Method for promoting differentiation of pluripotent stem cells into thymic epithelial cells and thymic epithelial progenitor cells

A method for differentiating human pluripotent stem cells into thymic epithelial cells using specific growth factors and inhibitors addresses the challenge of generating functional thymic epithelial cells, achieving high FOXN1 expression and supporting T cell reconstitution.

JP7740706B2Active Publication Date: 2025-09-17THE TRUSTEES OF COLUMBIA UNIV IN THE CITY OF NEW YORK
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Patent Information

Application Number
JP2021558816
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-04-01
Filing Date
2020-03-31
Publication Date
2025-09-17
Estimated Expiration
2040-03-31

AI Technical Summary

Technical Problem

Current methods are inadequate for efficiently generating functional thymic epithelial cells or progenitors from human pluripotent stem cells, which are crucial for supporting T cell development and reconstitution in patients with thymic insufficiency due to congenital disorders or acquired dysfunction, as existing protocols lack precision and reliability.

Method used

A method involving the differentiation of human pluripotent stem cells into thymic epithelial cells or progenitors through a series of culture steps with specific growth factors and inhibitors, including BMP, TGFβ, HOXA3, TBX1, PAX9, PAX1, and survivin inhibition, to achieve high expression of FOXN1 and epithelial markers.

Benefits of technology

The method achieves the largest in vitro expression of FOXN1 without genetic modification, supporting the reconstitution of naive human T cells when transplanted with thymic mesenchymal stem cells, forming functional thymic organs and promoting T cell development in vivo.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present disclosure provides methods for promoting the differentiation of pluripotent stem cells into thymic epithelial cells or thymic epithelial progenitor cells, as well as cells obtained by the methods, and solutions, compositions, and pharmaceutical compositions comprising such cells. The present disclosure also provides methods for using thymic epithelial cells or thymic epithelial progenitor cells for organ generation, for the treatment and prevention of disease, as well as other uses and kits.
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application is related to and claims priority to U.S. Patent Application No. 62 / 827,383, filed April 1, 2019, which is incorporated herein by reference in its entirety.

[0002] Explanation of government support This invention was made with government support under Grant Nos. DK104207, DK103585 and AI045897 awarded by the National Institutes of Health. The federal government has certain rights in this invention.

[0003] The present disclosure provides methods for promoting the differentiation of pluripotent stem cells into thymic epithelial cells or thymic epithelial progenitor cells, cells obtained by the methods, and solutions, compositions, and pharmaceutical compositions containing such cells. The present disclosure also provides methods for utilizing thymic epithelial cells or thymic epithelial progenitor cells for the treatment and prevention of disease and for generating organs, as well as other uses and kits. [Background technology]

[0004] The thymus is the primary lymphoid organ responsible for the development and education of T cells. Thymic epithelial cells (TECs) are the major components of the thymic stroma. Thymic cortical TECs (cTECs) are specialized for positive selection of T cells, whereas medullary TECs (mTECs) are involved in negative selection of T cells. TEC-mediated selection promotes a self-tolerant and diverse T cell repertoire capable of recognizing foreign antigens presented by self-MHC molecules. Normal thymogenesis involves a highly lineage-organized network of stromal and hematopoietic cell types in addition to TECs.

[0005] In vitro generation of functional TECs or TEC progenitors (TEPs) from human pluripotent stem cells (hPSCs) could create cells, tissues, or organs that support T cell reconstitution in patients with thymic insufficiency due to congenital disorders (e.g., DiGeorge syndrome) and acquired thymic dysfunction (e.g., HIV infection, high-dose chemotherapy and radiation therapy, which themselves cause thymocyte proliferative dysfunction, graft-versus-host disease combined with aging, and long-term immunosuppressive therapy). Generating TECs from pluripotent stem cells (PSCs) is an important goal, as the number of TECs in the adult thymus is limited and reliable methods for expanding TECs from the postnatal thymus are difficult to find. Creating in vitro protocols for the tightly controlled differentiation of hPSCs into TECs requires precise knowledge and application of developmental temporal and cytokine cues. Although the generation of functional TEPs from mouse or human PSCs has been reported to support mouse (Parent et al., 2013; Sun et al., 2013; Soh et al., 2014; Bredenkamp et al., 2014) or human (Su et al., 2015) T cell development, the reconstitution of large numbers of human naive T cells has not been demonstrated. Thus, there is a need in the art for methods to generate human TEPs and TECs. Summary of the Invention

[0006] Herein, we demonstrate an efficient method for inducing differentiation of human pluripotent stem cells (hPSCs), including embryonic stem cells (ESCs) and induced pluripotent stem cells (iPSCs), into thymic epithelial progenitor cells (TEC progenitors) in vitro, where the thymic epithelial cells (TECs) or thymic epithelial progenitor cells (TEPs) can generate thymic organs and T cells in vivo.

[0007] This protocol achieved the largest in vitro expression of FOXN1 reported to date without protein transduction or genetic modification. After culture, the cells expressed epithelial markers EpCam, keratin 5, and keratin 8. When mixed with human thymic mesenchymal stem cells (ThyMES), the in vivo transplanted cells expressed IL2Rgamma, a marker of IL2Rgamma expression in thymectomized NOD-scid mice injected with human hematopoietic stem cells (HSCs). null (NSG) mice ( Khosravi-Mahrarlooei et al., 2020 ) and supported the reconstitution of naive human T cells.

[0008] One embodiment of the present disclosure is a method for inducing differentiation of human pluripotent stem cells (hPSCs), including embryonic stem cells (ESCs) and induced pluripotent stem cells (iPSCs), into thymic epithelial cells (TECs) or thymic epithelial progenitor cells (TEPs), comprising: (1) differentiating human pluripotent stem cells into endoderm cells; (2) culturing the obtained endoderm cells and differentiating the endoderm cells into anterior foregut cells by contacting or incubating the endoderm cells with a factor that inhibits BMP and a factor that inhibits TGFβ signaling, and further contacting or incubating the cells with a factor that stimulates HOXA3 expression and a factor that stimulates TBX1 expression; (3) further culturing the obtained anterior foregut cells and differentiating the anterior foregut cells into pharyngeal endoderm cells by contacting or incubating the anterior foregut cells with a factor that stimulates the expression of TBX1 and a factor that stimulates the expression of PAX9 and PAX1; (4) further culturing the obtained pharyngeal endoderm cells and differentiating the pharyngeal endoderm cells into cells specialized for the distal pharyngeal pouch (PP), thymic epithelial cells, or thymic epithelial progenitor cells, by contacting or incubating the pharyngeal endoderm cells with a factor that inhibits BMP, and then contacting or incubating the pharyngeal endoderm cells with BMP; and (5) contacting or incubating the TECs or TEPs at the end of the method with a survivin inhibitor; The method includes:

[0009] A further embodiment is a method of obtaining thymic epithelial cells (TECs) or thymic epithelial progenitor cells (TEPs) from human pluripotent stem cells (hPSCs), including embryonic stem cells (ESCs) and induced pluripotent stem cells (iPSCs), comprising: (1) differentiating human pluripotent stem cells into endoderm cells; (2) culturing the obtained endoderm cells and differentiating the endoderm cells into anterior foregut cells by contacting or incubating the endoderm cells with a factor that inhibits BMP and a factor that inhibits TGFβ signaling, and by contacting or incubating the cells with a factor that stimulates HOXA3 expression and a factor that stimulates TBX1 expression; (3) further culturing the obtained anterior foregut cells and differentiating the anterior foregut cells into pharyngeal endoderm cells by contacting or incubating the anterior foregut cells with a factor that stimulates the expression of TBX1 and a factor that stimulates the expression of PAX9 and PAX1; (4) further culturing the obtained pharyngeal endoderm cells, and differentiating the pharyngeal endoderm cells into cells specialized for the distal pharyngeal pouch (PP), thymic epithelial cells, or thymic epithelial progenitor cells, by contacting or incubating the pharyngeal endoderm cells with a factor that inhibits BMP, and then contacting or incubating the pharyngeal endoderm cells with BMP; and (5) contacting or incubating the TECs or TEPs at the end of the method with a survivin inhibitor; The method includes:

[0010] A further embodiment of the present disclosure is a method of inducing differentiation of human pluripotent stem cells (hPSCs), including embryonic stem cells (ESCs) and induced pluripotent stem cells (iPSCs), into thymic epithelial cells (TECs) or thymic epithelial progenitor cells (TEPs), comprising: (1) differentiating the pluripotent stem cells into endoderm cells by culturing the pluripotent stem cells in a serum-free differentiation medium and contacting or incubating the cells with human bone morphogenetic protein (BMP), human basic fibroblast growth factor (bFGF), and human activin A; (2) differentiating the endoderm cells of step (1) into anterior foregut cells by culturing the endoderm cells in a differentiation medium and contacting or incubating the cells with Noggin, SB431542, retinoic acid, and FGF8b; (3) differentiating the anterior foregut cells from step (2) into pharyngeal endoderm cells by culturing the anterior foregut cells in a differentiation medium and contacting or incubating the cells with FGF8b and retinoic acid followed by FGF8b and sonic hedgehog (Shh); (4) differentiating the pharyngeal endoderm cells from step (3) into those specialized for the third pharyngeal pouch by culturing them in a differentiation medium and contacting or incubating the cells with noggin; (5) further differentiating the cells into third pharyngeal pouch specialized cells, TEPs or TECs, by culturing the pharyngeal endoderm cells from step (3) or step (4) in a differentiation medium and contacting or incubating the cells with BMP; and (6) exposing the cells to a survivin inhibitor; The method includes:

[0011] A further embodiment is a method of obtaining thymic epithelial cells (TECs) or thymic epithelial progenitor cells (TEPs) from human pluripotent stem cells (hPSCs), including embryonic stem cells (ESCs) and induced pluripotent stem cells (iPSCs), comprising: (1) differentiating the pluripotent stem cells into endoderm cells by culturing the pluripotent stem cells in a serum-free differentiation medium and contacting or incubating the cells with human bone morphogenetic protein (BMP), human basic fibroblast growth factor (bFGF), and human activin A; (2) differentiating the endoderm cells from step (1) into anterior foregut cells by culturing the endoderm cells in a differentiation medium and contacting or incubating the cells with Noggin, SB431542, retinoic acid, and FGF8b; (3) differentiating the anterior foregut cells from step (2) into pharyngeal endoderm cells by culturing the anterior foregut cells in a differentiation medium and contacting or incubating the cells with FGF8b and retinoic acid followed by FGF8b and sonic hedgehog (Shh); (4) differentiating the pharyngeal endoderm cells from step (3) into those specialized for the third pharyngeal pouch by culturing them in a differentiation medium and contacting or incubating the cells with noggin; (5) further differentiating the pharyngeal endoderm cells from step (3) or step (4) into third pharyngeal pouch specialized cells, TEPs, or TECs, by culturing the pharyngeal endoderm cells from step (3) or step (4) in a differentiation medium and contacting or incubating the cells with BMP; and (6) exposing the cells to a survivin inhibitor; The method includes:

[0012] In some embodiments, contacting or incubating the cells with various factors is accomplished by culturing the cells in medium containing the factors.

[0013] The present disclosure also provides cells obtained using the methods described herein, as well as solutions, compositions, and pharmaceutical compositions comprising cells obtained using the methods described herein.

[0014] In some embodiments, the cells express FOXN1, EpCAM, keratin 5, and keratin 8.

[0015] In some embodiments, these cells are thymic epithelial cells (TECs). In some embodiments, these cells are thymic epithelial progenitor cells (TEC precursors) (TEPs).

[0016] Any of the above embodiments of cells, cell-containing solutions, compositions, and pharmaceutical compositions can be used to treat and / or prevent disease.

