WO2017192997A1 - Methods for the in vitro manufacture of gastric fundus tissue and compositions related to same - Google Patents

Methods for the in vitro manufacture of gastric fundus tissue and compositions related to same Download PDF

Info

Publication number
WO2017192997A1
WO2017192997A1 PCT/US2017/031309 US2017031309W WO2017192997A1 WO 2017192997 A1 WO2017192997 A1 WO 2017192997A1 US 2017031309 W US2017031309 W US 2017031309W WO 2017192997 A1 WO2017192997 A1 WO 2017192997A1
Authority
WO
WIPO (PCT)
Prior art keywords
cell
period
cells
gastric
wnt
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/US2017/031309
Other languages
English (en)
French (fr)
Inventor
James Wells
Kyle MCCRACKEN
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Cincinnati Childrens Hospital Medical Center
Original Assignee
Cincinnati Childrens Hospital Medical Center
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority to EP17793451.0A priority Critical patent/EP3452578B1/en
Priority to ES17793451T priority patent/ES2929758T3/es
Priority to CN202310699246.1A priority patent/CN116790476A/zh
Priority to US16/084,599 priority patent/US11066650B2/en
Priority to CA3016641A priority patent/CA3016641A1/en
Priority to JP2018550724A priority patent/JP6963882B2/ja
Priority to CN201780024903.5A priority patent/CN109415685B/zh
Priority to EP22189427.2A priority patent/EP4177335A1/en
Application filed by Cincinnati Childrens Hospital Medical Center filed Critical Cincinnati Childrens Hospital Medical Center
Publication of WO2017192997A1 publication Critical patent/WO2017192997A1/en
Anticipated expiration legal-status Critical
Priority to US17/375,293 priority patent/US20220064602A1/en
Priority to JP2021169192A priority patent/JP7463326B2/ja
Priority to JP2024050953A priority patent/JP2024095710A/ja
Ceased legal-status Critical Current

Links

Classifications

    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N5/00Undifferentiated human, animal or plant cells, e.g. cell lines; Tissues; Cultivation or maintenance thereof; Culture media therefor
    • C12N5/06Animal cells or tissues; Human cells or tissues
    • C12N5/0602Vertebrate cells
    • C12N5/0679Cells of the gastro-intestinal tract
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N5/00Undifferentiated human, animal or plant cells, e.g. cell lines; Tissues; Cultivation or maintenance thereof; Culture media therefor
    • C12N5/06Animal cells or tissues; Human cells or tissues
    • C12N5/0602Vertebrate cells
    • C12N5/0603Embryonic cells ; Embryoid bodies
    • C12N5/0606Pluripotent embryonic cells, e.g. embryonic stem cells [ES]
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N5/00Undifferentiated human, animal or plant cells, e.g. cell lines; Tissues; Cultivation or maintenance thereof; Culture media therefor
    • C12N5/06Animal cells or tissues; Human cells or tissues
    • C12N5/0602Vertebrate cells
    • C12N5/0607Non-embryonic pluripotent stem cells, e.g. MASC
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N5/00Undifferentiated human, animal or plant cells, e.g. cell lines; Tissues; Cultivation or maintenance thereof; Culture media therefor
    • C12N5/06Animal cells or tissues; Human cells or tissues
    • C12N5/0602Vertebrate cells
    • C12N5/0608Germ cells
    • C12N5/0609Oocytes, oogonia
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N2501/00Active agents used in cell culture processes, e.g. differentation
    • C12N2501/10Growth factors
    • C12N2501/11Epidermal growth factor [EGF]
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N2501/00Active agents used in cell culture processes, e.g. differentation
    • C12N2501/10Growth factors
    • C12N2501/115Basic fibroblast growth factor (bFGF, FGF-2)
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N2501/00Active agents used in cell culture processes, e.g. differentation
    • C12N2501/10Growth factors
    • C12N2501/155Bone morphogenic proteins [BMP]; Osteogenins; Osteogenic factor; Bone inducing factor
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N2501/00Active agents used in cell culture processes, e.g. differentation
    • C12N2501/30Hormones
    • C12N2501/38Hormones with nuclear receptors
    • C12N2501/385Hormones with nuclear receptors of the family of the retinoic acid recptor, e.g. RAR, RXR; Peroxisome proliferator-activated receptor [PPAR]
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N2501/00Active agents used in cell culture processes, e.g. differentation
    • C12N2501/40Regulators of development
    • C12N2501/415Wnt; Frizzeled
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N2506/00Differentiation of animal cells from one lineage to another; Differentiation of pluripotent cells
    • C12N2506/02Differentiation of animal cells from one lineage to another; Differentiation of pluripotent cells from embryonic cells
    • C12N2506/025Differentiation of animal cells from one lineage to another; Differentiation of pluripotent cells from embryonic cells from extra-embryonic cells, e.g. trophoblast, placenta
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N2506/00Differentiation of animal cells from one lineage to another; Differentiation of pluripotent cells
    • C12N2506/03Differentiation of animal cells from one lineage to another; Differentiation of pluripotent cells from non-embryonic pluripotent stem cells
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N2506/00Differentiation of animal cells from one lineage to another; Differentiation of pluripotent cells
    • C12N2506/45Differentiation of animal cells from one lineage to another; Differentiation of pluripotent cells from artificially induced pluripotent stem cells
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N2513/003D culture

