Succinate metabolism: a new therapeutic target for myocardial reperfusion injury.
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[1] A. Rodríguez-Sinovas,et al. Succinate dehydrogenase inhibition with malonate during reperfusion reduces infarct size by preventing mitochondrial permeability transition. , 2016, Cardiovascular research.
[2] Edward T Chouchani,et al. A Unifying Mechanism for Mitochondrial Superoxide Production during Ischemia-Reperfusion Injury. , 2016, Cell metabolism.
[3] Yong Chen,et al. Characterization of the cardiac succinylome and its role in ischemia-reperfusion injury. , 2015, Journal of molecular and cellular cardiology.
[4] N. Mewton,et al. Cyclosporine before PCI in Patients with Acute Myocardial Infarction. , 2015, The New England journal of medicine.
[5] Edward T Chouchani,et al. Ischaemic accumulation of succinate controls reperfusion injury through mitochondrial ROS , 2014, Nature.
[6] M. Babot,et al. Characterisation of the active / de-active transition of mitochondrial complex , 2014 .
[7] Edward T Chouchani,et al. Mitochondria selective S-nitrosation by mitochondria-targeted S-nitrosothiol protects against post-infarct heart failure in mouse hearts , 2014, European journal of heart failure.
[8] Robert S. Balaban,et al. The physiological role of mitochondrial calcium revealed by mice lacking the mitochondrial calcium uniporter (MCU) , 2013, Nature Cell Biology.
[9] Linda Partridge,et al. Cardioprotection by S-nitrosation of a cysteine switch on mitochondrial complex I , 2013, Nature Medicine.
[10] F. Palmieri. The mitochondrial transporter family SLC25: identification, properties and physiopathology. , 2013, Molecular aspects of medicine.
[11] Liang Zheng,et al. Succinate is an inflammatory signal that induces IL-1β through HIF-1α , 2013, Nature.
[12] D. Yellon,et al. Myocardial ischemia-reperfusion injury: a neglected therapeutic target. , 2013, The Journal of clinical investigation.
[13] B. O’Rourke,et al. Mitochondrial ROMK Channel Is a Molecular Component of MitoKATP , 2012, Circulation research.
[14] Fang Liu,et al. Hydrogen sulfide decreases the levels of ROS by inhibiting mitochondrial complex IV and increasing SOD activities in cardiomyocytes under ischemia/reperfusion. , 2012, Biochemical and biophysical research communications.
[15] Alan J. Robinson,et al. Fumarate Is Cardioprotective via Activation of the Nrf2 Antioxidant Pathway , 2012, Cell metabolism.
[16] P. Deen,et al. The Succinate Receptor as a Novel Therapeutic Target for Oxidative and Metabolic Stress-Related Conditions , 2012, Front. Endocrin..
[17] N. J. Smith. Low Affinity GPCRs for Metabolic Intermediates: Challenges for Pharmacologists , 2012, Front. Endocrin..
[18] Catherine T. Prince,et al. The effects of modulating eNOS activity and coupling in ischemia/reperfusion (I/R) , 2011, Naunyn-Schmiedeberg's Archives of Pharmacology.
[19] L. Ferrucci,et al. Intravenous erythropoietin in patients with ST-segment elevation myocardial infarction: REVEAL: a randomized controlled trial. , 2011, JAMA.
[20] H. Esumi,et al. The NADH‐fumarate reductase system, a novel mitochondrial energy metabolism, is a new target for anticancer therapy in tumor microenvironments , 2010, Annals of the New York Academy of Sciences.
[21] C. Pinkert,et al. In vivo cardioprotection by S-nitroso-2-mercaptopropionyl glycine. , 2009, Journal of molecular and cellular cardiology.
[22] U. Brandt,et al. Ambivalent effects of diazoxide on mitochondrial ROS production at respiratory chain complexes I and III. , 2009, Biochimica et biophysica acta.
[23] Qun Chen,et al. Reversible blockade of electron transport with amobarbital at the onset of reperfusion attenuates cardiac injury. , 2009, Translational research : the journal of laboratory and clinical medicine.
[24] A. Wojtovich,et al. The complex II inhibitor atpenin A5 protects against cardiac ischemia-reperfusion injury via activation of mitochondrial KATP channels , 2009, Basic Research in Cardiology.
[25] Michael P. Murphy,et al. How mitochondria produce reactive oxygen species , 2008, The Biochemical journal.
[26] J. Manson,et al. Vitamins E and C in the prevention of cardiovascular disease in men: the Physicians' Health Study II randomized controlled trial. , 2008, JAMA.
[27] J. Hirst,et al. The production of reactive oxygen species by complex I. , 2008, Biochemical Society transactions.
[28] P. Brookes,et al. The endogenous mitochondrial complex II inhibitor malonate regulates mitochondrial ATP-sensitive potassium channels: implications for ischemic preconditioning. , 2008, Biochimica et biophysica acta.
