Method for isolating pituitary hormone-producing cells and their precursor cells
The use of EpCAM as a cell surface marker for isolating pituitary hormone-producing cells from pluripotent stem cells addresses the lack of reliable markers, enabling efficient purification and maintaining functional hormone secretion capability.
Patent Information
- Application Number
- JP2022512667
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-03-31
- Filing Date
- 2021-03-31
- Publication Date
- 2025-09-11
- Estimated Expiration
- 2041-03-31
AI Technical Summary
Existing methods for isolating pituitary hormone-producing cells and their precursor cells from pluripotent stem cells lack objective and reliable cell surface markers, relying on subjective morphological judgment, which hinders efficient purification and functional validation.
Utilizing the EpCAM surface antigen to isolate and purify pituitary hormone-producing cells and their progenitor cells by enzymatic dispersion and antibody sorting, followed by reaggregation to maintain functional properties.
Enables efficient isolation and purification of functional pituitary hormone-producing cells with excellent hormone secretion ability, suitable for therapeutic applications.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a method for separating and purifying pituitary hormone-producing cells and their precursor cells, which have been induced to differentiate from pluripotent stem cells in vitro. [Background technology]
[0002] The pituitary gland is a small endocrine gland located adjacent to the lower part of the diencephalon, and plays a major role as the control center for various hormones. For example, it produces various pituitary hormones, including adrenocorticotropic hormone (ACTH), which stimulates the production of adrenal cortical hormones essential for life support, and growth hormone, which promotes growth in children. Therefore, pituitary gland dysfunction can cause serious systemic diseases.
[0003] Recently, methods for inducing differentiation of the adenohypophysis, including functional pituitary hormone-producing cells, from human ES / iPS cells have been developed, and their application in pituitary regenerative medicine is expected (Patent Document 1, Non-Patent Documents 1 and 2). In these methods, a hypothalamic-pituitary complex is formed within a single cell mass by three-dimensional culture. In this complex, the adenohypophysis and its precursor tissues are primarily located on the surface of the cell mass. When this complex tissue is excised and transplanted under the renal capsule of hypophysectomized mice, therapeutic effects such as improved activity, survival, and weight loss have been confirmed (Patent Document 1, Non-Patent Document 1). However, no cell surface markers for isolating the adenohypophysis and its precursor tissues from the complex tissue were known, and identification of the excised adenohypophysis and its precursor tissues relied on the subjective judgment of the experimenter based on their morphology. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] International Publication No. 2016 / 013669 [Non-patent literature]
[0005] [Non-Patent Document 1] Nature Communications, 7:10351, 2016 [Non-patent document 2] Cell Reports, 30, 18-24, January 7, 2020 Summary of the Invention [Problem to be solved by the invention]
[0006] The present inventors have an objective to provide a method for isolating target cells using cell surface antigens, for objective and reliable isolation of pituitary hormone-producing cells and their precursor cells. [Means for solving the problem]
[0007] The present inventors first screened a panel of 332 human cell surface antigens to identify surface antigens specific to the adenohypophysis cell lineage. As a result, they identified several surface antigens, including epithelial cell adhesion molecule (EpCAM), that are highly specific to pituitary hormone-producing cells and / or their progenitor cells. After extensive investigation, they found that the identified surface antigen, EpCAM, can withstand treatment with enzymes and other agents used to disperse pluripotent stem cell clusters. Furthermore, they found that sorting using anti-EpCAM antibodies can effectively separate and purify pituitary hormone-producing cells and their progenitor cells from pluripotent stem cell clusters. Furthermore, they found that the separated and purified cells can be reaggregated and maintained in culture. Furthermore, they found that even after such maintenance culture, they exhibited excellent pituitary hormone secretion ability in response to physiological pituitary hormone secretion stimulation, exhibiting functional properties equivalent to those of in vivo pituitary hormone-producing cells. These findings led to the completion of the present invention.
[0008] That is, the present invention is as follows. [1] A method for isolating pituitary hormone-producing cells and / or their precursor cells, comprising a step of isolating cells expressing EpCAM from a cell aggregate containing the adenohypophysis and / or its precursor tissue. [2] The method according to [1], wherein the cell aggregate contains hypothalamic neuroepithelial tissue. [3] The method according to [1] or [2], which comprises a step of dispersing cell aggregates to obtain a population of single cells prior to the step of separating cells expressing EpCAM. [4] A method according to any one of [1] to [3], which comprises a step of shredding a cell aggregate containing the adenohypophysis and / or its precursor tissue or physically incising a cell aggregate containing the adenohypophysis and / or its precursor tissue prior to the step of separating cells expressing EpCAM. [5] The method according to any one of [1] to [4], wherein the cell aggregate containing the adenohypophysis and / or its precursor tissue is a cell aggregate obtained by inducing differentiation of pluripotent stem cells. [6] The method according to [5], wherein the pluripotent stem cells are human induced pluripotent stem cells. [7] The method according to any one of [1] to [6], wherein the precursor tissue is the pituitary placode and / or Rathke's pouch. [8] A method for producing pituitary hormone-producing cells and / or their precursor cells, comprising a step of separating cells expressing EpCAM from a cell aggregate containing the adenohypophysis and / or its precursor tissue. [9] The following steps: (A) dispersing a cell aggregate containing the adenohypophysis and / or its precursor tissue to obtain a population of single cells; (B) isolating from said population a population of cells that express EpCAM; and (C) A step of reaggregating the population obtained in (B). The manufacturing method according to [8], comprising:
[10] The method of production described in [8] or [9], wherein the pituitary hormone-producing cells and / or their precursor cells are a cell aggregate or a cell sheet.
[11] The method according to [9] or
[10] , which comprises a step of shredding the cell aggregate containing the adenohypophysis and / or its precursor tissue or physically incising the cell aggregate containing the adenohypophysis and / or its precursor tissue prior to step (B) of separating cells expressing EpCAM.
[12] The method according to any one of [8] to
[11] , wherein the pituitary hormone-producing cells are at least one selected from the group consisting of growth hormone (GH)-producing cells, prolactin (PRL)-producing cells, adrenocorticotropic hormone (ACTH)-producing cells, thyroid-stimulating hormone (TSH)-producing cells, follicle-stimulating hormone (FSH)-producing cells, and luteinizing hormone (LH)-producing cells. [Effects of the Invention]
[0009] According to the present invention, by utilizing EpCAM, functional pituitary hormone-producing cells and / or their precursor cells can be efficiently isolated and purified from differentiated tissue derived from pluripotent stem cells. Furthermore, the isolated and purified pituitary hormone-producing cells exhibit excellent pituitary hormone secretion ability in response to physiological pituitary hormone secretion stimulation, and therefore, can be used to treat diseases related to the pituitary gland. [Brief explanation of the drawings]
[0010] [Figure 1] Figure 1 shows the expression of EpCAM in pituitary progenitor cells derived from human iPS cells. The left image shows an example of fluorescent immunostaining for cytokeratin (pituitary progenitor cell marker) and EpCAM after dissociation of human iPS cell clumps on day 44 of differentiation induction (A). The right image shows the results of quantifying the expression rates of cytokeratin (CK) and EpCAM in total cells on days 44 to 51 of differentiation induction (B). The values shown in the results represent the average of four experiments (B). [Figure 2]Figure 2 shows immunohistochemical analysis of EpCAM in differentiated tissues derived from human iPS cells. The top panel shows immunohistochemical staining of a human iPS cell cluster on day 48 of differentiation induction (A). EpCAM is expressed in cytokeratin-positive pituitary progenitor cells (A). The middle panel shows immunohistochemical staining of a human iPS cell cluster on day 51 of differentiation induction (B). EpCAM is expressed in Pitx1-positive pituitary progenitor cells (B). The bottom panel shows immunohistochemical staining of a human iPS cell cluster on day 147 of differentiation induction (C). EpCAM is expressed in ACTH-positive ACTH-producing cells and Lhx3-positive pituitary progenitor cells (C). [Figure 3] Figure 3 shows the purification of ACTH-producing cells and pituitary progenitor cells by MACS using EpCAM as a marker. The upper diagram illustrates the MACS procedure (A). The lower left diagram shows a bright-field image of the cell aggregates reaggregated after MACS (left) and an immunostained image of ACTH / Lhx3 (right) (B). The lower right diagram shows the amount of ACTH secreted by the cell aggregates reaggregated after MACS (C). In the experiment, the ACTH concentration in the culture supernatant was measured before and after the addition of CRH (C). DETAILED DESCRIPTION OF THE INVENTION
[0011] (1) Pluripotent stem cells "Pluripotent stem cells" are cells that have both the ability to differentiate into all cells that make up a living organism (pluripotency) and the ability to produce daughter cells with the same differentiation ability through cell division (self-replication).
[0012] Pluripotency can be evaluated by transplanting the cells to be evaluated into nude mice and testing for the presence or absence of teratoma formation containing cells of each of the three germ layers (ectoderm, mesoderm, and endoderm).
[0013] Examples of pluripotent stem cells include embryonic stem cells (ES cells), embryonic germ cells (EG cells), induced pluripotent stem cells (iPS cells), and embryonic tumor cells (EC cells), but are not limited thereto as long as they are cells that have both pluripotency and the ability to self-replicate. In the present invention, ES cells or iPS cells (more preferably human iPS cells) are preferably used. When the pluripotent stem cells are ES cells or any cells derived from a human embryo, the cells may be cells produced by destroying an embryo or cells produced without destroying an embryo, but are preferably cells produced without destroying an embryo.
[0014] ES cells can be established, for example, by culturing preimplantation early embryos, the inner cell mass constituting the early embryo, single blastomeres, etc. (Manipulating the Mouse Embryo: A Laboratory Manual, Second Edition, Cold Spring Harbor Laboratory Press (1994); Thomson, J.A. et al., Science, 282, 1145-1147 (1998)). As the early embryo, an early embryo produced by nuclear transfer of a nucleus from a somatic cell may be used (Wilmut et al., (Nature, 385, 810 (1997)), Cibelli et al. (Science, 280, 1256 (1998)), Akira Iritani et al. (Protein Nucleic Acid Enzymes, 44, 892 (1999)), Baguisi et al., (Nature Biotechnology, 17, 456 (1999)), Wakayama et al., (Nature, 394, 369 (1998); Nature Genetics, 22, 127 (1999); Proc. Natl. Acad. Sci. USA, 96, 14984 (1999)), Rideout III et al., (Nature Genetics, 24, 109 (2000)), Tachibana et al., (Human Embryonic Stem Cells Derived by Somatic Cell Nuclear Transfer, Cell (2013) in press)) Parthenogenetic embryos may also be used as early embryos (Kim et al., (Science, 315, 482-486 (2007)), Nakajima et al., (Stem Cells, 25, 983-985 (2007)), Kim et al., (Cell Stem Cell, 1, 346-352 (2007)), Revazova et al., (Cloning Stem Cells, 9, 432-449 (2007)), Revazova et al., (Cloning Stem Cells, 10, 11-24 (2008))).
[0015] The ES cells used in the methods of the present invention also include fused ES cells obtained by cell fusion between ES cells and somatic cells.
[0016] ES cells are available from designated institutions, and also commercially available. For example, human ES cells KhES-1, KhES-2, and KhES-3 are available from the Institute for Frontier Medical Sciences, Kyoto University.
[0017] EG cells can be established by culturing primordial germ cells in the presence of LIF, bFGF, and SCF (Matsui et al., Cell, 70, 841-847 (1992); Shamblott et al., Proc. Natl. Acad. Sci. USA, 95(23), 13726-13731 (1998); Turnpenny et al., Stem Cells, 21(5), 598-609, (2003)).
[0018] iPS cells are cells that have artificially acquired pluripotency and self-renewal capabilities by exposing somatic cells (e.g., fibroblasts, skin cells, lymphocytes, etc.) to nuclear reprogramming factors. iPS cells were first discovered by introducing nuclear reprogramming factors consisting of Oct3 / 4, Sox2, Klf4, and c-Myc into somatic cells (e.g., fibroblasts, skin cells, etc.) (Cell, 126: pp. 663-676, 2006). Since then, many researchers have made various improvements to the combinations of reprogramming factors and the methods for introducing these factors, and a variety of methods for producing iPS cells have been reported.