Definitions

  • hFGOs human fundic-type gastric organoids
  • the instant disclosure relates to methods for converting mammalian definitive endoderm (DE) cells into specific tissue(s) or organ(s) through directed differentiation.
  • the disclosure relates to formation of gastric fundus tissue and/or organoids formed from differentiated definitive endoderm.
  • FIG. 1 Wnt/ -catenin signaling is required for specification of the embryonic fundus in mice, a, Pdxl and Sox2 were expressed in the antrum (a), whereas Pdxl was absent in the fundus (f), identified by Atp4b-expressing parietal cells at E18.5.
  • Insets la-c and 2a-c show boxed regions in control and cKO stomach, respectively, e, In the cKO stomach, Ctnnbl exhibited mosaic deletion, and parietal cells only differentiated in Ctnnbl -sufficient epithelium. Scale bars, 250 ⁇ (a), 200 ⁇ (c), and 500 ⁇ (d and e).
  • FIG. ⁇ -catenin activation promotes fundus development from human foregut progenitor spheroids
  • a Schematized diagram of differentiation protocol for both fundic and antral hGOs.
  • b c, At day 9, CHIR-treated organoids exhibited reduction in PDX1, increase in IRX2, IRX3, and IRX5, and no change in gastric markers SOX2 or GATA4.
  • FIG. Differentiation of mucous and endocrine cell lineages in hGOs.
  • hFGOs contained MUC5AC -positive surface mucous cells and MUC6-positive mucous neck cells, c, d, hFGOs contained endocrine cells expressing the pan- endocrine marker SYP. Diverse hormone cell types were identified in hFGOs, including GHRL-, SST-, and histamine-expressing endocrine cells. The antral-specific G-cell marker GAST was expressed in hAGOs but not hFGOs; conversely, GHRL was enriched in hFGOs.
  • FIG 4. Formation of chief cells in hFGOs.
  • hFGOs had a both MISTl and Pepsinogen C (PGC) positive cells
  • PPC Pepsinogen C
  • b High magnification of boxed region in panel (a) showing a gland with a cluster of cells with apical PGC staining
  • c hFGOs had significantly increased expression of chief cell markers PGA5 (1,000-fold), PGC (100-fold), and MISTl (>10-fold) as compared to hAGOs. **, p ⁇ 0.05; two-tailed Student's t- test.
  • FIG. Identification of pathways that drive differentiation of functional parietal cells in hFGOs.
  • hFGO-derived parietal cells resembled those found in the maturing mouse fundic epithelium in vivo
  • d Transmission electron micrograph of an hFGO cell with canalicular structure reminiscent of parietal cells
  • e The epithelium of human fundic glands and hFGO epithelium were organized into MUC5AC-expressing cells in the surface epithelium and ATP4B-expressing parietal cells in the glandular units
  • f Analysis of luminal pH in organoids in response to histamine by luminal injection of SNARF-5F. The luminal pH in hFGOs rapidly dropped, while hAGOs exhibited no response.
  • n 9, 9, 7, and 4 biological replicates in hFGOs (histamine), hFGOs (histamine and famotidine), hFGOs (histamine and omeprazole), and hAGOs (histamine), respectively; data representative of three independent experiments, g, Histamine induced acridine orange (AO) dye accumulation in a canalicular-type partem in isolated mouse gastric glands and in hFGOs after 60 minutes. Scale bars, 100 ⁇ (b), 10 ⁇ (c), 10 ⁇ (d), 100 ⁇ (e; human fundus), 20 ⁇ (e; hFGO), and 10 ⁇ (g). Error bars represent s.e.m.
  • FIG. Defining molecular domains in the developing stomach in vivo.
  • FIG 7. Analysis of ⁇ -catenin cKO embryos, a, By E12.4 and El 4.5, ectopic Pdxl expression was observed throughout the dorsal gastric epithelium, as well as the most proximal gastric epithelium of the cKO embryo, b, qPCR analysis of dissected regions (FIG 6, b) of El 4.5 cKO foregut showed significant up-regulation of Pdxl in the fundus and forestomach domains. Conversely, Irx2, Irx3, and Irx5 were markedly reduced in these proximal regions.
  • FIG 8. Stable induction of fundic fate in hGOs and efficiency of protocol, a, Applicant investigated how long CHIR treatment was necessary to establish fundus identity. Brief CHIR treatment (d6-9) and subsequent growth of organoids in control growth medium until day 34 resulted in fundic organoids expressing the antral marker PDX1, suggesting that short CHIR treatment did not produce a stable fundic fate. Applicant then tested whether longer exposures to CHIR were required to retain fundic fate and found that only continuous treatment through at least day 29 could maintain low expression of the antral marker PDX1. *, p ⁇ 0.05 compared to control antral hGOs; two tailed Student's t-test.
  • FIG. Region-specific cytodifferentiation in human gastric
  • hFGOs contained abundant cells exhibiting granule partem consistent with mucous neck cells, the precursors to differentiated chief cells
  • c Exogenous expression of NEUROG3 in hGOs derived from NEUROG3-deficient hESC line induced robust differentiation of SYP-positive endocrine cells. While both hAGOs and hFGOs formed GHRL- and SST-expressing endocrine cells, specification of GAST+ G-cells was observed only in hAGOs.
  • FIG. 12 Analysis of murine chief cell development, a, Unlike parietal cells, which expressed functional markers (Atp4b) as early as late embryonic stages, chief cell gene products were not detectable until much later stages of development.
  • FIG 13 Screen for pathways that promote differentiation of parietal cells in fundic hGOs.
  • a To test for growth factors/small molecules capable of inducing parietal cell differentiation, hFGOs were exposed for two days (30-32) to the indicated agonist or antagonist and then analyzed at day 34. In a screening experiment of different pathways, only MEK inhibition with PD03 was found to robustly induce expression ⁇ 4 ⁇ / ⁇ .
  • b Reduction or removal of EGF from the culture medium was not sufficient to reproduce the effect of MEK inhibition
  • c The ability of PD03/BMP4 to induce parietal cell development was exclusive to fundic hGOs, as antral hGOs did not express fundic markers in response to PD03/BMP4.
  • FIG 14. Live in vitro pH monitoring in gastric organoids, a, The dye
  • SNAFR5F exhibits responsiveness over pH range of 5-8, which makes it well suited to detect physiologic changes in response to parietal cell- mediated acid secretion
  • b Media and luminal pH measurements recorded before (closed circles) and 60 minutes following addition of histamine (open circles). Antral hGOs did not respond, while the fundic hGO luminal pH decreased in response to histamine. The acidification was inhibited by pre-treatment of organoids with either famotidine or omeprazole. Further, omeprazole was sufficient to raise the pH in fundic organoids prior to histamine exposure, suggesting a baseline acid secretion in the fundic organoids. Media pH did not change in any organoids.
  • hFGOs contained parietal cell-dense glands in which acridine orange (AO) accumulated in nearly all of the cells lining the lumen of the gland, d, AO accumulation was observed in a canalicular-type pattern in parietal cells in hFGOs. Scale bars, 10 urn. Error bars represent s.d.
  • AO acridine orange
  • FIG 15. Serial passaging of human gastric organoids, a, Schematic representation of experiments to determine the presence of gastric stem cells in hGOs. b, When fragments were grown in culture medium containing only EGF, they did not grow or expand to form new organoids. However, addition of CHIR and FGF10 to the culture medium was sufficient to support the growth of individual fragments into newly formed organoids, c, Following two passages, hFGOs still expressed genes consistent with a gastric phenotype, including PGC, MUC6, MUC5AC, and GHRL.
  • hFGOs contain cells with properties analogous to those of adult gastric stem cells, d, Although passaged hFGOs expressed markers associated with several differentiated gastric cell types, they did not express genes associated with parietal cells such as ATP4B. Further, differentiation of parietal cells could not be induced through MEK inhibition as they could prior to passaging. Error bars represent s.d.
  • gastric fundus tissue means a fundic type of gastric epithelium found in the corpus that contains fundic cell types, including but not limited to acid-producing parietal cells and protease- producing chief cells.
  • DE cell means one of the three primary germ layers produced by the process of gastrulation.
  • wnt signalling pathway means the wnt/beta- catenin pathway and is a signal transduction pathway that is mediated by Wnt ligands and frizzled cell surface receptors that acts through the beta-catenin protein.
  • activator with respect to a pathway, such as a "wnt pathway” means a substance that activates the Wnt/beta-catenin pathway such that Wnt/beta-catenin targets are increased.
  • FGF signaling pathway activator means a substance that activates the FGF pathway such that FGF targets are increased.
  • BMP signalling pathway inhibitor a
  • growth factor means a substance capable of stimulating cellular processes including but not limited to growth, proliferation, morphogenesis or differentiation.
  • fundic lineage means cell types found in fundic epithelium in the corpus stomach.
  • SOX2+GATA+PDX1- epithelium means epithelium that expresses the listed proteins.
  • stable expression of a marker means expression that does not change upon modification of the growth environment.
  • totipotent stem cells are stem cells that can differentiate into embryonic and extra-embryonic cell types. Such cells can construct a complete, viable, organism. These cells are produced from the fusion of an egg and sperm cell. Cells produced by the first few divisions of the fertilized egg are also totipotent.
  • pluripotent stem cells encompasses any cells that can differentiate into nearly all cells, i.e., cells derived from any of the three germ layers (germinal epithelium), including endoderm (interior stomach lining, gastrointestinal tract, the lungs), mesoderm (muscle, bone, blood, urogenital), and ectoderm (epidermal tissues and nervous system).
  • PSCs can be the descendants of totipotent cells, derived from embryos (including embryonic germ cells) or obtained through induction of a non-pluripotent cell, such as an adult somatic cell, by forcing the expression of certain genes.
  • iPSCs induced pluripotent stem cells
  • iPS cells also commonly abbreviated as iPS cells
  • iPS cells refers to a type of pluripotent stem cells artificially derived from a normally non-pluripotent cell, such as an adult somatic cell, by inducing a "forced" expression of certain genes.
  • a precursor cell encompasses any cells that can be used in methods described herein, through which one or more precursor cells acquire the ability to renew itself or differentiate into one or more specialized cell types.
  • a precursor cell is pluripotent or has the capacity to becoming pluripotent.
  • the precursor cells are subjected to the treatment of external factors (e.g., growth factors) to acquire pluripotency.
  • a precursor cell can be a totipotent stem cell; a pluripotent stem cell (induced or non-induced); a multipotent stem cell; and a unipotent stem cell.
  • a precursor cell can be from an embryo, an infant, a child, or an adult. In some embodiments, a precursor cell can be a somatic cell subject to treatment such that pluripotency is conferred via genetic manipulation or protein/peptide treatment.
  • cellular differentiation is the process by which a less specialized cell becomes a more specialized cell type.
  • directed differentiation describes a process through which a less specialized cell becomes a particular specialized target cell type.
  • the particularity of the specialized target cell type can be determined by any applicable methods that can be used to define or alter the destiny of the initial cell. Exemplary methods include but are not limited to genetic manipulation, chemical treatment, protein treatment, and nucleic acid treatment.
  • cellular constituents are individual genes, proteins, mRNA expressing genes, and/or any other variable cellular component or protein activities such as the degree of protein modification (e.g., phosphorylation), for example, that is typically measured in biological experiments (e.g., by microarray or
  • pluripotent stem cells are derived from embryonic stem cells, which are in turn derived from totipotent cells of the early mammalian embryo and are capable of unlimited, undifferentiated proliferation in vitro.
  • Embryonic stem cells are pluripotent stem cells derived from the inner cell mass of the blastocyst, an early-stage embryo. Methods for deriving embryonic stem cells from blastocytes are well known in the art. Human embryonic stem cells H9 (H9- hESCs) are used in the exemplary embodiments described in the present application, but it would be understood by one of skill in the art that the methods and systems described herein are applicable to any stem cells.
  • Additional stem cells that can be used in embodiments in accordance with the present invention include but are not limited to those provided by or described in the database hosted by the National Stem Cell Bank (NSCB), Human Embryonic Stem Cell Research Center at the
  • Exemplary embryonic stem cells that can be used in embodiments in accordance with the present invention include but are not limited to SA01 (SA001); SA02 (SA002); ES01 (HES-1); ES02 (HES-2); ES03 (HES-3); ES04 (HES- 4); ES05 (HES-5); ES06 (HES-6); BGOl (BGN-01); BG02 (BGN-02); BG03 (BGN-03); TE03 (13); TE04 (14); TE06 (16); UCOl (HSF1); UC06 (HSF6); WA01 (HI); WA07 (H7); WA09 (H9); WA13 (H13); WA14 (HI 4).
  • embryonic stem cells More details on embryonic stem cells can be found in, for example,
  • iPSCs Induced Pluripotent Stem Cells
  • iPSCs are derived by transfection of certain stem cell-associated genes into non-pluripotent cells, such as adult fibroblasts. Transfection is typically achieved through viral vectors, such as retroviruses. Transfected genes include the master transcriptional regulators Oct-3/4 (Pouf51) and Sox2, although it is suggested that other genes enhance the efficiency of induction. After 3- 4 weeks, small numbers of transfected cells begin to become morphologically and biochemically similar to pluripotent stem cells, and are typically isolated through morphological selection, doubling time, or through a reporter gene and antibiotic selection.
  • iPSCs include but are not limited to first generation iPSCs, second generation iPSCs in mice, and human induced pluripotent stem cells.
  • a retroviral system is used to transform human fibroblasts intopluripotent stem cells using four pivotal genes: Oct3/4, Sox2, Klf4, and c-Myc.
  • a lentiviral system is used to transform somatic cells with OCT4, SOX2, NANOG, and LIN28.
  • Genes whose expression are induced in iPSCs include but are not limited to Oct-3/4 (e.g., Pou5fl); certain members of the Sox gene family (e.g., Soxl, Sox2, Sox3, and Soxl5); certain members of the Klf family (e.g., Klfl, Klf2, Klf4, and Klf5), certain members of the Myc family (e.g., C-myc, L-myc, and N-myc), Nanog, and LIN28.
  • Oct-3/4 e.g., Pou5fl
  • Sox gene family e.g., Soxl, Sox2, Sox3, and Soxl5
  • Klf family e.g., Klfl, Klf2, Klf4, and Klf5
  • Myc family e.g., C-myc, L-myc, and N-myc
  • Nanog LIN28.
  • non-viral based technologies are employed to generate iPSCs.
  • an adenovirus can be used to transport the requisite four genes into the DNA of skin and liver cells of mice, resulting in cells identical to embryonic stem cells. Since the adenovirus does not combine any of its own genes with the targeted host, the danger of creating tumors is eliminated. In some
  • reprogramming can be accomplished via plasmid without any virus transfection system at all, although at very low efficiencies.
  • direct delivery of proteins is used to generate iPSCs, thus eliminating the need for viruses or genetic modification.
  • generation of mouse iPSCs is possible using a similar methodology: a repeated treatment of the cells with certain proteins channeled into the cells via poly-arginine anchors was sufficient to induce pluripotency.
  • the expression of pluripotency induction genes can also be increased by treating somatic cellswith FGF2 under low oxygen conditions.
  • embryonic stem cells More details on embryonic stem cells can be found in, for example,
  • exemplary iPS cell lines include but not limited to iPS-DF19-9; iPS-DF19-9; iPS-DF4-3; iPS-DF6-9; iPS(Foreskin); iPS(IMR90); and iPS(IMR90).
  • pluripotent cells are derived from a morula.
  • pluripotent stem cells are stem cells.
  • Stem cells used in these methods can include, but are not limited to, embryonic stem cells.
  • Embryonic stem cells can be derived from the embryonic inner cell mass or from the embryonic gonadal ridges.
  • Embryonic stem cells or germ cells can originate from a variety of animal species including, but not limited to, various mammalian species including humans.
  • human embryonic stem cells are used to produce definitive endoderm.
  • human embryonic germ cells are used to produce definitive endoderm.
  • iPSCs are used to produce definitive endoderm.
  • PSCs pluripotent stem cells
  • Applicant first identified, and then recapitulated key events in embryonic fundus development to arrive at the claimed compositions.
  • Applicant found that disruption of Wnt/ -catenin signaling in mouse embryos led to conversion of fundic to antral epithelium, while ⁇ - catenin activation in hPSC-derived foregut progenitors promoted the development of human fundic-type gastric organoids (hFGOs).
  • hFGOs human fundic-type gastric organoids
  • hFGOs to identify temporally distinct roles for multiple signaling pathways in epithelial morphogenesis and differentiation of fundic cell types, including chief cells and functional parietal cells. While hFGOs are a powerful new model for studying the development of the human fundus and its lineages, they also represent a critical new model system to study the molecular basis of human gastric physiology, pathophysiology, and drug discovery.
  • an in vitro method of inducing formation of a gastric fundus tissue may comprise the steps of: [0051] a) contacting a mammalian definitive endoderm (DE) cell with a wnt pathway activator, an FGF signaling pathway activator (for example, FGF4), a BMP signalling pathway inhibitor (e.g., Noggin), and retinoic acid, for a first period.
  • Wnt signalling may be activated either with a protein like Wnt3a, for example, or via a chemical like Chiron, for example, which inhibits GSK3 .
  • the first period may be three days ⁇ 24 hours.
  • the retinoic acid may be added for the third day of the first period ⁇ 24 hours.
  • the first period may be carried out for a period of time sufficient to form a three-dimensional posterior foregut spheroid from the definitive endoderm.
  • the second period may be three days ⁇ 24 hours.
  • the second period may be carried out for a period of time sufficient to induce a fundic lineage comprising fundal hGOs (hFGOs).
  • step b) culturing the hFGOs of step b) with a wnt pathway activator and a
  • the third period may be, for example, 11 days ⁇ 24 hours.
  • the fourth period may be, for example, 10 days ⁇ 24 hours.
  • step e) contacting said hFGOs of step d with a MEK inhibitor for a fifth period.
  • the MEK inhibitor may be, for example, PD0325901.
  • the fifth period may be for a two-day period ⁇ 24 hours, or for a period of time sufficient to form a gastric fundus tissue comprising a functional fundic cell type.
  • step e) may further comprise the step of contacting the fundal hGOs with an activator of BMP4 signalling.
  • step e may be carried out for a period of time sufficient to develop SOX2+GATA+PDX1 - epithelium.
  • the functional fundic cell type may be a parietal cell that expresses proton pump proteins and secretes acid. In one aspect, the functional fundic cell type may be a chief cell that secretes pepsinogen.
  • step d and step e are carried out for a period of time sufficient to confer stable expression of lineage markers MUC5AC, MUC6, PGC, and GHRL.
  • the definitive endoderm may be derived from a
  • precursor cell selected from an embryonic stem cell, an embryonic germ cell, an induced pluripotent stem cell, a mesoderm cell, a definitive endoderm cell, a posterior endoderm cell, a posterior endoderm cell, and a hindgut cell, a definitive endoderm derived from a pluripotent stem cell, a definitive endoderm derived from a pluripotent stem cell selected from an embryonic stem cell, an adult stem cell, or an induced pluripotent stem cell.
  • the definitive endoderm may be derived from contacting a pluripotent stem cell with one or more molecules selected from Activin, the BMP subgroups of the TGF-beta superfamily of growth factors; Nodal, Activin A, Activin B, BMP4, Wnt3a, and combinations thereof.
  • Wnt/beta-catenin pathway activators There are many ways to activate the Wnt/beta-catenin pathway (see http://web.stanford.edu/group/nusselab/cgi-bin/wnt/). Suitable Some existing wnt signalling pathway activators include but are not limited to: [0062] Protein-based activators: Wnt ligands including but not limited to
  • Porcupine inhibiting beta-catenin degredation APC and GSK3beta inhibition, activated beta-catenin, constitutively active TCF/Lef proteins.
  • Chemical activators there are over 28 known chemicals that either activate or inhibit Wnt/beta-catenin signaling. Some activators include but are not limited to GSK3-beta inhibitors CHIR99021, BIO, LY2090314, SB-216763, lithium, porcupine inhibitors IWP, LGK974, C59, SFRP inhibitor WAY-316606, beta-catenin activator DCA.
  • the WNT pathway activator may be one or more
  • Wntl molecules selected from Wntl, Wnt2, Wnt2b, Wnt3, Wnt3a, Wnt4, Wnt5a, Wnt5b, Wnt6, Wnt7a, Wnt7b, Wnt8a, Wnt8b, Wnt9a, Wnt9b, WntlOa, WntlOb, Wntl l, and Wntl6, for example, Wnt3a, or for example, Wnt3a at a concentration between about 50 to about 1500 ng/ml.
  • Suitable FGF signalling pathway activators include: FGF ligands
  • FGF2 4, 5, 8, et al. Activated forms of FGF receptors. Proteins and chemicals that stimulate the FGF receptor and signaling components downstream of the receptors including MAPK, MEK, ERK proteins and chemicals that modulate their activity. FGF signaling can be activated by inhibiting inhibitors of FGF signaling pathways including but not limited to Sprouty protein family members.
  • the BMP signalling pathway inhibitor may be selected from Noggin, Dorsomorphin, LDN189, DMH-1, and combinations thereof, for example, wherein said precursor cell may be contacted with a BMP inhibitor at a concentration between about 50 to about 1500 ng/ml.
