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1.
Cell Biosci ; 13(1): 88, 2023 May 16.
Article de Anglais | MEDLINE | ID: mdl-37194020

RÉSUMÉ

BACKGROUND: Extended pluripotent stem cells (EPSCs) can contribute to both embryonic and trophectoderm-derived extraembryonic tissues. Therefore, EPSCs have great application significance for both research and industry. However, generating EPSCs from human somatic cells remains inefficient and cumbersome. RESULTS: In this study, we established a novel and robust EPSCs culture medium OCM175 with defined and optimized ingredients. Our OCM175 medium contains optimized concentration of L-selenium-methylcysteine as a source of selenium and ROCK inhibitors to maintain the single cell passaging ability of pluripotent stem cells. We also used Matrigel or the combination of laminin 511 and laminin 521(1:1) to bypass the requirement of feeder cells. With OCM175 medium, we successfully converted integration-free iPSCs from easily available human Urine-Derived Cells (hUC-iPSCs) into EPSCs (O-IPSCs). We showed that our O-IPSCs have the ability to form both intra- and extra- embryonic chimerism, and could contribute to the trophoblast ectoderm lineage and three germ layer cell lineages. CONCLUSIONS: In conclusion, our novel OCM175 culture medium has defined, optimized ingredients, which enables efficient generation of EPSCs in a feeder free manner. With the robust chimeric and differentiation potential, we believe that this system provides a solid basis to improve the application of EPSCs in regenerative medicine.

3.
Nat Commun ; 12(1): 4090, 2021 07 02.
Article de Anglais | MEDLINE | ID: mdl-34215745

RÉSUMÉ

The transition from pluripotent to somatic states marks a critical event in mammalian development, but remains largely unresolved. Here we report the identification of SS18 as a regulator for pluripotent to somatic transition or PST by CRISPR-based whole genome screens. Mechanistically, SS18 forms microscopic condensates in nuclei through a C-terminal intrinsically disordered region (IDR) rich in tyrosine, which, once mutated, no longer form condensates nor rescue SS18-/- defect in PST. Yet, the IDR alone is not sufficient to rescue the defect even though it can form condensates indistinguishable from the wild type protein. We further show that its N-terminal 70aa is required for PST by interacting with the Brg/Brahma-associated factor (BAF) complex, and remains functional even swapped onto unrelated IDRs or even an artificial 24 tyrosine polypeptide. Finally, we show that SS18 mediates BAF assembly through phase separation to regulate PST. These studies suggest that SS18 plays a role in the pluripotent to somatic interface and undergoes liquid-liquid phase separation through a unique tyrosine-based mechanism.


Sujet(s)
Transition de phase , Cellules souches pluripotentes/métabolisme , Protéines proto-oncogènes/métabolisme , Protéines de répression/métabolisme , Animaux , Noyau de la cellule , Clustered regularly interspaced short palindromic repeats , Femelle , Cellules HEK293 , Humains , Protéines intrinsèquement désordonnées/génétique , Protéines intrinsèquement désordonnées/métabolisme , Mâle , Souris , Souris de lignée C57BL , Souris knockout , Protéines proto-oncogènes/génétique , Protéines de répression/génétique , Tyrosine
4.
Nat Cell Biol ; 22(6): 651-662, 2020 06.
Article de Anglais | MEDLINE | ID: mdl-32393886

RÉSUMÉ

BMP4 regulates a plethora of developmental processes, including the dorsal-ventral axis and neural patterning. Here, we report that BMP4 reconfigures the nuclear architecture during the primed-to-naive transition (PNT). We first established a BMP4-driven PNT and show that BMP4 orchestrates the chromatin accessibility dynamics during PNT. Among the loci opened early by BMP4, we identified Zbtb7a and Zbtb7b (Zbtb7a/b) as targets that drive PNT. ZBTB7A/B in turn facilitate the opening of naive pluripotent chromatin loci and the activation of nearby genes. Mechanistically, ZBTB7A not only binds to chromatin loci near to the genes that are activated, but also strategically occupies those that are silenced, consistent with a role of BMP4 in both activating and suppressing gene expression during PNT at the chromatin level. Our results reveal a previously unknown function of BMP4 in regulating nuclear architecture and link its targets ZBTB7A/B to chromatin remodelling and pluripotent fate control.


