Noncoding RNAs as regulators of cardiomyocyte proliferation and death.
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[1] Shuhan Sun,et al. Epigenetically silenced long noncoding-SRHC promotes proliferation of hepatocellular carcinoma , 2015, Journal of Cancer Research and Clinical Oncology.
[2] Ming Sun,et al. Long Noncoding RNA ANRIL Promotes Non–Small Cell Lung Cancer Cell Proliferation and Inhibits Apoptosis by Silencing KLF2 and P21 Expression , 2014, Molecular Cancer Therapeutics.
[3] J. Molkentin,et al. An emerging consensus on cardiac regeneration , 2014, Nature Medicine.
[4] Yanzhi Wang,et al. Regulation of apoptosis by long non-coding RNA HIF1A-AS1 in VSMCs: implications for TAA pathogenesis. , 2014, International journal of clinical and experimental pathology.
[5] Chaoqian Xu,et al. β-Blocker carvedilol protects cardiomyocytes against oxidative stress-induced apoptosis by up-regulating miR-133 expression. , 2014, Journal of molecular and cellular cardiology.
[6] R. Hui,et al. MiR-451 is decreased in hypertrophic cardiomyopathy and regulates autophagy by targeting TSC1 , 2014, Journal of cellular and molecular medicine.
[7] L. Pitto,et al. Triiodothyronine prevents cardiac ischemia/reperfusion mitochondrial impairment and cell loss by regulating miR30a/p53 axis. , 2014, Endocrinology.
[8] Chaoqian Xu,et al. By Targeting Stat3 microRNA-17-5p Promotes Cardiomyocyte Apoptosis in Response to Ischemia Followed by Reperfusion , 2014, Cellular Physiology and Biochemistry.
[9] Zuoren Yu,et al. miR-10a Regulates Proliferation of Human Cardiomyocyte Progenitor Cells by Targeting GATA6 , 2014, PloS one.
[10] V. Kim,et al. Regulation of microRNA biogenesis , 2014, Nature Reviews Molecular Cell Biology.
[11] M. Esteller,et al. Regulation of pri-miRNA processing by a long noncoding RNA transcribed from an ultraconserved region. , 2014, Molecular cell.
[12] Jing Ye,et al. miR-34a Modulates Angiotensin II-Induced Myocardial Hypertrophy by Direct Inhibition of ATG9A Expression and Autophagic Activity , 2014, PloS one.
[13] B. Long,et al. CARL lncRNA inhibits anoxia-induced mitochondrial fission and apoptosis in cardiomyocytes by impairing miR-539-dependent PHB2 downregulation , 2014, Nature Communications.
[14] Jian Shi,et al. Overexpression of microRNA-99a attenuates heart remodelling and improves cardiac performance after myocardial infarction , 2014, Journal of cellular and molecular medicine.
[15] Jincheng Li,et al. Mitofusin 1 Is Negatively Regulated by MicroRNA 140 in Cardiomyocyte Apoptosis , 2014, Molecular and Cellular Biology.
[16] M. Bogoyevitch,et al. Oxidative stress impairs multiple regulatory events to drive persistent cytokine-stimulated STAT3 phosphorylation. , 2014, Biochimica et biophysica acta.
[17] F. Luft,et al. Long non-coding RNA in health and disease , 2014, Journal of Molecular Medicine.
[18] W. Kun,et al. Autophagic program is regulated by miR-325 , 2014, Cell Death and Differentiation.
[19] M. Volpe,et al. Mammalian target of rapamycin signaling in cardiac physiology and disease. , 2014, Circulation research.
[20] Q. Cui,et al. MiR-499 Regulates Cell Proliferation and Apoptosis during Late-Stage Cardiac Differentiation via Sox6 and Cyclin D1 , 2013, PloS one.
[21] M. Latronico,et al. Long Noncoding RNA: a New Player of Heart Failure? , 2013, Journal of Cardiovascular Translational Research.