  • the steps are conducted in vitro.
  • composition comprising gastric tissue produced
  • the gastric tissue may be characterized, for example, by being free of innervation and/or blood vessels.
  • an in vitro method of inducing formation of a gastric fundus tissue may comprise the steps of contacting a fundal hGO (hFGO) with a wnt pathway activating agent and an EGF signalling pathway activating agent for a first period, and a MEK inhibitor for a second period, (wherein said MEK inhibitor may be PD0325901), wherein said first and second periods are carried out for a period of time sufficient to form a functional fundic cell type;
  • hFGO fundal hGO
  • MEK inhibitor may be PD0325901
  • said hFGO are obtained by contacting a three-dimensional posterior foregut spheroid in a basement membrane matrix with a growth factor, a wnt pathway activating agent, an EGF signalling pathway activator, a BMP signalling pathway inhibitor, and retinoic acid for a period of time sufficient to convert said three-dimensional posterior foregut spheroid to said hFGO;
  • a mammalian definitive endoderm (DE) cells obtained by contacting a mammalian definitive endoderm (DE) cells with a wnt pathway activating agent, an FGF signaling pathway activating agent, a BMP signalling pathway inhibitor, and retinoic acid.
  • DE definitive endoderm
  • Organoids have proven to be powerful experimental models that combine architectural complexity and cellular diversity with the tractability and scalability of traditional cell culture methods.
  • Organoid generation through directed differentiation of pluripotent stem cells (PSCs; comprising both embryonic stem cells and induced PSCs) offers several advantages over other approaches including an unlimited source of starting material, no requirement for surgical acquisition of tissue, and ease of genetic manipulations.
  • PSC-based methods permit direct investigation of mechanisms underlying normal and aberrant human development 3 .
  • differentiating PSCs into specific organoid types depends on a robust molecular knowledge of normal organ development. For some organs, such as the stomach, there are large gaps in understanding of molecular pathways that drive embryonic development.
  • the stomach is one of the most structurally diverse organs among mammals 4 .
  • the gastric mucosa generally consists of two types of epithelial glands 5 6 .
  • oxyntic glands comprise acid-secreting parietal cells, protease-producing chief cells, mucus-producing cells, and endocrine cells.
  • the terms 'fundus' and 'antrum' are used to broadly describe these two histologic types of gastric epithelia.
  • Applicant has previously developed a method to direct the
  • hPSCs three-dimensional gastric tissue
  • human gastric organoids human gastric organoids
  • hAGOs antral hGOs
  • Noguchi et. al. successfully differentiated mouse ESCs into organoids comprising various types of mouse gastric tissue 8 .
  • this approach used mouse ESC aggregation and spontaneous differentiation resulting in organoids that were heterogeneous, evidenced by the presence of stratified epithelia.
  • species differences make the mouse stomach suboptimal for modeling human gastric disease 9 .
  • a robust and efficient PSC- derived model of the human fundus epithelium would represent a significant advance in the field of gastric biology.
  • Embryonic organ development is guided by a series of instructive cues between neighboring tissues 10 11 , and differentiation of hPSCs into specific lineages has relied heavily on use of these signals to direct differentiation in vitro.
  • Applicant previously identified a step-wise differentiation approach to generate hAGOs, whereby hPSCs were differentiated into definitive endoderm, patterned to posterior foregut, then specified into presumptive antral epithelium 7 .
  • Applicant hypothesized that the fundus and antrum derive from a common population of posterior foregut progenitors, which could be directed toward the fundic lineage if provided with the appropriate signals.
  • Applicant first had to identify signaling pathways that pattern the embryonic stomach along the proximal-distal axis.
  • GSM326648-GSM32665012 and GSM80809-GMS8081613 dissected regions of the E14.5 foregut to demonstrate that expression of the transcription factors Irx2, Irx3, and Irx5 was greater than tenfold enriched in the embryonic fundus compared to antrum (FIG 6, b- c), indicating that their expression can further distinguish between regions of the glandular gastric epithelium.
  • Ectopic Pdxl was initially restricted to the ventral half of the fundic epithelium, consistent with previously reported recombination activity using this Shh-cre line 16 , but it then expanded over time to include a majority of the proximal stomach and greater curvature by El 4.5 (FIG 7, a). Additionally, expression of the fundus markers Irx2, Irx3, and Irx5 were dramatically reduced in the cKO embryos (FIG 7, b).
  • Parietal cells a fundic cell type marked by expression ofAtp4b, were reduced in the CKO stomach (FIG 1, d) and completely absent in ⁇ -catenin deficient epithelium (FIG 1, e). In contrast, the parietal cells that did develop were only observed in ⁇ -catenin-expressing epithelium (FIG 1, e and FIG 7, d-e). Taken together, these in vivo data support a model by which Wnt/ ⁇ - catenin signaling induces fundus specification and inhibits antral identity. Further, disruption of this early patterning coincides with subsequent cell autonomous loss of parietal cells, suggesting that cytodifferentiation is impaired secondary to developmental patterning defects.
  • Applicant next investigated the role of Wnt p-catenin signaling in establishing fundic-antral partem of the developing human stomach.
  • Applicant started with a previously described protocol for differentiating hPSCs into antrum-like gastric organoids, which recapitulates the normal stages of early gastric development with high fidelity 7 .
  • Applicant then sought to determine whether CHIR-treated spheroids would further develop into more mature hGOs containing a fundus-like epithelium. Interestingly, a three-day pulse of CHIR from days 6-9 was not sufficient to irreversibly specify a fundic identity, as the hGOs ultimately reverted to a PDX1+ antral phenotype at later stages.
  • CDX2 remained suppressed despite Wnt/ -catenin activation due to concomitant inhibition of BMP signaling, as replacing Noggin with BMP4 led to robust expression of the intestinal transcription factor (FIG 9, c).
  • hAGOs underwent a similar progression of morphologic and cellular development?.
  • CHIR-treated hFGOs grew at a similar rate and efficiency compared to hAGOs, as 75-90% of all spheroids plated grew into organoids (FIG 8, d).
  • the organoids maintained their respective gastric identities throughout their development (FIG 8, b-c).
  • hFGOs and hAGOs comprised CDH 1 +CTN B 1 +KRT8+ polarized, columnar epithelia that ubiquitously expressed the gastric-specific 17 claudin CLDN 18 (FIG
  • hFGOs had a distinctive architecture with organized glands that bud from the organoid epithelium (FIG 2, d-e and FIG 10, a), while hAGOs had complex folding and primitive gland-like organization but rarely glandular buds 7 .
  • the novel Wnt/ -catenin dependent mechanism of specifying fundus is conserved in humans and can be manipulated to generate three-dimensional hFGOs with a glandular epithelium that molecularly resembles the developing fundus.
  • hFGOs Differentiated antral gastric cell types were first detected in hAGOs around day 27 and then increased by day 34 7 , analogous to the first few weeks of postnatal development in the mouse stomach 18 .
  • day 34 hFGOs contained both MUC5AC+ surface mucous cells and MUC6+ mucous neck cells as expected, similar to the hAGOs (FIG 3, a-b and FIG 11, a).
  • hFGOs also formed a variety of endocrine cell types (FIG
  • zymogen granule-containing cells 22 were identified by TEM (FIG 4, d) but were rare. In contrast, cells with a more immature mucous granule partem were abundant (FIG 11, b). Since chief cells in vivo do not exhibit robust pepsinogen expression for the first few weeks of life (FIG 12, a-b), Applicant concluded that the chief cells were present in hFGOs but were immature. hFGOs therefore represent a robust platform to dissect the intrinsic and extrinsic mechanisms that regulate chief cell maturation.
  • PCs the defining cell type of fundic glands that acidify the gastric lumen via the proton pump (consisting of ATP4A and ATP4B subunits).
  • Identification of efficient methods to increase PC populations has remained elusive due to a lack of understanding of the signaling mechanisms that drive their development. Applicant therefore used PSC-derived hFGOs as a platform to functionally screen candidate signaling pathways for a role in regulating PC
  • hFGOs produced a swift and marked decrease in luminal pH in response to histamine that was blocked by either the H2 antagonist famotidine or the H+K+- ATPase antagonist omeprazole (FIG 5, f and FIG 14, b).
  • H2 antagonist famotidine or the H+K+- ATPase antagonist omeprazole (FIG 5, f and FIG 14, b).
  • AO acridine orange
  • hFGOs Re- growth of organoids from passaged hFGOs was dependent on high Wnt and high FGF culture medium, similar to what is used to grow primary gastric tissue organoids 24 ' 25 . Following two rounds of passaging, hFGOs maintained expression of lineage markers
  • Applicant has defined a novel function of Wnt/ ⁇ - catenin signaling in specifying the fundic domain during stomach development in mice, and used Wnt modulation as the mechanistic basis to direct differentiation of hPSCs into three-dimensional human fundic organoids.
  • Wnt-mediated fundus specification was led to the subsequent formation of PCs.
  • the fundus- specific manipulations at each stage of this directed differentiation protocol led to robust PC induction (FIG 13, f).
  • Previous reports identified that the mesenchymal factor Barxl indirectly acts to repress Wnt signaling and that helps to prevent intestinal gene expression in the stomach 14 15 .
  • Wnt/ -catenin may have distinct roles in the epithelium versus mesenchyme.
  • the mesenchymal role for Wnt/ -catenin could modulate other signaling pathways such as BMP 27 , which our data show synergizes with Wnt to promote intestinal specification from early endoderm (FIG 7 and FIG 9, c)
  • BMP 27 our data show synergizes with Wnt to promote intestinal specification from early endoderm (FIG 7 and FIG 9, c)
  • the human gastric organoid systems might be useful, in combination with animal models, to dissect how these signaling pathways interact in the mesenchyme and epithelium to coordinate early embryonic gastrointestinal development.
  • the following genetic mouse strains were obtained from The Jackson Laboratory, housed at Cincinnati Children's Hospital Research Foundation animal facility, and maintained according to IACUC protocol (0B09074): Axin2:LacZ (stock no. 009120), Shh:Cre (stock no. 005622), and ⁇ -cateninfloxed (stock no. 004152).
  • Human embryonic stem cell line WA01 (HI ; obtained from WiCell) was supplied by the Pluripotent Stem Cell Facility at Cincinnati Children's Hospital Medical Center. Cell identity was confirmed by short tandem repeat analysis (Microsatellite STR Analysis; Applied Biosystems), and cells were routinely tested for mycoplasma contamination (MycoAlert Mycoplasma Detection Kit; Lonza).
  • Pluripotent cells were maintained in feeder-free conditions on HESC-qualified Matrigel (BD Biosciences) in mTesRl media (Stem Cell Technologies). Colonies were passaged every four days using dispase (Invitrogen).
  • DE was differentiated to posterior foregut endoderm by exposing cells to CHIR99021 (2 ⁇ ; Stemgent), FGF4 (500 ng/ml; R&D Systems), and Noggin (200 ng/ml; R&D systems) for three days in RPMI 1640 supplemented with NEAA and 2.0%) dFBS.
  • Retinoic acid (2 ⁇ ; Sigma Aldrich) was added for the final day. Media was changed every day. This process resulted in the spontaneous formation of three-dimensional posterior foregut spheroids.
  • Table 1 Differentiation protocol for fundic hGOs. Activin A (100 ng/ml; R&D Systems), CHIR99021 (2 uM; Stemgent), FGF4 (500 ng/ml; R&D systems), PD0325901 (2 uM; Stemgent), BMP4
  • Posterior foregut spheroids were collected and transferred to a three- dimensional culture system as previously described 36 . Briefly, spheroids were suspended in 50 ⁇ Matrigel (BD Biosciences) and plated as a droplet into 24-well plates. The matrigel was allowed to solidify for 10 minutes in the tissue culture incubator, then overlay ed with basic gut media (BGM) containing growth factors and/or small molecule agonsists.
  • BGM basic gut media
  • BGM consisted of Advanced DMEM/F12 media (Gibco) supplemented with N2 (IX; Invitrogen), B27 (IX; Invitrogen), HEPES (10 ⁇ ; Gibco), L-glutamine, penicillin/streptomycin, and EGF (100 ng/ml; R&D Systems).
  • N2 IX; Invitrogen
  • B27 IX; Invitrogen
  • HEPES 10 ⁇ ; Gibco
  • L-glutamine penicillin/streptomycin
  • EGF 100 ng/ml; R&D Systems
  • FGF10 50 ng/ml; R&D Systems
  • FGF10 50 ng/ml; R&D Systems
  • CHIR glandular morphogenesis driven by CHIR (data not shown).
  • organoids were collected and re-plated at a dilution of 1 : 10-1 :20.
  • hFGOs were grown to day 30, then exposed for two days to individual signaling pathway agonists and antagonists: DAPT (1 ⁇ ; Stemgent), SB431542 (10 ⁇ ; Stemgent), BMP4 (50 ng/ml; R&D Systems), PD0325901 (2 uM; Stemgent), Gastrin (10 nM; Sigma Aldrich), Dexamethasone (50 nM; Sigma Aldrich), and Wnt5a (50 ng/ml; R&D Systems). Following treatment, hFGOs were grown for two more days to day 34, then analyzed by qPCR.
  • hMUC6 forward 5 ' -C AGC AGGAGGAGATC ACGTTC AAG-3 ' , reverse 5 ' -GTGGGTGTTTTCCTGTCTGTC ATC-3 ' ;
  • Tissues were fixed in 4% paraformaldehyde overnight at 4°C, then washed thoroughly in PBS.
  • embryos were processed as previously described37. Briefly, they were permeabilized in Dent's Bleach (4: 1 : 1 EtOH: DMSO: 30% H202) for two hours at room temperature and rehydrated through series of methanol washes. Embryos were then blocked for one hour, incubated in primary antibody overnight at 4°C, washed in PBS, incubated in primary antibody overnight at 4°C, and thoroughly washed.
  • For paraffin embedding tissues were dehydrated through series of ethanol washes, washed in xylene, then embedded in paraffin.
  • slides were deparaffinized and rehydrated. Antigen retrieval was performed in citrate buffer for 45 minutes in steamer. Primary antibodies were incubated overnight at 4°C. Following primary antibody, slides were washed in PBS then incubated with secondary antibody (at dilution of 1:500) for one hour at room temperature. Secondary antibodies (Jackson ImmunoResearch Laboratories) were made in donkey and conjugated to Alexa Fluor 488, 594, or 647.
  • Antibodies used for immunofluorescent staining are listed with antigen, host species, manufacturer and catalogue number, and dilution used for staining.
  • Atp4b rabbit, Santa Cruz sc84304, 1 :500; Cdhl, goat, R&D Systems AF648, 1 :500; Cdhl, mouse, BD Biosciences 610182, 1 :500; Cdx2, mouse, Biogenex MU392A, 1:500, Cldnl8, rabbit, Sigma HP AO 18446, 1 :200; Ctnnbl, rabbit, Santa Cruz sc7190, 1: 100; FoxFl, goat, R&D Systems F4798, 1 :500, Gastrin, rabbit, Dako A0568, 1 : 1,000; Gata4, goat, Santa Cruz scl237, 1 :200; Gif, rabbit, Sigma HP A040774, 1 : 100; Ghrl, goat, Santa Cruz scl0368, 1:200; His
  • Confocal imaging was performed on Nikon AlRsi inverted confocal microscope.
  • embryos were dehydrated in methanol and cleared in Murray's clear (2: 1 benzyl benzoate: benzyl alcohol) just prior to imaging. After staining, slides were mounted with Fluoromount G (SouthernBiotech), and air-dried overnight at room temperature.
  • hGOs were processed as previously described7. Briefly, organoids were fixed in 3% glutaraldehyde, washed in 0.1 M sodium cacodylate buffer, and incubated for one hour 4% osmium tetroxide. They were subsequently washed then dehydrated in ethanol series, and finally embedded in propylene oxide/LX112. Tissue was then sectioned and stained with 2% uranyl acetate followed by lead citrate. Images were visualized on Hitachi transmission electron microscope.
  • Pepsinogen ELISA was performed using the Human Pepsinogen I (PGI) ELISA
  • hGOs were grown in the chambered coverglass (Thermo Scientific) and the chamber was placed on an inverted confocal microscope (Zeiss LSM 710), and experiments were performed under 5% C02 and 37°C conditions (incubation chamber, PeCon, Erbach, Germany).
  • Histamine 100 ⁇ ; Sigma was added to media, while famotidine (100 ⁇ ; Sigma) or omeprazole (100 ⁇ ; Sigma) were pre-incubated at least 30 min before histamine. Images were analyzed using MetaMorph software (Molecular Devices, Downingtown, PA). Background corrected 620-680/565-605 nm ratio values were converted to pH using a standard curve.
  • a gastric fundus tissue is generated in vitro, comprising the following steps:
  • a mammalian definitive endoderm (DE) cell is contacted with a wnt pathway activator, an FGF signaling pathway activator (for example, FGF4), a BMP signalling pathway inhibitor (e.g., Noggin), and retinoic acid, for a first period, wherein the first period is sufficient to form a three-dimensional posterior foregut spheroid from said definitive endoderm;
  • a wnt pathway activator for example, FGF4
  • BMP signalling pathway inhibitor e.g., Noggin
  • retinoic acid for a first period, wherein the first period is sufficient to form a three-dimensional posterior foregut spheroid from said definitive endoderm
  • a basement membrane matrix for example, Matrigel
  • step b) the hFGOs of step b) are cultured in the presence of wnt pathway activator and EGF signalling pathway activator for a third period
  • step c the hFGOs of step c are cultured with wnt singalling pathway
  • Example 2 The method of Example 1, wherein said first period is three days ⁇ 24 hours and wherein said retinoic acid is added for the third day of said period ⁇ 24 hours
  • Example 3 The method of any preceding example, wherein said
  • second period is three days ⁇ 24 hours
  • Example 4 The method of any preceding example, wherein said third period is 11 days ⁇ 24 hours
  • Example 5 The method of any preceding example, wherein said fourth period is 10 days ⁇ 24 hours
  • Example 6 The method of any preceding example, wherein said fifth period is a two day period ⁇ 24 hours
  • Example 7 The method of any preceding example, wherein step e) further comprises the step of contacting said fundal hGOs with an activator of BMP4 signalling.
  • Example 8 The method of any preceding example, wherein said
  • functional fundic cell type is a parietal cell that expresses proton pump proteins and secretes acid.
  • Example 9 The method of any preceding example, wherein said
  • Example 10 The method of any preceding example, wherein said step e is carried out for a period of time sufficient to develop SOX2+GATA+PDX1 - epithelium.
  • Example 11 The method of any preceding example, wherein said step d and step e are carried out for a period of time sufficient to confer stable expression of lineage markers MUC5AC, MUC6, PGC, and GHRL. [00175] Example 12.
  • said definitive endoderm is derived from a precursor cell selected from an embryonic stem cell, an embryonic germ cell, an induced pluripotent stem cell, a mesoderm cell, a definitive endoderm cell, a posterior endoderm cell, a posterior endoderm cell, and a hindgut cell, a definitive endoderm derived from a pluripotent stem cell, a definitive endoderm derived from a pluripotent stem cell selected from an embryonic stem cell, an adult stem cell, or an induced pluripotent stem cell.
  • Example 13 The method of any preceding example, wherein said definitive endoderm is derived from contacting a pluripotent stem cell with one or more molecules selected from Activin, the BMP subgroups of the TGF-beta superfamily of growth factors; Nodal, Activin A, Activin B, BMP4, Wnt3a, and combinations thereof.
  • Activin the BMP subgroups of the TGF-beta superfamily of growth factors
  • Example 14 The method of any preceding example, wherein said
  • WNT pathway activator is one or more molecules selected from Wntl, Wnt2, Wnt2b, Wnt3, Wnt3a, Wnt4, Wnt5a, Wnt5b, Wnt6, Wnt7a, Wnt7b, Wnt8a, Wnt8b, Wnt9a, Wnt9b, WntlOa, WntlOb, Wntl 1, and Wntl 6, for example, Wnt3a, or for example, Wnt3a at a concentration between about 50 to about 1500 ng/ml.
  • Example 15 The method of any preceding example, wherein said
  • BMP signalling pathway inhibitor is selected from Noggin,
  • the precursor cell is contacted with a BMP inhibitor at a concentration between about 50 to about 1500 ng/ml.
  • the BMP inhibitor may be a protein and/or chemical capable of inhibiting the BMP signalling pathway.
  • Example 16 The method of any preceding example, wherein said steps are conducted in vitro.
  • Example 17 A composition comprising gastric tissue is produced according to any preceding Example. The gastric tissue is characterized by being free of innervation and/or blood vessels.
  • Example 18 A gastric fundus tissue is formed via the following steps:
  • a fundal hGO hFGO
  • a wnt pathway activating agent and an EGF signalling pathway activating agent for a first period
  • a MEK inhibitor for a second period
  • said MEK inhibitor may be, for example, PD0325901
  • said hFGO are obtained by contacting a three-dimensional posterior foregut spheroid in a basement membrane matrix with a growth factor, a wnt pathway activating agent, an EGF signalling pathway activator, a BMP signalling pathway inhibitor, and retinoic acid for a period of time sufficient to convert said three-dimensional posterior foregut spheroid to said hFGO;
  • a mammalian definitive endoderm (DE) cells obtained by contacting a mammalian definitive endoderm (DE) cells with a wnt pathway activating agent, an FGF signaling pathway activating agent, a BMP signalling pathway inhibitor, and retinoic acid.
  • DE definitive endoderm
  • stomach mesenchymal transcription factor Barxl specifies gastric epithelial identity through inhibition of transient Wnt signaling. Developmental Cell 8, 611-622 (2005).
  • stomach reveals heterogeneous gland populations in the gastric antrum.
  • the transcription factor MIST1 is a novel human gastric chief cell marker whose expression is lost in metaplasia, dysplasia, and carcinoma. Am. J. Pathol. 177, 1514-1533 (2010).
  • intestinal metaplasia as a premalignant lesion of gastric cancer. J Cancer Prev 20, 25-40 (2015).

