri dish.

[0090] (2) Inkjet coating film formation and diameter control Synthesis Example: Polymer 3 was dissolved in sterile water to a concentration of 100 ng / μL to produce coating film-forming agent 3 for cell culture. Using an inkjet device (Microjet Corporation, Model No.: LaboJet-600) and an inkjet head (Model No.: 500-SC), coating film-forming agent 3 was spot-applied to the low-cell-adhesion Petri dish prepared above, controlling the droplet volume (number of ejections) to 55 nL, 165 nL, 330 nL, 660 nL, and 1320 nL. At least five spots were applied for each coating volume. The Petri dish was dried at room temperature for 30 minutes to form a film. 2 mL of pure water was added, removed, and washed. The Petri dish was washed twice more in the same manner and dried at room temperature for 30 minutes to obtain a Petri dish for cell aggregate formation. The resulting Petri dish was observed under a fluorescence microscope (Olympus Corporation, Model No.: IX-83) to confirm the formation of a film. The results are shown in Figure 1(a). As shown in Figure 1(a), the area where the coating film forming agent was applied glowed in a circular pattern, demonstrating that a coating film (spot) could be formed by inkjet printing. Furthermore, as shown in Figure 1(b) and Table 2, the diameter of the circle of the coating film increased as the droplet volume increased. This demonstrated that the size of the spot-shaped coating film can be controlled by applying the cell culture substrate material using an inkjet device.

[0091] [Table 2]

[0092] <Example 2: Formation of high-density coating film by inkjet and quantification of spot density> Synthesis Example Polymer 3 was dissolved in sterile water to a concentration of 100 ng / μL to produce Coating Film Forming Agent 3 for cell culture. Using an inkjet device (Microjet Corporation, model number: LaboJet-600) and an inkjet head (model number: IJHB-1000), 950 pL of Coating Film Forming Agent 3 was applied in spots at 300 μm intervals to the low-cell-adhesion Petri dish prepared in Example 1 (1). This was dried at room temperature for 30 minutes to form a film. 2 mL of pure water was added, then removed and washed. This was washed twice more in the same manner and dried at room temperature for 30 minutes to obtain a Petri dish for forming a high-density coated cell aggregate. The resulting Petri dish was observed for fluorescence using a fluorescence microscope (Olympus Corporation, model number IX-83). As shown in Figure 2(a), the area where the coating film forming agent was applied glowed in a circular pattern, demonstrating that high-density coating films (spots) could be formed using inkjet printing. The ratio of the total area of ​​the spots to the bottom area of ​​the Petri dish was 44%.

[0093] <Comparative Example 1: Formation of low-density coating film by inkjet and quantification of spot density> Synthesis Example Polymer 3 was dissolved in sterile water to a concentration of 100 ng / μL to produce Coating Film Forming Agent 3 for cell culture. Using an inkjet device (Microjet Corporation, model number: LaboJet-600) and an inkjet head (model number: 500-SC), 55 nL of Coating Film Forming Agent 3 was applied in spots at 2 mm intervals to the low-cell-adhesion Petri dish prepared in Example 1(1). This was dried at room temperature for 30 minutes to form a film. 2 mL of pure water was added, then removed and washed. This was washed twice more in the same manner and dried at room temperature for 30 minutes to obtain a Petri dish for forming cell aggregates. The resulting Petri dish was observed for fluorescence using a fluorescence microscope (Olympus Corporation, model number IX-83). As shown in Figure 2(b), the area where the coating film forming agent 3 was applied was shining in a circular shape, demonstrating that a coating film (spot) could be formed by inkjet printing. The ratio of the total area of ​​the spots to the bottom area of ​​the Petri dish was 15%.

[0094] <Example 3: Size-controlled cell aggregate production test> (1) Preparation of Petri dishes for cell aggregate formation Synthesis Example Polymer 2 was dissolved in sterile water to a concentration of 100 ng / μL to produce a coating film-forming agent 2 for cell culture. Using an inkjet device (Microjet Corporation, model number: LaboJet-600) and an inkjet head (model number: 500-SC), coating film-forming agent 2 was spot-coated onto the low-cell-adhesion Petri dish prepared in Example 1(1) while controlling the droplet volume (number of ejections) to 55 nL, 165 nL, 330 nL, 660 nL, and 1320 nL. At least five spots were coated with each coating volume. The Petri dish was dried at room temperature for 30 minutes to form a film. 2 mL of pure water was added, removed, and washed. Washing was repeated two more times, followed by drying at room temperature for 30 minutes to obtain a Petri dish for forming cell aggregates.

