CALL FOR PAPERS Mitochondrial Function/Dysfunction in Health and Disease Nuclear SIRT1 activity, but not protein content, regulates mitochondrial biogenesis in rat and human skeletal muscle
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G. Heigenhauser | A. Bonen | L. Spriet | B. Gurd | G. Holloway | C. Moyes | Y. Yoshida | J. McFarlan
[1] A. Bonen,et al. High-intensity interval training increases SIRT1 activity in human skeletal muscle. , 2010, Applied physiology, nutrition, and metabolism = Physiologie appliquee, nutrition et metabolisme.
[2] J. Auwerx,et al. Interdependence of AMPK and SIRT1 for metabolic adaptation to fasting and exercise in skeletal muscle. , 2010, Cell metabolism.
[3] M. Tarnopolsky,et al. A practical model of low‐volume high‐intensity interval training induces mitochondrial biogenesis in human skeletal muscle: potential mechanisms , 2010, The Journal of physiology.
[4] R. de Cabo,et al. JNK1 Phosphorylates SIRT1 and Promotes Its Enzymatic Activity , 2009, PloS one.
[5] Michael F. O'leary,et al. Relationship between Sirt1 expression and mitochondrial proteins during conditions of chronic muscle use and disuse. , 2009, Journal of applied physiology.
[6] F. Villarroya,et al. SIRT1 Controls the Transcription of the Peroxisome Proliferator-activated Receptor-γ Co-activator-1α (PGC-1α) Gene in Skeletal Muscle through the PGC-1α Autoregulatory Loop and Interaction with MyoD* , 2009, The Journal of Biological Chemistry.
[7] P. Puigserver,et al. AMPK regulates energy expenditure by modulating NAD+ metabolism and SIRT1 activity , 2009, Nature.
[8] A. Bonen,et al. The deacetylase enzyme SIRT1 is not associated with oxidative capacity in rat heart and skeletal muscle and its overexpression reduces mitochondrial biogenesis , 2009, The Journal of physiology.
[9] W. Minor,et al. Phosphorylation Regulates SIRT1 Function , 2008, PLoS ONE.
[10] V. Sartorelli,et al. Comparing and contrasting the roles of AMPK and SIRT1 in metabolic tissues , 2008, Cell cycle.
[11] A. Bonen,et al. High-intensity aerobic interval training increases fat and carbohydrate metabolic capacities in human skeletal muscle. , 2008, Applied physiology, nutrition, and metabolism = Physiologie appliquee, nutrition et metabolisme.
[12] J. Auwerx,et al. Specific SIRT1 activation mimics low energy levels and protects against diet-induced metabolic disorders by enhancing fat oxidation. , 2008, Cell metabolism.
[13] M. Suwa,et al. Endurance exercise increases the SIRT1 and peroxisome proliferator-activated receptor gamma coactivator-1alpha protein expressions in rat skeletal muscle. , 2008, Metabolism: clinical and experimental.
[14] A. Bonen,et al. Modest PGC-1α Overexpression in Muscle in Vivo Is Sufficient to Increase Insulin Sensitivity and Palmitate Oxidation in Subsarcolemmal, Not Intermyofibrillar, Mitochondria* , 2008, Journal of Biological Chemistry.
[15] P. Stiuso,et al. Exercise training promotes SIRT1 activity in aged rats. , 2008, Rejuvenation research.
[16] P. Puigserver,et al. Metabolic adaptations through the PGC‐1α and SIRT1 pathways , 2008 .
[17] Amy V. Lynch,et al. Small molecule activators of SIRT1 as therapeutics for the treatment of type 2 diabetes , 2007, Nature.
[18] Xianglin Shi,et al. Cytoplasm‐localized SIRT1 enhances apoptosis , 2007, Journal of cellular physiology.
[19] D. Wright. Mechanisms of calcium-induced mitochondrial biogenesis and GLUT4 synthesis. , 2007, Applied physiology, nutrition, and metabolism = Physiologie appliquee, nutrition et metabolisme.
[20] M. Birnbaum,et al. Akt/PKB regulates hepatic metabolism by directly inhibiting PGC-1α transcription coactivator , 2007, Nature.
[21] P. Puigserver,et al. Metabolic control of muscle mitochondrial function and fatty acid oxidation through SIRT1/PGC‐1α , 2007, The EMBO journal.
[22] K. Shimamoto,et al. Nucleocytoplasmic Shuttling of the NAD+-dependent Histone Deacetylase SIRT1* , 2007, Journal of Biological Chemistry.
