Sinoatrial node cardiomyocytes derived from human pluripotent cells function as a biological pacemaker
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Udi Nussinovitch | Lior Gepstein | L. Gepstein | G. Keller | U. Nussinovitch | P. Backx | Jie Liu | Peter H Backx | Gordon M Keller | Jie Liu | Stephanie I Protze | Lily Ohana | Lily Ohana | S. Protze
[1] G. Keller,et al. Development of the hemangioblast defines the onset of hematopoiesis in human ES cell differentiation cultures. , 2007, Blood.
[2] M. Piedra,et al. BMP signaling positively regulates Nodal expression during left right specification in the chick embryo. , 2002, Development.
[3] Praveen Shukla,et al. Chemically defined generation of human cardiomyocytes , 2014, Nature Methods.
[4] Richard P. Harvey,et al. Molecular Pathway for the Localized Formation of the Sinoatrial Node , 2007, Circulation research.
[5] C. Murry,et al. Systems approaches to preventing transplanted cell death in cardiac repair. , 2008, Journal of molecular and cellular cardiology.
[6] A. Trounson,et al. Embryonic stem cell lines from human blastocysts: somatic differentiation in vitro , 2000, Nature Biotechnology.
[7] K. Yamamura,et al. Multi-modal effects of BMP signaling on Nodal expression in the lateral plate mesoderm during left-right axis formation in the chick embryo. , 2013, Developmental biology.
[8] P. Backx,et al. The electrophysiological development of cardiomyocytes. , 2016, Advanced drug delivery reviews.
[9] G. Steinbeck,et al. Regional differences in current density and rate-dependent properties of the transient outward current in subepicardial and subendocardial myocytes of human left ventricle. , 1996, Circulation.
[10] Gertien J Smits,et al. Development of the Pacemaker Tissues of the Heart , 2010, Circulation research.
[11] M. Barron,et al. Requirement for BMP and FGF signaling during cardiogenic induction in non‐precardiac mesoderm is specific, transient, and cooperative , 2000, Developmental dynamics : an official publication of the American Association of Anatomists.
[12] W. Rottbauer,et al. Targeted Mutation Reveals Essential Functions of the Homeodomain Transcription Factor Shox2 in Sinoatrial and Pacemaking Development , 2007, Circulation.
[13] A. Moorman,et al. Gene Expression Profiling of the Forming Atrioventricular Node Using a Novel Tbx3-Based Node-Specific Transgenic Reporter , 2009, Circulation research.
[14] S. Kattman,et al. The generation of the epicardial lineage from human pluripotent stem cells , 2014, Nature Biotechnology.
[15] J. Seidman,et al. Congenital heart disease caused by mutations in the transcription factor NKX2-5. , 1998, Science.
[16] Eric Buel,et al. Development of an Alu-based, real-time PCR method for quantitation of human DNA in forensic samples. , 2003, Journal of forensic sciences.
[17] A. Moorman,et al. Tbx3 controls the sinoatrial node gene program and imposes pacemaker function on the atria. , 2007, Genes & development.
[18] R. Passier,et al. NKX2-5eGFP/w hESCs for isolation of human cardiac progenitors and cardiomyocytes , 2011, Nature Methods.
[19] A. Moorman,et al. Formation of the Sinus Node Head and Differentiation of Sinus Node Myocardium Are Independently Regulated by Tbx18 and Tbx3 , 2009, Circulation research.
[20] Gordon Keller,et al. SIRPA is a specific cell-surface marker for isolating cardiomyocytes derived from human pluripotent stem cells , 2011, Nature Biotechnology.
[21] Kyoung-Han Kim,et al. Dissection of the voltage-activated potassium outward currents in adult mouse ventricular myocytes: Ito,f, Ito,s, IK,slow1, IK,slow2, and Iss , 2011, Basic Research in Cardiology.
[22] N. Rosenthal,et al. From the bottom of the heart: anteroposterior decisions in cardiac muscle differentiation. , 2000, Current opinion in cell biology.