[0017] In some embodiments, the disease is a disease of the thymus.

[0018] In further embodiments, the disease is an autoimmune disease, including, but not limited to, type 1 diabetes, rheumatoid arthritis (RA), psoriasis, psoriatic arthritis, multiple sclerosis, systemic lupus erythematosus (SLE), inflammatory bowel disease, Addison's disease, Graves' disease, Sjogren's syndrome, Hashimoto's disease, myasthenia gravis, autoimmune vasculitis, pernicious anemia, celiac disease, vitiligo, and alopecia areata.

[0019] Any of the above embodiments of cells, cell-containing solutions, compositions, and pharmaceutical compositions can be used to restore or restore decreased thymus function, where the loss of function is due to aging or injury or infectious disease such as HIV.

[0020] Any of the above embodiments of cells, cell-containing solutions, compositions, and pharmaceutical compositions can be used for T cell reconstitution following bone marrow transplantation.

[0021] Any of the above embodiments of cells, solutions comprising cells, compositions, and pharmaceutical compositions can be used to generate a hybrid thymus comprising cells and a thymus or other cells or tissues comprising a thymus. In some embodiments, the thymus is from a different individual. In some embodiments, the thymus is from a different species. In some embodiments, the thymus is from a pig. In some embodiments, the pig is a fetal pig. In some embodiments, the pig is a young pig.

[0022] Any of the above embodiments of cells, cell-containing solutions, compositions, and pharmaceutical compositions can be used to develop mouse models and conduct drug testing.

[0023] Any of the above-described embodiments of cells, cell-containing solutions, compositions, and pharmaceutical compositions can be used to therapeutically develop the thymus in individuals with congenital abnormalities resulting in partial or complete deficiency of thymic function, such as DiGeorge syndrome, 22q11.2 deletion syndrome, or NUDE syndrome.

[0024] In yet another embodiment, the present disclosure relates to kits for practicing the methods of the present disclosure to obtain the cells, solutions, compositions, and pharmaceutical compositions disclosed herein. The present disclosure also includes kits comprising the cells, solutions, compositions, and pharmaceutical compositions.

[0025] As described herein, the methods, systems, and kits are suitable for the reproducible generation of large amounts of thymic epithelial cells or thymic epithelial progenitor cells (TEPs).

[0026] For the purpose of illustrating the invention, there is shown in the drawings certain embodiments of the invention. However, the invention is not limited to the precise arrangements and instrumentalities of the embodiments shown in the drawings. [Brief explanation of the drawings]

[0027] [Figure 1]Establishment of a protocol for direct differentiation of hESCs into pharyngeal endoderm polarized to the third pharyngeal pouch. Figure 1A is a schematic representation of the envisioned hESC differentiation process toward the desired cell fate, reflecting the treatment aims shown in Figure 1B. Figure 1B outlines the protocol tested for differentiation of hESCs into pharyngeal endoderm polarized to the third pharyngeal pouch by day 15. Protocol #1 (labeled "1" in Figure 1B) (FGF8b+RA250) was considered the control protocol, whereas protocols #2 (labeled "2" in Figure 1B) (FGF8b) (#1 vs. #2) and #3 (labeled "3" in Figure 1B) (FGF8b+RA250 to FGF8b+Shh) are compared in Figure 1D (#1 vs. #3). In Figure 1B, "NS" represents Noggin and SB431542. Figure 1C shows a representative flow cytometry analysis of EpCAM and CXCR4 (endodermal markers) expression in embryoid body dissociations at day 4.5. Figure 1D is a graph showing a comparative analysis of gene expression in differentiated hESCs at day 15 under the protocol conditions shown in Figure 1B. The graph represents the fold change in RNA expression as measured by qPCR. (n = 3-11; values ​​represent mean ± SEM; *p < 0.05, **p < 0.01, ***p < 0.001; ratio paired two-tailed t-test). Figure 1E shows a comparison of pharyngeal pouch marker expression at day 15 in hESCs differentiated using Protocol #1 ("liver conditions" (Gouon-Evans et al., 2006)) with hESCs differentiated into "liver" conditions. Bar graphs represent fold changes in RNA expression as measured by qPCR (n = 6; values ​​represent mean + SEM; *p < 0.05, **p < 0.01, ***p < 0.001; two-tailed t-test with paired ratios). Figure 1F is a graph showing comparative analysis of gene expression in differentiated hESCs on day 15 under the protocol conditions shown in Figure 1B. The graph represents fold changes in RNA expression as measured by qPCR (n = 9-11; values ​​represent mean ± SEM; *p < 0.05, **p < 0.01, ***p < 0.001; two-tailed t-test with paired ratios). [Figure 2]Development of protocols for distalization of third pharyngeal pouch and / or TECs. Figure 2A outlines the protocols tested for distalization of cells polarized to the third pharyngeal pouch by day 30. In Figure 2A, "3b" and "3c" indicate modifications based on protocol #3 in Figure 1B, while "4b" and "4c" indicate modifications based on protocol #4 in Figure 1B. Figure 2B is a schematic representation of multiple hESC differentiation protocols tested under various culture conditions from day 6.5 onward. hESCs were differentiated into definitive endoderm (DE) for 4.5 days and then anteriorized with Noggin+SB (NS) and retinoic acid (RA). Cells were then patterned for 8.5 days with different combinations of RA and display factors until day 15. Figure 2C is a graph of the analysis of FOXA2, HOXA3, SIX1, TBX1, EYA1, PAX9, and PAX1 expression in hESC-derived cells from cultures containing RA and FGF8b (protocol #1) versus cultures containing another factor instead of RA and FGF8b as shown in Figure 2B. Bar graphs represent fold changes in RNA expression as measured by qPCR. (n = 3; values ​​represent mean ± SEM; *p < 0.05, **p < 0.01, ***p < 0.001; one-way ANOVA with Dunnett's multiple comparison test). Figure 2D shows the effect of Noggin exposure on PAX9 expression at day 30. Bar graphs show the fold change in PAX9 expression between protocols #3b vs. #3c and #4b vs. #4c (n = 4; values ​​represent mean ± SEM; *p < 0.05, **p < 0.01, ***p < 0.001; two-tailed t-test with paired ratios). Figure 2E shows the fold change in FOXN1 expression at day 30 after initiating FGF8b treatment at day 4.5 vs. day 6.5, as measured by qPCR (protocol #3c vs. #4c) (n=4-8; values ​​represent mean ± SEM; *p<0.05, **p<0.01, ***p<0.001; two-tailed t-test with paired ratios). Figure 2F shows the fold change in FOXN1 expression at day 21 vs. day 30 (before and after exposure to BMP4) for protocol #4c, as measured by qPCR (n=4-8; values ​​represent mean ± SEM; *p<0.05, **p<0.01, ***p<0.001; two-tailed t-test with paired ratios).Figure 2G shows the fold change in FOXN1 expression at day 15 vs. day 30 for protocol #4c as measured by qPCR (n=4-8; values ​​represent mean ± SEM; *p<0.05, **p<0.01, ***p<0.001 ratio paired two-tailed t-test). [Figure 3] Characterization of in vitro differentiated TEC progenitors at day 30. Figure 3A shows the expression of TEC markers in cultured cells (d30; protocol #4c) compared to fetal thymus (FTHY). (Ct relative to β-actin; n = 3-22; values ​​represent mean + SEM; *p < 0.05, **p < 0.01, ***p < 0.001; unpaired two-tailed Welch t-test). Each point represents an independent experiment. Figure 3B shows the expression of third pharyngeal pouch markers in H9 cells cultured for 30 days under protocol #4c conditions compared to fetal thymus. Bar graphs show mean Ct values ​​relative to β-actin + SEM (n = 3-6). Unpaired two-tailed Welch t-test. Each point represents an independent experiment. Figure 3C shows a Pearson correlation analysis graph of gene expression levels for FOXN1 and GCM2, FOXN1 and IL7, and FOXN1 and CD205. Both axes show Ct values ​​relative to β-actin. Each point represents an independent experiment. [Figure 4]Treatment of day 30 hES-TEP cultures with the survivin inhibitor YM155 depletes pluripotent cells. Figure 4A is a schematic representation of protocol #4c showing the duration of YM155 treatment. This diagram also shows the full differentiation protocol. Figure 4B is a Pearson correlation analysis graph of FOXN1 and OCT4 expression. Both axes show Ct values ​​relative to β-actin. Each point represents an independent experiment. Figure 4C is a graph of the fold change in OCT4 expression at day 30 after pluripotent cell depletion (protocol #4c vs. #4c + YM155; n = 5; values ​​represent mean + SEM; *p < 0.05; two-tailed paired t-test). Figure 4D is a graph showing the percentage of survival without overt teratoma formation several weeks after hES-TEP transplantation. Mice transplanted with hES-TEPs from day 15 of protocol #4c (n=8, gray line) compared to mice transplanted with hES-TEPs from 30-day cultures with YM155 treatment (n=15, dotted black line) or no treatment (n=12, solid black line). Log-rank Mantel-Cox test showed that day 15 survival of hES-TEPs was p<0.005 compared to either day 30 hES-TEPs alone or day 30 hES-TEPs + YM155 treatment. [Figure 5]Reaggregation of hES-TEPs and thymic mesenchymal cells prepared using the protocol shown in Figure 4A forms thymic organoids that support thymus formation. Figure 5A shows the percentage of T cells present in organoids derived from NSG mice in which the native thymic primordium had been surgically removed (ATX) or injected with human HSCs. ACK (ammonium chloride potassium) hemolysis of peripheral blood generated leukocytes, which were stained for HuCD45+CD3+ T cells at the indicated weeks after HSC injection. NSG, n = 12; ATX NSG, n = 4. Figure 5B shows representative FACS plots gated on HuCD45+CD19-CD14- cells. NSG, n = 10; ATX, n = 14. Figures 5C–5F show the frequency of various cells when cultured hES-TEP clusters mixed with thymic mesenchymal cells (TMCs) or TMCs alone were transplanted under the kidney capsule of ATX NSG mice injected with human HSCs. Figure 5C shows the frequency of HuCD45+ cells among the total mouse+human CD45+ cells in PBMCs for individual hES-TEC / TMC mice, and the average (gray line) for TMC-transplanted mice (n = 6). Figure 5D shows the frequency of CD3+ cells among the total mouse+human CD45+ cells in PBMCs for individual hES-TEP / TMC mice, and the average (gray line) for TMC-transplanted mice (n = 6). Figure 5E shows the frequency of CD4+ cells among the total mouse+human CD45+ cells in PBMCs for individual hES-TEP / TMC mice, and the average (gray line) for TMC-transplanted mice (n = 6). Figure 5F shows the frequency of CD4+ cells stained for CD45RA+CD45RO- naive cells. Time points with fewer than 100 CD4+ events were excluded. Figure 5G shows human T cells in PBMCs from healthy donor PBMCs (left), hES-TEC / TMC mice (center), and 30-week-old TMC mice (right). The hES-TEC / TMC plot is representative of mice (n = 4) that developed CD4+ and CD8+ T cells, while the TMC plot is representative of mice (n = 6). Figure 5H shows CD4+ and CD8+ expression in cells derived from hES-TEC / TMC (n = 3). Cell suspensions were gated on HuCD45+CD19-CD14- cells. [Figure 6]hES-TECs generated from TEPs prepared using the protocol shown in Figure 4A survive in the porcine thymus and promote thymocyte proliferation. Figure 6A outlines the protocol for testing hES-TECs in vivo. Pig thymi, with or without hES-TEPs, were transplanted under the kidney capsule of ATX NSG mice that had received intravenous injections of human HSCs. Figure 6B shows the results of flow cytometry analysis of thymic grafts 18–22 weeks after transplantation. Single-cell suspensions derived from the stromal fraction of half of the thymic grafts were stained and analyzed by flow cytometry. Human pediatric thymi were prepared as controls. Non-hematopoietic cells were gated on huCD45-HLA-ABC+. The thymic fibroblast marker (CD105+) and the epithelial cell marker EpCAM are shown. Figure 6C is a graph of the frequency of huCD45-HLA-ABC+CD105-EpCAM+ epithelial cells in SwTHY+ hES-TECs grafts (left bar, squares) and SwTHY grafts (right bar, triangles). Figure 6D is a representative flow cytometry plot of thymocytes gated on huCD45+CD19-CD14- cells and CD4 / CD8 distribution for human pediatric thymi and pig thymi with or without hES-TEPs injection (left to right). Figure 6E is a graph of the absolute numbers of thymocytes from half of the thymic graft among double-positive CD4+CD8+ cells, single-positive CD4+CD8- cells, and CD4-CD8+ cells, showing a further division into immature CD45RO+ cells compared to more mature CD45RA+ thymocytes. The mean + SEM is shown for SwTHY+hES-TEC (n = 6, squares) and SwTHY (n = 5, triangles) from two independent experiments. Thymic grafts that yielded fewer than 6 x 105 cells (n = 1 for each of SwTHY+hES-TEC and SwTHY) were excluded from the analysis. P values ​​were determined by comparing the SwTHY+hES-TEC group with the SwTHY group using the Mann-Whitney test, with p < 0.05 considered significant. +p = 0.05, *p < 0.05, **p < 0.005. Figure 6F is a graph of human immune cells assayed for total human (huCD45+) cells in PBMCs at the indicated weeks after humanization.The mean + SEM is shown for pig thymus alone (n = 9, black line with triangles) and pig thymus injected with hES-TEP (n = 11, green line with squares) from two independent hES-TEC differentiations. Figure 6G is a graph of human immune cells assayed for total B cells (huCD19+) in PBMCs at the indicated weeks after humanization. The mean + SEM is shown for pig thymus alone (n = 9, black line with triangles) and pig thymus injected with hES-TEP (n = 11, green line with squares) from two independent hES-TEP differentiations. Figure 6H is a graph of total human CD45+ immune cells in the spleen 18 to 22 weeks after humanization analyzed by flow cytometry. The mean + SEM is shown for pig thymus injected with hES-TEP (n = 7, squares) and pig thymus alone (n = 6, triangles) from two independent hES-TEC differentiations. Figure 6I is a graph of total human CD19+ B cells in spleens analyzed by flow cytometry 18-22 weeks after humanization. Mean + SEM is shown for hES-TEP-injected pig thymus (n=7, squares) and pig thymus alone (n=6, triangles) from two independent hES-TEP differentiation runs. Figure 6J is a graph of total human CD14+ myeloid cells in spleens analyzed by flow cytometry 18-22 weeks after humanization. Mean + SEM is shown for hES-TEP-injected pig thymus (n=7, squares) and pig thymus alone (n=6, triangles) from two independent hES-TEP differentiation runs. [Figure 7]hES-TEP prepared using the protocol in Figure 4A and injected into pig thymi increased the percentage of CD4+ T cells in the blood and the numbers of naive T cells and thymic emigrants in the spleen compared with control mice transplanted with pig thymi. Figures 7A-7C show the results of assaying human immune cells in PBMCs at the indicated weeks after humanization. Means + SEM are shown for pig thymi alone (n = 9, black line with triangles) and pig thymi injected with hES-TEP (n = 11, green line with squares) from two independent hES-TEP differentiations. Figure 7A shows CD3+ cells. Figure 7B shows CD8+ cells. Figure 7C shows CD4+ cells. A significant effect of TEP injection was revealed by two-way ANOVA on CD3+ and CD4+ kinetics, with p < 0.05 considered significant. Bonferroni post hoc multiple comparisons were performed at each time point; p<0.05 is indicated with an asterisk (*). Figure 7D shows the absolute number of CD3+ T cells in the spleen 18-22 weeks after humanization. Figure 7E shows the absolute number of CD8+ T cells in the spleen 18-22 weeks after humanization. Figure 7F shows the absolute number of CD4+ T cells in the spleen 18-22 weeks after humanization. Figure 7G shows CD45RA versus CCR7 used to distinguish naive cells, effector memory (EM) cells, central memory (CM) cells, and terminally differentiated effector memory cells (EMRA) that re-express CD45RA (left panel) in CD8+ T cells (middle panel) or CD4+ T cells (right panel). Figure 7H shows the absolute number of recent thymic emigrant CD31+CD4+ naive cells, defined as CD45RA+CCR7+ cells among splenic mononuclear cells. Means + SEM are shown for hES-TEP-injected pig thymus (n = 7, squares) and pig thymus only (n = 6, triangles) from two independent hES-TEP differentiations. P values ​​were determined by comparing the SwTHY only group with the SwTHY hES-TEP-injected group using the Mann-Whitney test, with p<0.05 considered significant. *p<0.05. DETAILED DESCRIPTION OF THE INVENTION