Sujet(s)
Protéine morphogénétique osseuse de type 4/métabolisme , Chromatine/métabolisme , Protéines de liaison à l'ADN/métabolisme , Cellules souches embryonnaires/cytologie , Feuillets embryonnaires/cytologie , Cellules souches pluripotentes/cytologie , Facteurs de transcription/métabolisme , Animaux , Blastocyste/cytologie , Blastocyste/métabolisme , Protéine morphogénétique osseuse de type 4/génétique , Différenciation cellulaire , Cellules cultivées , Chromatine/génétique , Protéines de liaison à l'ADN/génétique , Cellules souches embryonnaires/métabolisme , Femelle , Régulation de l'expression des gènes au cours du développement , Feuillets embryonnaires/métabolisme , Mâle , Souris , Souris de lignée C57BL , Souris de lignée CBA , Cellules souches pluripotentes/métabolisme , Transduction du signal , Facteurs de transcription/génétique
5.
Cell Rep ; 27(12): 3473-3485.e5, 2019 06 18.
Article de Anglais | MEDLINE | ID: mdl-31216469

RÉSUMÉ

Reprogramming somatic cells to pluripotency by Oct4, Sox2, Klf4, and Myc represent a paradigm for cell fate determination. Here, we report a combination of Jdp2, Jhdm1b, Mkk6, Glis1, Nanog, Essrb, and Sall4 (7F) that reprogram mouse embryonic fibroblasts or MEFs to chimera competent induced pluripotent stem cells (iPSCs) efficiently. RNA sequencing (RNA-seq) and ATAC-seq reveal distinct mechanisms for 7F induction of pluripotency. Dropout experiments further reveal a highly cooperative process among 7F to dynamically close and open chromatin loci that encode a network of transcription factors to mediate reprogramming. These results establish an alternative paradigm for reprogramming that may be useful for analyzing cell fate control.


Sujet(s)
Reprogrammation cellulaire/génétique , Protéines de liaison à l'ADN/métabolisme , Protéines F-box/métabolisme , Cellules souches pluripotentes induites/cytologie , Jumonji Domain-Containing Histone Demethylases/métabolisme , MAP Kinase Kinase 6/métabolisme , Protéine homéotique Nanog/métabolisme , Protéines de répression/métabolisme , Facteurs de transcription/métabolisme , Animaux , Différenciation cellulaire/génétique , Cellules cultivées , Chimère/génétique , Protéines de liaison à l'ADN/génétique , Cellules souches embryonnaires/cytologie , Cellules souches embryonnaires/métabolisme , Euchromatine/génétique , Euchromatine/métabolisme , Protéines F-box/génétique , Fibroblastes/cytologie , Fibroblastes/métabolisme , Hétérochromatine/génétique , Hétérochromatine/métabolisme , Cellules souches pluripotentes induites/métabolisme , Jumonji Domain-Containing Histone Demethylases/génétique , Facteur-4 de type Kruppel , MAP Kinase Kinase 6/génétique , Souris , Souris de lignée C57BL , Souris transgéniques , Protéine homéotique Nanog/génétique , RNA-Seq , Protéines de répression/génétique , Facteurs de transcription/génétique
6.
Mol Cell ; 73(4): 815-829.e7, 2019 02 21.
Article de Anglais | MEDLINE | ID: mdl-30772174

RÉSUMÉ

Somatic cells can be reprogrammed into induced pluripotent stem cells (iPSCs), which is a highly heterogeneous process. Here we report the cell fate continuum during somatic cell reprogramming at single-cell resolution. We first develop SOT to analyze cell fate continuum from Oct4/Sox2/Klf4- or OSK-mediated reprogramming and show that cells bifurcate into two categories, reprogramming potential (RP) or non-reprogramming (NR). We further show that Klf4 contributes to Cd34+/Fxyd5+/Psca+ keratinocyte-like NR fate and that IFN-γ impedes the final transition to chimera-competent pluripotency along the RP cells. We analyze more than 150,000 single cells from both OSK and chemical reprograming and identify additional NR/RP bifurcation points. Our work reveals a generic bifurcation model for cell fate decisions during somatic cell reprogramming that may be applicable to other systems and inspire further improvements for reprogramming.


Sujet(s)
Différenciation cellulaire/génétique , Lignage cellulaire/génétique , Techniques de reprogrammation cellulaire , Reprogrammation cellulaire/génétique , Cellules souches pluripotentes induites/physiologie , Cellules souches embryonnaires de souris/physiologie , Analyse de séquence d'ARN , Analyse sur cellule unique , Animaux , Femelle , Régulation de l'expression des gènes au cours du développement , Cellules souches pluripotentes induites/métabolisme , Interféron gamma/génétique , Interféron gamma/métabolisme , Facteur-4 de type Kruppel , Mâle , Souris , Souris de souche-129 , Souris de lignée C57BL , Souris de lignée CBA , Souris transgéniques , Cellules souches embryonnaires de souris/métabolisme , Phénotype , Transduction du signal , Facteurs de transcription/génétique , Facteurs de transcription/métabolisme
7.
Nat Commun ; 9(1): 4649, 2018 11 07.
Article de Anglais | MEDLINE | ID: mdl-30405129