[29] E. Murphy,et al. Mechanisms underlying acute protection from cardiac ischemia-reperfusion injury. , 2008, Physiological reviews.
[30] Mark R. Duranski,et al. Nitrite augments tolerance to ischemia/reperfusion injury via the modulation of mitochondrial electron transfer , 2007, The Journal of experimental medicine.
[31] C. Chinopoulos,et al. Bioenergetics and the formation of mitochondrial reactive oxygen species. , 2006, Trends in pharmacological sciences.
[32] C. Hoppel,et al. Reversible Blockade of Electron Transport during Ischemia Protects Mitochondria and Decreases Myocardial Injury following Reperfusion , 2006, Journal of Pharmacology and Experimental Therapeutics.
[33] M. Duchen,et al. Mitochondrial uncoupling, with low concentration FCCP, induces ROS-dependent cardioprotection independent of KATP channel activation. , 2006, Cardiovascular research.
[34] Hakbae Lee,et al. Allopurinol modulates reactive oxygen species generation and Ca2+ overload in ischemia-reperfused heart and hypoxia-reoxygenated cardiomyocytes. , 2006, European journal of pharmacology.
[35] S. Nadtochiy,et al. Direct evidence for S-nitrosation of mitochondrial complex I. , 2006, The Biochemical journal.
[36] C. Szabó,et al. Therapeutic Effects of Xanthine Oxidase Inhibitors: Renaissance Half a Century after the Discovery of Allopurinol , 2006, Pharmacological Reviews.
[37] William C Stanley,et al. Myocardial substrate metabolism in the normal and failing heart. , 2005, Physiological reviews.
[38] C. Hoppel,et al. Blockade of Electron Transport during Ischemia Protects Cardiac Mitochondria* , 2004, Journal of Biological Chemistry.
[39] Katsuya Tanaka,et al. Preconditioning by Isoflurane Is Mediated by Reactive Oxygen Species Generated from Mitochondrial Electron Transport Chain Complex III , 2004, Anesthesia and analgesia.
[40] G. Grover,et al. Excessive ATP hydrolysis in ischemic myocardium by mitochondrial F1F0-ATPase: effect of selective pharmacological inhibition of mitochondrial ATPase hydrolase activity. , 2004, American journal of physiology. Heart and circulatory physiology.
[41] J. Melendez,et al. Mitochondrial redox control of matrix metalloproteinases. , 2004, Free radical biology & medicine.
[42] E. Marbán,et al. Multiprotein complex containing succinate dehydrogenase confers mitochondrial ATP-sensitive K+ channel activity. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[43] S. Javadov,et al. Mitochondrial permeability transition pore opening during myocardial reperfusion--a target for cardioprotection. , 2004, Cardiovascular research.
[44] Charles L. Hoppel,et al. Production of Reactive Oxygen Species by Mitochondria , 2003, Journal of Biological Chemistry.
[45] A. Terzic,et al. Targeting nucleotide-requiring enzymes: implications for diazoxide-induced cardioprotection. , 2003, American journal of physiology. Heart and circulatory physiology.
[46] Gary Fiskum,et al. Generation of reactive oxygen species by the mitochondrial electron transport chain , 2002, Journal of neurochemistry.
[47] A. Terzic,et al. Potassium channel openers protect cardiac mitochondria by attenuating oxidant stress at reoxygenation. , 2002, American journal of physiology. Heart and circulatory physiology.
[48] H. Suryapranata,et al. The Na(+)/H(+) exchange inhibitor eniporide as an adjunct to early reperfusion therapy for acute myocardial infarction. Results of the evaluation of the safety and cardioprotective effects of eniporide in acute myocardial infarction (ESCAMI) trial. , 2001, Journal of the American College of Cardiology.
[49] Ian J. Reynolds,et al. ΔΨm‐Dependent and ‐independent production of reactive oxygen species by rat brain mitochondria , 2001 .
[50] R. Bache,et al. Selective blockade of mitochondrial K(ATP) channels does not impair myocardial oxygen consumption. , 2001, American journal of physiology. Heart and circulatory physiology.
[51] M Crompton,et al. The mitochondrial permeability transition pore and its role in cell death. , 1999, The Biochemical journal.
[52] T. Vanden Hoek,et al. Reactive Oxygen Species Released from Mitochondria during Brief Hypoxia Induce Preconditioning in Cardiomyocytes* , 1998, The Journal of Biological Chemistry.
[53] M. Karmazyn. The myocardial sodium-hydrogen exchanger (NHE) and its role in mediating ischemic and reperfusion injury. , 1998, The Keio journal of medicine.
[54] M. Ovize,et al. A fresh look at reperfusion injury. , 1998, Cardiovascular research.
[55] G. Lopaschuk,et al. Regulation of myocardial carbohydrate metabolism under normal and ischaemic conditions. Potential for pharmacological interventions. , 1997, Cardiovascular research.
