Generation of pulsatile ERK activity in mouse embryonic stem cells is regulated by Raf activity
暂无分享,去创建一个
T. Fujimori | Y. Toyooka | S. Oka | Azusa Kato | Kazuhiro Aoki | F. Usami | Yayoi Toyooka | Sanae Oka
[1] Y. Toyooka,et al. Pluripotent stem cells in the research for extraembryonic cell differentiation , 2021, Development, growth & differentiation.
[2] Luis G. Morelli,et al. Intermittent ERK oscillations downstream of FGF in mouse embryonic stem cells , 2020, bioRxiv.
[3] J. R. Chubb,et al. Live imaging of ERK signalling dynamics in differentiating mouse embryonic stem cells , 2019, Development.
[4] A. Hadjantonakis,et al. Lineage Establishment and Progression within the Inner Cell Mass of the Mouse Blastocyst Requires FGFR1 and FGFR2. , 2017, Developmental cell.
[5] Philippe Soriano,et al. Distinct Requirements for FGFR1 and FGFR2 in Primitive Endoderm Development and Exit from Pluripotency. , 2017, Developmental cell.
[6] H. Niwa,et al. LIF signal in mouse embryonic stem cells , 2015, JAK-STAT.
[7] E. Walker,et al. Characterization of the developing small intestine in the absence of either GATA4 or GATA6 , 2014, BMC Research Notes.
[8] Y. Yamanaka,et al. FGF4 is a limiting factor controlling the proportions of primitive endoderm and epiblast in the ICM of the mouse blastocyst. , 2013, Developmental biology.
[9] Kazuhiro Aoki,et al. Stochastic ERK activation induced by noise and cell-to-cell propagation regulates cell density-dependent proliferation. , 2013, Molecular cell.
[10] Tony Pawson,et al. Interaction Domains of Sos1/Grb2 Are Finely Tuned for Cooperative Control of Embryonic Stem Cell Fate , 2013, Cell.
[11] Kazuhiro Aoki,et al. Development of an optimized backbone of FRET biosensors for kinases and GTPases , 2011, Molecular biology of the cell.
[12] Janet Rossant,et al. The role of FGF/Erk signaling in pluripotent cells , 2010, Development.
[13] H. Kiyonari,et al. Three inhibitors of FGF receptor, ERK, and GSK3 establishes germline‐competent embryonic stem cells of C57BL/6N mouse strain with high efficiency and stability , 2010, Genesis.
[14] Chao Zhang,et al. RAF inhibitors transactivate RAF dimers and ERK signaling in cells with wild-type BRAF , 2010, Nature.
[15] Janet Rossant,et al. FGF signal-dependent segregation of primitive endoderm and epiblast in the mouse blastocyst , 2010, Development.
[16] Yingming Zhao,et al. Stk40 links the pluripotency factor Oct4 to the Erk/MAPK pathway and controls extraembryonic endoderm differentiation , 2010, Proceedings of the National Academy of Sciences.
[17] J. Nichols,et al. Suppression of Erk signalling promotes ground state pluripotency in the mouse embryo , 2009, Development.
[18] J. Nichols,et al. Validated germline-competent embryonic stem cell lines from nonobese diabetic mice , 2009, Nature Medicine.
[19] F. Tang,et al. Dynamic equilibrium and heterogeneity of mouse pluripotent stem cells with distinct functional and epigenetic states. , 2008, Cell stem cell.
[20] B. Doble,et al. The ground state of embryonic stem cell self-renewal , 2008, Nature.
[21] Shinji Masui,et al. Rex1/Zfp42 is dispensable for pluripotency in mouse ES cells , 2008, BMC Developmental Biology.
[22] H. Niwa,et al. Identification and characterization of subpopulations in undifferentiated ES cell culture , 2008, Development.
[23] J. Nichols,et al. Nanog safeguards pluripotency and mediates germline development , 2007, Nature.
[24] Marios P. Stavridis,et al. A discrete period of FGF-induced Erk1/2 signalling is required for vertebrate neural specification , 2007, Development.
[25] Austin G Smith,et al. FGF stimulation of the Erk1/2 signalling cascade triggers transition of pluripotent embryonic stem cells from self-renewal to lineage commitment , 2007, Development.
[26] Tony Pawson,et al. Early lineage segregation between epiblast and primitive endoderm in mouse blastocysts through the Grb2-MAPK pathway. , 2006, Developmental cell.
[27] T. Yokota,et al. Involvement of Ras in extraembryonic endoderm differentiation of embryonic stem cells. , 2004, Biochemical and biophysical research communications.
[28] M. Murakami,et al. The Homeoprotein Nanog Is Required for Maintenance of Pluripotency in Mouse Epiblast and ES Cells , 2003, Cell.
[29] J. Nichols,et al. Functional Expression Cloning of Nanog, a Pluripotency Sustaining Factor in Embryonic Stem Cells , 2003, Cell.
[30] V. Papaioannou,et al. Paracrine action of FGF4 during periimplantation development maintains trophectoderm and primitive endoderm , 2003, Genesis.
[31] J. Miyazaki,et al. Phenotypic Complementation Establishes Requirements for Specific POU Domain and Generic Transactivation Function of Oct-3/4 in Embryonic Stem Cells , 2002, Molecular and Cellular Biology.
[32] Nancy A. Jenkins,et al. Recombineering: a powerful new tool for mouse functional genomics , 2001, Nature Reviews Genetics.
[33] Tony Pawson,et al. Mammalian Grb2 Regulates Multiple Steps in Embryonic Development and Malignant Transformation , 1998, Cell.
[34] E. Morrisey,et al. GATA-6: a zinc finger transcription factor that is expressed in multiple cell lineages derived from lateral mesoderm. , 1996, Developmental biology.
[35] V. Papaioannou,et al. Requirement of FGF-4 for postimplantation mouse development , 1995, Science.
[36] E. Nishida,et al. The MAP kinase cascade is essential for diverse signal transduction pathways. , 1993, Trends in biochemical sciences.
[37] G. Martin,et al. Isolation of a pluripotent cell line from early mouse embryos cultured in medium conditioned by teratocarcinoma stem cells. , 1981, Proceedings of the National Academy of Sciences of the United States of America.
[38] M. Kaufman,et al. Establishment in culture of pluripotential cells from mouse embryos , 1981, Nature.