HIGHLIGHT

Extended pluripotent stem cells facilitate mouse model generation

  • Guanghai Xiang 1,2 ,
  • Haoyi Wang , 1,2
Expand
  • 1. State Key Laboratory of Stem Cell and Reproductive Biology, Institute of Zoology, Chinese Academy of Sciences, Beijing 100101, China
  • 2. University of Chinese Academy of Sciences, Beijing 100049, China

Published date: 31 Jan 2019

Copyright

2018 The Author(s) 2018. This article is an open access publication

Cite this article

Guanghai Xiang , Haoyi Wang . Extended pluripotent stem cells facilitate mouse model generation[J]. Protein & Cell, 2019 , 10(1) : 5 -7 . DOI: 10.1007/s13238-018-0573-0

1
Beddington RS, Robertson EJ (1989) An assessment of the developmental potential of embryonic stem cells in the midgestation mouse embryo. Development 105:733–737

2
Brons IG, Smithers LE, Trotter MW, Rugg-Gunn P, Sun B, de Sousa Chuva, Lopes SM, Howlett SK, Clarkson A, Ahrlund-Richter L (2007) Derivation of pluripotent epiblast stem cells from mammalian embryos. Nature 448:191–195

DOI

3
Burdon T, Smith A, Savatier P (2002) Signalling, cell cycle and pluripotency in embryonic stem cells. Trends Cell Biol 12:432–438

DOI

4
Chan YS, Goke J, Ng JH, Lu X, Gonzales KA, Tan CP, Tng WQ, Hong ZZ, Lim YS, Ng HH (2013) Induction of a human pluripotent state with distinct regulatory circuitry that resembles preimplantation epiblast. Cell Stem Cell 13:663–675

DOI

5
Du Y, Wang T, Xu J, Zhao C, Li H, Fu Y, Xu Y, Xie L, Zhao J, Yang W (2018) Efficient derivation of extended pluripotent stem cells from NOD-scid Il2rg(−/−) mice. Protein Cell.https://doi.org/10.1007/s13238-018-0558-z

DOI

6
Duggal G, Warrier S, Ghimire S, Broekaert D, Van der Jeught M, Lierman S, Deroo T, Peelman L, Van Soom A, Cornelissen R (2015) Alternative routes to induce naive pluripotency in human embryonic stem cells. Stem Cells 33:2686–2698

DOI

7
Evans MJ, Kaufman MH (1981) Establishment in culture of pluripotential cells from mouse embryos. Nature 292:154–156

DOI

8
Forsyth NR, Wright WE, Shay JW (2002) Telomerase and differentiation in multicellular organisms: turn it off, turn it on, and turn it off again. Differentiation 69:188–197

DOI

9
Gafni O, Weinberger L, Mansour AA, Manor YS, Chomsky E, Ben-Yosef D, Kalma Y, Viukov S, Maza I, Zviran A(2013) Derivation of novel human ground state naive pluripotent stem cells. Nature 504:282–286

DOI

10
Jaenisch R, Dubois N, Rasko JE, Deng H, Alvarado AS, Fuchs E, Novakovic GV, Baldwin K (2018) Challenging stem cells. Cell 173:1063–1065

DOI

11
James D, Levine AJ, Besser D, Hemmati-Brivanlou A (2005) TGFbeta/activin/nodal signaling is necessary for the maintenance of pluripotency in human embryonic stem cells. Development 132:1273–1282

DOI

12
Li H, Zhao C, Xu J, Xu Y, Cheng C, Liu Y, Wang T, Du Y, Xie L, Zhao J(2018) Rapid generation of gene-targeted EPS-derived mouse models through tetraploid complementation. Protein Cell.https://doi.org/10.1007/s13238-018-0556-1

DOI

13
Martin GR (1981) Isolation of a pluripotent cell line from early mouse embryos cultured in medium conditioned by teratocarcinoma stem cells. Proc Natl Acad Sci USA 78:7634–7638

DOI

14
Nagy A, Rossant J, Nagy R, Abramow-Newerly W, Roder JC (1993) Derivation of completely cell culture-derived mice from early-passage embryonic stem cells. Proc Natl Acad Sci USA 90:8424–8428

DOI

15
Nichols J, Smith A (2009) Naive and primed pluripotent states. Cell Stem Cell 4:487–492

DOI

16
Takashima Y, Guo G, Loos R, Nichols J, Ficz G, Krueger F, Oxley D, Santos F, Clarke J, Mansfield W (2014) Resetting transcription factor control circuitry toward ground-state pluripotency in human. Cell 158:1254–1269

DOI

17
Tesar PJ, Chenoweth JG, Brook FA, Davies TJ, Evans EP, Mack DL, Gardner RL, McKay RD (2007) New cell lines from mouse epiblast share defining features with human embryonic stem cells. Nature 448:196–199

DOI

18
Theunissen TW, Powell BE, Wang H, Mitalipova M, Faddah DA, Reddy J, Fan ZP, Maetzel D, Ganz K, Shi L (2014) systematic identification of culture conditions for induction and maintenance of naive human pluripotency. Cell Stem Cell 15:524–526

DOI

19
Thomson JA, Itskovitz-Eldor J, Shapiro SS, Waknitz MA, Swiergiel JJ, Marshall VS, Jones JM (1998) Embryonic stem cell lines derived from human blastocysts. Science 282:1145–1147

DOI

20
Valamehr B, Robinson M, Abujarour R, Rezner B, Vranceanu F, Le T,Medcalf A, Lee TT, Fitch M, Robbins D(2014) Platform for induction and maintenance of transgene-free hiPSCs resembling ground state pluripotent stem cells. Stem Cell Rep 2:366–381

DOI

21
Wang H, Yang H, Shivalila CS, Dawlaty MM, Cheng AW, Zhang F, Jaenisch R (2013) One-step generation of mice carrying mutations in multiple genes by CRISPR/Cas-mediated genome engineering. Cell 153:910–918

DOI

22
Ware CB, Nelson AM, Mecham B, Hesson J, Zhou W, Jonlin EC, Jimenez-Caliani AJ, Deng X, Cavanaugh C, Cook S (2014) Derivation of naive human embryonic stem cells. Proc Natl Acad Sci USA 111:4484–4489

DOI

23
Yang H, Wang H, Shivalila CS, Cheng AW, Shi L, Jaenisch R (2013) One-step generation of mice carrying reporter and conditional alleles by CRISPR/Cas-mediated genome engineering. Cell 154:1370–1379

DOI

24
Yang J, Ryan DJ, Wang W, Tsang JC, Lan G, Masaki H, Gao X, Antunes L, Yu Y, Zhu Z (2017a) Establishment of mouse expanded potential stem cells. Nature 550:393–397

DOI

25
Yang Y, Liu B, Xu J, Wang J, Wu J, Shi C, Xu Y, Dong J, Wang C, Lai W (2017b) Derivation of pluripotent stem cells with in vivo embryonic and extraembryonic potency. Cell 169(243–257):e225

Outlines

/