[0028] definition Terms used herein generally have their ordinary meaning in the art within the context of the present invention and the specific context in which the particular term is used. Certain terms are described below or elsewhere in this specification to provide further guidance to the practitioner in describing the methods of the present invention and their uses. It will be further understood that there may be more than one way of saying the same thing. Accordingly, alternative terms and synonyms may be used for one or more terms described herein, and it is not particularly important whether a term is detailed or explained in detail herein. Synonyms are provided for particular terms. The provision of one or more synonyms does not preclude the use of other synonyms. The use of examples provided anywhere in this specification, including examples of terms described herein, is for illustrative purposes only and does not limit the scope and meaning of the invention or the exemplified terms. Similarly, the present invention is not limited to only its preferred embodiments.

[0029] As used herein, the term "induced pluripotent stem cells," commonly abbreviated as iPS cells or iPSCs, refers to a type of pluripotent stem cell that is artificially created from non-pluripotent cells, typically adult somatic cells, or terminally differentiated cells (such as fibroblasts, hematopoietic cells, muscle cells, neurons, epithelial cells, etc.).

[0030] As used herein, the terms "differentiation" and "cell differentiation" refer to the process by which less specialized cells (i.e., stem cells) develop or mature or differentiate into more specialized or differentiated cells (i.e., thymic epithelial cells) with different morphology and / or function.

[0031] As used herein, the expressions "cell," "cell line," and "cell culture" are used interchangeably, and all such names include progeny cells. Thus, the terms "transformant" and "transformed cell" include the primary cell and cultures derived therefrom, regardless of the number of passages. It is also understood that not all progeny cells have exactly the same DNA content due to intentional or unintentional mutations. Mutant progeny cells that have the same function or biological activity as screened for in the originally transformed cell are included. If a different name is intended, it will be clear from the context.

[0032] With respect to cells, the term "isolated" refers to cells that have been separated from their natural environment (e.g., derived from a tissue or subject). The term "cell line" refers to a population of cells capable of continuous or sustained growth and division in vitro. Often, cell lines are cloned populations derived from a single progenitor cell. It is further known in the art that spontaneous or induced karyotypic changes can occur during storage or passaging of such cloned populations. Thus, cells derived from a cell line may not be exactly identical to their ancestral cells or cultures, and cell lines include such variants. As used herein, the term "recombinant cells" refers to cells into which exogenous DNA fragments (such as DNA fragments that result in the transcription of a biologically active polypeptide or the production of a nucleic acid such as biologically active RNA) have been introduced.

[0033] Abbreviation hPSC ~ human pluripotent stem cells ES or ESC ~ Embryonic Stem Cells iPSC ~ induced pluripotent stem cells TEC ~ Thymic epithelial cells TEP ~ Thymic epithelial progenitor cells PE ~ pharyngeal endoderm DE ~ definitive endoderm AFE ~ anterior foregut or anterior foregut endoderm PA ~ pharyngeal arch 3rd PP ~ 3rd pharyngeal pouch Shh ~ Sonic Hedgehog RA ~ Retinoic Acid SP ~ Single positive DP ~ double positive

[0034] To differentiate the definitive endoderm (DE) into the third pharyngeal pouch, we used a combination of FGF8 and retinoic acid (RA) to induce coexpression of TBX1 and HOXA3. While RA treatment has previously been shown to increase HOXA3 activity (Parent et al., 2013; Diman et al., 2011), the potential for FGF8 to upregulate TBX1 was a novel finding disclosed herein. FGF8 appears to play two roles in the disclosed differentiation protocol: (i) FGF8 signaling immediately following activin exposure activates Tbx1, anteriorizing the DE into the pharynx-biased AFE (Green et al., 2011). Early exposure to FGF8 (day 4.5 vs. day 6.5; protocol #3c vs. #4c) strongly directs cultures toward the pharyngeal AFE, significantly increasing the number of FOXN1+ cells at day 30; (ii) after anteriorization, FGF8b contributes to the development of the pharyngeal endoderm (PE), where it acts downstream of and together with TBX1 (Vitelli et al., 2002; Vitelli et al., 2010).

[0035] Another cytokine that plays an important role in the development of the pharyngeal endoderm (PE) is sonic hedgehog (Shh) (Moore-Scott and Manley, 2005). RA exposure was reduced and replaced with Shh (Protocol #1 vs. #3), which upregulated PAX9, PAX1, and TBX1 but downregulated HOXA, consistent with previous reports showing that Shh signaling induces TBX1 in the pharyngeal endoderm (PE) (Garg et al., 2001). High levels of HOXA3 are important for early pharyngeal field patterning, but its expression decreases at later stages. Indeed, Pax1 expression is reduced in Hoxa3 null mutants, whereas Hoxa3 expression is normal in Pax1 and Pax9 double mutant embryos (Moore-Scott and Manley, 2005). Hoxa3 expression is downregulated by Shh. - / - Therefore, the contribution of HOXA3 and the Pax1-Pax9 temporal inverse gradient to third pharyngeal pouch development further justifies the early use of RA followed by Shh treatment in the disclosed protocol.

[0036] In the final part of the protocol, cells are exposed to Noggin and then BMP4. While BMP signaling has been shown to be required for FOXN1 expression (Patel et al., 2006; Swann et al., 2017), this is the first report to utilize Noggin, a BMP4 antagonist and / or inhibitor, for in vitro thymic differentiation. The presence of Noggin in the third pharyngeal pouch endoderm has been associated with the thyroid region rather than the thymus, where BMP4 is expressed (Patel et al., 2006). In our protocol, adding ectopic Noggin to the cultures further enhanced PAX9 expression at day 30. Because BMP4 expression begins at E10.5, shortly after Noggin expression at E9.5 in cells of the third pharyngeal pouch endoderm (Patel et al., 2006), cells were exposed to BMP4 from day 21 to day 30 (immediately after Noggin). This resulted in increased FOXN1 expression at day 30 compared to days 21 and 15. Interestingly, BMP4 treatment without prior exposure to Noggin did not result in an increase in FOXN1, confirming that Noggin is required for the development of sensitivity to BMP4.

[0037] Several groups have reported the ability to generate mouse and human TEPs from PSCs (Parent et al., 2013; Sun et al., 2013; Soh et al., 2014; Su et al., 2015; Lai and Jim, 2009). In three reports, grafts composed of these cells, often with supportive mesenchymal or EPCAM-cells derived from TEP cultures, reconstituted mouse T cells in nude mice, but did not demonstrate stable and sustained thymocyte proliferation in normal-appearing thymic structures. The possibility that thymocyte proliferation could be followed by peripheral lymphopenia leading to mature T cell expansion was not excluded. One report demonstrated human T cell repopulation in peripheral tissues and human thymocyte proliferation in transplanted tissues, but no thymic structures were demonstrated for the transplanted cells. Furthermore, peripheral markers of recent thymic emigration were not included in the study, making it unclear how robust and sustained the thymocyte proliferation was.