[0019] The nuclear reprogramming factor may be composed of any substance, such as a proteinaceous factor or a nucleic acid encoding the same (including a form incorporated into a vector), or a low-molecular-weight compound, as long as it is a substance (or substances) that can induce cells with pluripotency and self-renewal ability from somatic cells such as fibroblasts. When the nuclear reprogramming factor is a proteinaceous factor or a nucleic acid encoding the same, preferred examples include the following combinations (hereinafter, only the names of the proteinaceous factors are given): (1) Oct3 / 4, Klf4, Sox2, c-Myc (wherein Sox2 can be replaced with Sox1, Sox3, Sox15, Sox17, or Sox18. Klf4 can be replaced with Klf1, Klf2, or Klf5. Furthermore, c-Myc can be replaced with T58A (active mutant), N-Myc, or L-Myc.) (2) Oct3 / 4, Klf4, Sox2 (3) Oct3 / 4, Klf4, c-Myc (4) Oct3 / 4, Sox2, Nanog, Lin28 (5) Oct3 / 4, Klf4, c-Myc, Sox2, Nanog, Lin28 (6) Oct3 / 4, Klf4, Sox2, bFGF (7) Oct3 / 4, Klf4, Sox2, SCF (8) Oct3 / 4, Klf4, c-Myc, Sox2, bFGF (9) Oct3 / 4, Klf4, c-Myc, Sox2, SCF
[0020] Among these combinations, when the therapeutic use of the resulting iPS cells is considered, the combination of the three factors Oct3 / 4, Sox2, and Klf4 is preferred. On the other hand, when the therapeutic use of iPS cells is not considered (for example, when they are used as research tools for drug discovery screening), the four factors Oct3 / 4, Klf4, Sox2, and c-Myc, or the five factors Oct3 / 4, Klf4, Sox2, and c-Myc plus Lin28 or Nanog, are preferred.
[0021] iPS cells are preferably used for autologous transplantation.
[0022] Pluripotent stem cells in which genes on chromosomes have been modified using known genetic engineering techniques can also be used in the present invention. The pluripotent stem cells may be cells in which a marker gene (e.g., a fluorescent protein such as GFP) has been knocked in-frame into a gene encoding a differentiation marker using known methods, making it possible to identify whether the corresponding differentiation stage has been reached using the expression of the marker gene as an indicator.
[0023] Pluripotent stem cells can be derived from, for example, warm-blooded animals, preferably mammals. Examples of mammals include rodents such as mice, rats, hamsters, and guinea pigs, laboratory animals such as rabbits, livestock such as pigs, cows, goats, horses, and sheep, pets such as dogs and cats, and primates such as humans, monkeys, orangutans, and chimpanzees. Pluripotent stem cells are preferably derived from rodents (such as mice and rats) or primates (such as humans), and most preferably human pluripotent stem cells.
[0024] Pluripotent stem cells can be maintained and cultured by a method known per se. For example, from the viewpoint of clinical application, pluripotent stem cells can be maintained and cultured by a method known per se. TM It is preferable to maintain the cells by serum-free culture using a serum substitute such as serum replacement (KSR) or feeder cell-free culture.
[0025] The pluripotent stem cells used in the present invention are preferably isolated. "Isolated" means that they have been subjected to a procedure to remove factors other than the cells or components of interest, and have escaped from their naturally occurring state. The purity of "isolated human pluripotent stem cells" (the percentage of human pluripotent stem cells in the total number of cells) is usually 70% or more, preferably 80% or more, more preferably 90% or more, even more preferably 99% or more, and most preferably 100%.
[0026] (2) Formation of pluripotent stem cell aggregates There are no particular limitations on the method for preparing aggregates of pluripotent stem cells; the dispersed pluripotent stem cells may be cultured in a culture vessel under non-adherent conditions (i.e., suspension culture) or under adhesive conditions (i.e., adherent culture). In a preferred embodiment, an aggregate of pluripotent stem cells can be obtained by culturing dispersed pluripotent stem cells in a culture vessel under non-adherent conditions (i.e., suspension culture), and allowing multiple pluripotent stem cells to aggregate and form an aggregate.
[0027] The culture vessel used for forming this aggregate is not particularly limited, but examples include flasks, tissue culture flasks, dishes, Petri dishes, tissue culture dishes, multi-dishes, microplates, microwell plates, micropores, multi-plates, multi-well plates, chamber slides, Petri dishes, tubes, trays, culture bags, and roller bottles. To enable culture under non-adhesive conditions, the culture vessel is preferably non-cell-adhesive. Examples of non-cell-adhesive culture vessels that can be used include those whose surfaces have been artificially treated to make them non-cell-adhesive, and those that have not been artificially treated (e.g., coated with an extracellular matrix) to improve cell adhesion.
[0028] The medium used for forming aggregates can be prepared using a medium used for culturing mammalian cells as the basal medium. The basal medium is not particularly limited as long as it can be used for culturing mammalian cells, and includes, for example, BME medium, BGJb medium, CMRL 1066 medium, Glasgow MEM medium, Improved MEM Zinc Option medium, IMDM medium, Medium 199 medium, Eagle MEM medium, αMEM medium, DMEM medium, Ham's medium, Ham's F-12 medium, RPMI 1640 medium, Fischer's medium, Neurobasal medium, and mixtures thereof (e.g., DMEM / F-12 medium (a 1:1 mixture of DMEM medium and Ham's F-12 medium)). In one embodiment, a mixture of IMDM medium and Ham's F-12 medium is used. The volume ratio of the mixture is, for example, IMDM:Ham's F-12 = 0.8-1.2:1.2-0.8.
[0029] The medium used for culture may be a serum-containing medium or a serum-free medium. A serum-free medium refers to a medium that does not contain unprepared or unpurified serum, and a medium containing purified blood-derived components or animal tissue-derived components (e.g., growth factors) is considered to be serum-free. From the viewpoint of avoiding contamination with chemically undefined components, a serum-free medium is preferably used in the present invention.
[0030] The medium used for forming aggregates may contain a serum substitute. The serum substitute may contain, for example, albumin, transferrin, fatty acids, collagen precursors, trace elements, 2-mercaptoethanol, 3'-thiolglycerol, or equivalents thereof. Such a serum substitute can be prepared, for example, by the method described in WO98 / 30679. To facilitate the implementation of the method of the present invention, commercially available serum substitutes can be used. Examples of such commercially available serum substitutes include KSR (knockout serum replacement) (Invitrogen), Chemically-defined Lipid concentrated (Gibco), and Glutamax (Gibco).
[0031] The medium used for forming the aggregates may contain other additives to the extent that they do not adversely affect the differentiation of pluripotent stem cells into the pituitary gland, its partial tissues, or its precursor tissues. Examples of additives include, but are not limited to, insulin, iron sources (e.g., transferrin, etc.), minerals (e.g., sodium selenate, etc.), sugars (e.g., glucose, etc.), organic acids (e.g., pyruvic acid, lactic acid, etc.), serum proteins (e.g., albumin, etc.), amino acids (e.g., L-glutamine, etc.), reducing agents (e.g., 2-mercaptoethanol, etc.), vitamins (e.g., ascorbic acid, d-biotin, etc.), antibiotics (e.g., streptomycin, penicillin, gentamicin, etc.), and buffers (e.g., HEPES, etc.).
[0032] The medium used for forming the aggregates may be the medium used in the first culture step, which will be described later.
[0033] To form pluripotent stem cell aggregates, pluripotent stem cells are first recovered from subculture and dissociated into single cells or a state close to single cells. Dissociation of pluripotent stem cells is carried out using an appropriate cell dissociation solution. Examples of cell dissociation solutions include EDTA; proteolytic enzymes such as trypsin, collagenase IV, and metalloproteases, which can be used alone or in appropriate combinations. Among these, those with minimal cytotoxicity are preferred, and commercially available cell dissociation solutions include, for example, Dispase (Eidia), TrypLE (Invitrogen), and Accutase (MILLIPORE). The dissociated pluripotent stem cells are suspended in the above-mentioned medium.
[0034] To suppress cell death of pluripotent stem cells (especially human pluripotent stem cells) induced by dissociation, it is preferable to add a Rho-associated coiled-coil kinase (ROCK) inhibitor from the start of culture (JP 2008-99662 A). The ROCK inhibitor is added, for example, within 15 days, preferably within 10 days, and more preferably within 6 days after the start of culture. Examples of ROCK inhibitors include Y-27632 ((+)-(R)-trans-4-(1-aminoethyl)-N-(4-pyridyl)cyclohexanecarboxamide dihydrochloride). The concentration of the ROCK inhibitor used in suspension culture is a concentration that can suppress cell death of pluripotent stem cells induced by dissociation. For example, for Y-27632, such a concentration is usually about 0.1 to 200 μM, preferably about 2 to 50 μM. The concentration of the ROCK inhibitor may be varied during the addition period; for example, the concentration can be halved in the latter half of the period.
[0035] A suspension of dispersed pluripotent stem cells is seeded in the above-mentioned culture vessel, and the dispersed pluripotent stem cells are cultured under non-adherent conditions to aggregate multiple pluripotent stem cells into a single culture compartment. Dispersed pluripotent stem cells can be seeded in a relatively large culture vessel, such as a 10 cm dish, to simultaneously form multiple pluripotent stem cell aggregates in a single culture compartment. However, this results in significant variation in the size of each aggregate and the number of pluripotent stem cells contained therein. This variation results in differences between aggregates in the degree of differentiation of pluripotent stem cells into the pituitary gland, its partial tissues, or its precursor tissues, resulting in reduced efficiency of differentiation induction. Therefore, it is preferable to rapidly aggregate dispersed pluripotent stem cells to form a single aggregate in a single culture compartment. Examples of methods for rapidly aggregating dispersed pluripotent stem cells include the following: 1) A method in which dispersed pluripotent stem cells are confined in a culture compartment with a relatively small volume (e.g., 1 ml or less, 500 μl or less, 200 μl or less, 100 μl or less) and a single aggregate is formed in the compartment. Preferably, the culture compartment is left stationary after confining the dispersed pluripotent stem cells. Examples of culture compartments include, but are not limited to, wells in multiwell plates (384 wells, 192 wells, 96 wells, 48 wells, 24 wells, etc.), micropores, chamber slides, etc., tubes, and droplets of medium in the hanging drop method. Dispersed pluripotent stem cells confined in the compartment settle in one place due to gravity, or cells adhere to each other, forming a single aggregate per culture compartment. The bottom shape of the multiwell plate, micropore, chamber slide, tube, etc. is preferably U-bottom or V-bottom, which facilitates the settlement of dispersed pluripotent stem cells in one place. 2) A method in which dispersed pluripotent stem cells are placed in a centrifuge tube, which is then centrifuged to precipitate the pluripotent stem cells in one location, thereby forming a single aggregate in the tube.
[0036] The number of pluripotent stem cells to be seeded in one culture compartment is not particularly limited, as long as one aggregate is formed per culture compartment and the method of the present invention allows for the induction of differentiation of the pluripotent stem cells in the aggregate into the pituitary gland or a partial tissue thereof, or a precursor tissue thereof. However, typically, about 1 × 10 cells are seeded per culture compartment. 3 ~Approx. 5×10 4 pieces, preferably about 1 x 10 3 ~Approx. 2×10 4 , more preferably about 2×10 3 ~Approx. 1.2×10 4 pluripotent stem cells are seeded in a culture compartment, typically about 1 × 10 cells per compartment, by rapidly aggregating the pluripotent stem cells. 3 ~Approx. 5×10 4 pieces, preferably about 1 x 10 3 ~Approx. 2×10 4 , more preferably about 2×10 3 ~Approx. 1.2×10 4 A single cell aggregate consisting of pluripotent stem cells is formed.
[0037] The time required for aggregate formation can be determined as appropriate within a range in which one aggregate is formed per compartment and the method of the present invention allows differentiation of pluripotent stem cells into the pituitary gland, a partial tissue thereof, or a precursor tissue thereof in the aggregate. However, a shorter time is preferable, as this is expected to result in more efficient differentiation into the desired pituitary gland, a partial tissue thereof, or a precursor tissue thereof. Pluripotent stem cell aggregates are preferably formed within 24 hours, more preferably within 12 hours, even more preferably within 6 hours, and most preferably within 2 to 3 hours. The time required for aggregate formation can be adjusted by those skilled in the art by adjusting the cell aggregation tool, centrifugation conditions, etc.
[0038] Other culture conditions, such as the culture temperature and CO2 concentration during aggregate formation, can be set appropriately. The culture temperature is not particularly limited, but is, for example, about 30 to 40°C, preferably about 37°C. The CO2 concentration is, for example, about 1 to 10%, preferably about 5%.
[0039] Furthermore, by preparing multiple culture compartments under the same culture conditions and allowing one pluripotent stem cell aggregate to form in each culture compartment, a qualitatively uniform population of pluripotent stem cell aggregates can be obtained. The qualitative uniformity of pluripotent stem cell aggregates can be evaluated based on the size and cell number of the aggregates, macroscopic morphology, microscopic morphology and uniformity thereof determined by histological staining analysis, expression and uniformity of differentiated and undifferentiated markers, regulation and synchronization of differentiation marker expression, and reproducibility of differentiation efficiency among aggregates. In one embodiment, the population of pluripotent stem cell aggregates used in the methods of the present invention has a uniform number of pluripotent stem cells contained within the aggregates. For a particular parameter, a "uniform" population of pluripotent stem cell aggregates means that 90% or more of the aggregates in the aggregate population have a value within ±10%, preferably within ±5%, of the mean value of the parameter for the aggregate population.