[22] B. Long,et al. miR-874 regulates myocardial necrosis by targeting caspase-8 , 2013, Cell Death and Disease.
[23] G. Wang,et al. mir-17–92 Cluster Is Required for and Sufficient to Induce Cardiomyocyte Proliferation in Postnatal and Adult Hearts , 2013, Circulation research.
[24] Shengshou Hu,et al. MicroRNA profiling during rat ventricular maturation: A role for miR‐29a in regulating cardiomyocyte cell cycle re‐entry , 2013, FEBS letters.
[25] Andreia J. Amaral,et al. Expression Profile of microRNAs Regulating Proliferation and Differentiation in Mouse Adult Cardiac Stem Cells , 2013, PloS one.
[26] C. Yeh,et al. Carvedilol Treatment After Myocardial Infarct Decreases Cardiomyocytic Apoptosis in the Peri-infarct Zone During Cardioplegia-Induced Cardiac Arrest , 2013, Shock.
[27] Zhang-bin Yu,et al. Effects of miR-19b Overexpression on Proliferation, Differentiation, Apoptosis and Wnt/β-Catenin Signaling Pathway in P19 Cell Model of Cardiac Differentiation In Vitro , 2013, Cell Biochemistry and Biophysics.
[28] S. Ryter,et al. Autophagy in human health and disease. , 2013, The New England journal of medicine.
[29] Neha J. Pagidipati,et al. Estimating Deaths From Cardiovascular Disease: A Review of Global Methodologies of Mortality Measurement , 2013, Circulation.
[30] Shi-ming Liu,et al. MiR-30-Regulated Autophagy Mediates Angiotensin II-Induced Myocardial Hypertrophy , 2013, PloS one.
[31] Dionne A. Graham,et al. Cardiomyocyte proliferation contributes to heart growth in young humans , 2013, Proceedings of the National Academy of Sciences.
[32] Diana C. Canseco,et al. Regulation of neonatal and adult mammalian heart regeneration by the miR-15 family , 2012, Proceedings of the National Academy of Sciences.
[33] L. Zentilin,et al. Functional screening identifies miRNAs inducing cardiac regeneration , 2012, Nature.
[34] Richard T. Lee,et al. Mammalian Heart Renewal by Preexisting Cardiomyocytes , 2012, Nature.
[35] Ruotian Li,et al. MicroRNA-145 Protects Cardiomyocytes against Hydrogen Peroxide (H2O2)-Induced Apoptosis through Targeting the Mitochondria Apoptotic Pathway , 2012, PloS one.
[36] Kenta Moriwaki,et al. The RIP1/RIP3 Necrosome Forms a Functional Amyloid Signaling Complex Required for Programmed Necrosis , 2012, Cell.
[37] U. Moll,et al. p53 Opens the Mitochondrial Permeability Transition Pore to Trigger Necrosis , 2012, Cell.
[38] K. Poss,et al. Regulation of zebrafish heart regeneration by miR-133. , 2012, Developmental biology.
[39] Da-Zhi Wang,et al. microRNAs in cardiovascular development. , 2012, Journal of molecular and cellular cardiology.
[40] G. Fan,et al. Role of microRNAs in the reperfused myocardium towards post-infarct remodelling. , 2012, Cardiovascular research.
[41] H. Katus,et al. MicroRNA-20a inhibits stress-induced cardiomyocyte apoptosis involving its novel target Egln3/PHD3. , 2012, Journal of molecular and cellular cardiology.
[42] J. Stenvang,et al. Inhibition of microRNA function by antimiR oligonucleotides , 2012, Silence.
[43] E. Olson,et al. Inhibition of miR-15 Protects Against Cardiac Ischemic Injury , 2012, Circulation research.
[44] K. Chowdhury,et al. The miRNA-212/132 family regulates both cardiac hypertrophy and cardiomyocyte autophagy , 2012, Nature Communications.