Landscapes

  • Health & Medical Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Biomedical Technology (AREA)
  • Genetics & Genomics (AREA)
  • Zoology (AREA)
  • Organic Chemistry (AREA)
  • Biotechnology (AREA)
  • Chemical & Material Sciences (AREA)
  • Bioinformatics & Cheminformatics (AREA)
  • Wood Science & Technology (AREA)
  • Microbiology (AREA)
  • Cell Biology (AREA)
  • Biochemistry (AREA)
  • General Engineering & Computer Science (AREA)
  • General Health & Medical Sciences (AREA)
  • Developmental Biology & Embryology (AREA)
  • Reproductive Health (AREA)
  • Gynecology & Obstetrics (AREA)
  • Gastroenterology & Hepatology (AREA)
  • Micro-Organisms Or Cultivation Processes Thereof (AREA)
  • Measuring Or Testing Involving Enzymes Or Micro-Organisms (AREA)
  • Medicines Containing Material From Animals Or Micro-Organisms (AREA)
PCT/US2017/031309 2016-05-05 2017-05-05 Methods for the in vitro manufacture of gastric fundus tissue and compositions related to same Ceased WO2017192997A1 (en)

Priority Applications (11)

Application Number Priority Date Filing Date Title
CN201780024903.5A CN109415685B (zh) 2016-05-05 2017-05-05 用于体外制造胃底组织的方法和与其相关的组合物
CN202310699246.1A CN116790476A (zh) 2016-05-05 2017-05-05 用于体外制造胃底组织的方法和与其相关的组合物
US16/084,599 US11066650B2 (en) 2016-05-05 2017-05-05 Methods for the in vitro manufacture of gastric fundus tissue and compositions related to same
CA3016641A CA3016641A1 (en) 2016-05-05 2017-05-05 Methods for the in vitro manufacture of gastric fundus tissue and compositions related to same
JP2018550724A JP6963882B2 (ja) 2016-05-05 2017-05-05 胃底部組織のインビトロでの製造のための方法及び当該方法と関連した組成物
EP17793451.0A EP3452578B1 (en) 2016-05-05 2017-05-05 Methods for the in vitro manufacture of gastric fundus tissue and compositions related to same
ES17793451T ES2929758T3 (es) 2016-05-05 2017-05-05 Métodos para la fabricación in vitro de tejido del fondo gástrico y composiciones relacionadas con el mismo
EP22189427.2A EP4177335A1 (en) 2016-05-05 2017-05-05 Methods for the in vitro manufacture of gastric fundus tissue and compositions related to same
US17/375,293 US20220064602A1 (en) 2016-05-05 2021-07-14 Methods for the in vitro manufacture of gastric fundus tissue and compositions related to same
JP2021169192A JP7463326B2 (ja) 2016-05-05 2021-10-15 胃底部組織のインビトロでの製造のための方法及び当該方法と関連した組成物
JP2024050953A JP2024095710A (ja) 2016-05-05 2024-03-27 胃底部組織のインビトロでの製造のための方法及び当該方法と関連した組成物

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US201662332194P 2016-05-05 2016-05-05
US62/332,194 2016-05-05

Related Child Applications (2)

Application Number Title Priority Date Filing Date
US16/084,599 A-371-Of-International US11066650B2 (en) 2016-05-05 2017-05-05 Methods for the in vitro manufacture of gastric fundus tissue and compositions related to same
US17/375,293 Division US20220064602A1 (en) 2016-05-05 2021-07-14 Methods for the in vitro manufacture of gastric fundus tissue and compositions related to same

Publications (1)

Publication Number Publication Date
WO2017192997A1 true WO2017192997A1 (en) 2017-11-09

Family

ID=60203655

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2017/031309 Ceased WO2017192997A1 (en) 2016-05-05 2017-05-05 Methods for the in vitro manufacture of gastric fundus tissue and compositions related to same

Country Status (7)

Country Link
US (2) US11066650B2 (https=)
EP (2) EP3452578B1 (https=)
JP (3) JP6963882B2 (https=)
CN (2) CN109415685B (https=)
CA (1) CA3016641A1 (https=)
ES (1) ES2929758T3 (https=)
WO (1) WO2017192997A1 (https=)

Cited By (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US10174289B2 (en) 2014-05-28 2019-01-08 Children's Hospital Medical Center Methods and systems for converting precursor cells into gastric tissues through directed differentiation
WO2019074793A1 (en) * 2017-10-10 2019-04-18 Children's Hospital Medical Center OESOPHAGIAN TISSUE COMPOSITIONS AND / OR ORGANOIDS AND METHODS OF MAKING SAME
US10781425B2 (en) 2010-05-06 2020-09-22 Children's Hospital Medical Center Methods and systems for converting precursor cells into intestinal tissues through directed differentiation
US11066650B2 (en) 2016-05-05 2021-07-20 Children's Hospital Medical Center Methods for the in vitro manufacture of gastric fundus tissue and compositions related to same
US11584916B2 (en) 2014-10-17 2023-02-21 Children's Hospital Medical Center Method of making in vivo human small intestine organoids from pluripotent stem cells
US11767515B2 (en) 2016-12-05 2023-09-26 Children's Hospital Medical Center Colonic organoids and methods of making and using same
WO2025072803A1 (en) 2023-09-29 2025-04-03 Children's Hospital Medical Center Ntrk2 signaling-mediated alveolar capillary injury and repair
US12281334B2 (en) 2017-04-14 2025-04-22 Children's Hospital Medical Center Multi donor stem cell compositions and methods of making same
US12379372B2 (en) 2017-12-21 2025-08-05 Children's Hospital Medical Center Digitalized human organoids and methods of using same
US12414967B2 (en) 2016-11-04 2025-09-16 Children's Hospital Medical Center Compositions and methods of treating liver disease
US12421500B2 (en) 2018-07-26 2025-09-23 Children's Hospital Medical Center Hepato-biliary-pancreatic tissues and methods of making same
US12428622B2 (en) 2018-09-12 2025-09-30 Children's Hospital Medical Center Organoid compositions for the production of hematopoietic stem cells and derivatives thereof
US12497597B2 (en) 2019-05-31 2025-12-16 Children's Hospital Medical Center Methods of generating and expanding hematopoietic stem cells
US12534709B2 (en) 2019-05-31 2026-01-27 Children's Hospital Medical Center Shaped organoid compositions and methods of making same
US12600943B2 (en) 2019-02-01 2026-04-14 The University Of Hong Kong Innervated organoid compositions and methods of making same