[0040] (3) Induction of the adenohypophysis and / or its precursor tissues In the present invention, a cell aggregate containing the adenohypophysis and / or its precursor tissue can be obtained by a method comprising culturing a pluripotent stem cell aggregate in suspension in a medium containing an activator of the bone morphogenetic protein signaling pathway and an agent acting on the sonic hedgehog (Shh) signaling pathway.
[0041] In the present invention, the term "adenohypophysis" refers to a tissue containing at least one type of pituitary hormone-producing cell in the anterior or intermediate lobe of the pituitary gland. Examples of pituitary hormone-producing cells include cells constituting the anterior lobe, such as growth hormone (GH)-producing cells, prolactin (PRL)-producing cells, adrenocorticotropic hormone (ACTH)-producing cells, thyroid-stimulating hormone (TSH)-producing cells, follicle-stimulating hormone (FSH)-producing cells, and luteinizing hormone (LH)-producing cells; and cells constituting the intermediate lobe, such as melanocyte-stimulating hormone (MSH)-producing cells. These pituitary hormone-producing cells may express EpCAM as a marker in addition to expressing pituitary hormones specific to each cell type. In one embodiment, the adenohypophysis contains at least one type, preferably two or more (2, 3, 4, 5, or 6) types of pituitary hormone-producing cells selected from the group consisting of GH-producing cells, PRL-producing cells, ACTH-producing cells, TSH-producing cells, FSH-producing cells, and LH-producing cells. In a further embodiment, the adenohypophysis comprises at least one, preferably two, more preferably three types of pituitary hormone-producing cells selected from the group consisting of GH-producing cells, PRL-producing cells, and ACTH-producing cells.
[0042] In the present invention, a tissue refers to a structure of a cell population in which multiple types of cells with different morphologies and properties are arranged three-dimensionally in a certain pattern.
[0043] Examples of precursor tissues of the adenohypophysis include the pituitary placode and Rathke's pouch. The pituitary placode is a thickened structure formed in the epidermal ectoderm (oral ectoderm) during embryonic development. It is capable of expressing at least the pituitary progenitor cell markers EpCAM, and Lhx3 or Pitx1, and preferably all of EpCAM, Lhx3, and Pitx1. The Rathke's pouch is a sac-like structure formed by invagination of the pituitary placode. Like the pituitary placode, Rathke's pouch is capable of expressing at least the pituitary progenitor cell markers EpCAM, and Lhx3 or Pitx1, and preferably all of EpCAM, Lhx3, and Pitx1. In addition to the above, the expression of Isl1 / 2, Cytokeratin, and the like may also be confirmed as pituitary progenitor cell markers. As used herein, cells capable of expressing at least the pituitary progenitor cell markers EpCAM and Lhx3 or Pitx1 are referred to as pituitary progenitor cells, and these progenitor cells preferably express all of EpCAM, Lhx3, and Pitx1. Also, as used herein, pituitary progenitor cells are also referred to as precursor cells of pituitary hormone-producing cells. As used herein, the term "cell aggregate containing adenohypophysis and / or its precursor tissue" includes, for example, cell aggregates that are positive for at least one marker selected from LHX3, NKX2.1, PITX1, and ACTH. Furthermore, examples of the "cell aggregate containing the adenohypophysis and / or its precursor tissue" include cell aggregates that are positive for LHX3, NKX2.1, PITX1, and ACTH.
[0044] The cell aggregate containing the adenohypophysis and / or its precursor tissue used in the isolation method and production method of the present invention can be prepared by the following method. Specifically, the method comprises: (1) suspension-culturing an aggregate of pluripotent stem cells in a medium containing a bone morphogenetic protein signaling pathway activator and a substance acting on the Shh signaling pathway to obtain a cell aggregate containing hypothalamic neuroepithelial tissue and epidermal ectoderm (including oral ectoderm) (hereinafter, sometimes simply referred to as epidermal ectoderm) (first culture step); and (2) suspension-culturing the obtained cell aggregate containing hypothalamic neuroepithelial tissue and epidermal ectoderm (including oral ectoderm) in a medium containing a bone morphogenetic protein signaling pathway activator and a substance acting on the Shh signaling pathway to obtain a cell aggregate containing 1) hypothalamic neuroepithelial tissue and 2) pituitary placode and / or Rathke's pouch (second culture step). The first culture step induces differentiation of the pluripotent stem cells into hypothalamic neuroepithelial tissue and epidermal ectoderm (including oral ectoderm), and the resulting cell aggregates containing hypothalamic neuroepithelial tissue and epidermal ectoderm (including oral ectoderm) are subjected to a second culture step, which induces further differentiation of the epidermal ectoderm region (oral ectoderm) into pituitary placode and / or Rathke's pouch. In the separation method and production method of the present invention, the cell aggregate containing the adenohypophysis and / or its precursor tissue may be a cell aggregate obtained by the second culture step.
[0045] (3.1) First culture step In the first culture step, aggregates of pluripotent stem cells are cultured in suspension in a medium containing an activator of the bone morphogenetic protein signaling pathway and an agent acting on the Shh signaling pathway.
[0046] "Suspension culture" of pluripotent stem cell aggregates refers to culturing pluripotent stem cell aggregates in a medium under non-adhesive conditions to a culture vessel. This enables efficient induction of adenohypophysis or its precursor tissue, which has previously been difficult.
[0047] The medium used for suspension culture contains a bone morphogenetic protein signaling pathway activator and an Shh signaling pathway agonist, which induce differentiation of pluripotent stem cells into hypothalamic neuroepithelial tissue and epidermal ectoderm.
[0048] In the present invention, a bone morphogenetic protein signaling pathway activator refers to any substance that activates a pathway in which a signal is transmitted upon binding of a bone morphogenetic protein to a receptor. Examples of bone morphogenetic protein signaling pathway activators include BMP2, BMP4, BMP7, and GDF5. Preferably, the bone morphogenetic protein signaling pathway activator is BMP4. While the following description focuses primarily on BMP4, the bone morphogenetic protein signaling pathway activator used in the present invention is not limited to BMP4. BMP4 is a known cytokine, and its amino acid sequence is also known. The BMP4 used in the present invention is mammalian BMP4. Examples of mammals include rodents such as mice, rats, hamsters, and guinea pigs, laboratory animals such as rabbits, livestock such as pigs, cows, goats, horses, and sheep, pets such as dogs and cats, and primates such as humans, monkeys, orangutans, and chimpanzees. Preferably, the BMP4 is rodent (e.g., mouse, rat) or primate (e.g., human) BMP4, and most preferably human BMP4. Human BMP4 means that the BMP4 has the amino acid sequence of BMP4 naturally expressed in humans. Representative amino acid sequences of human BMP4 include those under NCBI accession numbers NP_001193.2 (updated June 15, 2013), NP_570911.2 (updated June 15, 2013), and NP_570912.2 (updated June 15, 2013), as well as the amino acid sequences (mature human BMP4 amino acid sequences) obtained by removing the N-terminal signal sequence (1-24) from each of these amino acid sequences.
[0049] In the present invention, the substance acting on the Shh signal pathway is not particularly limited as long as it can enhance signal transduction mediated by Shh. Examples of substances acting on the Shh signal pathway include, but are not limited to, proteins belonging to the Hedgehog family or fragments thereof (e.g., Shh, Ihh, Shh(C24II) N-Terminus, Shh(C25II) N-Terminus), Shh receptors, Shh receptor agonists, Purmorphamine, and Smoothened Agonist (SAG) (3-Chloro-N-[trans-4-(methylamino)cyclohexyl]-N-[[3-(4-pyridinyl)phenyl]methyl]-benzo[b]thiophene-2-carboxamide). Among these, SAG is preferred.
[0050] A preferred combination of a bone morphogenetic protein signaling pathway activator and an Shh signaling pathway agent is BMP4 and SAG.
[0051] The concentration of the bone morphogenetic protein signaling pathway activator in the medium can be appropriately set within a range that allows differentiation of pluripotent stem cells into hypothalamic neuroepithelial tissue and epidermal ectoderm in the cell aggregates. When BMP4 is used as the bone morphogenetic protein signaling pathway activator, the concentration is typically 0.01 nM or higher, preferably 0.1 nM or higher, and more preferably 1 nM or higher. As long as there is no adverse effect on differentiation into hypothalamic neuroepithelial tissue and epidermal ectoderm, there is no particular upper limit. However, from the viewpoint of culture costs, the concentration is typically 1000 nM or lower, preferably 100 nM or lower, and more preferably 10 nM or lower. In one embodiment, the BMP4 concentration in the medium is typically 0.01 to 1000 nM, preferably 0.1 to 100 nM, and more preferably 1 to 10 nM (e.g., 5 nM). The exogenous bone morphogenetic protein signaling pathway activator contributes particularly to 1) the active formation of epidermal ectoderm and 2) the differentiation induction of hypothalamic neuroepithelial tissue, but not cerebral, within the cell aggregates, and is therefore included in the culture medium at a concentration that can achieve these effects.
[0052] The bone morphogenetic protein signaling pathway activator does not have to be contained in the medium throughout the entire period of the first culture step. For example, the bone morphogenetic protein signaling pathway activator may not be added to the medium for 2 to 4 days (e.g., 3 days) from the start of suspension culture of the pluripotent stem cell aggregates, and then the bone morphogenetic protein signaling pathway activator may be added to the medium.
[0053] The concentration of the substance acting on the Shh signaling pathway in the medium can be appropriately set within a range that allows differentiation of pluripotent stem cells into hypothalamic neuroepithelial tissue and epidermal ectoderm in the cell aggregates. When SAG is used as the substance acting on the Shh signaling pathway, its concentration is usually 1 nM or more, preferably 10 nM or more, and more preferably 100 nM or more. As long as there is no adverse effect on differentiation into hypothalamic neuroepithelial tissue and epidermal ectoderm, there is no particular upper limit. However, from the viewpoint of culture costs, the concentration is usually 1000 μM or less, preferably 100 μM or less, and more preferably 10 μM or less. In one aspect, the concentration of SAG in the medium is usually 1 nM to 1000 μM, preferably 10 nM to 100 μM, and more preferably 100 nM to 10 μM (e.g., 2 μM). The exogenous Shh signal pathway active substance plays a role in inducing differentiation of neuroepithelial tissue of the hypothalamus (preferably the ventral hypothalamus) rather than the neural retina into cell aggregates, and is therefore included in the culture medium at a concentration that can achieve this effect.
[0054] The substance acting on the Shh signal pathway does not have to be contained in the medium throughout the entire period of the first culture step. For example, the substance acting on the Shh signal pathway may not be added to the medium for 5 to 7 days (e.g., 6 days) from the start of suspension culture of the aggregates of pluripotent stem cells, and then the substance acting on the Shh signal pathway may be added to the medium.
[0055] In one embodiment, aggregates of pluripotent stem cells are cultured in suspension for 2 to 4 days in a medium that does not contain an activator of the bone morphogenetic protein signaling pathway and an agent acting on the Shh signaling pathway, and the resulting aggregates are then cultured in suspension for 2 to 4 days in a medium that contains an activator of the bone morphogenetic protein signaling pathway and does not contain an agent acting on the Shh signaling pathway, and the resulting aggregates are further cultured in a medium that contains an activator of the bone morphogenetic protein signaling pathway and an agent acting on the Shh signaling pathway until hypothalamic neuroepithelial tissue and epidermal ectoderm are induced.
[0056] The bone morphogenetic protein signaling pathway activator, such as BMP4, used in the present invention is preferably isolated. "Isolated" means that the target component or factors other than the cell have been removed, and the protein is free from its naturally occurring state. Therefore, "isolated protein X" does not include endogenous protein X produced from the cells or tissues being cultured. The purity of "isolated protein X" (the percentage of protein X weight relative to the total protein weight) is usually 70% or more, preferably 80% or more, more preferably 90% or more, even more preferably 99% or more, and most preferably 100%. The isolated bone morphogenetic protein signaling pathway activator contained in the medium used for suspension culture is exogenously added to the medium. Therefore, in one aspect, the present invention comprises a step of exogenously adding an isolated bone morphogenetic protein signaling pathway activator to the medium used in the first culture step.
[0057] To suppress cell death of pluripotent stem cells (especially human pluripotent stem cells) induced by dissociation, it is preferable to add a Rho-associated coiled-coil kinase (ROCK) inhibitor to the medium used in the first culture step from the start of culture (JP 2008-99662 A). The ROCK inhibitor is added, for example, within 15 days, preferably within 10 days, and more preferably within 6 days after the start of culture. Examples of ROCK inhibitors include Y-27632 ((+)-(R)-trans-4-(1-aminoethyl)-N-(4-pyridyl)cyclohexanecarboxamide dihydrochloride). The concentration of the ROCK inhibitor used for suspension culture is a concentration that can suppress cell death of pluripotent stem cells induced by dissociation. For example, for Y-27632, such a concentration is typically about 0.1 to 200 μM, preferably about 2 to 50 μM. The concentration of the ROCK inhibitor may be varied during the period of addition, for example, the concentration may be reduced by half in the latter half of the period.