[45] A. Criollo,et al. Cardiomyocyte death: mechanisms and translational implications , 2011, Cell Death and Disease.
[46] Howard Y. Chang,et al. Molecular mechanisms of long noncoding RNAs. , 2011, Molecular cell.
[47] G. Dorn,et al. miR-15 Family Regulates Postnatal Mitotic Arrest of Cardiomyocytes , 2011, Circulation research.
[48] Barry Greenberg,et al. Calcium Upregulation by Percutaneous Administration of Gene Therapy in Cardiac Disease (CUPID): A Phase 2 Trial of Intracoronary Gene Therapy of Sarcoplasmic Reticulum Ca2+-ATPase in Patients With Advanced Heart Failure , 2011, Circulation.
[49] N. Mercader,et al. Extensive scar formation and regression during heart regeneration after cryoinjury in zebrafish , 2011, Development.
[50] H. Zhang,et al. Role of miR-1 and miR-133a in myocardial ischemic postconditioning , 2011, Journal of Biomedical Science.
[51] L. V. Van Laake,et al. miR-24 inhibits apoptosis and represses Bim in mouse cardiomyocytes , 2011, The Journal of experimental medicine.
[52] E. Marbán,et al. Dedifferentiation and Proliferation of Mammalian Cardiomyocytes , 2010, PloS one.
[53] Jincheng Li,et al. Mitochondrial fission controls DNA fragmentation by regulating endonuclease G. , 2010, Free radical biology & medicine.
[54] I. Komuro,et al. Inhibition of autophagy in the heart induces age-related cardiomyopathy , 2010, Autophagy.
[55] M. Goumans,et al. MicroRNA-155 prevents necrotic cell death in human cardiomyocyte progenitor cells via targeting RIP1 , 2010, Journal of cellular and molecular medicine.
[56] Sang-Bing Ong,et al. Inhibiting Mitochondrial Fission Protects the Heart Against Ischemia/Reperfusion Injury , 2010, Circulation.
[57] Jing Gong,et al. MicroRNA145 targets BNIP3 and suppresses prostate cancer progression. , 2010, Cancer research.
[58] Junying Yuan,et al. Necroptosis as an alternative form of programmed cell death. , 2010, Current opinion in cell biology.
[59] E. Olson,et al. MicroRNAs add a new dimension to cardiovascular disease. , 2010, Circulation.
[60] J. C. Belmonte,et al. Zebrafish heart regeneration occurs by cardiomyocyte dedifferentiation and proliferation , 2010, Nature.
[61] R. Kitsis,et al. Cell death in the pathogenesis of heart disease: mechanisms and significance. , 2010, Annual review of physiology.
[62] Jincheng Li,et al. miR-30 Regulates Mitochondrial Fission through Targeting p53 and the Dynamin-Related Protein-1 Pathway , 2010, PLoS genetics.
[63] Chunxiang Zhang,et al. Involvement of MicroRNAs in Hydrogen Peroxide-mediated Gene Regulation and Cellular Injury Response in Vascular Smooth Muscle Cells* , 2009, Journal of Biological Chemistry.
[64] G. Chinnadurai,et al. BH3-only proteins in apoptosis and beyond: an overview , 2008, Oncogene.
[65] E. Olson,et al. microRNA-133a regulates cardiomyocyte proliferation and suppresses smooth muscle gene expression in the heart. , 2008, Genes & development.
[66] Samuel Bernard,et al. Evidence for Cardiomyocyte Renewal in Humans , 2008, Science.
[67] K. Otsu,et al. Crosstalk Between Autophagy and Apoptosis in Heart Disease , 2008, Circulation research.
[68] E. Olson,et al. MicroRNAs flex their muscles. , 2008, Trends in genetics : TIG.
[69] R. Youle,et al. A chemical inhibitor of DRP1 uncouples mitochondrial fission and apoptosis. , 2008, Molecular cell.