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20140141509A1 (en) * 2011-06-23 2014-05-22 The Children's Hospital Of Philadelphia Self-Renewing Endodermal Progenitor Lines Generated from Human Pluripotent Stem Cells and Methods of Use Thereof
WO2014159356A1 (en) * 2013-03-14 2014-10-02 The Brigham And Women's Hospital, Inc. Compositions and methods for epithelial stem cell expansion and culture
US20140302491A1 (en) * 2011-10-28 2014-10-09 The Board Of Trustees Of The Leland Stanford Junior University Ex Vivo Culture, Proliferation and Expansion of Primary Tissue Organoids
WO2015183920A2 (en) * 2014-05-28 2015-12-03 Children's Hospital Medical Center Methods and systems for converting precursor cells into gastric tissues through directed differentiation

Family Cites Families (285)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE1095990B (de) 1957-08-22 1960-12-29 Chemiewerk Homburg Zweignieder Verfahren zur Herstellung von wasserloeslichen Praeparaten und konzentrierten, bestaendigen waessrigen Loesungen von Digoxin
AU9031591A (en) 1990-10-29 1992-05-26 Regents Of The University Of Minnesota A bioartificial liver
US5523226A (en) 1993-05-14 1996-06-04 Biotechnology Research And Development Corp. Transgenic swine compositions and methods
US5912227A (en) 1995-01-27 1999-06-15 North Carolina State University Method of enhancing nutrient uptake
WO1998021312A1 (en) 1996-11-08 1998-05-22 Rpms Technology Limited Human hepatocytes in three-dimensional support systems
US7291626B1 (en) 1998-04-09 2007-11-06 John Hopkins University School Of Medicine Inhibitors of hedgehog signaling pathways, compositions and uses related thereto
US20010041964A1 (en) 1998-09-14 2001-11-15 George M. Grass Pharmacokinetic-based drug design tool and method
US7759113B2 (en) 1999-04-30 2010-07-20 The General Hospital Corporation Fabrication of tissue lamina using microfabricated two-dimensional molds
US6607501B2 (en) 2001-05-14 2003-08-19 Reynolds G. Gorsuch Process and apparatus for utilization of in vivo extracted plasma with tissue engineering devices, bioreactors, artificial organs, and cell therapy applications
AU2002367580A1 (en) 2001-05-16 2003-09-22 Tracy C. Grikscheit Tissue-engineered organs
IL162131A0 (en) 2001-12-07 2005-11-20 Geron Corp Islet cells from human embryonic stem cells
US20050170506A1 (en) 2002-01-16 2005-08-04 Primegen Biotech Llc Therapeutic reprogramming, hybrid stem cells and maturation
US20030187515A1 (en) 2002-03-26 2003-10-02 Hariri Robert J. Collagen biofabric and methods of preparing and using the collagen biofabric
US7160719B2 (en) 2002-06-07 2007-01-09 Mayo Foundation For Medical Education And Research Bioartificial liver system
WO2004020614A1 (ja) 2002-08-28 2004-03-11 Asahi Medical Co., Ltd. 異形断面中空糸膜型細胞含有デバイス
TW571101B (en) 2003-01-21 2004-01-11 Ind Tech Res Inst Fluid analysis apparatus
WO2004071573A2 (en) 2003-02-07 2004-08-26 The Johns Hopkins University Hypoxia induced mitogenic factor
EP1595867A4 (en) 2003-02-10 2008-05-21 Banyu Pharma Co Ltd PIPERIDINE DERIVATIVES AS AN ACTIVE ANTAGONIST AT THE RECIPE OF MELANIN CONCENTRATING HORMONE
DE10362002B4 (de) 2003-06-23 2006-10-12 Fraunhofer-Gesellschaft zur Förderung der angewandten Forschung e.V. Adulte pluripotente Stammzellen
US8647873B2 (en) 2004-04-27 2014-02-11 Viacyte, Inc. PDX1 expressing endoderm
US7541185B2 (en) 2003-12-23 2009-06-02 Cythera, Inc. Methods for identifying factors for differentiating definitive endoderm
US7985585B2 (en) 2004-07-09 2011-07-26 Viacyte, Inc. Preprimitive streak and mesendoderm cells
US7625753B2 (en) 2003-12-23 2009-12-01 Cythera, Inc. Expansion of definitive endoderm cells
US20050266554A1 (en) 2004-04-27 2005-12-01 D Amour Kevin A PDX1 expressing endoderm
US8586357B2 (en) 2003-12-23 2013-11-19 Viacyte, Inc. Markers of definitive endoderm
CN103898047B (zh) 2003-12-23 2020-03-03 维亚希特公司 定形内胚层
US8241905B2 (en) 2004-02-24 2012-08-14 The Curators Of The University Of Missouri Self-assembling cell aggregates and methods of making engineered tissue using the same
DE102004017476B4 (de) 2004-04-08 2009-03-26 Fraunhofer-Gesellschaft zur Förderung der angewandten Forschung e.V. Verfahren zur Herstellung einer Epithelzellen enthaltenden Zellzusammensetzung
CN103103158B (zh) 2004-04-27 2016-08-03 韦尔赛特公司 细胞培养基
JP4650608B2 (ja) 2004-05-18 2011-03-16 信越化学工業株式会社 フォトマスクブランク及びフォトマスクの製造方法
EP1747264B1 (de) 2004-05-21 2012-09-12 Fraunhofer-Gesellschaft zur Förderung der angewandten Forschung e.V. Multizelluläre gewebe- und organkultursysteme
US8410246B2 (en) 2004-06-17 2013-04-02 Thrasos, Inc. TDF-related compounds and analogs thereof
AU2005272078B2 (en) 2004-07-09 2011-04-14 Viacyte, Inc. Methods for identifying factors for differentiating definitive endoderm
MX2007000510A (es) 2004-07-12 2007-03-29 Emisphere Tech Inc Composiciones para suministrar peptido yy y agonistas de pyy.
WO2006091231A2 (en) 2004-07-21 2006-08-31 Ambrx, Inc. Biosynthetic polypeptides utilizing non-naturally encoded amino acids
US8187878B2 (en) 2004-08-13 2012-05-29 University Of Georgia Research Foundation, Inc. Methods for increasing definitive endoderm differentiation of pluripotent human embryonic stem cells with PI-3 kinase inhibitors
US20060236415A1 (en) 2005-03-09 2006-10-19 Silversides David W Neural crest cells specific promoters; isolated neural crest cells; and methods of isolating and of using same
US7604929B2 (en) 2005-04-21 2009-10-20 In Vitro Technologies, Inc. Cellular compositions and methods for their preparation
WO2006126219A1 (en) 2005-05-26 2006-11-30 Fresenius Medical Care Deutschland G.M.B.H. Liver progenitor cells
GB0517382D0 (en) 2005-08-26 2005-10-05 Plasticell Ltd Cell culture
WO2007027905A2 (en) 2005-08-31 2007-03-08 Science And Technology Corporation @ Unm Human renal stem cells
WO2007051038A2 (en) 2005-10-27 2007-05-03 Cythera, Inc. Pdx1-expressing dorsal and ventral foregut endoderm
US7927869B2 (en) 2005-11-29 2011-04-19 Spencer Z Rosero System and method for supporting a biological chip device
US20070239083A1 (en) 2006-01-18 2007-10-11 Axel Voss Shock wave generators
US20070238169A1 (en) 2006-04-11 2007-10-11 The Board Of Trustees Of The Leland Stanford Junior University Cell sorter and culture system
US8685730B2 (en) 2006-05-02 2014-04-01 Wisconsin Alumni Research Foundation Methods and devices for differentiating pluripotent stem cells into cells of the pancreatic lineage
WO2007136707A2 (en) 2006-05-17 2007-11-29 University Of Utah Research Foundation Methods and compositions related to eosinophil regulation
PT2040713E (pt) 2006-06-27 2014-10-13 Intercept Pharmaceuticals Inc Para a prevenção ou o tratamento de doenças ou estados clínicos mediados por fxr
EP2046266A4 (en) 2006-07-21 2009-11-04 Massachusetts Inst Technology ENDMODICIFIED POLY (BETA AMINO ESTER) AND ITS USE
US8497240B2 (en) 2006-08-17 2013-07-30 Amylin Pharmaceuticals, Llc DPP-IV resistant GIP hybrid polypeptides with selectable properties
WO2008075339A2 (en) 2006-12-18 2008-06-26 Ben Gurion University Of The Negev Scaffolding for tissue regeneration or repair
FR2917425B1 (fr) 2007-06-18 2010-11-19 Univ Nancy 1 Henri Poincare Procede de proliferation de cellules sur des multicouches de polyelectrolytes et son application, notamment a la preparation de biomateriaux cellularises
EP2022848A1 (en) 2007-08-10 2009-02-11 Hubrecht Institut A method for identifying, expanding, and removing adult stem cells and cancer stem cells
US7695963B2 (en) 2007-09-24 2010-04-13 Cythera, Inc. Methods for increasing definitive endoderm production
EP2235161A1 (en) 2007-12-11 2010-10-06 Research Development Foundation Small molecules for neuronal differentiation of embryonic stem cells
AU2009203893B2 (en) 2008-01-08 2014-10-02 The University Of Queensland Method of producing a population of cells
US20110218512A1 (en) 2008-06-03 2011-09-08 Aethlon Medical, Inc. Enhanced antiviral therapy methods and devices
WO2009146911A2 (en) 2008-06-04 2009-12-10 Uwe Marx Organ-on-a-chip-device
JP5624981B2 (ja) 2008-06-24 2014-11-12 ザ・キュレーターズ・オブ・ザ・ユニバーシティ・オブ・ミズーリThe Curators Ofthe University Of Missouri 自己集合性多細胞体、および前記多細胞体を用いて3次元の生物構造体を作製する方法
US20130115673A1 (en) 2008-07-16 2013-05-09 Biotime, Inc. Methods of Screening Embryonic Progenitor Cell Lines
US20110294735A1 (en) 2008-11-05 2011-12-01 Merck Sharp & Dohme Corp. Mechanism of neuromedin u action and uses thereof
JP5351601B2 (ja) 2008-12-26 2013-11-27 矢崎総業株式会社 絶縁キャップの製造方法及び絶縁キャップの製造装置
EP2393917B1 (en) 2009-02-03 2016-04-06 Koninklijke Nederlandse Akademie van Wetenschappen Culture medium for epithelial stem cells and organoids comprising said stem cells.
EP2412800A1 (en) 2010-07-29 2012-02-01 Koninklijke Nederlandse Akademie van Wetenschappen Liver organoid, uses thereof and culture method for obtaining them
US9752124B2 (en) 2009-02-03 2017-09-05 Koninklijke Nederlandse Akademie Van Wetenschappen Culture medium for epithelial stem cells and organoids comprising the stem cells
GB201111244D0 (en) 2011-06-30 2011-08-17 Konink Nl Akademie Van Wetenschappen Knaw Culture media for stem cells
WO2010094694A1 (en) 2009-02-23 2010-08-26 F. Hoffmann-La Roche Ag Assays to predict cardiotoxicity
CN102421467B (zh) 2009-03-13 2015-04-22 梅约医学教育与研究基金会 生物人工肝
JP2012520866A (ja) 2009-03-17 2012-09-10 アプタリス・ファーマ・カナダ・インコーポレイテッド 高用量のウルソデオキシコール酸で非アルコール性脂肪性肝炎を治療する方法
WO2010127399A1 (en) 2009-05-06 2010-11-11 Walter And Eliza Hall Institute Of Medical Research Gene expression profiles and uses thereof
WO2014066811A1 (en) 2012-10-25 2014-05-01 The Johns Hopkins University Bioreducible poly (b-amino ester)s for sirna delivery
CA2762584A1 (en) 2009-05-20 2010-11-25 Cardio3 Biosciences S.A. Pharmaceutical composition for the treatment of heart diseases
US20120135519A1 (en) 2009-05-29 2012-05-31 Cellartis Ab INDUCED DERIVATION OF SPECIFIC ENDODERM FROM hPS CELL-DERIVED DEFINITIVE ENDODERM
WO2010143747A1 (ja) 2009-06-10 2010-12-16 公立大学法人奈良県立医科大学 人工腸管の作製法
CN105796601A (zh) 2009-07-16 2016-07-27 生物时代股份有限公司 用于体外和体内软骨发生的方法和组合物
US8926561B2 (en) 2009-07-30 2015-01-06 Tandem Diabetes Care, Inc. Infusion pump system with disposable cartridge having pressure venting and pressure feedback
US8501476B2 (en) 2009-10-07 2013-08-06 Brown University Assays and methods for fusing cell aggregates to form proto-tissues
WO2011064309A1 (en) 2009-11-25 2011-06-03 Institut National De La Sante Et De La Recherche Medicale (Inserm) Method for hepatic differentiation of definitive endoderm cells
CN102712902B (zh) 2009-12-23 2019-01-08 詹森生物科技公司 人胚胎干细胞的分化
US9394522B2 (en) 2010-03-22 2016-07-19 Takara Bio Europe Ab Directed differentiation and maturation of pluripotent cells into hepatocyte like cells by modulation of Wnt-signalling pathway
EP2380920A1 (en) 2010-04-22 2011-10-26 QGel SA Hydrogel precursor formulation and production process thereof
EP2563908B1 (en) 2010-04-25 2019-01-09 Icahn School of Medicine at Mount Sinai Generation of anterior foregut endoderm from pluripotent cells
US9719068B2 (en) 2010-05-06 2017-08-01 Children's Hospital Medical Center Methods and systems for converting precursor cells into intestinal tissues through directed differentiation
EP2609191B1 (en) 2010-08-24 2017-11-22 Regents Of The University Of Minnesota Non-static suspension culture of cell aggregates
CN103154237B (zh) 2010-08-31 2016-03-16 詹森生物科技公司 多能干细胞的分化
WO2012068170A2 (en) 2010-11-15 2012-05-24 Jau-Nan Lee Generation of neural stem cells from human trophoblast stem cells
EP2658965B1 (en) 2010-12-31 2016-03-02 Universität für Bodenkultur Wien Method of generating induced pluripotent stem cells and differentiated cells
US8951781B2 (en) 2011-01-10 2015-02-10 Illumina, Inc. Systems, methods, and apparatuses to image a sample for biological or chemical analysis
US9200258B2 (en) 2011-01-27 2015-12-01 University Of Maryland, Baltimore Multicellular organotypic model of human intestinal mucosa
EP2484750A1 (en) 2011-02-07 2012-08-08 Ecole Polytechnique Fédérale de Lausanne (EPFL) Monitoring system for cell culture
DK2681306T3 (en) 2011-02-28 2019-04-23 Harvard College CELL CULTURE SYSTEM
GB201106395D0 (en) 2011-04-14 2011-06-01 Hubrecht Inst Compounds
US20140158233A1 (en) 2011-05-09 2014-06-12 President And Fellows Of Harvard College Aerosol delivery to a microfluidic device
US10260039B2 (en) 2011-05-11 2019-04-16 Massachusetts Institute Of Technology Microgels and microtissues for use in tissue engineering
AU2012262139B2 (en) 2011-06-02 2017-02-23 Children's Medical Center Corporation Methods and uses for ex vivo tissue culture systems
EP2755599B1 (en) 2011-09-12 2020-04-01 Organovo, Inc. Platform for engineered implantable tissues and organs and methods of making the same