[0058] The medium used for suspension culture of cell aggregates can be prepared using a medium used for culturing mammalian cells as the basal medium. The basal medium is not particularly limited as long as it can be used for culturing mammalian cells, and includes, for example, BME medium, BGJb medium, CMRL 1066 medium, Glasgow MEM medium, Improved MEM Zinc Option medium, IMDM medium, Medium 199 medium, Eagle MEM medium, αMEM medium, DMEM medium, Ham's medium, Ham's F-12 medium, RPMI 1640 medium, Fischer's medium, Neurobasal medium, and mixtures thereof (e.g., DMEM / F-12 medium (a 1:1 mixture of DMEM medium and Ham's F-12 medium)). In one embodiment, a mixture of IMDM medium and Ham's F-12 medium is used. The volume ratio of the mixture is, for example, IMDM:Ham's F-12 = 0.8-1.2:1.2-0.8.
[0059] The medium used for the culture may be a serum-containing medium or a serum-free medium. From the viewpoint of avoiding contamination with chemically undefined components, the medium used for the suspension culture of cell aggregates is preferably a serum-free medium.
[0060] The medium used for suspension culture of cell aggregates may contain a serum substitute. The serum substitute may contain, for example, albumin, transferrin, fatty acids, collagen precursors, trace elements, 2-mercaptoethanol, 3'-thiolglycerol, or equivalents thereof. Such a serum substitute can be prepared, for example, by the method described in WO98 / 30679. To facilitate the implementation of the method of the present invention, commercially available serum substitutes can be used. Examples of commercially available serum substitutes include KSR (knockout serum replacement) (Invitrogen), Chemically-defined Lipid concentrated (Gibco), and Glutamax (Gibco).
[0061] The medium used for suspension culture of cell aggregates may contain other additives to the extent that they do not adversely affect the differentiation of pluripotent stem cells into hypothalamic neuroepithelial tissue and epidermal ectoderm. Examples of additives include, but are not limited to, insulin, iron sources (e.g., transferrin), minerals (e.g., sodium selenate), sugars (e.g., glucose), organic acids (e.g., pyruvic acid, lactic acid), serum proteins (e.g., albumin), amino acids (e.g., L-glutamine), reducing agents (e.g., 2-mercaptoethanol), vitamins (e.g., ascorbic acid, d-biotin), antibiotics (e.g., streptomycin, penicillin, gentamicin), and buffers (e.g., HEPES).
[0062] In one embodiment, the medium used for suspension culture of cell aggregates is a growth-factor-free chemically defined medium (gfCDM) containing no growth factors other than those specifically described herein, supplemented with a serum substitute (e.g., KSR) to avoid adverse effects on differentiation induction into hypothalamic neuroepithelial tissue and epidermal ectoderm. The term "growth factor" as used herein includes Fgf; BMP; pattern formation factors such as Wnt, Nodal, Notch, and Shh; insulin; and lipid-rich albumin. An example of a growth-factor-free chemically defined medium is the gfCDM disclosed in Wataya et al., Proc Natl Acad Sci USA, 105(33): 11796-11801, 2008.
[0063] Other culture conditions such as culture temperature, CO2 concentration, and O2 concentration during suspension culture of cell aggregates can be set appropriately. The culture temperature is, for example, about 30 to 40°C, preferably about 37°C. The CO2 concentration is, for example, about 1 to 10%, preferably about 5%. The O2 concentration is, for example, about 20%.
[0064] In a preferred embodiment, a qualitatively homogeneous population of pluripotent stem cell aggregates is cultured in suspension in a medium containing a bone morphogenetic protein signaling pathway activator and a substance acting on the Shh signaling pathway. By using a qualitatively homogeneous population of pluripotent stem cell aggregates, it is possible to minimize differences between aggregates in the degree of differentiation into the adenohypophysis or its precursor tissue, thereby improving the efficiency of the desired differentiation induction. The following embodiments are encompassed by the suspension culture of a qualitatively homogeneous population of pluripotent stem cell aggregates. 1) A group of qualitatively uniform pluripotent stem cell aggregates is seeded into multiple culture compartments so that each culture compartment contains a single pluripotent stem cell aggregate (for example, by placing one pluripotent stem cell aggregate in each well of a 96-well plate). Then, in each culture compartment, one pluripotent stem cell aggregate is cultured in suspension in a medium containing an activator of the bone morphogenetic protein signaling pathway and an agent acting on the Shh signaling pathway. 2) A qualitatively uniform population of pluripotent stem cell aggregates is seeded into one culture compartment so that each compartment contains multiple pluripotent stem cell aggregates (for example, multiple pluripotent stem cell aggregates are placed in a 10 cm dish).Then, in the compartment, the multiple pluripotent stem cell aggregates are cultured in suspension in a medium containing an activator of the bone morphogenetic protein signaling pathway and an agent acting on the Shh signaling pathway.
[0065] Through the method of the present invention, either of the above-mentioned embodiments 1) and 2) may be employed, and the embodiment may be changed during the culture process <from embodiment 1) to embodiment 2), or from embodiment 2) to embodiment 1>. In one embodiment, embodiment 1) is employed in the first culture step, and embodiment 2) is employed in the second culture step.
[0066] The first culture step is carried out for a period sufficient to induce differentiation of the pluripotent stem cells into hypothalamic neuroepithelial tissue and epidermal ectoderm. Differentiation into hypothalamic neuroepithelial tissue and epidermal ectoderm can be detected, for example, by RT-PCR or immunohistochemistry using antibodies specific for markers of hypothalamic neuroepithelial tissue or epidermal ectoderm. For example, the culture is carried out until 10% or more, preferably 30% or more, and more preferably 50% or more of the cell aggregates in culture contain hypothalamic neuroepithelial tissue and epidermal ectoderm. The culture period cannot be generally specified because it varies depending on the animal species of the pluripotent stem cells and the types of bone morphogenetic protein signaling pathway activator and Shh signaling pathway active substance. However, for example, when human pluripotent stem cells are used, the first culture step is usually 15 to 20 days (e.g., 18 days).
[0067] By carrying out the first culture step, a cell aggregate containing hypothalamic neuroepithelial tissue and epidermal ectoderm (including oral ectoderm) can be obtained.
[0068] Hypothalamic neuroepithelial tissue is neuroepithelial tissue that expresses hypothalamic markers and contains hypothalamic progenitor cells capable of self-renewal and capable of differentiating into cells that constitute the hypothalamus (e.g., neurons, glial cells, etc.), as well as neurons and glial cells that have lost their self-renewal capacity through differentiation. The proportion of hypothalamic progenitor cells and their differentiated cells in hypothalamic neuroepithelial tissue varies depending on the degree of differentiation. However, it has been confirmed that in cell masses obtained by long-term culture of pluripotent stem cells until the differentiation of the adenohypophysis, most of the hypothalamic progenitor cells differentiate into hypothalamic neurons (Cell Reports, 30, 18-24, January 7, 2020). The hypothalamus includes the ventral hypothalamus and dorsal hypothalamus. Hypothalamic markers include NKx2.1 (a ventral hypothalamic marker) and Pax6 (a dorsal hypothalamic marker). In one embodiment, the ventral hypothalamic neuroepithelial tissue is Rx-positive, Chx10-negative, Pax6-negative, and Nkx2.1-positive neuroepithelial tissue. In one embodiment, the dorsal hypothalamic neuroepithelial tissue is Rx-positive, Chx10-negative, Nkx2.1-negative, and Pax6-positive neuroepithelial tissue. The hypothalamic neuroepithelial tissue contained in the cell aggregate obtained in the first culture step is preferably ventral hypothalamic neuroepithelial tissue. EpCAM is not expressed in any of the above hypothalamic neuroepithelial tissues, indicating that EpCAM is not expressed in all cells constituting the hypothalamic neuroepithelial tissue (not only in hypothalamic progenitor cells, but also in differentiated neurons, glial cells, etc. that have lost self-renewal ability).
[0069] The epidermal ectoderm is an ectodermal cell layer formed on the surface of an embryo during embryogenesis. Examples of epidermal ectodermal markers include pan-cytokeratin. The epidermal ectoderm can generally differentiate into the anterior pituitary gland, skin, oral epithelium, tooth enamel, skin glands, etc. In one embodiment, the epidermal ectoderm is an E-cadherin-positive and pan-cytokeratin-positive cell layer.
[0070] Preferably, in the cell aggregate obtained in the first culture step, hypothalamic neuroepithelial tissue occupies the interior of the cell aggregate, and a single layer of epidermal ectoderm cells constitutes the surface of the cell aggregate. The epidermal ectoderm may include a thickened epidermal placode in part.
[0071] (3.2) Second culture step In the second culture step, the cell aggregates containing hypothalamic neuroepithelial tissue and epidermal ectoderm (including oral ectoderm) obtained in the first culture step are further cultured in suspension in a medium containing a bone morphogenetic protein signaling pathway activator and an Shh signaling pathway agonist to obtain cell aggregates containing 1) hypothalamic neuroepithelial tissue and 2) pituitary placode and / or Rathke's pouch. Differentiation of the epidermal ectoderm into pituitary placode and / or Rathke's pouch is induced by the action of the bone morphogenetic protein signaling pathway activator and the Shh signaling pathway agonist.
[0072] The definitions of the bone morphogenetic protein signaling pathway activator and the Shh signaling pathway acting substance are as described in the explanation of the first culture step.
[0073] Preferably, the bone morphogenetic protein signaling pathway activator used in the second culture step is BMP4, as in the first culture step. Preferably, the Shh signal pathway activator used in the second culture step is SAG, as in the first culture step.
[0074] A preferred combination of a bone morphogenetic protein signaling pathway activator and an Shh signaling pathway agent is BMP4 and SAG.
[0075] The concentration of the bone morphogenetic protein signaling pathway activator in the medium can be appropriately set within a range that allows differentiation of epidermal ectoderm into pituitary placode and / or Rathke's pouch in the cell aggregate. When BMP4 is used as the bone morphogenetic protein signaling pathway activator, the concentration is typically 0.01 nM or higher, preferably 0.1 nM or higher, and more preferably 1 nM or higher. As long as there is no adverse effect on differentiation of epidermal ectoderm into pituitary placode and / or Rathke's pouch, there is no particular upper limit. However, from the viewpoint of culture costs, the concentration is typically 1000 nM or lower, preferably 100 nM or lower, and more preferably 10 nM or lower. In one embodiment, the BMP4 concentration in the medium is typically 0.01 to 1000 nM, preferably 0.1 to 100 nM, and more preferably 1 to 10 nM (e.g., 5 nM). The concentration of the bone morphogenetic protein signaling pathway activator may be varied during the period of addition; for example, the concentration may be set at the above-mentioned concentration at the start of the second culture step, and then gradually reduced by half every 2 to 4 days.
[0076] The concentration of the substance acting on the Shh signaling pathway in the medium can be appropriately set within a range that allows induction of differentiation of epidermal ectoderm into pituitary placode and / or Rathke's pouch in the cell aggregates. When SAG is used as the substance acting on the Shh signaling pathway, its concentration is usually 1 nM or more, preferably 10 nM or more, and more preferably 100 nM or more. As long as there is no adverse effect on differentiation into pituitary placode and / or Rathke's pouch, there is no particular upper limit. However, from the viewpoint of culture costs, the concentration is usually 1000 μM or less, preferably 100 μM or less, and more preferably 10 μM or less. In one aspect, the concentration of SAG in the medium is usually 1 nM to 1000 μM, preferably 10 nM to 100 μM, and more preferably 100 nM to 10 μM (e.g., 2 μM).
[0077] In a preferred embodiment, the medium used in the second culture step contains FGF2, which promotes differentiation of epidermal ectoderm into pituitary placode.
[0078] FGF2, also known as basic fibroblast growth factor (bFGF), is a known cytokine, and its amino acid sequence is also known. The FGF2 used in the present invention is typically mammalian FGF2. Examples of mammals include those listed above. Because FGF2 is cross-reactive among many mammalian species, FGF2 from any mammal may be used as long as the objectives of the present invention can be achieved. However, FGF2 from the same mammalian species as the cells to be cultured is preferably used. For example, FGF2 from rodents (e.g., mice, rats) or primates (e.g., humans) is used. Here, mouse FGF2 means that the FGF2 has the amino acid sequence of FGF2 naturally expressed in vivo by mice. The same interpretation applies to other proteins, etc., used herein. A representative amino acid sequence of mouse FGF2 is NCBI accession number NP_032032.1 (updated February 18, 2014), and the amino acid sequence obtained by removing the N-terminal signal sequence (1-9) from this amino acid sequence (mature mouse FGF2 amino acid sequence). A representative amino acid sequence of human FGF2 is NCBI accession number NP_001997.5 (updated February 18, 2014).