[0038] Here, we clearly demonstrated the hPSC-TEC-dependent emergence of human naive T cells in the periphery of mice transplanted with hPSC-TEPs and thymic mesenchymal cells and receiving human HSCs. Because the thymus of NSG mice can also support human thymocyte proliferation, all NSG mice were thymectomized before transplantation of hPSC-TEPs (Khosravi et al., 2020), ensuring that all peripheral T cells were generated from the transplanted tissue. The phenotype of peripheral human T cells in these mice ultimately converted to memory.

[0039] The inability to generate a sustained, structured thymus from "stand-alone" cell grafts led to the development of a novel approach to assess the thymocyte proliferation function of hPSC-TEPs in vivo. Fetal pig thymus tissue has previously been demonstrated to support the proliferation of phenotypically normal human thymocytes with diverse TCR repertoires (Shimizu et al., 2008) and stable peripheral naive T cell populations in NSG mice (Nikolic and Sykes, 1999), although there are some subtle differences from those observed in T cells developing in human thymus grafts (Kalscheuer et al., 2014). These fetal pig thymus fragments proliferate significantly and contain up to hundreds of millions of human thymocytes in a normal-appearing thymic structure (Nikolic and Sykes, 1999; Kalscheuer et al., 2014). We describe herein a methodology for injecting hPSC-TEPs into fragments of fetal pig thymus tissue, which maintained human cells in close proximity to the thymus tissue and allowed them to integrate into the thymus as it developed. Human TEPs integrated into the thymus clearly expressed human cTEC- and mTEC-associated cytokeratins and appeared to integrate into the highly organized thymic structure of the graft. Most importantly, they had striking functional effects, significantly increasing the total number of human thymocytes and the number of peripheral human naive T cells, including CD4+CD34RA+ T cells with the CD31+RTE phenotype.

[0040] Method and system for obtaining thymic epithelial cells and / or thymic epithelial progenitor cells

[0041] The methods and systems described herein not only provide a reproducible method for obtaining thymic epithelial cells (TECs) or thymic epithelial progenitor cells (TEPs) by inducing differentiation of human pluripotent stem cells into thymic epithelial cells (TECs) or thymic epithelial progenitor cells (TEPs), but also provide improved purity and homogeneity, and therefore enhanced ability, of thymic epithelial cells (TECs) or TEPs.

[0042] The methods and systems described herein generate fully functional, reproducible, specific cell populations upon transplantation. Furthermore, the methods and systems described herein provide substantially homogeneous populations of thymic epithelial cells (TECs) or TEC progenitor cells.

[0043] Human pluripotent stem cells are the starting material for the methods of the present invention. Human pluripotent stem cells (hPSCs) may be embryonic stem cells (ESCs) or induced pluripotent stem cells (iPSCs).

[0044] The steps and timing of the method are shown in Table 1 and Figure 4A.

[0045] [Table 1]

[0046] The first step of the method is to differentiate hPSCs into defined endoderm (DE) cells using any method known in the art. Exemplified herein is the use of a previously reported protocol that uses a serum-free differentiation medium containing BMP4, bFGF, and activin A. However, other protocols known in the art can also be used.

[0047] The next step of the method is to culture the definitive endoderm cells obtained in the first step and further differentiate them into anterior foregut endoderm (AFE). Any medium from the differentiation protocol can be used for cell culture in this step. A serum-free differentiation medium is preferred. Additionally, growth factors such as EGF and FGF can be added to the medium to promote cell proliferation.

[0048] To promote the differentiation of the committed endoderm cells into anterior foregut cell precursor cells, the endoderm cells are then contacted or incubated with a factor that inhibits BMP and a factor that inhibits TGFβ signaling. The most efficient way to accomplish this is to add the factors to the medium in which the cells are cultured. However, any other method known in the art for contacting or incubating cells with factors can be used. Cells may be contacted or incubated with multiple factors simultaneously or in parallel.

[0049] Factors that inhibit BMP include, but are not limited to, noggin and dorsomorphin. Factors that inhibit TGFβ signaling include, but are not limited to, SB431542.

[0050] Dorsomorphin can be used in an amount ranging from about 0.5 μM to about 2 μM.

[0051] Noggin can be used in an amount ranging from about 25 ng / ml to about 500 ng / ml, or from about 50 ng / ml to about 400 ng / ml, or from about 100 ng / ml to about 300 ng / ml, with a preferred amount being about 200 ng / ml.

[0052] The agent for inhibiting TGFβ signaling is SB431542 in an amount ranging from about 1 μM to about 50 μM, or from about 2 μM to about 30 μM, or from about 5 μM to about 20 μM. In some embodiments, the agent for inhibiting TGFβ signaling is SB431542 in an amount of about 10 μM.

[0053] However, other factors that inhibit TGFβ signaling can also be used in this method.

[0054] Furthermore, it has been shown that the combined stimulation of TBX1 and HOXA3 expression at the AFE stage is essential for physiological third pharyngeal pouch endoderm development. Therefore, the cells are further contacted with or incubated with factors that stimulate the expression of these genes. The factor for TBX1 stimulation is FGF8b, which may be used in an amount ranging from about 10 ng / ml to about 200 ng / ml, or from about 20 ng / ml to about 150 ng / ml, or from about 30 ng / ml to about 100 ng / ml. In some embodiments, FGF8b may be used at about 50 ng / ml.

[0055] The cells are contacted or incubated with the agent from about day 4.5 to about day 15.

[0056] The agent for HOXA3 stimulation is retinoic acid (RA), used in an amount ranging from about 0.1 μM to about 0.6 μM, or from about 0.2 μM to about 0.5 μM. In some embodiments, retinoic acid may be used in an amount of about 0.6 μM. Cells can be contacted or incubated with the agent from about day 4.5 to about day 7.5. Stimulation of HOXA3 can be performed for any 3-day period during the first 15 days, other than days 4.5 to 7.5.

[0057] As shown in Figures 1D-1F, this protocol produces AFEs with high efficiency.

[0058] The cells are subsequently cultured in any serum-free medium used for cell differentiation (referred to herein as "differentiation medium" or "serum-free differentiation medium"). Additionally, growth factors such as EGF and FGF can be added to the differentiation medium to promote cell proliferation. Initially, the cells are contacted or incubated with retinoic acid (RA) in an amount ranging from about 0.1 μM to about 0.6 μM, or from about 0.2 μM to about 0.5 μM, for about 1 to 2 days. In some embodiments, the cells are contacted or incubated with RA at about 0.25 μM. The cells are subsequently contacted or incubated with FGF8b in an amount ranging from about 10 ng / ml to about 200 ng / ml, or from about 20 ng / ml to about 150 ng / ml, or from about 30 ng / ml to about 100 ng / ml throughout the process. As a non-limiting example, the cells may be contacted with about 50 ng / ml of FGF8b.

[0059] The next step promotes the differentiation of anterior foregut cells into pharyngeal endoderm (PE) cells.

[0060] In this step, cells are contacted or incubated with factors that induce expression of PAX9 and PAX1. The most efficient way to accomplish this is to add the factors to the medium in which the cells are cultured. However, any other method known in the art for contacting or incubating cells with factors can be used. Cells may be contacted or incubated with multiple factors simultaneously or in parallel. One factor for stimulating both PAX9 and PAX1 is Sonic hedgehog (Shh) in an amount ranging from about 10 ng / ml to about 400 ng / ml, or from about 25 ng / ml to about 300 ng / ml, or from about 50 ng / ml to about 200 ng / ml. In some embodiments, Shh may be used at about 100 ng / ml.

[0061] The cells are subsequently contacted or incubated throughout with FGF8b in an amount ranging from about 10 ng / ml to about 200 ng / ml, or from about 20 ng / ml to about 150 ng / ml, or from about 30 ng / ml to about 100 ng / ml. In some embodiments, the cells may be contacted or incubated with about 50 ng / ml of FGF8b.

[0062] Noggin may also be used to induce expression of PAX9 and PAX1. Noggin may be used in an amount ranging from about 50 ng / ml to about 400 ng / ml, or from about 60 ng / ml to about 300 ng / ml, or from about 75 ng / ml to about 200 ng / ml. In some embodiments, Noggin may be used in an amount of about 100 ng / ml.

[0063] This process is carried out for about 4 to 10 days.

[0064] The next step is the differentiation of PE cells into distal third pharyngeal pouch / TECs. This process is divided into two steps: in the first part, the cells are contacted or incubated with factors that inhibit BMPs, including, but not limited to, noggin and dorsomorphin.

[0065] Dorsomorphin can be used in an amount ranging from about 0.5 μM to about 2 μM. Noggin can be used in an amount ranging from about 50 ng / ml to about 400 ng / ml, or from about 60 ng / ml to about 300 ng / ml, or from about 75 ng / ml to about 200 ng / ml. As a non-limiting example, Noggin can be used in an amount of about 100 ng / ml.

[0066] This portion of the process is carried out for about 5 to about 7 days.

[0067] In the second part of the process, the cells are contacted or incubated with BMP4 in an amount ranging from about 5 ng / ml to about 300 ng / ml, or from about 15 ng / ml to about 200 ng / ml, or from about 25 ng / ml to about 100 ng / ml, or about 50 ng / ml. This part of the process is carried out for about 5 to about 10 days.

[0068] The final cells obtained according to the method will show gene expression of TEC markers including FOXN1, PAX9, PAX1, DLL4, ISL1, EYA1, SIX1, IL7, K5, K8 and AIRE. See Figures 3A and 3B.

[0069] While the above method provides a novel, reproducible, and reliable method for inducing differentiation of hPSCs into TECs or TEPs, it also provides an additional step to reduce or eliminate pluripotent cells that may result in teratomas in the final transplanted cells. In this step, the cells are contacted or incubated with a survivin inhibitor (e.g., YM155) in an amount ranging from about 5 nM to about 50 nM for approximately the last 24 hours of the method. As a non-limiting example, cells may be contacted or incubated with 20 nM YM155. Cells may also be contacted or incubated with a survivin inhibitor simultaneously with BMP4 treatment. In some embodiments, cells may be contacted or incubated with a survivin inhibitor during the first 24 to 48 hours of simultaneous incubation with BMP4.

[0070] The present invention also includes systems for implementing the disclosed methods for obtaining TECs or TEPs from hPSCs. These systems may include subsystems, including a differentiation medium, a factor that inhibits BMP and TGFβ signaling, a factor that stimulates expression of HOXA3, TBX1, PAX1, and PAX9, a factor that inhibits survivin, and BMP4. These systems may include subsystems, including a differentiation medium, noggin, retinoic acid, FGF8b, sonic hedgehog, BMP, and YM155.

[0071] cell A further embodiment of the present disclosure is thymic epithelial cells (TECs) or TEC progenitor cells (TEPs) generated by the differentiation protocols described herein.

[0072] In some embodiments, these cells express FOXN1, EpCAM, keratin 5, and keratin 8. In some embodiments, these cells are thymic epithelial cells (TECs). In some embodiments, these cells are thymic epithelial progenitor cells (TEC precursors) (TEPs).

[0073] Accordingly, one aspect of the present disclosure is thymic epithelial cells (TECs) or TEC progenitor cells (TEPs) suitable for administration, transplantation, and grafting into a subject, produced by the methods described herein.

[0074] In another aspect, provided herein are compositions comprising thymic epithelial cells or TEC progenitor cells (TEPs) produced by the methods described herein. In some embodiments, these cells are suitable for administration, transplantation, and grafting into a subject. In certain embodiments, the composition is a pharmaceutical composition further comprising any pharmaceutically acceptable carrier or excipient.