JP2013066414A (ja) 2011-09-22 2013-04-18 National Institute Of Advanced Industrial Science & Technology 胃前駆細胞の表面マーカー
ES2689265T3 (es) 2011-11-04 2018-11-12 Inregen Cribado de fármacos y ensayos de potencia
US10087422B2 (en) 2011-12-09 2018-10-02 President And Fellows Of Harvard College Organ chips and uses thereof
US9725687B2 (en) 2011-12-09 2017-08-08 President And Fellows Of Harvard College Integrated human organ-on-chip microphysiological systems
US10006904B2 (en) 2011-12-19 2018-06-26 Umc Utrecht Holding B.V. Rapid quantitative assay to measure CFTR function in a primary intestinal culture model
CN113699105A (zh) 2011-12-23 2021-11-26 人类起源公司 包含脱细胞并再群体化的胎盘血管支架的类器官
US9828583B2 (en) 2012-01-13 2017-11-28 The General Hospital Corporation Isolated human lung progenitor cells and uses thereof
US9675646B2 (en) 2012-01-31 2017-06-13 Wake Forest University Health Sciences Tubular bioengineered smooth muscle structures
AU2013222188A1 (en) 2012-02-22 2014-09-11 Amgen Inc. Autologous mammalian models derived from induced pluripotent stem cells and related methods
EP2634251A1 (en) 2012-02-29 2013-09-04 Technische Universität Berlin 3D in vitro bi-phasic cartilage-bone construct
KR20150013471A (ko) 2012-04-09 2015-02-05 토마스 제이. 굿윈 교류 이온 자기 공명(aimr) 멀티-챔버-배양 장치 및 사용 방법
KR20160027219A (ko) 2012-05-23 2016-03-09 에프. 호프만-라 로슈 아게 내배엽 및 간세포를 수득하고 사용하는 조성물 및 방법
US20140099709A1 (en) 2012-06-19 2014-04-10 Organovo, Inc. Engineered three-dimensional connective tissue constructs and methods of making the same
NZ734451A (en) 2012-06-19 2018-12-21 Intercept Pharmaceuticals Inc Preparation, uses and solid forms of obeticholic acid
DE102012105540A1 (de) 2012-06-26 2014-04-24 Karlsruher Institut für Technologie Gefäßmodell, Verfahren zu seiner Herstellung und seine Verwendung
WO2014013334A2 (en) 2012-07-20 2014-01-23 Agency For Science, Technology And Research In vitro assay for predicting renal proximal tubular cell toxicity
GB201216796D0 (en) 2012-09-20 2012-11-07 Cambridge Entpr Ltd In vitro pancreatic differentiation
DK2712918T3 (en) 2012-09-28 2015-02-16 Tissuse Gmbh Multi-organ-chip with improved lifetime and homeostasis
EP2716298A1 (en) 2012-10-03 2014-04-09 Institut Pasteur A nod2-dependant pathway of cytoprotection of stem cells
WO2014082096A1 (en) 2012-11-26 2014-05-30 The Trustees Of Columbia University In The City Of New York Method for culture of human and mouse prostate organoids and uses thereof
EP2735326B1 (en) 2012-11-26 2017-03-08 Gambro Lundia AB Liver support system
EP3031921B1 (en) 2012-12-12 2025-03-12 The Broad Institute, Inc. Delivery, engineering and optimization of systems, methods and compositions for sequence manipulation and therapeutic applications
EP2743345A1 (en) 2012-12-13 2014-06-18 IMBA-Institut für Molekulare Biotechnologie GmbH Three dimensional heterogeneously differentiated tissue culture
US20150359849A1 (en) 2013-01-31 2015-12-17 President And Fellows Of Harvard College Methods of increasing neuronal connectivity and/or treating a neurodegenerative condition
WO2014127170A1 (en) 2013-02-13 2014-08-21 Wake Forest University Health Sciences Bioengineered liver constructs and methods relating thereto
GB201304245D0 (en) 2013-03-08 2013-04-24 Inst Quimic De Sarria Chemical compounds
WO2014165056A1 (en) 2013-03-12 2014-10-09 Board Of Regents, The University Of Texas System High throughput mechanical strain generating system for cell cultures and applications thereof
HUE043785T2 (hu) 2013-03-13 2019-09-30 Wisconsin Alumni Res Found Módszerek és anyagok humán pluripotens õssejtek hematoendothelialis differenciálására meghatározott körülmények között
CA2899507A1 (en) 2013-03-14 2014-09-25 The Regents Of The University Of California In vitro production of medial ganglionic eminence precursor cells
WO2014152906A2 (en) 2013-03-14 2014-09-25 Research Institute At Nationwide Children's Hospital, Inc. Tissue engineered intestine
US9442105B2 (en) 2013-03-15 2016-09-13 Organovo, Inc. Engineered liver tissues, arrays thereof, and methods of making the same
US20160237400A1 (en) 2013-03-15 2016-08-18 The Jackson Laboratory Isolation of non-embryonic stem cells and uses thereof
WO2014153294A1 (en) 2013-03-17 2014-09-25 The Regents Of The University Of California Method to expand and transduce cultured human small and large intestinal stem cells
US9677085B2 (en) 2013-03-18 2017-06-13 Massachusetts Institute Of Technology Engineering a heterogeneous tissue from pluripotent stem cells
EP2796873A1 (en) 2013-04-25 2014-10-29 QGel SA Method for a cell-based drug screening assay and the use thereof
US20160245653A1 (en) 2013-04-30 2016-08-25 Sangtae Park Cylindrical resonator gyroscope
JP6490669B2 (ja) 2013-05-08 2019-03-27 インリージェン 単離腎細胞を含有するオルガノイド及びその使用
US10545133B2 (en) 2013-05-13 2020-01-28 The Johns Hopkins University Molecular signatures of invasive cancer subpopulations
AU2014279568B2 (en) 2013-06-10 2020-03-12 Corning Incorporated Tissue structure and manufacturing method therefor
RU2016100232A (ru) 2013-06-14 2017-07-17 Дзе Юниверсити Оф Квинсленд Почечные клетки-предшественники
BR112016000706B1 (pt) 2013-07-23 2022-08-16 Public University Corporation Yokohama City University Método de integração de um tecido biológico com um sistema vascular in vitro, tecido biológico, método de avaliação de um fármaco, e composição
AU2014305843B2 (en) 2013-08-09 2019-08-29 Ardelyx, Inc. Compounds and methods for inhibiting phosphate transport
ES2764408T3 (es) 2013-08-28 2020-06-03 Promethera Biosciences S A / N V Procedimiento para la producción de células progenitoras hepáticas adultas
GB201317869D0 (en) 2013-10-09 2013-11-20 Cambridge Entpr Ltd In vitro production of foregut stem cells
EP3060650A4 (en) 2013-10-25 2017-04-19 Agency For Science, Technology And Research Culturing pluripotent stem cells
ES2732730T3 (es) 2013-11-22 2019-11-25 Riken Método para producir telencéfalo o tejido progenitor del mismo
EP3071686B1 (en) 2013-11-22 2020-07-22 Cellectis SA Method for generating batches of allogeneic t-cells with averaged potency
EP2876441B1 (en) 2013-11-26 2017-10-25 Bergen Teknologioverforing AS Quantitative analysis of contact-depending cell-to-cell transfer and disease transmission
EP3574985A1 (en) 2013-12-20 2019-12-04 President And Fellows Of Harvard College Organomimetic devices and methods of use and manufacturing thereof
KR102611973B1 (ko) 2014-01-14 2023-12-08 예일 유니버시티 기도 세포의 제조를 위한 조성물 및 방법
US11648335B2 (en) 2014-01-31 2023-05-16 Wake Forest University Health Sciences Organ/tissue decellularization, framework maintenance and recellularization
EA201691607A1 (ru) 2014-02-11 2017-01-30 Антродженезис Корпорейшн Микроорганоиды и способы их получения и применения
US10369254B2 (en) 2014-02-26 2019-08-06 The Regents Of The University Of California Method and apparatus for in vitro kidney organogenesis
CN106062181A (zh) 2014-02-27 2016-10-26 公立大学法人横滨市立大学 自发组织用细胞集合体的制作方法
DE102014003465A1 (de) 2014-03-11 2015-09-17 NeuroProof GmbH Gewinnung von Gehirnregion-spezifischen neuronalen Kulturen aus dreidimensionalen Gewebekulturen von Stammzellen
US11066649B2 (en) 2014-03-19 2021-07-20 Institut National De La Sante Et De La Recherche Medicale (Inserm) Method for inducing human cholangiocyte differentiation
EP3119401A4 (en) 2014-03-21 2017-12-13 Tobira Therapeutics, Inc. Cenicriviroc for the treatment of fibrosis
EP3808838B1 (en) 2014-04-04 2024-04-10 Organovo, Inc. Engineered three-dimensional breast tissue, adipose tissue, and tumor disease model
US10222370B2 (en) 2014-04-07 2019-03-05 Rush University Medical Center Screening assay for choice of prebiotic to prevent/treat gastrointestinal and systemic diseases
WO2015156929A1 (en) 2014-04-07 2015-10-15 The Trustees Of Columbia University In The City Of New York Method for culture of human bladder cell lines and organoids and uses thereof
KR102374499B1 (ko) 2014-04-11 2022-03-14 사이머베이 쎄라퓨틱스, 인코퍼레이티드 Nafld 및 nash 의 치료
MX388202B (es) 2014-04-27 2025-03-19 Univ New York State Res Found Métodos para generar productos de esmalte in vitro.
CA2949171A1 (en) 2014-05-16 2015-11-19 Koninklijke Nederlandse Akademie Van Wetenschappen Improved culture method for organoids
CN106536707B (zh) 2014-05-29 2018-12-25 西奈山伊坎医学院 在生物反应器系统中制造心脏类器官的方法和装置
US10426757B2 (en) 2014-05-29 2019-10-01 Whitehead Institute For Biomedical Research Compositions and methods for promoting intestinal stem cell and/or non-stem progenitor cell function
EP3786285A1 (en) 2014-06-05 2021-03-03 Cedars-Sinai Medical Center A novel and efficient method for reprogramming immortalized lymphoblastoid cell lines to induced pluripotent stem cells
EP3152296B1 (en) 2014-06-06 2021-08-04 Vrije Universiteit Brussel Human hepatic 3d co-culture model and uses thereof
FR3022110B1 (fr) 2014-06-13 2016-07-01 Liphatech Inc Appat rodonticide et procede de lutte contre des rongeurs cibles nuisibles mettant en œuvre un tel appat
EP3158056B1 (en) 2014-06-20 2021-10-06 Rutgers, the State University of New Jersey Single cell-derived organoids
US10487314B2 (en) 2014-06-26 2019-11-26 The Trustees Of Columbia University In The City Of New York Inhibition of serotonin expression in gut enteroendocrine cells results in conversion to insulin-positive cells
KR20170063519A (ko) 2014-07-17 2017-06-08 셀매틱스, 인크. 불임 및 관련 병리상태를 평가하기 위한 방법 및 시스템
IL282156B (en) 2014-07-29 2022-07-01 Shenzhen Hightide Biopharmaceutical Ltd Berberine salts, ursodeoxycholic salts and combinations, methods of preparation and application thereof
US12247224B2 (en) 2014-07-30 2025-03-11 Senthil Muthuswamy Organoids for drug screening and personalized medicine
SG11201701398SA (en) 2014-08-22 2017-03-30 Cambridge Entpr Ltd Resetting pluripotent stem cells
KR102101060B1 (ko) 2014-08-28 2020-04-16 프로메테라 바이오사이언시즈 에스.에이./엔.브이. 성체 간 전구 세포의 제조 방법
US20160060707A1 (en) 2014-08-29 2016-03-03 Immunomedics, Inc. Identification of Cancer Genes by In-Vivo Fusion of Human Cancer Cells and Animal Cells
EP3777863A1 (en) 2014-09-12 2021-02-17 Tobira Therapeutics, Inc. Cenicriviroc combination therapy for the treatment of fibrosis
KR20170064547A (ko) 2014-10-06 2017-06-09 오가노보, 인크. 조작된 신장 조직, 이의 어레이, 및 이를 제조하는 방법
US20170304369A1 (en) 2014-10-08 2017-10-26 Agency For Science, Technology And Research Methods of differentiating stem cells into liver cell lineages
EP3207122B1 (en) 2014-10-14 2019-05-08 FUJIFILM Cellular Dynamics, Inc. Generation of keratinocytes from pluripotent stem cells and maintenance of keratinocyte cultures
AU2015331848B2 (en) 2014-10-17 2022-03-03 Children's Hospital Medical Center, D/B/A Cincinnati Children's Hospital Medical Center In vivo model of human small intestine using pluripotent stem cells and methods of making and using same
US20160121023A1 (en) 2014-10-30 2016-05-05 Massachusetts Institute Of Technology Materials and Methods for Rescue of Ischemic Tissue and Regeneration of Tissue Integrity During Resection, Engraftment and Transplantation
WO2016073989A2 (en) 2014-11-07 2016-05-12 The Trustees Of Columbia University In The City Of New York Osteochondroreticular stem cells for bone and cartilage regeneration
WO2016085765A1 (en) 2014-11-25 2016-06-02 President And Fellows Of Harvard College Methods for generation of podocytes from pluripotent stem cells and cells produced by the same
US20170260501A1 (en) 2014-11-25 2017-09-14 International Stem Cell Corporation Derivation of neural crest stem cells and uses thereof
GB201421092D0 (en) 2014-11-27 2015-01-14 Koninklijke Nederlandse Akademie Van Wetenschappen Culture medium
GB201421094D0 (en) 2014-11-27 2015-01-14 Koninklijke Nederlandse Akademie Van Wetenschappen Culture medium
AU2014277667B2 (en) 2014-12-15 2022-07-14 The University Of Queensland Differentiation of pluripotent stem cells to form renal organoids
JP7089240B2 (ja) 2014-12-22 2022-06-22 エコール・ポリテクニーク・フェデラル・ドゥ・ローザンヌ (ウ・ペ・エフ・エル) 高い収集能力で哺乳動物細胞を操作(マニピュレーション)する装置
WO2016103269A1 (en) 2014-12-23 2016-06-30 Ramot At Tel-Aviv University Ltd. Populations of neural progenitor cells and methods of producing and using same
EA201791258A1 (ru) 2015-01-09 2017-12-29 Джилид Аполло, Ллс Комбинированная терапия с применением ингибитора ацетил-коа-карбоксилазы (acc) для лечения неалкогольной жировой болезни печени
JP6281850B2 (ja) 2015-01-28 2018-02-21 公立大学法人横浜市立大学 骨髄細胞凝集体の作製方法
US20160256672A1 (en) 2015-02-10 2016-09-08 Cedars-Sinai Medical Center Induced pluripotent stem cell-derived hepatocyte based bioartificial liver device
CN105985395A (zh) 2015-02-13 2016-10-05 江苏奥赛康药业股份有限公司 一种奥贝胆酸化合物及含有该化合物的药物组合物
WO2016140716A1 (en) 2015-03-02 2016-09-09 The Trustees Of Columbia University In The City Of New York Injectable microtissue systems, devices, and methods