[0095] (2) Cell preparation Mouse embryonic fibroblast cells (C3H10T1 / T2 cells: DS Pharma Biomedical Co., Ltd.) were used. Cells were cultured in a basal medium, BME medium (Gibco), supplemented with 10% FBS (Sigma-Aldrich) and 1% Glutamine / Penicillin / Streptomycin (Gibco). The cells were cultured in a 10-cm diameter Petri dish (10 mL of medium) at 37°C in a CO2 incubator with a 5% carbon dioxide concentration for at least two days. The cells were then washed with 3 mL of PBS solution (Fujifilm Wako Pure Chemical Industries, Ltd.), after which 3 mL of trypsin-EDTA solution (PromoCell) was added and the mixture was left to stand at room temperature for 3 minutes to detach the cells. The cells were then harvested by adding 7 mL of the above medium. This suspension was centrifuged (Tomy Seiko Co., Ltd., Model No. LC-230, 200×g / 3 minutes, room temperature), the supernatant was removed, and the above medium was added to prepare a cell suspension.

[0096] (3) Cell adhesion experiment Add 3.0 x 10 cells to the petri dish prepared in (1) above. 5 cells / cm 2500 μL of each solution was added to the wells so that the cell adhesion was consistent. The wells were then left to stand for 4 hours in a 37°C / CO2 incubator with a 5% carbon dioxide concentration. After standing, the non-adherent cells and medium were removed, and the wells were washed with PBS, leaving only the adherent cells on the wells. After washing, 500 μL of fresh medium was added per well, and the adherent cells were observed and photographed using an inverted research microscope IX83 (Olympus Corporation). As a result, as shown in Figure 3(a), cell adhesion to the spots coated with the cell culture coating film forming agent 2 was confirmed. Furthermore, it was found that the cell adhesion area increased as the droplet volume increased.

[0097] (4) Observation of cell aggregates The petri dish tested above was left to stand for an additional 44 hours in a 37°C / CO2 incubator. After standing, the state of the cells was observed using an inverted research microscope IX83 (Olympus Corporation). As a result, it was confirmed that the cells adhered to the cell culture coating film forming agent 2 had detached from the petri dish and aggregated, forming cell aggregates (spheroids), as shown in Figure 3(a). The relationship between the coating amount, coating area, and spheroid diameter is shown in Figure 3(b) and Table 3. It was shown that the coating area increases as the coating amount increases, resulting in larger spheroids. Furthermore, when evaluated with n = 5, the size error was 3.5 to 8.4%. This indicates that the coating film containing the polymer of the present invention is useful as a coating film that can form spheroids of any size with a small size error by controlling the coating amount in combination with an inkjet device.

[0098] [Table 3]

[0099] <Example 4: Cell adhesion confirmation test by high density application> (1) Preparation of Petri dishes for cell aggregate formation Synthesis Example Polymer 2 was dissolved in sterile water to a concentration of 100 ng / μL to produce coating film-forming agent 2 for cell culture. Using an inkjet device (Microjet Corporation, model number: LaboJet-600) and an inkjet head (model number: IJHB-1000), 900 to 950 pL of coating film-forming agent 2 was applied in spots at 300 μm intervals to the low-cell-adhesion Petri dish prepared in Example 1 (1). This was dried at room temperature for 30 minutes to form a film. 2 mL of pure water was added, removed, and washed. This was washed two more times in the same manner and dried at room temperature for 30 minutes to obtain a Petri dish for forming cell aggregates with high density coating. The ratio of the total area of ​​the spots to the bottom area of ​​the Petri dish was 52%.