[0075] In certain embodiments, the composition or pharmaceutical composition contains at least 10,000, at least 50,000, at least 100,000, at least 500,000, at least 1x10 thymic epithelial cells (TECs) or TEC progenitor cells (TEPs) generated by the methods described herein. 6 Pieces, at least 5x10 6 Pieces, at least 1x10 7 Pieces, at least 5x10 7 Pieces, at least 1x10 8 Pieces, at least 5x10 8 Pieces, at least 1x10 9 Pieces, at least 5x10 9 pieces, or at least 1x10 10 In some embodiments, these cells are suitable for administration, transplantation, and grafting into a subject.

[0076] In certain embodiments, the present disclosure provides cryopreserved compositions or solutions of thymic epithelial cells (TECs) or TEC progenitor cells (TEPs) produced by the methods described herein. In some embodiments, these cells are suitable for administration, transplantation, and grafting into a subject.

[0077] In certain embodiments, the cryopreservation composition or solution contains at least 10,000, at least 50,000, at least 100,000, at least 500,000, at least 1x10 thymic epithelial cells (TECs) or TEC progenitor cells (TEPs) generated by the methods described herein. 6 Pieces, at least 5x10 6 Pieces, at least 1x10 7 Pieces, at least 5x10 7 Pieces, at least 1x10 8 Pieces, at least 5x10 8 Pieces, at least 1x10 9 Pieces, at least 5x10 9 pieces, or at least 1x10 10 In some embodiments, these cells are suitable for administration, transplantation, and grafting into a subject.

[0078] In certain embodiments, the present disclosure provides a cell culture comprising thymic epithelial cells (TECs) or TEC progenitor cells (TEPs) generated by the methods described herein. In certain embodiments, the cell culture comprises at least 1 x 10 thymic epithelial cells (TECs) or TEC progenitor cells (TEPs) generated by the methods described herein. 7 Pieces, at least 5x10 7 Pieces, at least 1x10 8 Pieces, at least 5x10 8 Pieces, at least 1x10 9 Pieces, at least 5x10 9 pieces, or at least 1x10 10 In some embodiments, these cells are suitable for administration, transplantation, and grafting into a subject.

[0079] In certain embodiments, the present disclosure provides therapeutic uses of thymic epithelial cells (TECs) or TEC progenitor cells (TEPs) suitable for administration, transplantation, and grafting into a subject, as produced by the methods described herein, and compositions, solutions, and cell cultures comprising such cells.

[0080] In other embodiments, the present disclosure provides a substantially homogeneous population of thymic epithelial cells (TECs) or TEC progenitor cells (TEPs) produced by the methods described herein. In some embodiments, these cells are suitable for administration, transplantation, and grafting into a subject. In some embodiments, the cell population comprises at least about 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% thymic epithelial cells (TECs) or TEC progenitor cells (TEPs).

[0081] In another aspect, provided herein is a composition comprising a substantially homogeneous population of thymic epithelial cells (TECs) or TEC progenitor cells (TEPs) produced by the methods described herein. In some embodiments, these cells are suitable for administration, transplantation, and grafting into a subject. In certain embodiments, the composition is a pharmaceutical composition further comprising any pharmaceutically acceptable carrier or excipient.

[0082] In certain embodiments, the population or composition or pharmaceutical composition comprises at least 10,000, at least 50,000, at least 100,000, at least 500,000, at least 1x10 thymic epithelial cells (TECs) or TEC progenitor cells (TEPs) generated by the methods as described herein. 6 Pieces, at least 5x10 6 Pieces, at least 1x10 7 Pieces, at least 5x10 7 Pieces, at least 1x10 8 Pieces, at least 5x10 8 Pieces, at least 1x10 9 Pieces, at least 5x10 9 pieces, or at least 1x10 10 In some embodiments, these cells are suitable for administration, transplantation, and grafting into a subject.

[0083] In certain embodiments, the present disclosure provides a cryopreserved composition or solution of a substantially homogeneous population of thymic epithelial cells (TECs) or TEC progenitor cells (TEPs) generated by a method as described herein. In certain embodiments, the cryopreserved composition or solution contains at least 10,000, at least 50,000, at least 100,000, at least 500,000, at least 1x10 thymic epithelial cells (TECs) or TEC progenitor cells (TEPs) generated by a method as described herein. 6 Pieces, at least 5x10 6 Pieces, at least 1x10 7 Pieces, at least 5x10 7Pieces, at least 1x10 8 Pieces, at least 5x10 8 Pieces, at least 1x10 9 Pieces, at least 5x10 9 pieces, or at least 1x10 10 In some embodiments, these cells are suitable for administration, transplantation, and grafting into a subject.

[0084] In certain embodiments, the present disclosure provides a cell culture comprising a substantially homogeneous population of thymic epithelial cells (TECs) or TEC progenitor cells (TEPs) generated by the methods described herein. In certain embodiments, the cell culture comprises at least 1 x 10 thymic epithelial cells (TECs) or TEC progenitor cells (TEPs) generated by the methods described herein. 7 Pieces, at least 5x10 7 Pieces, at least 1x10 8 Pieces, at least 5x10 8 Pieces, at least 1x10 9 Pieces, at least 5x10 9 pieces, or at least 1x10 10 In some embodiments, these cells are suitable for administration, transplantation, and grafting into a subject.

[0085] In certain embodiments, the present disclosure provides therapeutic uses of substantially homogeneous populations of thymic epithelial cells (TECs) or thymic epithelial progenitor cells, suitable for transplantation or grafting into a subject, produced by the methods as described herein, as well as compositions, solutions, and cell cultures comprising such cells.

[0086] A further embodiment is a thymic organ comprising the TECs or TEPs disclosed herein in combination with other cells that make up the thymus.

[0087] therapeutic use The novel methods described herein for generating TECs or TEC progenitor cells (TEPs) from stem cells, and the cells and substantially homogeneous cell populations generated thereby, provide novel methods for treating disease.

[0088] The ability to generate functional TECs from human pluripotent stem cells may have important applications in modeling human immune responses in mice and in modeling and treating thymic insufficiency syndromes (such as DiGeorge syndrome, NUDE syndrome, and the immunodeficiencies associated with bone marrow transplantation in leukemia). The cells may also be used clinically for cell therapy, transplanted into patients to achieve T cell reconstitution, or to generate immune tolerance to prevent graft rejection after organ transplantation, or to restore thymic function that has declined due to injury or aging.

[0089] Accordingly, one embodiment is a method of treating or preventing a thymic disorder in a subject in need thereof, comprising administering, transplanting, or grafting to a subject in need thereof a therapeutically effective amount of cells of the present disclosure, a solution comprising cells of the present disclosure, a composition comprising cells of the present disclosure, or a pharmaceutical composition comprising cells of the present disclosure. The subject is preferably a mammal, and most preferably a human.

[0090] A further embodiment is a method of treating or preventing an autoimmune disease in a subject in need thereof, comprising administering, transplanting, or grafting to a subject in need thereof a therapeutically effective amount of cells of the present disclosure, a solution comprising cells of the present disclosure, a composition comprising cells of the present disclosure, or a pharmaceutical composition comprising cells of the present disclosure. The subject is preferably a mammal, and most preferably a human.

[0091] Another embodiment is a method of restoring or restoring decreased thymic function in a subject in need thereof, comprising administering, transplanting, or grafting to a subject in need thereof a therapeutically effective amount of cells of the present disclosure, a solution comprising cells of the present disclosure, a composition comprising cells of the present disclosure, or a pharmaceutical composition comprising cells of the present disclosure. The subject is preferably a mammal, and most preferably a human. In some embodiments, the decline is due to injury. In some embodiments, the decline is due to aging. In some embodiments, the decline is due to a congenital abnormality.

[0092] A further embodiment is a method of reconstituting T cells in a subject in need thereof, comprising administering, transplanting, or grafting to a subject in need thereof a therapeutically effective amount of cells of the present disclosure, a solution comprising cells of the present disclosure, a composition comprising cells of the present disclosure, or a pharmaceutical composition comprising cells of the present disclosure. The subject is preferably a mammal, and most preferably a human.

[0093] Cells obtained using the methods disclosed herein can be used to create a hybrid thymus. In some embodiments, the hybrid thymus comprises thymic epithelial cells obtained using the methods described herein and thymic tissue from a second individual of the same species. In some embodiments, the hybrid thymus comprises thymic epithelial cells obtained using the methods described herein and thymic tissue from a second species. In some embodiments, the second species is a pig. In some embodiments, the second species is a miniature pig. In some embodiments, the pig is a juvenile pig. In some embodiments, the pig is a fetus. Methods for obtaining such hybrid pigs are disclosed in commonly owned patent application PCT / US2019 / 051865.

[0094] A further embodiment is the use of cells to develop mouse models. With the discovery of cellular reprogramming (iPSCs), a new era of disease modeling utilizing pluripotent stem cells indicates that countless genetic diseases can now be generated from patient tissue. iPSCs derived from patients with several different autoimmune diseases involving central tolerance can be differentiated into TECs (or TEPs) and then injected or transplanted into mice, where the cells can recapitulate or develop various pathologies or disorders. Humanized mouse models can be generated from TECs derived from patients with autoimmune diseases such as multiple sclerosis, or type 1 diabetes, or congenital abnormalities such as DiGeorge syndrome. Mice can then be used in an in vivo environment to examine the progression of disorders that would not occur in vitro.

[0095] Furthermore, personalized humanized mouse models can be generated using the cells described herein. To date, the most developed humanized mouse models involve human hematopoietic stem cells (HSCs) and pediatric or fetal thymus samples transplanted under the kidney capsule. A limitation of these mouse models is the HLA mismatch between the two types of cell populations (HSCs and TECs) because they originate from two different individuals. Using the differentiation protocol disclosed herein, it is possible to differentiate TECs (or TEPs) from the same iPSCs as HSCs, where the HLA of the immune system cells matches that of the human TECs transplanted into the mouse. This technique can be used for individual patients, resulting in personalized immune (PI) mice.

[0096] A further embodiment is the use of the cells for in vivo drug testing (using the mouse models described above, including but not limited to the personalized immunization (PI) mouse model) or in vitro drug testing. In vitro cultures of differentiated TECs can be used to test drugs against different pathologies that affect TECs, such as cancer (thymoma), or infectious diseases, or autoimmune diseases.

[0097] kit The present disclosure also provides kits.

[0098] In one embodiment, the kit includes one or more components, such as human pluripotent stem cells; media for culturing and differentiating hPSCs (such as media containing growth factors; and factors that inhibit BMP and TGFβ signaling; factors that stimulate expression of HOXA3, TBX1, PAX1, and PAX9; factors that inhibit survivin; and BMP4).

[0099] In another embodiment, the kit includes one or more components, such as a medium for the culture and differentiation of human pluripotent stem cells, hPSCs, including a medium containing growth factors and noggin, retinoic acid, FGF8b, sonic hedgehog, BMP, and YM155.

[0100] In further embodiments, the kit may include TECs or TEC progenitor cells (TEPs) obtained by the methods and systems of the present disclosure. The kit may also include reagents for culturing the cells.

[0101] In further embodiments, the kit may include a pharmaceutical composition comprising TECs or TEC progenitor cells (TEPs) obtained by the methods or systems of the present disclosure.

[0102] In further embodiments, the kit may include a cryopreservation composition comprising TECs or TEC progenitor cells (TEPs) obtained by the methods or systems of the present disclosure.

[0103] The kit may further include a package insert containing information regarding the pharmaceutical compositions and dosage forms in the kit. For example, the following information regarding the combination of the present invention may be provided in the package insert: how it is supplied, suitable storage conditions, references, manufacturer / distributor information, and patent information.