RÉSUMÉ

Human pluripotent stem cells (hPSCs) exhibit very limited contribution to interspecies chimeras. One explanation is that the conventional hPSCs are in a primed state and so unable  to form chimeras in pre-implantation embryos. Here, we show that the conventional hPSCs undergo rapid apoptosis when injected into mouse pre-implantation embryos. While, forced-expression of BMI1, a polycomb factor in hPSCs overcomes the apoptosis and enables hPSCs to integrate into mouse pre-implantation embryos and subsequently contribute to chimeras with both embryonic and extra-embryonic tissues. In addition, BMI1 also enables hPSCs to integrate into pre-implantation embryos of other species, such as rabbit and pig. Notably, BMI1 high expression and anti-apoptosis are also indicators for naïve hPSCs to form chimera in mouse embryos. Together, our findings reveal that the apoptosis is an initial barrier in interspecies chimerism using hPSCs and provide a rational to improve it.


Sujet(s)
Chimérisme , Cellules souches pluripotentes/métabolisme , Complexe répresseur Polycomb-1/métabolisme , Animaux , Apoptose , Blastocyste/cytologie , Blastocyste/métabolisme , Lignage cellulaire , Membranes extraembryonnaires/métabolisme , Humains , Souris de lignée ICR , Cellules souches pluripotentes/cytologie , Lapins , Spécificité d'espèce , Suidae
9.
J Biol Chem ; 292(46): 19122-19132, 2017 11 17.
Article de Anglais | MEDLINE | ID: mdl-28935668

RÉSUMÉ

We report here an approach to redirecting somatic cell fate under chemically defined conditions without transcription factors. We start by converting mouse embryonic fibroblasts to epithelial-like cells with chemicals and growth factors. Subsequent cell fate mapping reveals a robust induction of SOX17 in the resulting epithelial-like cells that can be further reprogrammed to endodermal progenitor cells. Interestingly, these cells can self-renew in vitro and further differentiate into albumin-producing hepatocytes that can rescue mice from acute liver injury. Our results demonstrate a rational approach to convert mouse embryonic fibroblasts to hepatocytes and suggest that this mechanism-driven approach may be generalized for other cells.


Sujet(s)
Reprogrammation cellulaire/effets des médicaments et des substances chimiques , Endoderme/cytologie , Fibroblastes/cytologie , Fibroblastes/effets des médicaments et des substances chimiques , Cellules souches/cytologie , Animaux , Différenciation cellulaire , Auto-renouvellement cellulaire , Cellules cultivées , Femelle , Protéines HMGB/analyse , Hépatocytes/cytologie , Souris , Souris de lignée C57BL , Facteurs de transcription SOX-F/analyse
10.
Cell Res ; 21(6): 884-94, 2011 Jun.
Article de Anglais | MEDLINE | ID: mdl-21445094

RÉSUMÉ

The ectopic expression of several transcription factors can restore embryonic cell fate to cultured somatic cells and generate induced pluripotent stem cells (iPSCs), revealing a previously unknown pathway to pluripotency. However, this technology is currently limited by low efficiency, slow kinetics and multi-factorial requirement. Here we show that reprogramming can be improved and dramatically accelerated by optimizing culture conditions. First, we developed an optimized defined medium, iCD1, which allows Oct4/Sox2/Klf4 (OSK)-mediated reprogramming to achieve ultra-high efficiency (~10% at day 8). We also found that this optimized condition renders both Sox2 and Klf4 dispensable, although the elimination of these two factors leads to lower efficiency and slower kinetics. Our studies define a shortened route, both in timing and factor requirement, toward pluripotency. This new paradigm not only provides a rationale to further improve iPSC generation but also simplifies the conceptual understanding of reprogramming by defined factors.


Sujet(s)
Dédifférenciation cellulaire/génétique , Milieux de culture/composition chimique , Cellules souches pluripotentes induites/cytologie , Animaux , Techniques de culture cellulaire , Prolifération cellulaire , Techniques de coculture , Milieux de culture/métabolisme , Fibroblastes/métabolisme , Vecteurs génétiques , Cellules souches pluripotentes induites/physiologie , Cellules souches pluripotentes induites/transplantation , Caryotypage , Facteur-4 de type Kruppel , Facteurs de transcription Krüppel-like/génétique , Facteurs de transcription Krüppel-like/métabolisme , Souris , Souris de lignée ICR , Facteur de transcription Oct-3/génétique , Facteur de transcription Oct-3/métabolisme , Protéines recombinantes/génétique , Protéines recombinantes/métabolisme , Retroviridae/génétique , Facteurs de transcription SOX-B1/génétique , Facteurs de transcription SOX-B1/métabolisme , Facteurs temps , Transfection , Chimère obtenue par transplantation
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