[0079] The concentration of FGF2 in the medium is not particularly limited as long as it is a concentration that can promote differentiation of epidermal ectoderm into pituitary placode, but is usually 1 ng / ml or more, preferably 10 ng / ml or more. There is no particular upper limit to the FGF2 concentration as long as it does not adversely affect differentiation into pituitary placode and / or Rathke's pouch, but from the perspective of culture costs, it is usually 1000 ng / ml or less, preferably 500 ng / ml or less. In one embodiment, the FGF2 concentration in the medium is usually 1 to 1000 ng / ml, preferably 10 to 100 ng / ml.
[0080] The bone morphogenetic protein signaling pathway activator, such as BMP4, and FGF2 used in the present invention are preferably isolated. The isolated bone morphogenetic protein signaling pathway activator and isolated FGF2 contained in the medium used in the second culture step are exogenously added to the medium. Thus, in one aspect, the present invention comprises a step of exogenously adding an isolated bone morphogenetic protein signaling pathway activator (and optionally isolated FGF2) to the medium used in the second culture step.
[0081] The medium used in the second culture step, like the medium used in the first culture step, can be prepared using a medium used for culturing mammalian cells as the basal medium. The basal medium is not particularly limited as long as it can be used for culturing mammalian cells, and includes, for example, BME medium, BGJb medium, CMRL 1066 medium, Glasgow MEM medium, Improved MEM Zinc Option medium, IMDM medium, Medium 199 medium, Eagle MEM medium, αMEM medium, DMEM medium, Ham's medium, Ham's F-12 medium, RPMI 1640 medium, Fischer's medium, Neurobasal medium, and mixtures thereof (e.g., DMEM / F-12 medium (a 1:1 mixture of DMEM medium and Ham's F-12 medium)). In one embodiment, a mixture of IMDM medium and Ham's F-12 medium is used. The mixing ratio by volume is, for example, IMDM:Ham's F-12=0.8 to 1.2:1.2 to 0.8.
[0082] The medium used for the culture may be a serum-containing medium or a serum-free medium. From the viewpoint of avoiding contamination with chemically undefined components, the medium used for the suspension culture of cell aggregates is preferably a serum-free medium.
[0083] The medium used for suspension culture of cell aggregates may contain a serum substitute. The serum substitute may contain, for example, albumin, transferrin, fatty acids, collagen precursors, trace elements, 2-mercaptoethanol, 3'-thiolglycerol, or equivalents thereof. Such a serum substitute can be prepared, for example, by the method described in WO98 / 30679. Furthermore, to more easily carry out the method of the present invention, commercially available serum substitutes can be used. Examples of such commercially available serum substitutes include KSR (knockout serum replacement) (Invitrogen), Chemically-defined Lipid concentrated (Gibco), and Glutamax (Gibco).
[0084] The medium used for suspension culture of cell aggregates may contain other additives to the extent that they do not adversely affect the differentiation of epidermal ectoderm into pituitary placodes and / or Rathke's pouch. Examples of additives include, but are not limited to, insulin, iron sources (e.g., transferrin), minerals (e.g., sodium selenate), sugars (e.g., glucose), organic acids (e.g., pyruvic acid, lactic acid), serum proteins (e.g., albumin), amino acids (e.g., L-glutamine), reducing agents (e.g., 2-mercaptoethanol), vitamins (e.g., ascorbic acid, d-biotin), antibiotics (e.g., streptomycin, penicillin, gentamicin), and buffers (e.g., HEPES).
[0085] In one embodiment, the medium used for suspension culture of cell aggregates is a growth-factor-free chemically defined medium (gfCDM) containing no growth factors other than those specifically described herein, supplemented with a serum substitute (e.g., KSR) to avoid adverse effects on differentiation induction into pituitary placodes and / or Rathke's pouch. The term "growth factor" as used herein includes Fgf; BMP; pattern formation factors such as Wnt, Nodal, Notch, and Shh; insulin; and lipid-rich albumin. An example of a growth-factor-free chemically defined medium is the gfCDM disclosed in Wataya et al., Proc Natl Acad Sci USA, 105(33): 11796-11801, 2008.
[0086] The suspension culture in the second culture step is preferably carried out under conditions of high oxygen tension. By further carrying out suspension culture of cell aggregates containing hypothalamic neuroepithelial tissue and epidermal ectoderm under conditions of high oxygen tension, oxygen can reach the interior of the cell aggregates, and the cell aggregates can be maintained in culture for a long period of time, enabling efficient induction of differentiation into pituitary placodes and / or Rathke's pouch.
[0087] High oxygen partial pressure conditions refer to conditions where the oxygen partial pressure exceeds the oxygen partial pressure in air (20%). The oxygen partial pressure in the second culture step is, for example, 30 to 60%, preferably 35 to 60%, and more preferably 38 to 60%.
[0088] Other culture conditions in the second culture step, such as culture temperature and CO2 concentration, can be set appropriately. The culture temperature is, for example, about 30 to 40° C., preferably about 37° C. The CO2 concentration is, for example, about 1 to 10%, preferably about 5%.
[0089] The second culture step is carried out for a period sufficient to induce differentiation of the epidermal ectoderm into a pituitary placode and / or Rathke's pouch. By carrying out the second culture step, a pituitary placode is formed in the epidermal ectoderm (more specifically, in the oral ectoderm). Furthermore, a portion or all of the pituitary placode may invaginate toward the interior of the cell aggregate (i.e., the adjacent hypothalamic neuroepithelium) to form Rathke's pouch. The differentiation of the epidermal ectoderm into a pituitary placode and / or Rathke's pouch requires interaction between the epidermal ectoderm and hypothalamic neuroepithelial tissue (preferably ventral hypothalamic neuroepithelial tissue). In the present invention, hypothalamic neuroepithelial tissue and epidermal ectoderm are simultaneously formed within the cell aggregate by the first culture step. In a preferred embodiment, the hypothalamic neuroepithelial tissue occupies the interior of the cell aggregate, and a single layer of epidermal ectoderm cells constitutes the surface of the cell aggregate. As a result, favorable interaction between the adjacent epidermal ectoderm and hypothalamic neuroepithelial tissue is possible within the cell aggregates, allowing the in vitro reproduction of the pituitary gland self-organization process during embryonic development, such as pituitary placode formation in the epidermal ectoderm, pituitary placode invagination, and Rathke's pouch formation. Differentiation into pituitary placode and / or Rathke's pouch can be confirmed, for example, by immunohistochemistry using specific antibodies against pituitary progenitor cell markers (e.g., EpCAM, Pitx1, Lhx3, etc.) to detect the formation of pituitary progenitor cell marker-positive placodes or pouch-like structures. For example, the second culture step is carried out until at least 10%, preferably at least 30%, and more preferably at least 50% of the cell aggregates in culture contain pituitary placodes and / or Rathke's pouch. The culture period cannot be generally determined because it may vary depending on the animal species of the pluripotent stem cells and the types of bone morphogenetic protein signaling pathway activator and Shh signaling pathway active substance. However, for example, when human pluripotent stem cells are used, the second culture step is usually 6 days or more, e.g., 6 to 12 days.
[0090] By carrying out the second culture step, it is possible to obtain a cell aggregate containing 1) hypothalamic neuroepithelial tissue and 2) pituitary placode and / or Rathke's pouch. In the isolation method and production method of the present invention, the cell aggregate containing the adenohypophysis and / or its precursor tissue may be a cell aggregate obtained by the second culture step.
[0091] (3.3) Third culture step The cell aggregates containing 1) hypothalamic neuroepithelial tissue and 2) pituitary placode and / or Rathke's pouch obtained in the second culture step are further cultured in suspension in a medium containing an Shh signaling pathway active substance to obtain cell aggregates containing an adenohypophysis (third culture step). The third culture step induces differentiation of the pituitary placode and / or Rathke's pouch into pituitary hormone-producing cells, which are generated in the pituitary placode and / or Rathke's pouch, resulting in the formation of an adenohypophysis. In the separation method and production method of the present invention, the cell aggregate containing the adenohypophysis and / or its precursor tissue may be a cell aggregate obtained by the third culture step.
[0092] The definition of the substance acting on the Shh signal pathway is as described in the explanation of the first culture step.
[0093] Preferably, the substance acting on the Shh signal pathway used in the third culture step is SAG, as in the first and second culture steps.
[0094] The concentration of the substance acting on the Shh signaling pathway in the medium can be appropriately set within a range that allows induction of differentiation of the pituitary placode and / or Rathke's pouch into pituitary hormone-producing cells in the cell aggregates. When SAG is used as the substance acting on the Shh signaling pathway, its concentration is usually 1 nM or more, preferably 10 nM or more, and more preferably 100 nM or more. As long as there is no adverse effect on differentiation into pituitary hormone-producing cells, there is no particular upper limit. However, from the viewpoint of culture costs, the concentration is usually 1000 μM or less, preferably 100 μM or less, and more preferably 10 μM or less. In one aspect, the concentration of SAG in the medium is usually 1 nM to 1000 μM, preferably 10 nM to 100 μM, and more preferably 100 nM to 10 μM (e.g., 2 μM).
[0095] In a preferred embodiment, the medium used in the third culture step contains FGF2, which promotes differentiation of the pituitary placode and / or Rathke's pouch into pituitary hormone-producing cells.
[0096] The definition of FGF2 is as described in the explanation of the second culture step.
[0097] The concentration of FGF2 in the medium is not particularly limited as long as it is a concentration that can promote differentiation of pituitary placodes and / or Rathke's pouch into pituitary hormone-producing cells, but is usually 1 ng / ml or more, preferably 10 ng / ml or more. There is no particular upper limit to the FGF2 concentration as long as it does not adversely affect differentiation into pituitary hormone-producing cells, but from the viewpoint of culture costs, it is usually 1000 ng / ml or less, preferably 500 ng / ml or less. In one embodiment, the FGF2 concentration in the medium is usually 1 to 1000 ng / ml, preferably 10 to 100 ng / ml.
[0098] In a preferred embodiment, the medium used in the third culture step contains a Notch signal inhibitor. The Notch signal inhibitor promotes differentiation of the pituitary placode and / or Rathke's pouch into pituitary hormone-producing cells (particularly ACTH-producing cells). The Notch signal inhibitor increases the expression of Tbx19, a transcription factor that upstream regulates ACTH production.
[0099] The Notch signal inhibitor is not particularly limited as long as it can suppress signal transduction mediated by Notch. Examples of Notch signal inhibitors include gamma secretase inhibitors such as DAPT (N-[N-(3,5-difluorophenacetyl)-l-alanyl]-S-phenylglycine t-butyl ester), DBZ, and MDL28170, among which DAPT is preferred.
[0100] The concentration of the Notch signal inhibitor in the medium is not particularly limited as long as it is a concentration that can promote the differentiation of pituitary placodes and / or Rathke's pouch into pituitary hormone-producing cells (particularly ACTH-producing cells), but in the case of DAPT, for example, the concentration is usually 0.1 μM or higher, preferably 1 μM or higher. There is no particular upper limit to the DAPT concentration as long as it does not adversely affect the differentiation into pituitary hormone-producing cells, but from the viewpoint of culture costs, it is usually 1000 μM or lower, preferably 100 μM or lower. In one embodiment, the DAPT concentration in the medium is usually 0.1 to 1000 μM, preferably 1 to 100 μM (e.g., 10 μM).
[0101] In the third culture step, it is not necessary to add an activator of the bone morphogenetic protein signaling pathway to the culture medium. In one embodiment, the culture medium used in the third culture step does not contain an activator of the bone morphogenetic protein signaling pathway.
[0102] The FGF2 used in the present invention is preferably isolated. The isolated FGF2 contained in the medium used in the third culture step is exogenously added to the medium. Thus, in one embodiment, the present invention includes a step of exogenously adding isolated FGF2 to the medium used in the second culture step.
[0103] In the third culture step, the cell aggregates may be treated with adrenocortical hormones by adding adrenocortical hormones to the medium. Treatment with adrenocortical hormones promotes differentiation of the pituitary placode and / or Rathke's pouch into pituitary hormone-producing cells other than ACTH-producing cells (i.e., GH-producing cells, PRL-producing cells, TSH-producing cells, LH-producing cells, FSH-producing cells, etc.). Examples of adrenocortical hormones include, but are not limited to, natural glucocorticoids such as hydrocortisone, cortisone acetate, and fludrocortisone acetate; and artificially synthesized glucocorticoids such as dexamethasone, betamethasone, prednisolone, methylprednisolone, and triamcinolone.