[23] Eric Ravussin,et al. Calorie Restriction Increases Muscle Mitochondrial Biogenesis in Healthy Humans , 2007, PLoS medicine.
[24] P. García-Rovés,et al. Exercise-induced Mitochondrial Biogenesis Begins before the Increase in Muscle PGC-1α Expression* , 2007, Journal of Biological Chemistry.
[25] J. Auwerx,et al. Sirtuins: The ‘magnificent seven’, function, metabolism and longevity , 2007, Annals of medicine.
[26] P. Puigserver,et al. Resveratrol Improves Mitochondrial Function and Protects against Metabolic Disease by Activating SIRT1 and PGC-1α , 2006, Cell.
[27] W. Krek,et al. SIRT1: linking adaptive cellular responses to aging-associated changes in organismal physiology. , 2006, Physiology.
[28] P. Puigserver,et al. Resveratrol improves health and survival of mice on a high-calorie diet , 2006, Nature.
[29] M. Miura,et al. Caspase‐mediated changes in Sir2α during apoptosis , 2006 .
[30] Sandeep Raha,et al. Short‐term sprint interval versus traditional endurance training: similar initial adaptations in human skeletal muscle and exercise performance , 2006, The Journal of physiology.
[31] P. Puigserver,et al. GCN5 acetyltransferase complex controls glucose metabolism through transcriptional repression of PGC-1alpha. , 2006, Cell metabolism.
[32] Izumi Horikawa,et al. Evolutionarily conserved and nonconserved cellular localizations and functions of human SIRT proteins. , 2005, Molecular biology of the cell.
[33] S. Nemoto,et al. SIRT1 Functionally Interacts with the Metabolic Regulator and Transcriptional Coactivator PGC-1α* , 2005, Journal of Biological Chemistry.
[34] Q. Tong,et al. SIRT3, a Mitochondrial Sirtuin Deacetylase, Regulates Mitochondrial Function and Thermogenesis in Brown Adipocytes* , 2005, Journal of Biological Chemistry.
[35] Wilhelm Haas,et al. Nutrient control of glucose homeostasis through a complex of PGC-1α and SIRT1 , 2005, Nature.
[36] A. Bonen,et al. A Novel Function for Fatty Acid Translocase (FAT)/CD36 , 2004, Journal of Biological Chemistry.
[37] Jiandie D. Lin,et al. Transcriptional co-activator PGC-1α drives the formation of slow-twitch muscle fibres , 2002, Nature.
[38] G. J. van der Vusse,et al. Electrostimulation enhances FAT/CD36-mediated long-chain fatty acid uptake by isolated rat cardiac myocytes. , 2001, American journal of physiology. Endocrinology and metabolism.
[39] A. Bonen,et al. Acute Regulation of Fatty Acid Uptake Involves the Cellular Redistribution of Fatty Acid Translocase* , 2000, The Journal of Biological Chemistry.
[40] V. Mootha,et al. Mechanisms Controlling Mitochondrial Biogenesis and Respiration through the Thermogenic Coactivator PGC-1 , 1999, Cell.
[41] B. Kiens,et al. Palmitate transport and fatty acid transporters in red and white muscles. , 1998, American journal of physiology. Endocrinology and metabolism.
[42] A. Bonen,et al. Chronic muscle stimulation increases lactate transport in rat skeletal muscle , 1996, Molecular and Cellular Biochemistry.
[43] R. Blackburn,et al. Thermal response in murine L929 cells lacking αB-crystallin expression and αB-crystallin expressing L929 transfectants , 1996, Molecular and Cellular Biochemistry.
[44] J. Holloszy,et al. Glycogen resynthesis in leg muscles of rats during exercise. , 1984, The American journal of physiology.
[45] P. Puigserver,et al. Metabolic adaptations through the PGC-1 alpha and SIRT1 pathways. , 2008, FEBS letters.
[46] B. Spiegelman,et al. AMP-activated protein kinase (AMPK) action in skeletal muscle via direct phosphorylation of PGC-1alpha. , 2007, Proceedings of the National Academy of Sciences of the United States of America.
[47] Steven P Gygi,et al. Nutrient control of glucose homeostasis through a complex of PGC-1alpha and SIRT1. , 2005, Nature.
[48] J. Bergstrom. Percutaneous needle biopsy of skeletal muscle in physiological and clinical research. , 1975, Scandinavian journal of clinical and laboratory investigation.