Mechanism-Based Facilitated Maturation of Human Pluripotent Stem Cell–Derived Cardiomyocytes
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Deborah K. Lieu | Ronald A. Li | Thomas Huser | Gordon Keller | Nipavan Chiamvimonvat | G. Keller | T. Huser | G. McNerney | D. Lieu | C. Kong | N. Chiamvimonvat | Ji-Dong Fu | Ji-Dong Fu | Gregory P. McNerney | Chi-Wing Kong | Kelvin Chan Tung | K. Tung
[1] K. Boheler,et al. Embryonic Stem Cell-Derived Cardiomyocyte Heterogeneity and the Isolation of Immature and Committed Cells for Cardiac Remodeling and Regeneration , 2011, Stem cells international.
[2] D. Roberts,et al. Human ISL1 heart progenitors generate diverse multipotent cardiovascular cell lineages , 2009, Nature.
[3] Ronald A. Li,et al. Facilitated maturation of Ca2+ handling properties of human embryonic stem cell-derived cardiomyocytes by calsequestrin expression. , 2009, American journal of physiology. Cell physiology.
[4] Ronald A. Li,et al. Distinct cardiogenic preferences of two human embryonic stem cell (hESC) lines are imprinted in their proteomes in the pluripotent state. , 2008, Biochemical and biophysical research communications.
[5] Ronald A. Li,et al. Functional sarcoplasmic reticulum for calcium-handling of human embryonic stem cell-derived cardiomyocytes: Insights for driven maturation , 2008, Cell Research.
[6] Eric D. Adler,et al. Human cardiovascular progenitor cells develop from a KDR+ embryonic-stem-cell-derived population , 2008, Nature.
[7] G. Tomaselli,et al. Mechanisms of Disease: ion channel remodeling in the failing ventricle , 2008, Nature Clinical Practice Cardiovascular Medicine.
[8] Shulan Tian,et al. Induced Pluripotent Stem Cell Lines Derived from Human Somatic Cells , 2007, Science.
[9] Milica Radisic,et al. Interactive effects of surface topography and pulsatile electrical field stimulation on orientation and elongation of fibroblasts and cardiomyocytes. , 2007, Biomaterials.
[10] K. Pfannkuche,et al. Electrophysiological Maturation and Integration of Murine Fetal Cardiomyocytes After Transplantation , 2007, Circulation research.
[11] E. Bettiol,et al. Developmental Changes in Cardiomyocytes Differentiated from Human Embryonic Stem Cells: A Molecular and Electrophysiological Approach , 2007, Stem cells.
[12] Yusong He,et al. Stretch-induced alterations of human Kir2.1 channel currents. , 2006, Biochemical and biophysical research communications.
[13] Yunfu Sun,et al. Multipotent Embryonic Isl1 + Progenitor Cells Lead to Cardiac, Smooth Muscle, and Endothelial Cell Diversification , 2006, Cell.
[14] C. Lau,et al. Bioartificial Sinus Node Constructed via In Vivo Gene Transfer of an Engineered Pacemaker HCN Channel Reduces the Dependence on Electronic Pacemaker in a Sick-Sinus Syndrome Model , 2006, Circulation.
[15] K. T. ten Tusscher,et al. Alternans and spiral breakup in a human ventricular tissue model. , 2006, American journal of physiology. Heart and circulatory physiology.
[16] E. Azene,et al. Non-equilibrium behavior of HCN channels: insights into the role of HCN channels in native and engineered pacemakers. , 2005, Cardiovascular research.
[17] Trine Krogh-Madsen,et al. An ionic model for rhythmic activity in small clusters of embryonic chick ventricular cells. , 2005, American journal of physiology. Heart and circulatory physiology.
[18] Steven P Jones,et al. Functional Integration of Electrically Active Cardiac Derivatives From Genetically Engineered Human Embryonic Stem Cells With Quiescent Recipient Ventricular Cardiomyocytes: Insights Into the Development of Cell-Based Pacemakers , 2005, Circulation.