[0104] Example The present invention will be better understood by reference to the following non-limiting examples, which are set forth to more fully illustrate preferred embodiments of the invention, but are not intended to limit the broad scope of the invention in any way.

[0105] Example 1 - Methods and Materials Maintenance of hPSCs RUES2 (Rockefeller University Stem Cell Line 2; National Institutes of Health (NIH) approval number: NIHhESC-09-0013, registration number: 0013; passage number: 13–24) was cultured on mouse embryonic fibroblasts (GlobalStem, Rockville, MD) at approximately 25,000 cells / cm as previously described (Green et al., 2011). 2 hPSCs were plated at a density of 1000 kJ / ml. hPSCs were cultured in DMEM / F12 containing 20% ​​KnockOut Serum Replacement [Gibco (Life Technologies, Grand Island, NY)], 0.1 mM β-mercaptoethanol (Sigma-Aldrich, St. Louis, MO), and 20 ng / ml FGF-2 (R&D Systems, Minneapolis, MN). Medium was changed daily, and cells were passaged every 4 days at a 1:24 dilution using Accutase / EDTA (Innovative Cell Technologies, San Diego, CA). Undifferentiated hPSCs were maintained in a 5% CO2 atmosphere. The human H9 embryonic stem cell line was also processed according to protocol #4c. Cell lines were karyotyped every 6 months and tested for the presence of mycoplasma contamination using PCR.

[0106] Endoderm induction Differentiation was performed using serum-free differentiation medium (SFD) consisting of DMEM / F12 (3:1) (Life Technologies) supplemented with N2 [Gibco (Life Technologies)], B27 (Gibco), ascorbic acid (50 μg / ml, Sigma), Glutamax (2 mM, Life Technologies), monothioglycerol (0.4 μM, Sigma), 0.05% bovine serum albumin (BSA) (Life Technologies), and 1% penicillin-streptomycin (Thermo Fisher Scientific, Waltham, MA) as described by Huang et al. (2014). The cells were then briefly trypsinized (0.05%, 37°C, 1 min) into a single-cell suspension and seeded into low-adhesion 6-well plates [Costar 2 (Corning Incorporated, Tewksbury, MA)] and allowed to form embryoid bodies for 84 h (approximately 3.5 days) in serum-free differentiation medium containing 0.5 ng / ml human BMP4, 2.5 ng / ml human bFGF (R&D Systems), and 100 ng / ml human activin A (R&D Systems). The embryoid bodies were then collected, briefly trypsinized (0.05%, 37°C, 1 min) into small clumps of 3–10 cells, resuspended in endoderm induction medium, and left for an additional 24 h. Cells were maintained in a 5% CO2 / 5% O2 / 90% N2 atmosphere with medium changes every 24–48 h (depending on cell density).

[0107] Induction of anterior foregut endoderm, pharyngeal endoderm, and distal third pharyngeal pouch After a total of 108 hours on low-adhesion plates containing endoderm induction medium (described above), embryoid bodies were collected and, without trypsinization, seeded (approximately 50,000–70,000 cells / well) into Matrigel-coated 24-well tissue culture plates for 48 hours in SFD medium supplemented with 200 ng / mL recombinant human (rh) Noggin and 10 μM SB431542 (NS) (as described in the protocol established by Green et al. (2011)), retinoic acid (0.25 μM), and 50 ng / mL FGF8b (as a novel modification of this protocol). To obtain pharyngeal endoderm, the prepared cells were then treated with FGF8b (50 ng / mL) and retinoic acid (0.25 μM) for 24 hours, followed by FGF8b (50 ng / mL) and sonic hedgehog (Shh) (100 ng / mL) for 8 days (Figure 1B). To induce third pharyngeal pouch differentiation, the cells were then exposed to rhNoggin (200 ng / mL) for 6 days, followed by BMP4 (10 ng / mL) until differentiation day 30 (Figure 2A). To prevent teratoma formation after transplantation into mice, the cells were also exposed to the survivin inhibitor YM155 (20 nM) (Lee et al., 2013) for 24 hours at the final stage of the experiment (Figure 4A). Throughout the entire process, cell cultures were maintained at 37°C in a 5% CO2 atmosphere. The medium was replaced every 24 hours.

[0108] Real-time quantitative PCR Total RNA from clusters of ES cells differentiated for the indicated times using the indicated culture methods was extracted using Trizol (Invitrogen) and the Direct-zol RNA Miniprep Kit (Zymo Research) according to the manufacturer's instructions. A NanoDrop 2000 spectrophotometer (ThermoFisher Scientific) was used to determine RNA concentration. 500 ng of RNA was reverse-transcribed and amplified with random hexamers using the Superscript III kit (Invitrogen) according to the manufacturer's instructions. Real-time quantitative PCR was performed in a 20 μl volume using ABI Power SYBR Green PCR Master Mix in an ABI ViiA7 thermal cycler (Applied Biosystems Life Technologies). The PCR cycle conditions were 50°C for 2 minutes, 95°C for 10 minutes, followed by 40 cycles of 95°C for 15 seconds and 60°C for 1 minute. Single-peak dissociation / melting curves were confirmed for all reactions and all primer pairs. Quantitative values ​​for each gene transcript were obtained by comparing the average C values ​​of triplicate experiments for each primer target to a standard curve of serially diluted genomic DNA, and then normalizing by dividing by the C value of the housekeeping gene β-actin. Primer sequences are listed in Table 2.

[0109] [Table 2] TIFF0007740706000003.tif54162

[0110] Immunohistochemistry and immunofluorescence hES cultures in 24-well tissue culture plates were fixed with 4% paraformaldehyde in PBS for 10 min at room temperature, washed twice with PBS, permeabilized with 0.1% Triton in PBS for 20 min, and blocked in 5% fetal donkey serum for 1 h at room temperature.

[0111] The thymus grafts were removed, embedded in OCT compound (Tissue-Tec, Torrance, CA), and 5-7 μm thick sections were cut for immunostaining. The sections were stained with hematoxylin-eosin to visualize the gross histology and the interface between the thymus graft and mouse kidney tissue. For immunofluorescence staining, the tissue sections were fixed, permeabilized with ice-cold 100% acetone, and allowed to dry completely. The tissue sections were blocked in PBS supplemented with 0.1% Tween and 0.1% bovine serum albumin. Slides were washed with PBS containing 0.1% Tween and stained with primary antibodies for 2 hours at room temperature. They were then washed and incubated with secondary antibodies for 2 hours at room temperature.

[0112] Cultures or tissue sections were incubated with one or a combination of two or three of the primary antibodies listed in Table 3 below, followed by incubation with the appropriate secondary antibodies. Images were collected on a Leica slide scanner (SCN 400 whole slide scanning platform) for hematoxylin-eosin stained sections, and immunofluorescence images were collected on a Leica TCS SP8 two-photon laser scanning microscope.

[0113] [Table 3] TIFF0007740706000005.tif141162

[0114] Animal and human tissues NOD-scidIL2Rgamma nu11NSG (stock 005557) mice were obtained from the Jackson Laboratory and housed and bred in microisolator cages with Helicobacter-free and Pasteurella-free SPF barriers. Human fetal thymus and liver tissue (17–20 weeks gestational age) was obtained from the Advanced Biosciences Resource. Fetal liver tissue was minced into small pieces and incubated at 37°C in 199 Medium (Corning) supplemented with 0.01 mg / ml bovine pancreatic DNase I (Sigma), 2.5 mM HEPES, 4 μg / ml gentamicin (Gibco), and 1 WU / ml Liberase® (Roche) to generate a single-cell suspension. Cells were filtered through a 70 μm mesh cell strainer and brought to 100 ml with 199 Medium supplemented as listed above, but without Liberase. Human mononuclear cells were enriched by density gradient centrifugation of 15 ml of Ficoll (Histopaque-1077, Sigma) overlaying the hepatocyte suspension. Mononuclear cells were collected, washed, and resuspended in MACS buffer. CD34+ cells were enriched to approximately 80% CD34+ purity using magnetic-activated cell sorting (MACS) according to the manufacturer's protocol (Miltenyi). CD34+ cells were aliquoted and frozen in human AB serum (GEMCell) containing 10% DMSO (Sigma).

[0115] 3-5mm human pediatric thymus from patients undergoing cardiac surgery 3 Fragments were cryopreserved in human AB serum containing 10% DMSO. To generate primary thymic mesenchyme, thymus fragments were thawed, disaggregated by Liberase® digestion as described above, and cultured at approximately 2 x 10°C in DMEM medium supplemented with 10% fetal bovine serum (Gemini Bio-Products). 4 cells / cm 2Cells were seeded at 100°C for 1 hour. The medium was changed after 48 hours to remove unattached cells and then changed every 3–4 days for up to 3 weeks until the cells reached maximum confluence. Cells at passages 7–10 were used for experiments, and cell type was confirmed by flow cytometry (CD45-CD105+CD90+EpCAM-) (Siepe et al., 2009). The use of human tissues and cells was approved by the Columbia University Irving Medical Center (CUIMC) Institutional Review Board, and all experiments were performed in accordance with the approved protocol.

[0116] humanized mice Six- to ten-week-old NSG mice were thymectomized as described by Khosravi-Maharlooei et al. (2020) and allowed to recover for at least 3 weeks. After recovery, animals were conditioned by 1.8 Gy of total body irradiation (TBI). Cryopreserved fetal pig thymus (60-90 days gestation) was thawed in 199 medium supplemented with DNAse, gentamicin, and HEPES as described above. Fetal pig fragments (1-2 mm) were then cut into 100 pieces. 3 ) with 2x10 28 gauge syringe 5 The cells were injected with or without hES-derived TEPs and coated with 50% Matrigel (Corning) in 199 medium. At 4 to 24 hours after total body irradiation (TBI), 1x10 6 ~2xl0 6 1x10 thymic mesenchymal cells mixed with 6 ~2xl0 6 1x10 hES-derived TEPs 6 ~2xl0 6 Thymic mesenchymal cells alone, fetal pig thymus injected with hES-TEPs, or fetal pig thymus alone were transplanted under the kidney capsule. 5Human fetal CD34+ cells were injected intravenously. Peripheral human immune reconstitution was assayed every 2–3 weeks after transplantation after full recovery, as indicated. Blood samples were collected from the tail vein, and immune cell populations were enriched by density gradient centrifugation using Ficoll as described above. At the time of euthanasia, thymus, spleen, and peripheral blood were collected for analysis. Thymus grafts were removed from the kidneys of mice and divided into two halves. One thymus fragment was disrupted to allow for thymocyte development, and the remaining stromal elements were digested with Liberase® as described above to prepare a single-cell suspension for flow cytometry analysis. The second thymus fragment was embedded in OCT. The spleen was disrupted and filtered through a 70 μm nylon filter, and red blood cells were lysed with hypotonic lysis buffer (ACK Gibco). Peripheral blood from cardiac puncture was enriched for leukocytes by density gradient centrifugation using Ficoll. All animal experiments were conducted under protocols approved by the Columbia University Institutional Animal Care and Use Committee.

[0117] Flow cytometry Human immune reconstitution and differentiation efficiency of hES-TEP cultures were determined by multiparametric flow cytometry. To assay human immune reconstitution, single-cell suspensions prepared from thymus grafts, tissue from the anterior mediastinum, spleen, and peripheral blood were prepared as described above. Day 4.5 embryoid bodies from hES-TEP cultures were dissociated into single cells with 0.05% trypsin / EDTA. Cells were stained with fluorochrome-conjugated monoclonal antibodies against mouse and human cell surface antigens (Table 4). Cells were acquired using an LSRII or Fortessa (BD Biosciences), and data analysis was performed using FlowJo software (TreeStar, Ashland, OR).