[0104] The concentration of the adrenal cortical hormone in the medium is not particularly limited as long as it promotes differentiation of the pituitary placode and / or Rathke's pouch into pituitary hormone-producing cells (excluding ACTH-producing cells), and can be appropriately set depending on the type of adrenal cortical hormone. For example, in the case of hydrocortisone, the concentration is usually 100 ng / ml or more, preferably 1 μg / ml or more. As long as there is no adverse effect on differentiation into pituitary hormone-producing cells (excluding ACTH-producing cells), there is no particular upper limit for the hydrocortisone concentration. However, from the viewpoint of culture costs, the hydrocortisone concentration is usually 1000 μg / ml or less, preferably 100 μg / ml or less. In one embodiment, the hydrocortisone concentration in the medium is usually 100 ng / ml to 1000 μg / ml, preferably 1 to 100 μg / ml. When dexamethasone is used as the adrenal cortical hormone, its concentration in the medium can be approximately 1 / 25 of that of hydrocortisone.
[0105] In the third culture step, the timing of adding corticosteroids to the medium is not particularly limited as long as it promotes differentiation of the pituitary placode and / or Rathke's pouch into pituitary hormone-producing cells (excluding ACTH-producing cells). Corticosteroids may be added to the medium from the start of the third culture step, or after a certain period of culture in a corticosteroid-free medium following the start of the third culture step, corticosteroids may be added to the medium. Preferably, corticosteroids are added to the medium once the appearance of ACTH-producing cells is confirmed in the cell aggregates after the start of the third culture step. That is, the cell aggregates are cultured in a corticosteroid-free medium until the appearance of ACTH-producing cells is confirmed in the cell aggregates, and after the appearance of ACTH-producing cells is confirmed, the third culture step is continued in a corticosteroid-containing medium. The appearance of ACTH-producing cells can be confirmed by immunohistological staining using an antibody against ACTH. When human pluripotent stem cells are used, the appearance of ACTH-producing cells can generally be expected 37 days or more after the start of the third culture step. Therefore, in one embodiment, corticosteroids are added to the culture medium 37 days or more after the start of the third culture step.
[0106] The period for treating the cell aggregates with corticosteroids is not particularly limited as long as it promotes differentiation of the pituitary placode and / or Rathke's pouch into pituitary hormone-producing cells (excluding ACTH-producing cells). Typically, the cell aggregates are treated with corticosteroids until enhanced differentiation into pituitary hormone-producing cells (excluding ACTH-producing cells) is confirmed in the corticosteroid-treated group compared to the corticosteroid-untreated group. The treatment period is typically 7 days or longer, preferably 12 days or longer. The upper limit of the treatment period is not particularly limited, but the corticosteroids may be removed from the medium once enhanced differentiation into pituitary hormone-producing cells (excluding ACTH-producing cells) is confirmed in the corticosteroid-treated group compared to the corticosteroid-untreated group.
[0107] The addition of adrenocortical hormones to the culture medium acts to suppress the differentiation induction of ACTH-producing cells through feedback inhibition.
[0108] The medium used in the third culture step, like the media used in the first and second culture steps, can be prepared using a medium used for culturing mammalian cells as a basal medium. The basal medium is not particularly limited as long as it can be used for culturing mammalian cells, and includes, for example, BME medium, BGJb medium, CMRL 1066 medium, Glasgow MEM medium, Improved MEM Zinc Option medium, IMDM medium, Medium 199 medium, Eagle MEM medium, αMEM medium, DMEM medium, Ham's medium, Ham's F-12 medium, RPMI 1640 medium, Fischer's medium, Neurobasal medium, and mixtures thereof (e.g., DMEM / F-12 medium (a 1:1 mixture of DMEM medium and Ham's F-12 medium)). In one embodiment, a mixture of IMDM medium and Ham's F-12 medium is used. The mixing ratio by volume is, for example, IMDM:Ham's F-12=0.8 to 1.2:1.2 to 0.8.
[0109] The medium used for the culture may be a serum-containing medium or a serum-free medium. From the viewpoint of avoiding contamination with chemically undefined components, the medium used for the suspension culture of cell aggregates is preferably a serum-free medium.
[0110] The medium used for suspension culture of cell aggregates may contain a serum substitute. The serum substitute may contain, for example, albumin, transferrin, fatty acids, collagen precursors, trace elements, 2-mercaptoethanol, 3'-thiolglycerol, or equivalents thereof. Such a serum substitute can be prepared, for example, by the method described in WO98 / 30679. To facilitate the implementation of the method of the present invention, commercially available serum substitutes can be used. Examples of commercially available serum substitutes include KSR (knockout serum replacement) (Invitrogen), Chemically-defined Lipid concentrated (Gibco), and Glutamax (Gibco).
[0111] The medium used for suspension culture of cell aggregates may contain other additives to the extent that they do not adversely affect the differentiation of pluripotent stem cells into pituitary placodes and / or Rathke's pouch, and then into pituitary hormone-producing cells. Examples of additives include, but are not limited to, insulin, iron sources (e.g., transferrin), minerals (e.g., sodium selenate), sugars (e.g., glucose), organic acids (e.g., pyruvic acid, lactic acid), serum proteins (e.g., albumin), amino acids (e.g., L-glutamine), reducing agents (e.g., 2-mercaptoethanol), vitamins (e.g., ascorbic acid, d-biotin), antibiotics (e.g., streptomycin, penicillin, gentamicin), and buffers (e.g., HEPES).
[0112] In one embodiment, the medium used for suspension culture of cell aggregates is a growth-factor-free chemically defined medium (gfCDM) containing no growth factors other than those specifically described herein, supplemented with a serum substitute (e.g., KSR) to avoid adverse effects on differentiation induction into pituitary hormone-producing cells. The term "growth factor" as used herein includes Fgf; BMP; pattern formation factors such as Wnt, Nodal, Notch, and Shh; insulin; and lipid-rich albumin. An example of a growth-factor-free chemically defined medium is the gfCDM disclosed in Wataya et al., Proc Natl Acad Sci USA, 105(33): 11796-11801, 2008.
[0113] The suspension culture in the third culture step is preferably carried out under conditions of high oxygen tension. By further carrying out suspension culture of cell aggregates containing 1) hypothalamic neuroepithelial tissue and 2) pituitary placode and / or Rathke's pouch under conditions of high oxygen tension, oxygen reaches the interior of the cell aggregates, and the cell aggregates can be maintained in culture for a long period of time, enabling efficient induction of differentiation into pituitary hormone-producing cells.
[0114] High oxygen partial pressure conditions refer to conditions where the oxygen partial pressure exceeds the oxygen partial pressure in air (20%). The oxygen partial pressure in the third culture step is, for example, 30 to 60%, preferably 35 to 60%, and more preferably 38 to 60%.
[0115] Other culture conditions in the third culture step, such as culture temperature and CO2 concentration, can be set appropriately. The culture temperature is, for example, about 30 to 40° C., preferably about 37° C. The CO2 concentration is, for example, about 1 to 10%, preferably about 5%.
[0116] The third culture step is carried out for a period sufficient to induce differentiation of the pituitary placode and / or Rathke's pouch into pituitary hormone-producing cells. By carrying out the third culture step, differentiation of the pituitary placode and / or Rathke's pouch into pituitary hormone-producing cells is induced, and pituitary hormone-producing cells are generated in the pituitary placode and / or Rathke's pouch, thereby forming an adenohypophysis. Pituitary hormone-producing cells induced from the pituitary placode and / or Rathke's pouch include growth hormone (GH)-producing cells, prolactin (PRL)-producing cells, and adrenocorticotropic hormone (ACTH)-producing cells. In a preferred embodiment, the adrenocorticotropic hormone (ACTH)-producing cells secrete ACTH in response to CRH stimulation, and the ACTH secretion is feedback-inhibited by glucocorticoid. In one embodiment, differentiation of at least one, preferably two, more preferably three types of pituitary hormone-producing cells selected from the group consisting of growth hormone (GH)-producing cells, prolactin (PRL)-producing cells, and adrenocorticotropic hormone (ACTH)-producing cells is induced from the pituitary placode and / or Rathke's pouch, resulting in the formation of an adenohypophysis containing at least one, preferably two, more preferably three types of pituitary hormone-producing cells selected from the group consisting of growth hormone (GH)-producing cells, prolactin (PRL)-producing cells, and adrenocorticotropic hormone (ACTH)-producing cells. In addition to growth hormone (GH)-producing cells, prolactin (PRL)-producing cells, and adrenocorticotropic hormone (ACTH)-producing cells, other pituitary hormone-producing cells such as thyroid-stimulating hormone (TSH)-producing cells, follicle-stimulating hormone (FSH)-producing cells, luteinizing hormone (LH)-producing cells, and melanocyte-stimulating hormone (MSH)-producing cells can also be induced from the pituitary placode and / or Rathke's pouch.That is, the adenohypophysis formed by the third culture step may contain at least one, preferably two, more preferably three, pituitary hormone-producing cells selected from the group consisting of growth hormone (GH)-producing cells, prolactin (PRL)-producing cells, and adrenocorticotropic hormone (ACTH)-producing cells, as well as other pituitary hormone-producing cells such as thyroid-stimulating hormone (TSH)-producing cells, follicle-stimulating hormone (FSH)-producing cells, luteinizing hormone (LH)-producing cells, and melanocyte-stimulating hormone (MSH)-producing cells. Differentiation into pituitary hormone-producing cells can be confirmed, for example, by immunohistochemistry using antibodies specific to pituitary hormones to detect pituitary hormone-positive cells. For example, the culture is continued until 10% or more, preferably 30% or more, and more preferably 50% or more of the cell aggregates in the culture contain pituitary hormone-producing cells. The culture period cannot be generally determined because it may vary depending on the animal species of the pluripotent stem cells and the type of substance acting on the Shh signal pathway. However, for example, when human pluripotent stem cells are used, the third culture step is usually 37 days or more, for example, 37 to 70 days.
[0117] By carrying out the third culture step, a cell aggregate containing an adenohypophysis can be obtained.
[0118] As long as differentiation of pluripotent stem cells into the adenohypophysis or its precursor tissue can be induced through the production method of the present invention, suspension culture of the aggregates may be performed either in the presence or absence of feeder cells. However, from the viewpoint of avoiding contamination with undetermined factors, suspension culture of the cell aggregates is preferably performed in the absence of feeder cells.
[0119] In the production method of the present invention, the culture vessel used for suspension culture of cell aggregates is not particularly limited, but examples include flasks, tissue culture flasks, dishes, Petri dishes, tissue culture dishes, multi-dishes, microplates, microwell plates, micropores, multi-plates, multi-well plates, chamber slides, Petri dishes, tubes, trays, culture bags, and roller bottles. To enable culture under non-adhesive conditions, the culture vessel is preferably non-cell-adhesive. Examples of non-cell-adhesive culture vessels that can be used include those whose surfaces have been artificially treated to make them non-cell-adhesive, and those that have not been artificially treated (e.g., coated with an extracellular matrix) to improve cell adhesion.
[0120] An oxygen-permeable culture vessel may be used for the suspension culture of cell aggregates. The use of an oxygen-permeable culture vessel improves the supply of oxygen to the cell aggregates, which can contribute to the long-term maintenance culture of the cell aggregates.
[0121] When culturing aggregates in suspension, as long as the aggregates can be maintained in a non-adherent state to the culture vessel, they may be cultured statically, or the aggregates may be intentionally moved by rotational or shaking culture. However, in the present invention, intentional movement of the aggregates by rotational or shaking culture is not necessary. That is, in one embodiment, the suspension culture in the production method of the present invention is performed by static culture. Static culture refers to a culture method in which the aggregates are cultured without intentional movement. For example, local changes in medium temperature can cause convection in the medium, and this flow can cause the aggregates to move. However, since the aggregates are not intentionally moved, this case is also included in the term static culture in the present invention. Static culture may be performed throughout the entire suspension culture period, or only for a portion of the period. In a preferred embodiment, static culture is performed throughout the entire suspension culture period. Static culture is advantageous in that it does not require equipment, is expected to cause less damage to the cell aggregates, and can require a smaller amount of culture medium.
[0122] (4) Method for separating pituitary hormone-producing cells using the cell surface marker of the present invention The present invention provides a method for isolating pituitary hormone-producing cells and / or their precursor cells, which comprises the step of separating cells expressing EpCAM from a cell aggregate containing the adenohypophysis and / or its precursor tissue. EpCAM can be expressed on the surface of pituitary hormone-producing cells and their precursor cells, but not on the surface of hypothalamic neuroepithelial tissue. Therefore, pituitary hormone-producing cells and their precursor cells can be separated from hypothalamic neuroepithelial tissue using EpCAM as a marker.