CN107427537A (zh) 2015-03-03 2017-12-01 哈佛学院院长及董事 产生功能性人体组织的方法
US20160257937A1 (en) 2015-03-06 2016-09-08 University Of North Carolina At Chapel Hill HUMAN FIBROLAMELLAR HEPATOCELLULAR CARCINOMAS (hFL-HCCS)
JP6800875B2 (ja) 2015-03-06 2020-12-16 マイクロマス ユーケー リミテッド 急速蒸発イオン化質量分析(「reims」)装置に連結されたイオンアナライザのための流入器具
EA201791982A1 (ru) 2015-03-09 2020-02-17 Интекрин Терапьютикс, Инк. Способы лечения неалкогольной жировой болезни печени и/или липодистрофии
US10023922B2 (en) 2015-03-23 2018-07-17 Whitehead Institute For Biomedical Research Reporter of genomic methylation and uses thereof
CR20170456A (es) 2015-04-07 2018-06-13 Intercept Pharmaceuticals Inc Composiciones farmacéuticas para terapias combinadas
US10557124B2 (en) 2015-04-22 2020-02-11 The Regents Of The University Of Michigan Compositions and methods for obtaining stem cell derived lung tissue, and related uses thereof
US10087417B2 (en) 2015-04-22 2018-10-02 William J. Freed Three-dimensional model of human cortex
CN104877964A (zh) 2015-04-24 2015-09-02 赵振民 一种唾液腺类器官和类腺泡的体外构建方法
PE20180690A1 (es) 2015-04-27 2018-04-23 Intercept Pharmaceuticals Inc Composiciones de acido obeticolico y metodos de uso
WO2016174604A1 (en) 2015-04-30 2016-11-03 Helmholtz Zentrum München - Deutsches Forschungszentrum für Gesundheit und Umwelt (GmbH) Means and methods for generation of breast stem cells
US11299714B2 (en) 2015-05-11 2022-04-12 The Trustees Of Columbia University In The City Of New York Engineered adult-like human heart tissue
EP3303566B1 (en) 2015-06-03 2020-10-14 Takara Bio Europe AB Maturation of mammalian hepatocytes
GB201510950D0 (en) 2015-06-22 2015-08-05 Cambridge Entpr Ltd In vitro Production of Cholangiocytes
WO2016210313A1 (en) 2015-06-24 2016-12-29 Whitehead Institute For Biomedical Research Culture medium for generating microglia from pluripotent stem cells and related methods
US20180171302A1 (en) 2015-06-26 2018-06-21 Domenico ACCILI Genetically Modified IPS Cells That Carry a Marker to Report Expression of Neurogenin3, TPH2, FOXO1 and/or Insulin Genes
WO2017009263A1 (en) 2015-07-10 2017-01-19 Etablissement Francais Du Sang Method for obtaining human brown/beige adipocytes
US10449221B2 (en) 2015-07-29 2019-10-22 Trustees Of Boston University Differentiation of stem cells into thyroid tissue
WO2017036533A1 (en) 2015-09-03 2017-03-09 Ecole Polytechnique Federale De Lausanne (Epfl) Three-dimensional hydrogels for culturing adult epithelial stem cells and organoids
AU2016318114B2 (en) 2015-09-03 2023-04-20 The Brigham And Women's Hospital, Inc. Three-dimensional differentiation of epiblast spheroids to kidney organoids models stage-specific epithelial physiology, morphogenesis, and disease
EP3350313B1 (en) 2015-09-15 2025-11-26 Agency For Science, Technology And Research (A*star) Derivation of liver organoids from human pluripotent stem cells
JP2018532720A (ja) 2015-09-16 2018-11-08 トビラ セラピューティクス, インコーポレイテッド 線維症の治療のためのセニクリビロック併用療法
US20180258404A1 (en) 2015-09-17 2018-09-13 The Brigham And Women's Hospital, Inc. Methods of generating nephrons from human pluripotent stem cells
US20180273904A1 (en) 2015-10-02 2018-09-27 Wake Forest University Health Sciences Spontaneously beating cardiac organoid constructs and integrated body-on-chip apparatus containing the same
LU92845B1 (en) 2015-10-08 2017-05-02 Univ Du Luxembourg Campus Belval Means and methods for generating midbrain organoids
US10993433B2 (en) 2015-10-15 2021-05-04 Wake Forest University Health Sciences Method of producing in vitro testicular constructs and uses thereof
WO2017070007A2 (en) 2015-10-15 2017-04-27 Wake Forest University Health Sciences Methods of producing in vitro liver constructs and uses thereof
EP3362554B1 (en) 2015-10-16 2025-09-03 Wake Forest University Health Sciences Multi-layer airway organoids and methods of making and using the same
WO2017066659A1 (en) 2015-10-16 2017-04-20 The Trustees Of Columbia University In The City Of New York Jag1 expression predicts therapeutic response in nash
KR102410389B1 (ko) 2015-10-19 2022-06-16 에뮬레이트, 인크. 혈액 뇌 장벽의 미세유체 모델
US12209253B2 (en) 2016-08-29 2025-01-28 EMULATE, Inc. Development of spinal cord on a microfluidic chip
US10947502B2 (en) 2015-10-20 2021-03-16 FUJIFILM Cellular Dynamics, Inc. Methods for directed differentiation of pluripotent stem cells to immune cells
SG11201803061UA (en) 2015-10-21 2018-05-30 Univ Indiana Res & Tech Corp Methods of generating human inner ear sensory epithelia and sensory neurons
SG11201803043VA (en) 2015-10-21 2018-05-30 Univ Indiana Res & Tech Corp Derivation of human skin organoids from pluripotent stem cells
SG11201803419PA (en) 2015-10-30 2018-05-30 The Regents Of The Universtiy Of California Methods of generating t-cells from stem cells and immunotherapeutic methods using the t-cells
US11866409B2 (en) 2015-11-02 2024-01-09 Carmel-Haifa University Economic Corporation Ltd. Apoptosis related protein in the tgf-beta signaling pathway (ARTS) mimetic compounds, compositions, methods and uses thereof in induction of differentiation and/or apoptosis of premalignant and malignant cells, thereby restoring their normal-like phenotype
WO2017079632A1 (en) 2015-11-04 2017-05-11 Cedars-Sinai Medical Center Patient-derived ctc-xenograft models
HK1257929A1 (zh) 2015-11-06 2019-11-01 Gemphire Therapeutics Inc. 治疗混合性血脂异常
KR102932021B1 (ko) 2015-11-12 2026-02-27 바이오스테이지, 인크. 문합 또는 다른 생리학적 위치에서 위장 조직을 생성하기 위한 시스템 및 방법
WO2017083705A1 (en) 2015-11-13 2017-05-18 The Johns Hopkins University Cell culture system and method of use thereof
EP3383996B1 (en) 2015-12-04 2024-10-16 President and Fellows of Harvard College Devices for simulating a function of a liver tissue and methods of use and manufacturing thereof
SG11201804700VA (en) 2015-12-04 2018-07-30 Emulate Inc Devices and methods for simulating a function of a liver tissue
EP3414322A4 (en) 2015-12-23 2020-03-04 Memorial Sloan-Kettering Cancer Center CELL THERAPY AND DRUG DISCOVERY BASED ON CELL LINES DERIVED FROM HUMAN ENTERAL NEURAL CREST DERIVED FROM PLURIPOTENT STEM CELLS
EP3397753B1 (en) 2015-12-30 2021-10-27 FUJIFILM Cellular Dynamics, Inc. Microtissue formation using stem cell-derived human hepatocytes
KR101733137B1 (ko) 2015-12-30 2017-05-08 (주)엑셀세라퓨틱스 연골조직 제조를 위한 3차원 오가노이드 블록 제작 방법
WO2017117571A1 (en) 2015-12-31 2017-07-06 President And Fellows Of Harvard College Neurons and compositions and methods for producing the same
WO2017117547A1 (en) 2015-12-31 2017-07-06 President And Fellows Of Harvard College Methods for generating neural tissue and uses thereof
US11021687B2 (en) 2016-01-08 2021-06-01 The Brigham And Women's Hospital, Inc. Production of differentiated enteroendocrine cells and insulin producing cells
EP3190176A1 (en) 2016-01-11 2017-07-12 IMBA-Institut für Molekulare Biotechnologie GmbH Method for tissue culture development on scaffold and differentiated tissue culture
HK1256807A1 (zh) 2016-01-14 2019-10-04 R·阿南德 神经类器官组合物及使用方法
US20170205396A1 (en) 2016-01-15 2017-07-20 Salk Institute For Biological Studies Systems and methods for culturing nephron progenitor cells
EP3411470A4 (en) 2016-02-01 2019-10-09 Emulate, Inc. SYSTEMS AND METHOD FOR BREEDING DARM CELLS IN MICROFLUIDIC DEVICES
JP7174408B2 (ja) 2016-02-10 2022-11-17 ウェイク・フォレスト・ユニヴァーシティ・ヘルス・サイエンシズ 肝線維症のモデル系ならびにその作製および使用方法
WO2017139638A1 (en) 2016-02-11 2017-08-17 The Johns Hopkins University Compositions and methods for neuralgenesis
JP6947739B2 (ja) 2016-02-16 2021-10-13 ザ ボード オブ トラスティーズ オブ ザ レランド スタンフォード ジュニア ユニバーシティー 既存のヒト中和抗体に対して耐性である新規組換えアデノ随伴ウイルスカプシド
WO2017142069A1 (ja) 2016-02-18 2017-08-24 学校法人慶應義塾 細胞培養培地、培養方法、及びオルガノイド
DK3417073T3 (da) 2016-02-19 2023-10-30 Procella Therapeutics Ab Genetiske markører til transplantation af humane, hjerteventrikulære progenitorceller
US20170267970A1 (en) 2016-02-29 2017-09-21 Whitehead Institute For Biomedical Research Three-Dimensional Hydrogels that Support Growth of Physiologically Relevant Tissue and Methods of Use Thereof
GB201603569D0 (en) 2016-03-01 2016-04-13 Koninklijke Nederlandse Akademie Van Wetenschappen Improved differentiation method
US20190086391A1 (en) 2016-03-08 2019-03-21 Yissum Research Development Company Of The Hebrew University Of Jerusalem Ltd. Method and system for continuous biosensing
WO2017160234A1 (en) 2016-03-14 2017-09-21 Agency For Science, Technology And Research Generation of midbrain-specific organoids from human pluripotent stem cells
US10772863B2 (en) 2016-03-15 2020-09-15 Yissum Research Development Company Of The Hebrew University Of Jerusalem Ltd Methods of inducing metabolic maturation of human pluripotent stem cells— derived hepatocytes
WO2017160671A1 (en) 2016-03-15 2017-09-21 The Johns Hopkins University Enhanced organoid formation and intestinal stem cell renewal
US20170285002A1 (en) 2016-03-16 2017-10-05 Public University Corporation Yokohama City University Method for reconstituting tumor with microenvironment
WO2017172638A1 (en) 2016-03-29 2017-10-05 Smsbiotech, Inc. Compositions and methods for using small mobile stem cells
WO2017176810A1 (en) 2016-04-04 2017-10-12 Biotime, Inc. Pluripotent stem cell-derived 3d retinal tissue and uses thereof
EP3228306A1 (en) 2016-04-04 2017-10-11 ratiopharm GmbH Complex compound comprising obeticholic acid and cyclodextrin and pharmaceutical formulation comprising the complex compound
US20190128870A1 (en) 2016-04-04 2019-05-02 Humeltis Diagnostic Methods For Patient Specific Therapeutic Decision Making In Cancer Care
JP6935101B2 (ja) 2016-04-05 2021-09-15 学校法人自治医科大学 幹細胞を再樹立する方法
EP3445385A4 (en) 2016-04-18 2019-11-20 The Trustees of Columbia University in the City of New York THERAPEUTIC GOALS INVOLVED IN THE PROGRESSION OF NON-ALCOHOLIC STEATOHEPATITIS (NASH)
CN117137917A (zh) 2016-04-22 2023-12-01 景凯生物科技股份有限公司 纳美芬、纳曲酮或其衍生物在治疗(非)酒精性脂肪肝炎或非酒精性脂肪性肝病的应用
US20170321188A1 (en) 2016-05-04 2017-11-09 The Research Foundation For The State University Of New York Methods of generating retinal progenitor cell preparations and uses thereof
CN109415685B (zh) 2016-05-05 2023-07-04 儿童医院医疗中心 用于体外制造胃底组织的方法和与其相关的组合物
US11760977B2 (en) 2016-05-25 2023-09-19 Salk Institute For Biological Studies Compositions and methods for organoid generation and disease modeling
US20170349659A1 (en) 2016-06-03 2017-12-07 The Board Of Trustees Of The Leland Stanford Junior University Wnt signaling agonist molecules
US12129491B2 (en) 2016-06-15 2024-10-29 Children's Medical Center Corporation Methods and compositions relating to lung cell differentiation
GB201610748D0 (en) 2016-06-20 2016-08-03 Koninklijke Nederlandse Akademie Van Wetenschappen Improved diffrentation method
GB201611982D0 (en) 2016-07-11 2016-08-24 Cellesce Ltd Cell culture
EP3275997A1 (en) 2016-07-28 2018-01-31 QGel SA Hydrogel precursor formulation and the use thereof
KR20190036553A (ko) 2016-08-02 2019-04-04 메모리얼 슬로안 케터링 캔서 센터 전이성 암의 치료 및 전이성 질환에 대한 모델 시스템
KR20250017294A (ko) 2016-08-03 2025-02-04 웨이크 포리스트 유니버시티 헬스 사이언시즈 암 모델링 플랫폼 및 그를 사용하는 방법
CA3032727A1 (en) 2016-08-04 2018-02-08 Wake Forest University Health Sciences Blood brain barrier model and methods of making and using the same
KR102417262B1 (ko) 2016-08-24 2022-07-07 각고호우징 게이오기주크 인간 설사병 바이러스의 감염·증식 배양용 2d 오가노이드 및 그 사용
JP7262385B2 (ja) 2016-08-26 2023-04-21 ザ・カウンシル・オブ・ザ・クィーンズランド・インスティテュート・オブ・メディカル・リサーチ 心筋細胞の成熟
EP3503902A4 (en) 2016-08-28 2020-04-22 Baylor College of Medicine A novel chicken egg-based metastasis model for cancer
US20210277102A1 (en) 2016-08-30 2021-09-09 Beth Israel Deaconess Medical Center, Inc. Compositions and methods for treating a tumor suppressor deficient cancer
WO2018044940A1 (en) 2016-08-30 2018-03-08 Beth Israel Deaconess Medical Center Compositions and methods for treating a tumor suppressor deficient cancer
EP4553082A3 (en) 2016-11-04 2025-08-20 Children's Hospital Medical Center Liver organoid compositions and methods of making and using same
JP7583524B2 (ja) 2016-11-23 2024-11-14 モルフォセル テクノロジーズ インコーポレイテッド 被包化肝組織
EP3548507A4 (en) 2016-12-05 2020-07-15 Children's Hospital Medical Center COLON ORGANOIDS AND PROCESSES FOR THE PREPARATION AND USE THEREOF
GB201622222D0 (en) 2016-12-23 2017-02-08 Cs Genetics Ltd Reagents and methods for molecular barcoding of nucleic acids of single cells
JP7248586B2 (ja) 2017-04-14 2023-03-29 チルドレンズ ホスピタル メディカル センター 複数ドナー幹細胞組成物およびそれを作製する方法
EP3395942A1 (en) 2017-04-25 2018-10-31 IMBA-Institut für Molekulare Biotechnologie GmbH Bi- or multi-differentiated organoid
EP3694603B1 (en) 2017-10-10 2026-04-08 Children's Hospital Medical Center Esophageal tissue and/or organoid compositions and methods of making same