[0100] (2) Cell adhesion experiment The cell suspension prepared in Example 3(1) was added to the petri dish prepared in (1) above at a concentration of 3.0 × 10 5 cells / cm 2 500 μL of solution was added so that the concentration of the solution was 5%. The mixture was then left to stand for 4 hours in a 37°C / CO2 incubator with a 5% carbon dioxide concentration. Without a washing step, the state of the adherent cells was observed and photographed using an inverted research microscope IX83 (Olympus Corporation). As a result, as shown in Figure 4(a), adhesion of cells to the spots coated with the coating film forming agent 2 for cell culture was confirmed. Furthermore, no unadhered, floating cells were present.

[0101] <Comparative Example 2: Cell adhesion confirmation test on low-density coated film> (2-1. Preparation of Petri dish for cell aggregate formation) Synthesis Example Polymer 2 was dissolved in sterile water to a concentration of 100 ng / μL to produce coating film-forming agent 2 for cell culture. Using an inkjet device (Microjet Corporation, model number: LaboJet-600) and an inkjet head (model number: 500-SC), 55 nL of coating film-forming agent 2 was applied in spots at 2 mm intervals to the low-cell-adhesion Petri dish prepared in Example 1(1). This was dried at room temperature for 30 minutes to form a film. 2 mL of pure water was added, removed, and washed. This was washed two more times in the same manner, and then dried at room temperature for 30 minutes to obtain a Petri dish for forming cell aggregates. The ratio of the total area of ​​the spots to the bottom area of ​​the Petri dish was 15%.

[0102] (2) Cell adhesion experiment The cell suspension prepared in Example 3(1) was added to the petri dish prepared in (1) above at a concentration of 3.0 × 10 5 cells / cm 2 500 μL of solution was added to the cells so that the concentration of the solution was 5%. The cells were then placed in a 37°C / CO2 incubator with a 5% carbon dioxide atmosphere for 2 hours. Without washing, the adherent cells were observed and photographed using an inverted research microscope IX83 (Olympus Corporation). As a result, as shown in Figure 4(b), cells adhered to the spots coated with the cell culture coating film forming agent 2, as well as numerous other floating cells, were observed.

[0103] <Example 5: Cell aggregate production test by high-density coating> (1) Preparation of Petri dishes for cell aggregate formation Synthesis Example Polymer 1 was dissolved in sterile water to a concentration of 100 ng / μL to produce a coating film-forming agent 1 for cell culture. Using an inkjet device (Microjet Corporation, model number: LaboJet-600) and an inkjet head (model number: IJHB-1000), 950 pL of coating film-forming agent 1 was applied in spots at 300 μm intervals to the low-cell-adhesion Petri dish prepared in Example 1 (1). The Petri dish was dried at room temperature for 30 minutes to form a film. 2 mL of pure water was added, removed, and washed. Washing was repeated two more times in the same manner, followed by drying at room temperature for 30 minutes to obtain a Petri dish for forming a high-density coated cell aggregate. (2) Cell adhesion experiment The cell suspension prepared in Example 3(1) was added to the petri dish prepared in (1) above at a concentration of 3.0 × 10 5 cells / cm 2 500 μL was added so that the cell adhesion and aggregation would be uniform. Thereafter, the cells were cultured at 37°C and maintained at a 5% carbon dioxide concentration using an inverted research microscope IX83 (Olympus Corporation) and observed by time-lapse to observe the state of cell adhesion and aggregation. As a result, as shown in Figure 5, it was confirmed that the cells that were dispersed over the entire surface immediately after seeding adhered over time to the areas (spots) coated with the cell culture coating film forming agent 1. After 2 hours, there were no cells that were floating without adhering. Furthermore, after 8 hours, it was confirmed that the adhered cells had detached from the dish and aggregated, forming cell aggregates (spheroids). [Industrial Applicability]

[0104] From the above, it was demonstrated that by combining an inkjet device with a coating film containing the polymer according to the present invention and applying it in the form of spots at high density on a substrate capable of inhibiting cell adhesion (for example, a low-cell-adhesion petri dish), all of the seeded cells can be made to adhere to the spots and aggregate. In other words, by using a substrate for producing cell aggregates of the present invention, which has multiple spots made of the polymer according to the present invention at high density on a substrate capable of inhibiting cell adhesion, such as the bottom surface or surface of a petri dish or dish, without using a multi-well plate for spheroid formation, not only can spheroids of uniform size be formed by simply seeding cells on the flat surface of the substrate having the coating film (spots), but also the utilization efficiency of the cells seeded during spheroid production can be improved.