[0118] [Table 4]

[0119] statistics Statistical analysis and comparisons were performed using GraphPad Prism 7.0 (GraphPad Software). Values ​​for individual mice are shown as bar graphs, with bar heights representing the mean + standard error of the mean. For qPCR data, Ct values ​​normalized to the internal control β-actin were graphed, and relative gene expression was compared using a two-tailed paired Student's t-test. For multiple comparisons (triplicates or more) of multiple experimental groups against a single control group, a one-way analysis of variance with Dunnett's multiple comparison test was used. Gene correlations were assessed using the Pearson correlation coefficient, with p<0.05 considered significant. Linear regression was also performed to determine the coefficient of determination. Euthanasia due to teratoma growth was plotted on a Kaplan-Meier plot and analyzed using the Mantel-Cox log-rank test to obtain p values. Comparisons between mouse groups were performed using the nonparametric Mann-Whitney U test. Effects between transplantation groups were determined using a two-way analysis of variance (ANOVA). If the two-way ANOVA was significant (p<0.05), Bonferroni's multiple comparison test was performed for each individual time point. P<0.05 was considered significant.

[0120] Example 2 - Direct differentiation of hESCs into pharyngeal endoderm cells that polarize to the third pharyngeal pouch The thymus originates from the pharyngeal endoderm (PE), the anterior-most part of the endoderm. Direct differentiation of ESCs into TECs occurs through the sequential induction of definitive endoderm (DE), anterior foregut (AFE), and PE, followed by the formation of the third pharyngeal pouch (3 rdThis differentiation requires the specification of the thymic region (PP) (Gordon and Manley, 2011) (Figures 1A and 2A). ESCs were differentiated into DE and AFE using activin A, followed by noggin and SB431542 (NS) as described above (Kubo et al., 2004; D'Amour et al., 2005; Green et al., 2011) (Figure 1B). Flow cytometry analysis demonstrated coexpression of the endoderm markers EpCAM and CXCR4 in 98.3% of day 4.5 cells dissociated from embryoid bodies (Figure 1C). Inhibition of both BMP and TGFβ after DE induction resulted in AFE with high efficiency (>90%) (Soh et al., 2014). Consistently, immunofluorescence staining at day 9 showed that the majority of cells expressed FOXA2 (endoderm) and SOX2 (foregut), confirming efficient specification to AFE (FOXA2+SOX2+) (results not shown).

[0121] Next, we investigated the differentiation of thymus-bound AFEs by focusing on HOXA3, TBX1, PAX9, PAX1, SIX1, and EYA1, genes involved in PE development and third pharyngeal pouch formation ( Manley and Condie, 2010 ). Therefore, we used their expression as readout genes at day 15 of culture.

[0122] In humans, HOXA3 is found throughout the third pharyngeal pouch endoderm and surrounding mesenchyme, whereas TBX1 is expressed in the central mesenchyme of the first, second, and third pharyngeal arches (PAs) and in the third pharyngeal pouch endoderm (Farley et al., 2013). In the PE, the expression of these two genes overlaps only in the third pharyngeal pouch (Farley et al., 2013). Retinoic acid (RA), an essential factor for morphogenesis of the PA (Kopinke et al., 2006) and PP (Wendling et al., 2000), correlates with Hoxa3 expression (Diman et al., 2011), while the localization of Fgf8 in the PP overlaps with that of Tbx1 at E10.5 in mice (Vitelli et al., 2002). To mimic physiological third pharyngeal pouch endoderm development, co-expression of TBX1 and HOXA3 was induced by stimulating AFE cells with a combination of RA and FGF8b in protocol #1 (Figure 1B). To confirm the role of RA, this protocol was tested with protocol #2, which omitted RA. Addition of RA was essential for HOXA3 expression (Figure 1D, protocol #1 vs. #2), consistent with the results shown by Parent et al. (2013).

[0123] FGF10, FGF7, CHIR (an activator of the Wnt signaling pathway), and BMP4 are also known to regulate readout genes (Parent et al., 2013; Sun et al., 2013; Soh et al., 2014; Su et al., 2015). The effects of substituting these cytokines for FGF8 individually were examined in Protocol #1. FGF8b+RA was the only combination that not only maximized the expression levels of most readout genes but also drove TBX1 expression (Figure 2B and Figure 2C). Adding BMP4, CHIR, FGF7, and FGF10 to the FGF8b+RA protocol did not improve the expression of any third pharyngeal pouch markers (data not shown).

[0124] Despite the expression of most readout genes, FOXN1, a master regulator of TEC differentiation (Romano et al., 2013), was barely detectable at day 15 of culture (not shown), leaving room for improvement. In mice, Pax9 and Pax1 are expressed in the four pharyngeal pouches and become restricted to a subpopulation of TECs after birth (Wallin et al., 1996; Hetzer-Egger et al., 2002). Therefore, in addition to being markers of AFE, Pax1 and Pax9 are also markers of TECs. Although PAX9 and PAX1 expression was statistically higher in protocols 1 and 2 than in the negative control (liver, "liver condition" (Gouon-Evans et al., 2006)) (Figure 1E), Shh induces Pax1 and Pax9 expression in ventral somites (Furumoto et al., 1999). Therefore, Shh was added at day 7.5 of culture as a strategy to further upregulate PAX9 and PAX1. Both Shh and its receptor, PTC1, have been reported to be expressed in human TECs and contribute to TEC differentiation ( Saldana et al., 2016 ; Sacedon et al., 2003 ).

[0125] Because Shh promotes RA clearance (Probst et al., 2002), we reduced RA exposure and replaced it with Shh on day 6.5 (Figure 1B). This resulted in a significant increase in PAX9 (2.5-fold; p<0.0001) and a nearly significant increase in PAX1 (5-fold; p=0.053) (Figure 1D, Protocol #1 vs. #3). TBX1 expression was also significantly increased, consistent with previous reports showing that Shh increases Tbx1 expression in PE (Figure 1) (Gar et al., 2001).

[0126] Next, we investigated whether increasing exposure to FGF8b starting on day 4.5 of culture biased AFE development toward the PE and promoted expression of third pharyngeal pouch genes. Because comparable expression of third pharyngeal pouch markers was observed in both protocols #3 and #4, we continued efforts to simultaneously optimize both protocols to explore the possibility of doing so beyond day 15 of differentiation (Figure 1F).

[0127] Example 3 - Distalization of the Third Pharyngeal Pouch Although the addition of FGF8b during anteriorization and / or incubation with Shh improved the expression of third pharyngeal pouch markers, cultures at day 15 showed low FOXN1 expression (results not shown). In mice, BMP4 is coexpressed with FoxN1 in the ventral / posterior presumptive thymic region of the third pharyngeal pouch endoderm at E11.5 (Moore-Scott and Manley, 2005; Bleul and Boehm, 2005). Therefore, we reasoned that the addition of BMP4 would result in better FOXN1 expression. Therefore, we exposed day 15 cultures to BMP4 (protocols #3b and #4b in Figure 2A). However, the addition of BMP4 failed to induce FoxN1 expression when assayed at days 22 and 30 of culture in protocols #3b and #4b (results not shown). It was thought that insufficient expression of PAX9 ( Manley and Condie 2010 ; Hetzer-Egger et al. 2002 ), which is also expressed in TECs after thymic organogenesis, might be responsible for the insufficient FOXN1 expression.

[0128] Next, we investigated whether the addition of Noggin enhances PAX9 expression. Noggin is a BMP4 antagonist and / or inhibitor expressed throughout the third pharyngeal arch mesenchyme at E9.5 in mice, directly adjacent to the early third pharyngeal pouch endoderm (Patel et al., 2006). BMP4 expression begins at E10.5 in the cells of the third pharyngeal pouch endoderm (Patel et al., 2006). We predicted that Noggin would diffuse from the mesenchyme to the third pharyngeal pouch endoderm cells just before BMP4 signaling occurs in this region. To mimic this event, BMP4 was replaced with Noggin from days 16 to 22 in protocols #3c and #4c (Figure 2A). PAX9 expression was significantly increased in both protocols by the addition of Noggin (Figure 2D).

[0129] A fivefold higher level of FOXN1 expression was observed in protocol #4c (FGF8b during anteriorization) compared to protocol #3c (Figure 2E). Therefore, protocol #4c was further optimized. To confirm that cells continued to produce FOXN1 after the addition of BMP4, FOXN1 expression was compared at days 21 and 30 using protocol #4c. Figure 2F shows that FOXN1 expression was significantly higher at day 30 than at day 21, confirming that BMP4 exposure can promote FOXN1 expression even after day 21. In protocol #4c, FOXN1 levels at day 30 were eightfold higher than at day 15 (Figure 2G).

[0130] Figure 3A shows the gene expression of TEC markers at day 30 in cultures compared with lysates from whole human fetal thymus. Although the thymic stromal samples were diluted by the presence of thymocytes, protocol 4c achieved 76% of the FOXN1 expression observed in thymic lysates. This was significantly higher than reported values ​​from other research groups performing the same comparison (Parent et al., 2013; Sun et al., 2013; Su et al., 2015). Furthermore, mRNAs for PAX9, PAX1, DLL4, ISL1, EYA1, SIX1, IL7, K5, K8, and AIRE were detectable at levels comparable to or even higher than those in fetal thymus. To establish the reproducibility of this protocol in other hESC lines, the human H9 embryonic stem cell line was treated with protocol 4c. Expression of TEC markers ISL1, FOXN1, K5, K8, DLL4, AIRE, and IL7 (Figure 3B) was demonstrable in H9 cells differentiated by this protocol.

[0131] Immunostaining of day 15 protocol #4c cultures revealed colonies positive for the PE markers TBX1, EYA, ISL1, and SIX, which also co-stained with the third pharyngeal pouch marker EpCAM (results not shown). At day 30 of culture, these colonies remained positive for the general epithelial marker EpCAM, as well as K5 and UEA-1, which are associated with mTECs, and K8, which is associated with cTECs (results not shown). A strong correlation was also observed between the expression levels of FOXN1 and GCM2, a thyroid marker also found in the third pharyngeal pouch (Figure 3C). This suggests the presence of cells destined to mature into thyroid precursors despite BMP4 exposure, indicating incomplete distalization of the third pharyngeal pouch (Gordon et al., 2001). IL7 is the most important cytokine produced by TECs and promotes thymocyte survival, differentiation, and proliferation (Zamisch et al., 2005), as well as CD205, which functions as an endocytic receptor in cTECs (Shakib et al., 2009). We found that the expression of IL7 and CD205 correlated with FOXN1 expression (Figure 3C).

[0132] Example 4 - Functional capacity assessment of hES-TEPs hES-TEPs differentiated using protocol #4c were examined for their ability to support thymocyte proliferation from human hematopoietic stem cells transplanted into humanized mice. The persistent presence of undifferentiated pluripotent cells in culture is a major barrier to clinical translation when utilizing ES and iPSC-derived cells. Transplantation experiments revealed the presence of pluripotent cells upon transplantation, which leads to rapid, uncontrolled proliferation of graft-derived cells and teratoma formation (results not shown). Consistent with these results, OCT4, a marker of pluripotent cells, was detected in hES-TEP cultures at day 30 (Figure 4C) (Pan et al., 2002). However, TEPs at day 30 in culture showed coexpression of OCT4 in EpCAM+ cells (results not shown), and qPCR analysis demonstrated a correlation between FOXN1 and OCT4 expression levels (Figure 4B), suggesting that OCT4 expression may be part of the TEC differentiation program.

