YAP repression of the WNT3 gene controls hESC differentiation along the cardiac mesoderm lineage
暂无分享,去创建一个
K. Jones | H. Hsu | Ling Huang | C. Estarás
[1] I. Domian,et al. Recreating the Cardiac Microenvironment in Pluripotent Stem Cell Models of Human Physiology and Disease. , 2017, Trends in cell biology.
[2] M. Sampaolesi,et al. Stem Cell Technology in Cardiac Regeneration: A Pluripotent Stem Cell Promise , 2017, EBioMedicine.
[3] J. Massagué,et al. The p53 Family Coordinates Wnt and Nodal Inputs in Mesendodermal Differentiation of Embryonic Stem Cells. , 2017, Cell stem cell.
[4] Lu Wang,et al. Signaling Control of Differentiation of Embryonic Stem Cells toward Mesendoderm. , 2016, Journal of molecular biology.
[5] Yigang Wang,et al. Manipulating the Hippo-Yap signal cascade in stem cells for heart regeneration. , 2016, Annals of palliative medicine.
[6] M. V. D. van den Hoff,et al. Wnt signaling in the heart fields: Variations on a common theme , 2016, Developmental dynamics : an official publication of the American Association of Anatomists.
[7] Kun-Liang Guan,et al. Mechanisms of Hippo pathway regulation , 2016, Genes & development.
[8] Bin Zhao,et al. Hippo Pathway in Organ Size Control, Tissue Homeostasis, and Cancer , 2015, Cell.
[9] G. G. Galli,et al. YAP Drives Growth by Controlling Transcriptional Pause Release from Dynamic Enhancers. , 2015, Molecular cell.
[10] K. Guan,et al. YAP and TAZ: a nexus for Hippo signaling and beyond. , 2015, Trends in cell biology.
[11] Young Chul Kim,et al. Alternative Wnt Signaling Activates YAP/TAZ , 2015, Cell.
[12] K. Jones,et al. SMADs and YAP compete to control elongation of β-catenin:LEF-1-recruited RNAPII during hESC differentiation. , 2015, Molecular cell.
[13] Randy L. Johnson,et al. Transcriptional co-repressor function of the hippo pathway transducers YAP and TAZ. , 2015, Cell reports.
[14] Li Li,et al. The hippo pathway in heart development, regeneration, and diseases. , 2015, Circulation research.
[15] John T. Lis,et al. Getting up to speed with transcription elongation by RNA polymerase II , 2015, Nature Reviews Molecular Cell Biology.
[16] E. Robertson. Dose-dependent Nodal/Smad signals pattern the early mouse embryo. , 2014, Seminars in cell & developmental biology.
[17] Giuseppe Basso,et al. YAP/TAZ Incorporation in the β-Catenin Destruction Complex Orchestrates the Wnt Response , 2014, Cell.
[18] S. Lenzen,et al. The Generation of Definitive Endoderm from Human Embryonic Stem Cells is Initially Independent from Activin A but Requires Canonical Wnt-Signaling , 2014, Stem Cell Reviews and Reports.
[19] I. Weissman,et al. Efficient endoderm induction from human pluripotent stem cells by logically directing signals controlling lineage bifurcations. , 2014, Cell stem cell.
[20] J. Wrana,et al. Switch enhancers interpret TGF-β and Hippo signaling to control cell fate in human embryonic stem cells. , 2013, Cell reports.
[21] J. Yates,et al. α-Catenin interacts with APC to regulate β-catenin proteolysis and transcriptional repression of Wnt target genes , 2013, Genes & development.
[22] Feng Zhang,et al. Genome engineering using CRISPR-Cas9 system. , 2015, Methods in molecular biology.
[23] Nicolas Fossat,et al. Wnt signalling in mouse gastrulation and anterior development: new players in the pathway and signal output. , 2013, Current opinion in genetics & development.
[24] R. Derynck,et al. Smad2 Is Essential for Maintenance of the Human and Mouse Primed Pluripotent Stem Cell State* , 2013, The Journal of Biological Chemistry.
[25] F. Camargo,et al. The Hippo superhighway: signaling crossroads converging on the Hippo/Yap pathway in stem cells and development. , 2013, Current opinion in cell biology.
[26] Sanjay Kumar. Microtubule assembly: Switched on with magnets. , 2013, Nature nanotechnology.
[27] Sean P. Palecek,et al. Directed cardiomyocyte differentiation from human pluripotent stem cells by modulating Wnt/β-catenin signaling under fully defined conditions , 2012, Nature Protocols.
[28] Shuji Ogino,et al. Restriction of intestinal stem cell expansion and the regenerative response by YAP , 2012, Nature.
[29] Jun O. Liu,et al. Genetic and pharmacological disruption of the TEAD-YAP complex suppresses the oncogenic activity of YAP. , 2012, Genes & development.
[30] Hans Clevers,et al. Wnt/β-Catenin Signaling and Disease , 2012, Cell.
[31] M. Geyer,et al. Serine-7 but not serine-5 phosphorylation primes RNA polymerase II CTD for P-TEFb recognition , 2012, Nature Communications.
[32] Joungmok Kim,et al. The role of YAP transcription coactivator in regulating stem cell self-renewal and differentiation. , 2010, Genes & development.
[33] Sho Fujisawa,et al. Nuclear CDKs Drive Smad Transcriptional Activation and Turnover in BMP and TGF-β Pathways , 2009, Cell.
[34] J. Nichols,et al. Klf4 reverts developmentally programmed restriction of ground state pluripotency , 2009, Development.
[35] Norio Nakatsuji,et al. Defining early lineage specification of human embryonic stem cells by the orchestrated balance of canonical Wnt/β-catenin, Activin/Nodal and BMP signaling , 2008, Development.
[36] G. Keller,et al. Wnt, activin, and BMP signaling regulate distinct stages in the developmental pathway from embryonic stem cells to blood. , 2008, Cell stem cell.
[37] K. Luo,et al. Signaling Cross Talk between TGF-β/Smad and Other Signaling Pathways. , 2017, Cold Spring Harbor perspectives in biology.
[38] Sebastian A. Leidel,et al. Stepwise Clearance of Repressive Roadblocks Drives Cardiac Induction in Human ESCs. , 2016, Cell stem cell.