[0123] The cell aggregate containing the adenohypophysis and / or its precursor tissue used in the separation method of the present invention may be either the cell aggregate obtained in the second culture step or the cell aggregate obtained in the third culture step. The specific number of days after the start of differentiation induction from the above-mentioned pluripotent stem cells into the pituitary gland or a partial tissue thereof, or a precursor tissue thereof, is, for example, 30 to 600 days, preferably 90 to 500 days, more preferably 150 to 400 days, and even more preferably 200 to 350 days. The separation method of the present invention comprises the following steps.
[0124] Overview of the separation process of the present invention The method of the present invention for separating pituitary hormone-producing cells and / or their precursor cells, which comprises a step of separating cells that express EpCAM from a cell aggregate comprising the adenohypophysis and / or its precursor tissue, may comprise a step of (A) dispersing the cell aggregate comprising the adenohypophysis and / or its precursor tissue to obtain a population of single cells, prior to the step of (B) separating the cells (population) that express EpCAM. Specifically, step (A) of dispersing the cell aggregates to obtain a population of single cells may include (a1) a step of dispersing the cell aggregates containing the adenohypophysis and / or its precursor tissues by enzymatic treatment (described later in (4.2)). Prior to the step of dispersing by enzymatic treatment, step (a2) may include a step of shredding the cell aggregates containing the adenohypophysis and / or its precursor tissues or physically incising the cell aggregates containing the adenohypophysis and / or its precursor tissues (described later in (4.2)). Step (A) of dispersing the cell aggregates to obtain a population of single cells may optionally include (a-1) a step of treating the cell aggregates containing the adenohypophysis and / or its precursor tissue with a ROCK inhibitor, which is preferably carried out first after the step of obtaining a population of single cells ((4.1) described below). After the step (a2) of dispersing by enzyme treatment, (B) a step of separating the cells (population) expressing EpCAM (a step of separating the cells (population) expressing EpCAM from the cells (population) not expressing EpCAM) is carried out ((4.3) described below). After the cell (population) separation step (B), optionally, a step (C) of reaggregating the obtained cells (population) may be carried out ((4.4) described below). Specifically, the reaggregation step (C) can be carried out by (c1) seeding the obtained cells (population) in a culture vessel and performing adhesion culture, and / or (c2) seeding the obtained cells (population) in a culture vessel and performing suspension culture. (4.1) Pretreatment step with ROCK inhibitor In the separation method of the present invention, the obtained cell aggregates may first be pretreated with a ROCK inhibitor. This pretreatment is preferably carried out before the start of the pretreatment to suppress cell death of pluripotent stem cells (especially human pluripotent stem cells) induced by subsequent dispersal of the cell aggregates. The ROCK inhibitor is added, for example, at least 24 hours, at least 12 hours, at least 6 hours, at least 3 hours, at least 2 hours, or at least 1 hour before the start of the treatment. Examples of ROCK inhibitors include Y-27632 ((+)-(R)-trans-4-(1-aminoethyl)-N-(4-pyridyl)cyclohexanecarboxamide dihydrochloride). The concentration of the ROCK inhibitor used in this treatment is a concentration that can suppress cell death of pluripotent stem cells induced by subsequent dispersal of the cell aggregates. For example, for Y-27632, this concentration is typically about 0.1 to 200 μM, preferably about 2 to 50 μM. The concentration of the ROCK inhibitor may be varied during the addition period, for example, the concentration may be reduced by half in the latter half of the period. In any of steps (4.2) to (4.4) described below, it is preferable to use a solution containing the ROCK inhibitor at a similar concentration as the solution to be contacted with the cells. The medium for the pretreatment can be the medium used in the second culture step when using cell aggregates obtained by the second culture step, or the medium used in the third culture step when using cell aggregates obtained by the third culture step. Note that if a ROCK inhibitor has already been added to the medium at a desired concentration, there is no need to perform the pretreatment step.
[0125] (4.2) Dispersion of cell aggregates Next, the pretreated cell aggregates are dispersed by enzyme treatment. Specifically, the pretreated cell aggregates are first transferred to an incubator (e.g., a tube) containing the medium described in the second or third culture step (e.g., DMEM / F-12 medium (a 1:1 mixture of DMEM medium and Ham's F-12 medium)), and washed with the same medium. The enzyme used for dispersion is not particularly limited as long as it can disperse the cells, and examples include enzymes such as EDTA, trypsin, collagenase (collagenase types I to VII), metalloprotease, hyaluronidase, elastase, dispase, and deoxyribonuclease, as well as mixtures thereof. A preferred enzyme is collagenase, more preferably collagenase type I. The conditions for the enzyme treatment (temperature, time, etc.) can be appropriately set depending on the enzyme used, etc. Furthermore, in order to promote the enzyme treatment, a step of physically shredding the cell aggregates (e.g., with a scalpel, scissors, etc.) or physically making incisions in the cell aggregates (e.g., with a scalpel, scissors, etc.) may be carried out before the treatment.
[0126] After the enzyme treatment, the floating cells are collected and subjected to the enzyme treatment again. This enzyme treatment can also be performed using the enzymes described above. Preferred enzymes include EDTA and trypsin, and more preferably EDTA, trypsin, and deoxyribonuclease. Commercially available products such as TrypLE (Invitrogen) may be used instead of EDTA and trypsin. The enzyme treatment conditions (temperature, time, etc.) can be appropriately determined depending on the enzyme used. A single-cell suspension can be prepared by the above series of enzyme treatments. When preparing the single-cell suspension, dead cells may be removed by a method known per se.
[0127] (4.3) Isolation process of EpCAM-positive cells Methods for separating desired EpCAM-expressing cells from the cell population contained in the single-cell suspension prepared above include methods using flow cytometry, mass cytometry, and magnetic cell separation. These methods can be performed using known methods. For example, EpCAM-expressing cells can be separated by a method comprising contacting the cells with a substance (e.g., an antibody) that specifically binds to the EpCAM molecule. These substances include those labeled with a detectable label (e.g., GFP, PE) and those that are unlabeled. If the substance is unlabeled, the separation can be achieved by further using a substance labeled with a detectable label that directly or indirectly recognizes the substance. For example, if the substance is an antibody, fluorescent dyes, metal isotopes, or beads (e.g., magnetic beads) can be directly or indirectly attached to the antibody to label cell surface markers, allowing cells to be separated based on the label. In this case, only one type of antibody or two or more types of antibodies can be used.
[0128] (4.4) Reaggregation culture step of the separated cell population The separated cell population may be seeded in a culture vessel and cultured in an adherent manner to form, for example, a cell sheet, or may be seeded in a culture vessel and cultured in suspension to reaggregate and form a cell aggregate. The cell population may be maintained in culture as is until use, or may be further induced to differentiate into desired cells depending on the differentiation state of the separated cells. When performing such maintenance culture or further differentiation induction, the method described in the third culture step above may be carried out as is, or may be modified as needed using a method known per se. Furthermore, when performing such adhesion culture, the adhesion culture itself may be carried out using a method known per se, and the contents described in the third culture step above (e.g., medium composition, etc.) may be used as appropriate. Furthermore, during adhesion culture, it is preferable to coat the culture vessel with an extracellular matrix or the like (e.g., laminin, collagen, etc.).
[0129] (5) Uses of isolated pituitary hormone-producing cells and their precursor cells The pituitary hormone-producing cells and their precursor cells obtained by the isolation method or production method of the present invention can be used in transplantation medicine. For example, the pituitary hormone-producing cells and / or their precursor cells obtained by the method of the present invention can be used as a therapeutic agent for diseases caused by damage to the adenohypophysis (anterior or intermediate lobe, preferably the anterior lobe) or to replenish the damaged portion of the adenohypophysis (anterior or intermediate lobe, preferably the anterior lobe) in a damaged state of the adenohypophysis. By transplanting the pituitary hormone-producing cells and / or their precursor cells obtained by the present invention into a patient suffering from a disease caused by a damage to the adenohypophysis or a damaged state of the adenohypophysis, the disease caused by a damage to the adenohypophysis or the damaged state of the adenohypophysis can be treated. The transplantation site is not particularly limited as long as the transplanted pituitary hormone-producing cells and / or their precursor cells can function as a substitute for the damaged adenohypophysis, and examples thereof include the subrenal capsule. Diseases caused by disorders of the adenohypophysis include generalized hypopituitarism, pituitary dwarfism, adrenal insufficiency, partial hypopituitarism, isolated anterior pituitary hormone deficiency, etc. Furthermore, conditions of damage to the adenohypophysis include patients after adenohypophysiotomy, patients after irradiation of pituitary tumors, and trauma.
[0130] In transplantation medicine, rejection due to differences in histocompatibility antigens is a frequent problem, but this problem can be overcome by using pluripotent stem cells (e.g., iPS cells) established from the somatic cells of the transplant recipient. That is, in a preferred embodiment, by using pluripotent stem cells (e.g., iPS cells) established from the somatic cells of the recipient as the pluripotent stem cells in the method of the present invention, an immunologically autologous adenohypophysis or its precursor tissue, or pituitary hormone-producing cells for the recipient is produced, and this is transplanted into the recipient.
[0131] Furthermore, the pituitary hormone-producing cells and their precursor cells obtained by the method of the present invention can be used for drug screening and evaluation. Specifically, they can be applied to, for example, screening for substances that inhibit or promote pituitary hormone production, and to testing the side effects and toxicity of pharmaceuticals. The screening and testing may include, for example, culturing a cell population containing pituitary hormone-producing cells and / or their precursor cells in the presence or absence (negative control) of a test substance, comparing the amount of target hormone produced in the cell population treated with the test substance with that of the negative control, and selecting the test substance that inhibits or promotes pituitary hormone production as a candidate substance.
[0132] (6) Method for producing pituitary hormone-producing cells and / or their precursor cells of the present invention The present invention provides a method for producing pituitary hormone-producing cells and / or their precursor cells, comprising the step of separating cells expressing EpCAM from a cell aggregate containing the adenohypophysis and / or its precursor tissue. In the present invention, the pituitary hormone-producing cells and / or their precursor cells may be pituitary hormone-producing cells and / or their precursor cells, a population of pituitary hormone-producing cells (cell population) and / or a population of their precursor cells (cell population), or a cell population containing pituitary hormone-producing cells and / or their precursor cells at a high purity. EpCAM can be expressed on the surface of pituitary hormone-producing cells and their precursor cells, but not on the surface of hypothalamic neuroepithelial tissue. Therefore, pituitary hormone-producing cells and their precursor cells can be separated from hypothalamic neuroepithelial tissue using EpCAM as a marker. By using this separation process, it is possible to produce pituitary hormone-producing cells and / or their precursor cells, or a cell population containing pituitary hormone-producing cells and / or their precursor cells with high purity (e.g., 80% or more of the cell population, preferably 85% or more, more preferably 90%, even more preferably 95% or more, even more preferably 99% or more, and most preferably 100%). The process of separating EpCAM-expressing cells from a cell aggregate containing an adenohypophysis and / or its precursor tissue, which is included in the production method of the present invention, can be carried out in the same manner as described above in "Outline of the Separation Process of the Present Invention." Furthermore, the processes described in (4.1) to (4.4) above can be carried out in the same manner as described above.
[0133] As described in (4.1) above, the pituitary hormone-producing cells (populations) and / or their precursor cells (populations) produced by the method of the present invention may be maintained and cultured as is until use, or may be cultured appropriately (e.g., the third culture step) depending on the differentiation state of the isolated cells to further induce differentiation into desired cells. Specifically, for example, the pituitary hormone-producing cells (populations) and / or their precursor cells (populations) produced by the method of the present invention may be transplanted directly into a subject in need of treatment with the cell population, or may be further purified by a method known per se and then transplanted into the subject. Furthermore, the purified cells (populations) may be seeded in a culture vessel and cultured in an adherent manner, as described in (4.4) above, to form, for example, a cell sheet, or may be seeded in a culture vessel and cultured in suspension to reaggregate. The cell sheet or cell aggregate obtained through the adherent or suspension culture may be transplanted into the subject. The adherent culture or suspension culture may be carried out for a short period (e.g., 3 to 6 days) or for a long period (e.g., 7 to 30 days). All of the above-mentioned contents relating to "(1) Pluripotent stem cells" to "(5) Uses of isolated pituitary hormone-producing cells and their precursor cells" may be used in the production method of the present invention.