[56] A. Halestrap,et al. Mitochondrial non-specific pores remain closed during cardiac ischaemia, but open upon reperfusion. , 1995, The Biochemical journal.
[57] E. Murphy,et al. Role of increased cytosolic free calcium concentration in myocardial ischemic injury , 1993, Basic Research in Cardiology.
[58] B. Hyman,et al. Age‐Dependent Striatal Excitotoxic Lesions Produced by the Endogenous Mitochondrial Inhibitor Malonate , 1993, Journal of neurochemistry.
[59] W Flameng,et al. Effect of ischemia and reperfusion on sarcoplasmic reticulum calcium uptake. , 1992, Circulation research.
[60] G. Gross,et al. Blockade of ATP-sensitive potassium channels prevents myocardial preconditioning in dogs. , 1992, Circulation research.
[61] A. Vinogradov,et al. Slow active/inactive transition of the mitochondrial NADH-ubiquinone reductase. , 1990, Biochimica et biophysica acta.
[62] T. Lindsay,et al. The effect of ischemia/reperfusion on adenine nucleotide metabolism and xanthine oxidase production in skeletal muscle. , 1990, Journal of vascular surgery.
[63] M. Grieshaber,et al. Pathways of succinate formation and their contribution to improvement of cardiac function in the hypoxic rat heart. , 1988, Biochemical medicine and metabolic biology.
[64] E. Ruuge,et al. An assessment of anaerobic metabolism during ischemia and reperfusion in isolated guinea pig heart. , 1988, Biochimica et biophysica acta.
[65] M. Grieshaber,et al. Evidence for succinate production by reduction of fumarate during hypoxia in isolated adult rat heart cells. , 1987, Archives of biochemistry and biophysics.
[66] B. Halliwell,et al. Free radicals in biology and medicine , 1985 .
[67] A. Lehninger,et al. Ubisemiquinone is the electron donor for superoxide formation by complex III of heart mitochondria. , 1985, Archives of biochemistry and biophysics.
[68] H. Taegtmeyer. Metabolic Responses to Cardiac Hypoxia: Increased Production of Succinate by Rabbit Papillary Muscles , 1978, Circulation research.
[69] P. W. Hochachka,et al. Metabolic consequences of diving in animals and man. , 1975, Science.
[70] P. W. Hochachka,et al. Multiple end products of anaerobiosis in diving vertebrates. , 1975, Comparative biochemistry and physiology. B, Comparative biochemistry.
[71] D. Penney,et al. Anaerobic rat heart. Effects of glucose and tricarboxylic acid-cycle metabolites on metabolism and physiological performance. , 1970, The Biochemical journal.
[72] R. Porten,et al. Diazoxide, an inhibitor of succinate oxidation , 1969 .
[73] R. Portenhauser,et al. Diazoxide, an inhibitor of succinate oxidation. , 1969, Biochemical pharmacology.
[74] B. Chance. The interaction of energy and electron transfer reactions in mitochondria. V. The energy transfer pathway. , 1961, The Journal of biological chemistry.
[75] Gregory E. Steinbaugh,et al. Ischemic preconditioning decreases mitochondrial proton leak and reactive oxygen species production in the postischemic heart. , 2011, The Journal of surgical research.
[76] B. Gersh. Vitamins E and C in the Prevention of Cardiovascular Disease in Men: The Physicians’ Health Study II Randomized Controlled Trial , 2009 .
[77] C. Hoppel,et al. Modulation of electron transport protects cardiac mitochondria and decreases myocardial injury during ischemia and reperfusion. , 2007, American journal of physiology. Cell physiology.
[78] L. Becker. Myocardial Reperfusion Injury , 2004, Journal of Thrombosis and Thrombolysis.
[79] P. Ponganis,et al. The physiological basis of diving to depth: birds and mammals. , 1998, Annual review of physiology.
[80] W. Cascio,et al. The pH paradox in ischemia-reperfusion injury to cardiac myocytes. , 1996, EXS.
[81] J. Schrader,et al. Glutamate degradation in the ischemic dog heart: contribution to anaerobic energy production. , 1989, Journal of molecular and cellular cardiology.
[82] M. Weisfeldt,et al. Direct measurement of free radical generation following reperfusion of ischemic myocardium. , 1987, Proceedings of the National Academy of Sciences of the United States of America.
[83] V. Smirnov,et al. Effect of glutamic and aspartic acids on adenine nucleotides, nitrogenous compounds and contractile function during underperfusion of isolated rat heart. , 1983, Journal of molecular and cellular cardiology.
[84] P. Serruys,et al. Hypoxanthine production by ischemic heart demonstrated by high pressure liquid chromatography of blood purine nucleosides and oxypurines. , 1981, Clinica chimica acta; international journal of clinical chemistry.
[85] L. Opie. Acute metabolic response in myocardial infarction , 1971, British heart journal.