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20140141509A1 (en) * 2011-06-23 2014-05-22 The Children's Hospital Of Philadelphia Self-Renewing Endodermal Progenitor Lines Generated from Human Pluripotent Stem Cells and Methods of Use Thereof
US20140302491A1 (en) * 2011-10-28 2014-10-09 The Board Of Trustees Of The Leland Stanford Junior University Ex Vivo Culture, Proliferation and Expansion of Primary Tissue Organoids
WO2014159356A1 (en) * 2013-03-14 2014-10-02 The Brigham And Women's Hospital, Inc. Compositions and methods for epithelial stem cell expansion and culture
WO2015183920A2 (en) * 2014-05-28 2015-12-03 Children's Hospital Medical Center Methods and systems for converting precursor cells into gastric tissues through directed differentiation

Cited By (19)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US12258584B2 (en) 2010-05-06 2025-03-25 Children's Hospital Medical Center Methods and systems for converting precursor cells into intestinal tissues through directed differentiation
US10781425B2 (en) 2010-05-06 2020-09-22 Children's Hospital Medical Center Methods and systems for converting precursor cells into intestinal tissues through directed differentiation
US12241090B2 (en) 2014-05-28 2025-03-04 Children's Hospital Medical Center Methods and systems for converting precursor cells into gastric tissues through directed differentiation
US11053477B2 (en) 2014-05-28 2021-07-06 Children's Hospital Medical Center Methods and systems for converting precursor cells into gastric tissues through directed differentiation
US10174289B2 (en) 2014-05-28 2019-01-08 Children's Hospital Medical Center Methods and systems for converting precursor cells into gastric tissues through directed differentiation
US11584916B2 (en) 2014-10-17 2023-02-21 Children's Hospital Medical Center Method of making in vivo human small intestine organoids from pluripotent stem cells
US11066650B2 (en) 2016-05-05 2021-07-20 Children's Hospital Medical Center Methods for the in vitro manufacture of gastric fundus tissue and compositions related to same
US12414967B2 (en) 2016-11-04 2025-09-16 Children's Hospital Medical Center Compositions and methods of treating liver disease
US11767515B2 (en) 2016-12-05 2023-09-26 Children's Hospital Medical Center Colonic organoids and methods of making and using same
US12281334B2 (en) 2017-04-14 2025-04-22 Children's Hospital Medical Center Multi donor stem cell compositions and methods of making same
WO2019074793A1 (en) * 2017-10-10 2019-04-18 Children's Hospital Medical Center OESOPHAGIAN TISSUE COMPOSITIONS AND / OR ORGANOIDS AND METHODS OF MAKING SAME
US12297457B2 (en) 2017-10-10 2025-05-13 Children's Hospital Medical Center Esophageal tissue and/or organoid compositions and methods of making same
US12379372B2 (en) 2017-12-21 2025-08-05 Children's Hospital Medical Center Digitalized human organoids and methods of using same
US12421500B2 (en) 2018-07-26 2025-09-23 Children's Hospital Medical Center Hepato-biliary-pancreatic tissues and methods of making same
US12428622B2 (en) 2018-09-12 2025-09-30 Children's Hospital Medical Center Organoid compositions for the production of hematopoietic stem cells and derivatives thereof
US12600943B2 (en) 2019-02-01 2026-04-14 The University Of Hong Kong Innervated organoid compositions and methods of making same
US12497597B2 (en) 2019-05-31 2025-12-16 Children's Hospital Medical Center Methods of generating and expanding hematopoietic stem cells
US12534709B2 (en) 2019-05-31 2026-01-27 Children's Hospital Medical Center Shaped organoid compositions and methods of making same
WO2025072803A1 (en) 2023-09-29 2025-04-03 Children's Hospital Medical Center Ntrk2 signaling-mediated alveolar capillary injury and repair

Also Published As

Publication number Publication date
JP6963882B2 (ja) 2021-11-10
EP3452578A1 (en) 2019-03-13
US11066650B2 (en) 2021-07-20
EP3452578A4 (en) 2019-12-04
JP2022025087A (ja) 2022-02-09
US20190078055A1 (en) 2019-03-14
JP2019514354A (ja) 2019-06-06
CN109415685A (zh) 2019-03-01
EP4177335A1 (en) 2023-05-10
JP7463326B2 (ja) 2024-04-08
CN109415685B (zh) 2023-07-04
JP2024095710A (ja) 2024-07-10
CN116790476A (zh) 2023-09-22
EP3452578B1 (en) 2022-08-10
CA3016641A1 (en) 2017-11-09
US20220064602A1 (en) 2022-03-03
ES2929758T3 (es) 2022-12-01

Similar Documents

Publication Publication Date Title
US20220064602A1 (en) Methods for the in vitro manufacture of gastric fundus tissue and compositions related to same
JP7698080B2 (ja) 前駆細胞を指向性分化によって胃組織に変換するための方法及びシステム
US20250223566A1 (en) Method of making in vivo human small intestine organoids from pluripotent stem cells
US12297457B2 (en) Esophageal tissue and/or organoid compositions and methods of making same
KR20210040107A (ko) 간-담도-췌장 조직 및 이를 제조하는 방법
McCracken Mechanisms of endoderm patterning and directed differentiation of human stem cells into foregut tissues
HK40092378A (en) Methods for the in vitro manufacture of gastric fundus tissue and compositions related to same
HK40006077A (en) Methods for the in vitro manufacture of gastric fundus tissue and compositions related to same
HK40006077B (en) Methods for the in vitro manufacture of gastric fundus tissue and compositions related to same
HK40001580B (en) Methods for the in vitro manufacture of gastric fundus tissue and compositions related to same
Ruzittu Molecular mechanisms underlying pancreatic identity and plasticity in mammalian species
HK40001580A (en) Methods for the in vitro manufacture of gastric fundus tissue and compositions related to same
Rattier Deciphering the Interplay Between Epithelial Integrity and Signaling During Differentiation of Human Induced Pluripotent Stem Cells Into Primitive Streak
HK40057032B (zh) 用於经由定向分化将前体细胞转化为胃组织的方法和系统
Sharma Lineage commitment and specification of progenitors of the caudal mesoderm

Legal Events

Date Code Title Description
ENP Entry into the national phase

Ref document number: 3016641

Country of ref document: CA

ENP Entry into the national phase

Ref document number: 2018550724

Country of ref document: JP

Kind code of ref document: A

NENP Non-entry into the national phase

Ref country code: DE

121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 17793451

Country of ref document: EP

Kind code of ref document: A1

ENP Entry into the national phase

Ref document number: 2017793451

Country of ref document: EP

Effective date: 20181205