[23] A. Moorman,et al. Formation of the Venous Pole of the Heart From an Nkx2–5–Negative Precursor Population Requires Tbx18 , 2006, Circulation research.
[24] Lila R Collins,et al. Cardiomyocytes derived from human embryonic stem cells in pro-survival factors enhance function of infarcted rat hearts , 2007, Nature Biotechnology.
[25] T. Opthof,et al. The normal range and determinants of the intrinsic heart rate in man. , 2000, Cardiovascular research.
[26] R. A. Li,et al. Gene- and cell-based bio-artificial pacemaker: what basic and translational lessons have we learned? , 2012, Gene Therapy.
[27] George Q. Daley,et al. Reprogramming of human somatic cells to pluripotency with defined factors , 2008, Nature.
[28] Rona Shofti,et al. Electromechanical integration of cardiomyocytes derived from human embryonic stem cells , 2004, Nature Biotechnology.
[29] James A Thomson,et al. High purity human-induced pluripotent stem cell-derived cardiomyocytes: electrophysiological properties of action potentials and ionic currents. , 2011, American journal of physiology. Heart and circulatory physiology.
[30] Da-Zhi Wang,et al. Shox2 is essential for the differentiation of cardiac pacemaker cells by repressing Nkx2-5. , 2009, Developmental biology.
[31] R. David,et al. Programming and Isolation of Highly Pure Physiologically and Pharmacologically Functional Sinus-Nodal Bodies from Pluripotent Stem Cells , 2014, Stem cell reports.
[32] N. Rosenthal,et al. A retinoic acid-inducible transgenic marker of sino-atrial development in the mouse heart. , 1999, Development.
[33] Hee Cheol Cho,et al. Direct conversion of quiescent cardiomyocytes to pacemaker cells by expression of Tbx18 , 2012, Nature Biotechnology.
[34] Eric D. Adler,et al. Human cardiovascular progenitor cells develop from a KDR+ embryonic-stem-cell-derived population , 2008, Nature.
[35] Gordon Keller,et al. Stage-specific optimization of activin/nodal and BMP signaling promotes cardiac differentiation of mouse and human pluripotent stem cell lines. , 2011, Cell stem cell.
[36] E. Marbán,et al. SHOX2 Overexpression Favors Differentiation of Embryonic Stem Cells into Cardiac Pacemaker Cells, Improving Biological Pacing Ability , 2014, Stem cell reports.
[37] R. Passier,et al. Expansion and patterning of cardiovascular progenitors derived from human pluripotent stem cells , 2015, Nature Biotechnology.
[38] Ming Lei,et al. Specific pattern of ionic channel gene expression associated with pacemaker activity in the mouse heart , 2005, The Journal of physiology.
[39] A. Moorman,et al. Basic Science for the Clinical Electrophysiologist Development of the Cardiac Conduction System Why Are Some Regions of the Heart More Arrhythmogenic Than Others , 2009 .
[40] A. Moorman,et al. The sinus venosus progenitors separate and diversify from the first and second heart fields early in development. , 2010, Cardiovascular research.
[41] A. Keren,et al. Neural ectoderm-secreted FGF initiates the expression of Nkx2.5 in cardiac progenitors via a p38 MAPK/CREB pathway. , 2009, Developmental biology.
[42] Yu-Feng Hu,et al. Biological pacemaker created by minimally invasive somatic reprogramming in pigs with complete heart block , 2014, Science Translational Medicine.
[43] A. Boulesteix,et al. What is the “normal” fetal heart rate? , 2013, PeerJ.
[44] Robert H. Anderson,et al. Molecular Analysis of Patterning of Conduction Tissues in the Developing Human Heart , 2011, Circulation. Arrhythmia and electrophysiology.
[45] A. Torrente,et al. Functional role of voltage gated Ca2+ channels in heart automaticity , 2015, Front. Physiol..
[46] Michael R Rosen,et al. Genes, stem cells and biological pacemakers. , 2004, Cardiovascular research.
[47] James A Thomson,et al. Human Embryonic Stem Cells Develop Into Multiple Types of Cardiac Myocytes: Action Potential Characterization , 2003, Circulation research.