[0134] The present invention will be explained in more detail by the following examples, but these examples are merely illustrative of the present invention and are not intended to limit the scope of the present invention in any way. [Example]
[0135] Example 1: Screening for cell surface antigens Human iPS cells (strain 201B7) were induced to differentiate into cell aggregates containing the adenohypophysis or its precursor tissue by a method known per se and described in International Publication No. 2016 / 013669 or Cell Reports, 30, 18-24, January 7, 2020. Human iPS cells (201B7 cell line) were differentiated and cultured on day 47. Cell clusters were dispersed using Accumax (Innovative Cell Technologies, #AM105) at 37°C for 5–10 minutes to prepare single-cell suspensions. Cells were stained with a BioLegend PE-labeled antibody panel for human surface antigens (LEGENDScreen Human PE Kit, #700007), followed by fixation and permeabilization using IntraStain (Dako, #K2311). Subsequently, intracellular cytokeratin was stained with an FITC-labeled anti-cytokeratin antibody (Miltenyi, #130-080-101), nuclei with Hoechst 33342, and cytoplasm with HCS CellMask Deep Red Stain (Invitrogen, #H32721). After staining, images of the cells were acquired and analyzed using a PerkinElmer imaging analyzer (Opera Phenix), and surface antigens that coexisted with cytokeratin-positive cells were searched for. The results suggested that EpCAM may be useful for identifying pituitary progenitor cells.
[0136] Example 2: Quantification of EpCAM and Cytokeratin expression rates As in the cell surface antigen screening, single-cell suspensions were prepared and stained with PE-conjugated anti-EpCAM antibody (Miltenyi, #130-098-115), FITC-conjugated anti-cytokeratin antibody, and Hoechst 33342. Images were captured under a fluorescence microscope (Leica DMI6000B). EpCAM+ / Cytokeratin+ cells, EpCAM+ / Cytokeratin- cells, EpCAM- / Cytokeratin+ cells, and EpCAM- / Cytokeratin- cells were counted using the Cell Counter tool in the image analysis software Image J, and the percentages of each were calculated. Consequently, epithelial cell adhesion molecule (EpCAM; also known as CD326) was identified as a surface antigen highly specific to cytokeratin-positive cells (Figure 1A). EpCAM was expressed in approximately 80% of cytokeratin-positive cells, and approximately 95% of EpCAM-positive cells were cytokeratin-positive (FIG. 1B).
[0137] Example 3: Purification of EpCAM-positive cells by magnetic cell sorting (Magnetic-Activated Cell Sorting; MACS) Cell clusters 90 to 500 days after the start of differentiation induction were enzymatically dispersed and used for MACS. The procedure is as follows: (1) Pretreatment with Y27632 To prevent cell death due to dispersion, Y27632 (Wako, #034-24024) was added to the medium at a final concentration of 20 μM at least 1 hour before the start of the procedure to pretreat the cell aggregates. In the subsequent procedures, 20 μM Y27632 was added to all solutions (except PBS) to which the cells were exposed. (2) Dispersion of cell aggregates To facilitate dispersal during enzymatic treatment, the cell clumps were minced or incised with a scalpel. The cell clumps were then transferred to a 50 ml tube and washed with DMEM / F12 (Wako, #042-30555). Next, 1–3 ml of collagenase solution was added and the mixture was gyrated (140–150 rpm) at 37°C for 40 minutes. The collagenase solution consisted of the above DMEM / F12 supplemented with 0.2% collagenase type I (Wako, #031-17601) and 0.1% BSA (Sigma, #A9418). After collagenase treatment, the supernatant containing the suspended cells was transferred to a new 15 ml tube, and the remaining cell clumps were washed with PBS (the wash solution was also collected in the same tube as the supernatant). The 15 ml tube containing the supernatant was centrifuged at 1000 rpm at 4°C for 5 minutes to pellet the suspended cells. One ml of 0.25% Trypsin / EDTA (Gibco, #25200072) + 0.2 mg / ml DNase I (Roche, #11284932001) was added to the cell clumps in the 50 ml tube and incubated at 37°C for 5–10 minutes. The mixture was then combined with the pellet in the 15 ml tube and pipetted approximately 20 times with a P1000 micropipette to loosen the cell clumps. The cells were suspended in 10 ml of gfCDM + 20% KSR (cell clump differentiation and maintenance medium) to neutralize the trypsin, and then centrifuged at 1000 rpm at 4°C for 5 minutes. After centrifugation, 1 ml of gfCDM + 20% KSR + 10 μg / ml DNase I was added to the cell pellet, and the mixture was vigorously pipetted approximately 30 times with a P1000 micropipette to disperse cell clumps. The mixture was then passed through a 70 μm cell strainer to remove clumps. This yielded a single-cell suspension.
[0138] (3) Removal of dead cells The dispersed cells were treated with a dead cell removal kit (Miltenyi, #130-090-101) to remove dead and apoptotic cells.
[0139] (4) Isolation of EpCAM-positive cells by MACS The collected live cells were suspended in MACS buffer (PBS + 0.5% BSA + 2 mM EDTA) and stained with PE-conjugated anti-EpCAM antibody (refrigerated for 10 minutes). Subsequently, EpCAM-positive cells were labeled with magnetic beads by treatment with anti-PE microbeads (Miltenyi, #130-105-639). The cells were then passed through a magnetic column (LS column; Miltenyi, #130-042-401) to separate and collect magnetic bead-labeled (EpCAM-positive) and unlabeled (EpCAM-negative) cells.
[0140] Example 4: Reaggregation culture of purified cells The purified cell populations (EpCAM-positive and -negative cells) were seeded into low-attachment V-bottom 96-well plates (PrimeSurface plate 96V; Sumitomo Bakelite, #MS-9096V) and allowed to reaggregate. 15,000 cells were seeded per well in 200 μl of medium (gfCDM + 20% KSR + 30 μM Y27632). Half of the medium was replaced with Y27632-free medium every 3 days.
[0141] Example 5: Immunohistochemistry Cell clusters cultured for more than 48 days after the start of differentiation induction and cell clusters reaggregated after MACS purification and cultured for more than 6 days were used. Cell clusters were fixed in 4% paraformaldehyde solution and then immersed in graded 10, 20, and 30% sucrose solutions to allow for sucrose replacement. They were then embedded in OCT compound and cryosectioned at 4-10 μm thickness using a cryostat. The sections were then mounted on anti-peeling coated slides (PLATINUM PRO; Matsunami Glass). After washing with PBS, the sections were blocked for 30-60 minutes at room temperature in blocking solution (5% normal donkey serum + 0.1% Triton X-100 in PBS). Next, the sections were incubated overnight at 4°C with primary antibodies diluted in blocking solution. Subsequently, the sections were incubated for 1 hour at room temperature with fluorescently labeled secondary antibodies and DAPI (nuclear stain). After staining, the sections were mounted with Fluoromount (Diagnostic BioSystems, #K024) and then subjected to fluorescence observation using a confocal laser microscope LSM-710 (Zeiss). As a result, EpCAM-positive thickened epithelial tissue was observed on the surface of the aggregates. This EpCAM-positive epithelium was more than three cells thick in the vertical direction. Furthermore, this EpCAM-positive epithelium was found to be co-positive with Cytokeratin (Figure 2A). Furthermore, this EpCAM-positive epithelium was found to be co-positive with Pitx1 (Figure 2B).
[0142] Example 6: ACTH secretion test (CRH stimulation test) Cell clumps were used after reaggregation following MACS purification and culture for at least 6 days. Six cell clumps were transferred to a 1.5 ml microtube and incubated at 37°C for 10 minutes in 250 μl of HBSS(+) (Wako, #084-08965). The HBSS was then collected. Subsequently, the cells were incubated at 37°C for 10 minutes in 250 μl of HBSS containing 1 μg / ml CRH (Peptide Institute, #4136-s). The HBSS was then collected. The ACTH concentration in the collected HBSS was measured using the ECLIA method, which is used in clinical testing (testing was outsourced to SRL Co., Ltd.).
[0143] result The adenohypophysis and its precursor tissues express cytokeratin as a marker. Cytokeratin is a cytoskeletal protein that can be detected rapidly and sensitively by immunohistochemistry. Therefore, we performed surface antigen screening using a commercially available antibody panel, targeting cytokeratin-positive cells after dissociating cell clusters differentiated from human iPS cells. The screening time point was selected around day 50 of culture, when pituitary progenitor cells had already been induced and tissue dissociation by mild enzymatic treatment was possible. This prevented degradation of surface antigens and ensured a sufficient cell mass for screening. After screening 332 human surface antigens, we identified epithelial cell adhesion molecule (EpCAM; also known as CD326) as a surface antigen highly specific to cytokeratin-positive cells (Figure 1A). EpCAM was expressed in approximately 80% of cytokeratin-positive cells, and approximately 95% of EpCAM-positive cells were cytokeratin-positive (Figure 1B). Immunohistochemical analysis of cell clusters revealed that EpCAM was expressed in pituitary progenitor cells positive for Cytokeratin, Pitx1, or Lhx3 (Fig. 2A, B, C). EpCAM expression was also maintained in the pituitary hormone-producing cells (ACTH-positive cells) differentiated from these cells (Fig. 2C). Using cell clusters induced for over 90 days, we separated EpCAM-positive and -negative cells by MACS and attempted to reaggregate them (Figure 3A). Both EpCAM-positive and -negative cell populations formed aggregates. However, EpCAM-positive cell clusters contained ACTH-positive and Lhx3-positive cells, whereas EpCAM-negative cell clusters did not (Figure 3B). In an ACTH secretion assay, the addition of CRH, a physiological secretion stimulating factor, increased ACTH secretion by an average of 2.1-fold in EpCAM-positive cell clusters (Figure 3C). In contrast, the addition of CRH did not increase ACTH secretion in EpCAM-negative cell clusters, and the secretion level before CRH addition was, on average, less than half that of EpCAM-positive cell clusters (Figure 3C). From the above results, it is understood that by using EpCAM as a marker, it is possible to purify functional pituitary hormone-producing cells and their precursor cells from differentiated tissues derived from human pluripotent stem cells. [Industrial Applicability]
[0144] The isolation and production methods of the present invention use EpCAM as a marker and can be used to efficiently isolate and purify functional pituitary hormone-producing cells and / or their precursor cells from differentiated tissue derived from pluripotent stem cells. Furthermore, the isolated and purified pituitary hormone-producing cells, etc., exhibit excellent pituitary hormone secretion ability when stimulated by physiological pituitary hormone secretion, and can be used to treat diseases related to the pituitary gland. This application is based on Patent Application No. 2020-065346 filed in Japan (filing date: March 31, 2020), the entire contents of which are incorporated herein by reference.
Claims
1. A method for isolating pituitary hormone-producing cells and / or precursor cells thereof, comprising the step of separating cells expressing EpCAM from a cell aggregate containing an adenohypophysis and / or precursor tissue thereof, The method, wherein the cell aggregate comprises hypothalamic neuroepithelial tissue.
2. A step of dispersing a cell aggregate containing an adenohypophysis and / or its precursor tissue to obtain a population of single cells; A method for isolating pituitary hormone-producing cells and / or their precursor cells, comprising the step of separating cells that express EpCAM from the population.
3. The method described in claim 2, wherein the cell aggregate comprises hypothalamic neuroepithelial tissue.
4. The method of any one of claims 1 to 3, comprising the step of shredding the cell aggregate comprising the adenohypophysis and / or its precursor tissue or physically incising the cell aggregate comprising the adenohypophysis and / or its precursor tissue prior to the step of separating cells expressing EpCAM.
5. The method according to any one of claims 1 to 4, wherein the cell aggregate containing the adenohypophysis and / or its precursor tissue is a cell aggregate obtained by inducing differentiation of pluripotent stem cells.
6. The method of claim 5, wherein the pluripotent stem cells are human induced pluripotent stem cells.
7. The method according to any one of claims 1 to 6, wherein the precursor tissue is the pituitary placode and / or Rathke's pouch.
8. A method for producing pituitary hormone-producing cells and / or precursor cells thereof, comprising a step of separating cells expressing EpCAM from a cell aggregate containing an adenohypophysis and / or a precursor tissue thereof, The method, wherein the cell aggregate comprises hypothalamic neuroepithelial tissue.
9. The following steps: (A) dispersing a cell aggregate containing the adenohypophysis and / or its precursor tissue to obtain a population of single cells; (B) isolating from said population a population of cells that express EpCAM; and (C) A step of reaggregating the population obtained in (B). The method of claim 8, comprising:
10. 10. The production method according to claim 8, wherein the pituitary hormone-producing cells and / or their precursor cells are in the form of a cell aggregate or a cell sheet.
11. The method of claim 9 or 10, further comprising the step of shredding the cell aggregate containing the adenohypophysis and / or its precursor tissue or physically incising the cell aggregate containing the adenohypophysis and / or its precursor tissue prior to step (B) of separating cells expressing EpCAM.
12. The method according to any one of claims 8 to 11, wherein the pituitary hormone-producing cells are at least one selected from the group consisting of growth hormone (GH)-producing cells, prolactin (PRL)-producing cells, adrenocorticotropic hormone (ACTH)-producing cells, thyroid-stimulating hormone (TSH)-producing cells, follicle-stimulating hormone (FSH)-producing cells, and luteinizing hormone (LH)-producing cells.
Citation Information
Patent Citations
Method of purifying hypothalamic precursor cell and use thereof
JP2018011527A
Method for producing adenohypophysis or precursor tissue thereof
WO2016013669A1