Claims

1. On a substrate having cell adhesion-inhibiting properties, a compound represented by the following formula (I): 【Chemistry 20】 [In the formula, U a1 and U a2 each independently represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a1 represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a2 a substrate for producing cell aggregates, the substrate having a plurality of spots made of a polymer containing a repeating unit derived from a monomer represented by the formula [wherein R represents a linear or branched alkylene group having 1 to 5 carbon atoms], wherein the ratio of the total area of ​​the spots to the surface area of ​​the substrate is 30% or more, the diameter of each spot is 50 to 5000 μm, and the spacing between spots is 30 to 1000 μm.

2. The substrate for producing cell aggregates according to claim 1, wherein the cell utilization efficiency is 90% or more.

3. 3. The substrate for producing cell aggregates according to claim 1, wherein the cells are stem cells.

4. The polymer may further comprise a compound represented by formula (II): 【Chemistry 21】 [In the formula, R b A substrate for producing cell aggregates as described in any one of claims 1 to 3, comprising a repeating unit derived from a monomer represented by the formula: wherein represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms.

5. The polymer further comprises a compound represented by the following formula (III): 【Chemistry 22】 [In the formula, R c and R d each independently represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R e A substrate for producing cell aggregates described in any one of claims 1 to 4, comprising a structural unit derived from a monomer represented by the following formula: wherein n represents a linear or branched alkylene group having 1 to 5 carbon atoms, and n represents a number from 1 to 50.

6. The substrate having the ability to inhibit cell adhesion is a copolymer (P) containing a repeating unit containing a group represented by the following formula (a) and a repeating unit containing a group represented by the following formula (b): 【Chemistry 23】 [In the formula, U a11 , U a12 , U b11 , U b12 and U b13 each independently represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; An - represents an anion selected from the group consisting of a halide ion, an inorganic acid ion, a hydroxide ion, and an isothiocyanate ion. The substrate for producing cell aggregates according to any one of claims 1 to 5, comprising a coating film comprising the following on at least a portion of the surface of the substrate.

7. On a substrate that has the ability to inhibit cell adhesion, The following formula (I): 【Chemistry 24】 [In the formula, U a1 and U a2 each independently represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a1 represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a2 represents a linear or branched alkylene group having 1 to 5 carbon atoms] in the form of a plurality of spots, followed by drying, wherein the total area of ​​the spots relative to the surface area of ​​the substrate is 30% or more, the diameter of each spot is 50 to 5000 μm, and the spacing between spots is 30 to 1000 μm.

8. The method for producing a substrate for producing cell aggregates according to claim 7, wherein the cell utilization efficiency is 90% or more.

9. The method for producing a substrate for producing cell aggregates according to claim 7 or 8, wherein the coating step is carried out by an inkjet method.

10. On a substrate that has the ability to inhibit cell adhesion, The following formula (I): 【Chemistry 25】 [In the formula, U a1 and U a2 each independently represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a1 represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a2 represents a linear or branched alkylene group having 1 to 5 carbon atoms], and then seeding cells thereon, wherein the total area of ​​the spots relative to the surface area of ​​the substrate is 30% or more, the diameter of each spot is 50 to 5000 μm, and the spacing between the spots is 30 to 1000 μm.

11. The method for producing a cell aggregate according to claim 10, wherein the cell utilization efficiency is 90% or more.

12. On a substrate that has the ability to inhibit cell adhesion, The following formula (I): 【Chemistry 26】 [In the formula, U a1 and U a2 each independently represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a1 represents a hydrogen atom or a linear or branched alkyl group having 1 to 5 carbon atoms; R a2 a polymer containing a repeating unit derived from a monomer represented by the formula [wherein R represents a linear or branched alkylene group having 1 to 5 carbon atoms] is applied in the form of multiple spots, wherein the total area of ​​the spots relative to the surface area of ​​the substrate is 30% or more, the diameter of each spot is 50 to 5000 μm, and the spacing between spots is 30 to 1000 μm.

Citation Information

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