Systematic Identification of Culture Conditions for Induction and Maintenance of Naive Human Pluripotency

[1]  C. Lengner,et al.  Metastable Pluripotent States in NOD-Mouse-Derived ESCs , 2015 .

[2]  Ning Leng,et al.  Collaborative rewiring of the pluripotency network by chromatin and signalling modulating pathways , 2015, Nature Communications.

[3]  J. Nichols,et al.  Resetting Transcription Factor Control Circuitry toward Ground-State Pluripotency in Human , 2014, Cell.

[4]  A. Simeone,et al.  Reorganization of enhancer patterns in transition from naive to primed pluripotency. , 2014, Cell stem cell.

[5]  Angelique M. Nelson,et al.  Derivation of naïve human embryonic stem cells , 2014, Proceedings of the National Academy of Sciences.

[6]  H. Ng,et al.  Induction of a human pluripotent state with distinct regulatory circuitry that resembles preimplantation epiblast. , 2013, Cell stem cell.

[7]  I. Amit,et al.  Derivation of novel human ground state naive pluripotent stem cells , 2013, Nature.

[8]  T. Burdon,et al.  Tuning of β‐catenin activity is required to stabilize self‐renewal of rat embryonic stem cells , 2013, Stem cells.

[9]  Ruiqiang Li,et al.  Single-cell RNA-Seq profiling of human preimplantation embryos and embryonic stem cells , 2013, Nature Structural &Molecular Biology.

[10]  H. Deng,et al.  Pluripotent Stem Cells Induced from Mouse Somatic Cells by Small-Molecule Compounds , 2013, Science.

[11]  David A. Orlando,et al.  Revisiting Global Gene Expression Analysis , 2012, Cell.

[12]  G. Daley,et al.  Accessing naïve human pluripotency. , 2012, Current opinion in genetics & development.

[13]  T. Tada,et al.  Human and mouse induced pluripotent stem cells are differentially reprogrammed in response to kinase inhibitors. , 2012, Stem cells and development.

[14]  K. Eggan,et al.  Erosion of dosage compensation impacts human iPSC disease modeling. , 2012, Cell stem cell.

[15]  Jennifer Nichols,et al.  The Transcriptional and Epigenomic Foundations of Ground State Pluripotency , 2012, Cell.

[16]  Roland Rad,et al.  Rapid and efficient reprogramming of somatic cells to induced pluripotent stem cells by retinoic acid receptor gamma and liver receptor homolog 1 , 2011, Proceedings of the National Academy of Sciences.

[17]  E. Heard,et al.  Eutherian mammals use diverse strategies to initiate X-chromosome inactivation during development , 2011, Nature.

[18]  J. Nadeau,et al.  Isolation of epiblast stem cells from preimplantation mouse embryos. , 2011, Cell stem cell.

[19]  Gonçalo Castelo-Branco,et al.  Nanog Overcomes Reprogramming Barriers and Induces Pluripotency in Minimal Conditions , 2011, Current Biology.

[20]  Austin G Smith,et al.  The ground state of pluripotency. , 2010, Biochemical Society transactions.

[21]  C. Lengner,et al.  Human embryonic stem cells with biological and epigenetic characteristics similar to those of mouse ESCs , 2010, Proceedings of the National Academy of Sciences.

[22]  Jennifer A. Erwin,et al.  Derivation of Pre-X Inactivation Human Embryonic Stem Cells under Physiological Oxygen Concentrations , 2010, Cell.

[23]  Stephen Dalton,et al.  Highly efficient generation of human hepatocyte–like cells from induced pluripotent stem cells , 2010, Hepatology.

[24]  J. Nichols,et al.  Oct4 and LIF/Stat3 additively induce Krüppel factors to sustain embryonic stem cell self-renewal. , 2009, Cell stem cell.

[25]  Ge Guo,et al.  Nanog Is the Gateway to the Pluripotent Ground State , 2009, Cell.

[26]  J. Nichols,et al.  Naive and primed pluripotent states. , 2009, Cell stem cell.

[27]  J. Nichols,et al.  Klf4 reverts developmentally programmed restriction of ground state pluripotency , 2009, Development.

[28]  C. Hsieh,et al.  Germline Competent Embryonic Stem Cells Derived from Rat Blastocysts , 2008, Cell.

[29]  R. Jaenisch,et al.  A drug-inducible system for direct reprogramming of human somatic cells to pluripotency. , 2008, Cell stem cell.

[30]  B. Doble,et al.  The ground state of embryonic stem cell self-renewal , 2008, Nature.

[31]  G. Daley,et al.  Enhanced plating efficiency of trypsin-adapted human embryonic stem cells is reversible and independent of trisomy 12/17. , 2008, Cloning and stem cells.

[32]  Austin G Smith,et al.  Capturing Pluripotency , 2008, Cell.

[33]  M. Trotter,et al.  Derivation of pluripotent epiblast stem cells from mammalian embryos , 2007, Nature.

[34]  R. McKay,et al.  New cell lines from mouse epiblast share defining features with human embryonic stem cells , 2007, Nature.

[35]  P. Gallant,et al.  Novel 2-aminopyrimidine carbamates as potent and orally active inhibitors of Lck: synthesis, SAR, and in vivo antiinflammatory activity. , 2006, Journal of medicinal chemistry.

[36]  H. Schöler,et al.  Germline regulatory element of Oct-4 specific for the totipotent cycle of embryonal cells. , 1996, Development.