[19] R. Kumar,et al. Calcium Transients in Infant Human Atrial Myocytes , 2005, Pediatric Research.
[20] Milica Radisic,et al. Functional assembly of engineered myocardium by electrical stimulation of cardiac myocytes cultured on scaffolds , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[21] G. Tomaselli,et al. In Vivo Cardiac Gene Transfer of Kv4.3 Abrogates the Hypertrophic Response in Rats After Aortic Stenosis , 2004, Circulation.
[22] Ido Perlman,et al. Mechanism of spontaneous excitability in human embryonic stem cell derived cardiomyocytes , 2004, The Journal of physiology.
[23] R. Kamm,et al. Mechanotransduction in Cardiac Myocytes , 2004, Annals of the New York Academy of Sciences.
[24] G. Daley,et al. Human embryonic stem cells , 2004, Bone Marrow Transplantation.
[25] R. Kumar,et al. Differences in transient outward current properties between neonatal and adult human atrial myocytes. , 2003, Journal of molecular and cellular cardiology.
[26] James A Thomson,et al. Human Embryonic Stem Cells Develop Into Multiple Types of Cardiac Myocytes: Action Potential Characterization , 2003, Circulation research.
[27] Rene Spijker,et al. Differentiation of Human Embryonic Stem Cells to Cardiomyocytes: Role of Coculture With Visceral Endoderm-Like Cells , 2003, Circulation.
[28] V. Murthy,et al. Multiple forms of synaptic plasticity triggered by selective suppression of activity in individual neurons , 2002, Nature.
[29] P. Backx,et al. Prevention of Hypertrophy by Overexpression of Kv4.2 in Cultured Neonatal Cardiomyocytes , 2002, Circulation.
[30] Chunhui Xu,et al. Characterization and Enrichment of Cardiomyocytes Derived From Human Embryonic Stem Cells , 2002, Circulation research.
[31] David Tweedie,et al. Differentiation of Pluripotent Embryonic Stem Cells Into Cardiomyocytes , 2002, Circulation research.
[32] J. Molkentin,et al. Reduction of Ito Causes Hypertrophy in Neonatal Rat Ventricular Myocytes , 2002 .
[33] A M Wobus,et al. Embryonic stem cells as a model to study cardiac, skeletal muscle, and vascular smooth muscle cell differentiation. , 2002, Methods in molecular biology.
[34] J. Molkentin,et al. Reduction of I(to) causes hypertrophy in neonatal rat ventricular myocytes. , 2002, Circulation research.
[35] O. Frazier,et al. Metabolic Gene Expression in Fetal and Failing Human Heart , 2001, Circulation.
[36] L Gepstein,et al. Human embryonic stem cells can differentiate into myocytes with structural and functional properties of cardiomyocytes. , 2001, The Journal of clinical investigation.
[37] A. Trounson,et al. Embryonic stem cell lines from human blastocysts: somatic differentiation in vitro , 2000, Nature Biotechnology.
[38] L Camilleri,et al. Extracellular K+ dependence of inward rectification kinetics in human left ventricular cardiomyocytes. , 1998, Circulation.
[39] J. Thomson,et al. Embryonic stem cell lines derived from human blastocysts. , 1998, Science.
[40] J A Thomson,et al. Primate embryonic stem cells. , 1998, Current topics in developmental biology.
[41] M. Kitamura,et al. Construction of adenovirus vectors through Cre-lox recombination , 1997, Journal of virology.
[42] Y. Jan,et al. Determination of the subunit stoichiometry of an inwardly rectifying potassium channel , 1995, Neuron.
[43] E. Erdmann,et al. Alterations of K+ currents in isolated human ventricular myocytes from patients with terminal heart failure. , 1993, Circulation research.
[44] B. Oseid. BREAST‐FEEDING AND INFANT HEALTH , 1975, Seminars in perinatology.
[45] C. D. VAN CLEAVE. Embryonic induction. , 1946, Modern hospital.