[0133] The survivin inhibitor YM155 has been reported to selectively eliminate pluripotent cells (Lee et al., 2013). We tested YM155 treatment during the final 24-hour culture to determine whether it was sufficient to eliminate pluripotent cells (Figure 4A). OCT4 expression was significantly reduced by YM155 treatment (Figure 4C). Engraftment of untreated day 15 hES-TEPs resulted in teratomas in all animals by 11 weeks post-transplantation (Figure 4D). hES-TEPs cultured for 30 days in the presence or absence of YM155 showed reduced teratoma formation compared with untreated controls transplanted with day 15 TEPs; only 3 of 15 animals in the group receiving YM155-treated cells formed teratomas (results not shown).

[0134] The native thymic anlage of NSG hosts was able to support low-level thymocyte proliferation from human fetal liver-derived HSCs. A method for surgically removing both lobes of the native thymic anlage from NSG mice was developed, preventing T cell development in thymectomized (ATX) NSG animals transplanted with human HSCs (Khosravi-Maharlooei et al., 2020). Complete removal of the native thymic anlage in ATX mice was confirmed by collecting connective tissue from the anterior mediastinum and assaying for the absence of CD4+CD8+ thymocytes (Figures 5A and 5B). Therefore, to assess the functionality of transplanted hES-derived TEPs, all subsequent recipients were thymectomized.

[0135] Example 5 - Formation of functional thymus organs using hES-TEP / TMCs To examine the functionality of cultured hES-TEPs in supporting thymocyte proliferation, clusters of hES-TEPs mixed with human thymic mesenchymal cells (TMCs) (generated using protocol #4c) or TMCs alone were cultured at 2 x 10 5Human HSCs were transplanted under the kidney capsule of intravenously injected ATX NSG mice. Total human CD45+ cells in the peripheral blood were measured for all mice. Average human chimerism was 61% + 21% in mice transplanted with hES-TEP / TMC and 81% + 13% in mice transplanted with TMCs between 11 and 31 weeks after humanization (Figure 5C). Engraftment of human HSCs resulted in predominant B cell production (data not shown). As early as 9 weeks after transplantation of TEPs under the kidney capsule, human CD3+ T cells were detected in more than 1% of total human blood cells in two mice transplanted with hES-TEP / TMCs, and ultimately in six of seven hES-TEP-transplanted mice, whereas TMC-transplanted controls showed no peripheral T cell reconstitution (Figure 5D). Although T cells were biased toward the CD4+ lineage rather than the CD8+ lineage, four of the seven hES-TEP / TMC-transplanted mice developed both CD4+ and CD8+ cells (Figures 5E and 5G). CD4+ cells were further assayed for expression of the naive T cell marker CD45RA and the effector / memory T cell marker CD45RO. In the four mice that developed CD4+ and CD8+ T cells, CD4+ T cells had a predominantly naive phenotype (CD45RA+CD45RO-), consistent with de novo thymocyte proliferation (Figure 5F). Over time, CD4+ T cells converted to an effector / memory phenotype (CD45RA-CD45RO+), consistent with thymocyte proliferation arrest and lymphopenia.

[0136] CD4+CD8+ double-positive cells were present at low frequencies in the hES-TEP / TMC grafts (Figure 5H). The hES-TEP / TMC grafts were slightly enlarged in volume and exhibited a disorganized structure without discernible cortical or medullary regions on hematoxylin and eosin staining (results not shown). Furthermore, cells derived from the hES-TEC / TMC grafts appeared to invade the renal parenchyma, suggesting the presence of multiple cell types differentiating from TEP-cultured cells in vivo. Despite the disorganized structure, some cells in the hES-TEC / TMC grafts co-stained with the TEC markers EpCAM, pan-cytokeratin, and human MHC II (HLA-DR), suggesting terminal differentiation and long-term survival of hES-TECs (results not shown).

[0137] Example 6 - Strategies to examine the effects of hES-TECs: evidence of integration into porcine thymus grafts We hypothesized that the ability of hES-TEPs to generate true thymic tissue in vivo might be limited by the absence of the thymic structural framework or other cell types required to generate a functional thymus. To address this possibility, we examined the survival and function of hES-TEPs (generated by protocol #4c) injected into fetal pig thymuses transplanted into humanized mice. See Figure 6A. Previously, fetal pig thymus (SwTHY) has been shown to support robust thymocyte expansion from human fetal liver-derived HSCs in NOD-scid or NSG mice (Kalcheuer et al., 2014; Nikolic and Sykes, 1999; Nauman et al., 2019).

[0138] The presence of hES-TECs was analyzed by flow cytometry and immunofluorescence in the injected SwTHY grafts 18–22 weeks after transplantation. Stromal cells from half of the thymic grafts were dissociated with Liberase® and stained for markers of human cells (huCD45 and HLA-ABC), thymic fibroblasts (CD105), and epithelial cells (EpCAM). The distribution of CD105 and EpCAM cells for SwTHY+ hES-TECs and SwTHY is shown for huCD45-HLA-ABC+ cells (Figure 6B). HuCD45-HLA-ABC+CD105-EpCAM+ were detected at frequencies of 1.6%+2.3% in the hES-TEC-injected thymus, whereas they were undetectable in the uninjected SwTHY, as expected (Figures 6B and 6C). Intact thymic grafts were stained with the epithelial cell markers cytokeratin 14 and anti-human pan-MHC II (HLA-DR). Cytokeratin 14 is expressed on human and porcine epithelial cells (red). HLA-DR is expressed on human antigen-presenting cells differentiated from human HSCs in the bone marrow that seed the thymic graft, and on terminally differentiated human TECs (green). Confocal microscopy revealed colocalization of HLA-DR and cytokeratin expressed by hES-TECs (yellow) in injected SwTHY but not in uninjected SwTHY (results not shown). hES-TECs were detected in six of seven SwTHY + hES-TEC thymic grafts.

[0139] Example 7 - hES-TEP injection into pig thymus improved human thymocyte proliferation End-stage differentiated thymocytes were assayed by flow cytometry to determine whether hES-TECs support improved human thymocyte proliferation. The distribution of single-positive (SP) CD4+, CD8+, and double-positive (DP) CD4+CD8+ cells in SwTHY+ hES-TECs and SwTHY grafts was similar to that in human pediatric thymi (Figure 6D). hES-TECs in SwTHY resulted in a significant increase in the total number of thymocytes and CD4+CD8+ DP cells compared with SwTHY grafts (Figure 6E). In SwTHY+ hES-TECs, the frequency and absolute numbers of CD4+ single-positive CD4+CD45RA+ and CD4+CD45RO+ T cells were significantly increased in SwTHY+ hES-TECs compared with SwTHY grafts (Figure 6E). These data suggested that hES-TECs promote human thymocyte proliferation by providing the human MHC interactions necessary for thymocyte survival from the double-positive stage to terminal differentiation.

[0140] We next investigated whether infusion of hES-TEPs into SwTHY mice altered the frequency and phenotype of T cells in the periphery of HSC-injected mice compared with uninjected SwTHY mice transplanted under the kidney capsule (Figure 6A). Animals transplanted with SwTHY or hES-TEPs-injected SwTHY (SwTHY+hES-TEC) developed stable human chimerism with similar frequencies of B cells, averaging approximately 30% + 14% in peripheral blood 11–21 weeks after humanization (Figure 6F and Figure 6G). Comparative kinetics of T cell reconstitution demonstrated a significant increase in the CD3+ T cell population, accompanied by an increased CD4+ T cell frequency in the blood of the SwTHY+hES-TEC group compared with the SwTHY group (Figure 7A).

[0141] As a major immune organ, we assayed immune cell populations in the spleen to determine whether hES-TEC infusion altered the frequency and absolute number of cells. The frequency and total number of human immune cells were comparable between the SwTHY+hES-TEC and SwTHY groups (Figure 6H). Similarly, there were no differences between the groups in the numbers of CD19+ B cells and CD14+ monocytes (Figures 6I and 6J). The frequency and total number of CD3+ T cells were increased in the SwTHY+hES-TEC group compared with SwTHY-transplanted animals (Figure 7E). Both CD8+ cytotoxic T cells and CD4+ helper T cells were increased in percentage (%) and absolute number in the SwTHY+hES-TEP-treated group compared with the SwTHY control group (Figure 7F).

[0142] Phenotypic and functional subpopulations of CD4 and CD8 T cells were defined based on expression of the chemokine receptor CCR7 and CD45RA, revealing populations of naive (CD45RA+CCR7+), central memory (Tcm) (CD45RA-CCR7+), effector memory (Tern) (CD45RA-CCR7-), and terminally differentiated effector memory cells (TEMRA) that re-express CD45RA (CD45RA+CCR7-) (Figure 7G) (Thome et al., 2014). Consistent with the increased numbers of T cells in SwTHY+hES-TEP-transplanted animals, naive, Tcm, Tern, and TEMRA were significantly increased in both the CD4+ and CD8+ T cell compartments (Figure 7G). CD31 (platelet / endothelial cell adhesion molecule-1 or PECAM-1) is expressed by newly naive CD4+ T cells that have recently migrated from the thymus. 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Claims

1. 1. A method for inducing differentiation of pluripotent stem cells into thymic epithelial cells (TECs) or thymic epithelial progenitor cells (TEPs) in vitro; (a) differentiating the pluripotent stem cells into committed endoderm cells by culturing the pluripotent stem cells in a serum-free differentiation medium on day 0 of culture, and contacting or incubating the pluripotent stem cells with 0.5 ng / ml human bone morphogenetic protein 4 (BMP4), 2.5 ng / ml human basic fibroblast growth factor (bFGF), and 100 ng / ml human activin A; (b) culturing the committed endoderm cells from step (a) in a serum-free differentiation medium and differentiating the committed endoderm cells into anterior foregut cells from day 4.5 of culture by contacting or incubating the committed endoderm cells with 25 ng / ml to 500 ng / ml Noggin, 1 μM to 50 μM SB431542 (NS), 0.1 μM to 0.6 μM retinoic acid, and 10 ng / ml to 200 ng / ml FGF8b; (c) differentiating the anterior foregut cells from step (b) into pharyngeal endoderm cells by culturing the anterior foregut cells from step (b) in a serum-free differentiation medium and contacting or incubating the anterior foregut cells with 10 ng / ml to 200 ng / ml FGF8b and 0.1 μM to 0.6 μM retinoic acid from day 6.5 of culture, followed by 10 ng / ml to 200 ng / ml FGF8b and 10 ng / ml to 400 ng / ml Sonic hedgehog (Shh) from day 7.5 of culture; (d) culturing the pharyngeal endoderm cells from step (c) in a serum-free differentiation medium, and differentiating the pharyngeal endoderm cells into third pharyngeal pouch-specialized cells, thymic epithelial cells, or thymic epithelial progenitor cells by contacting or incubating the cells with 50 ng / ml to 400 ng / ml of Noggin from day 15 of culture; and (e) culturing the pharyngeal endoderm cells from step (d) in a serum-free differentiation medium on day 21 of culture, and further differentiating the pharyngeal endoderm cells into third pharyngeal pouch-specialized cells, thymic epithelial cells, or thymic epithelial progenitor cells by contacting or incubating the pharyngeal endoderm cells with 5 ng / ml to 300 ng / ml of BMP4 until day 30 of culture; A method comprising:

2. 2. The method of claim 1, wherein the pluripotent stem cells are selected from the group consisting of embryonic stem cells and induced pluripotent stem cells.

3. 10. The method of claim 1, further comprising the step of contacting or incubating the TEC or TEP with a survivin inhibitor at the end of the method.

4. The method of claim 3, wherein the survivin inhibitor is YM155, and the TEC or TEP is contacted with 5 nM to 50 nM of YM155.

Citation Information

Patent Citations

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  • Generation of anterior foregut endoderm from pluripotent cells

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