[70] T. Kuwana,et al. Chemical inhibition of the mitochondrial division dynamin reveals its role in Bax/Bak-dependent mitochondrial outer membrane permeabilization. , 2008, Developmental cell.
[71] D. Yellon,et al. Necrostatin: A Potentially Novel Cardioprotective Agent? , 2007, Cardiovascular Drugs and Therapy.
[72] C. Croce,et al. MicroRNA-133 controls cardiac hypertrophy , 2007, Nature Medicine.
[73] Roberto Bolli,et al. Life and Death of Cardiac Stem Cells: A Paradigm Shift in Cardiac Biology , 2006, Circulation.
[74] Kathryn A. O’Donnell,et al. c-Myc-regulated microRNAs modulate E2F1 expression , 2005, Nature.
[75] J. Castle,et al. Microarray analysis shows that some microRNAs downregulate large numbers of target mRNAs , 2005, Nature.
[76] Young-Jae Nam,et al. The Mitochondrial Death Pathway and Cardiac Myocyte Apoptosis , 2004, Circulation research.
[77] Sanghyuk Lee,et al. MicroRNA genes are transcribed by RNA polymerase II , 2004, The EMBO journal.
[78] A. Bradley,et al. Identification of mammalian microRNA host genes and transcription units. , 2004, Genome research.
[79] L. Field,et al. Cardiomyocyte cell cycle regulation. , 2002, Circulation research.
[80] D. Sawyer,et al. Reactive Oxygen Species Mediate Amplitude-Dependent Hypertrophic and Apoptotic Responses to Mechanical Stretch in Cardiac Myocytes , 2001, Circulation research.
[81] T. Hara,et al. Caspase-dependent cytosolic release of cytochrome c and membrane translocation of Bax in p53-induced apoptosis. , 2001, Experimental cell research.
[82] M. Hengartner. The biochemistry of apoptosis , 2000, Nature.
[83] A. Moorman,et al. Chamber formation and morphogenesis in the developing mammalian heart. , 2000, Developmental biology.
[84] C. di Loreto,et al. Myocyte death in the failing human heart is gender dependent. , 1999, Circulation research.
[85] M. Soonpaa,et al. Survey of studies examining mammalian cardiomyocyte DNA synthesis. , 1998, Circulation research.
[86] R. Virmani,et al. Apoptosis in myocytes in end-stage heart failure. , 1996, The New England journal of medicine.
[87] A. Gerdes,et al. Rapid transition of cardiac myocytes from hyperplasia to hypertrophy during postnatal development. , 1996, Journal of molecular and cellular cardiology.
[88] L. Gaboury,et al. Apoptosis in pressure overload-induced heart hypertrophy in the rat. , 1996, The Journal of clinical investigation.
[89] Carolyn J. Brown,et al. The human XIST gene: Analysis of a 17 kb inactive X-specific RNA that contains conserved repeats and is highly localized within the nucleus , 1992, Cell.
[90] Dominic P. Norris,et al. The product of the mouse Xist gene is a 15 kb inactive X-specific transcript containing no conserved ORF and located in the nucleus , 1992, Cell.
[91] T. Slater,et al. Direct detection of free radicals in the reperfused rat heart using electron spin resonance spectroscopy. , 1987, Circulation research.
[92] E. Marbán,et al. Targeted MicroRNA Interference Promotes Postnatal Cardiac Cell Cycle Re-Entry. , 2013, Journal of regenerative medicine.
[93] M. Sauer,et al. Defective proteolytic systems in Mybpc3-targeted mice with cardiac hypertrophy , 2011, Basic Research in Cardiology.
[94] C. Baines. The cardiac mitochondrion: nexus of stress. , 2010, Annual review of physiology.
[95] R. Gottlieb,et al. Bcl-2 family members and apoptosis, taken to heart. , 2007, American journal of physiology. Cell physiology.