NADH inhibition of SIRT1 links energy state to transcription during time-restricted feeding
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G. Barish | N. Chandel | O. Ilkayeva | C. Newgard | M. Mrksich | Hsin-Yu Kuo | H. Hong | Yumiko Kobayashi | K. M. Ramsey | B. Marcheva | Peng Gao | J. Cedernaes | C. B. Peek | Chiaki Omura | D. Levine | Meredith A Sommars | C. Hepler | Joseph Bass | Alexandra G Wright | Heekyung Hong | Chelsea Hepler | Meredith A. Sommars
[1] Y. Reshetnyak,et al. Polyamines drive myeloid cell survival by buffering intracellular pH to promote immunosuppression in glioblastoma , 2021, Science Advances.
[2] G. Siuzdak,et al. Metabolic adaptation to calorie restriction , 2020, Science Signaling.
[3] Mark A. McCormick,et al. Life span extension by glucose restriction is abrogated by methionine supplementation: Cross-talk between glucose and methionine and implication of methionine as a key regulator of life span , 2020, Science Advances.
[4] Yu-Han H. Hsu,et al. Hepatic NADH reductive stress underlies common variation in metabolic traits , 2020, Nature.
[5] Mark S. Schmidt,et al. NAD+ Controls Circadian Reprogramming through PER2 Nuclear Translocation to Counter Aging. , 2020, Molecular cell.
[6] G. Barish,et al. Dynamic repression by BCL6 controls the genome-wide liver response to fasting and steatosis , 2019, eLife.
[7] M. Pagano,et al. Cryptochromes-Mediated Inhibition of the CRL4Cop1-Complex Assembly Defines an Evolutionary Conserved Signaling Mechanism , 2019, Current Biology.
[8] M. Haigis,et al. The multifaceted contributions of mitochondria to cellular metabolism , 2018, Nature Cell Biology.
[9] R. Zechner,et al. Global Analysis of Plasma Lipids Identifies Liver-Derived Acylcarnitines as a Fuel Source for Brown Fat Thermogenesis. , 2017, Cell metabolism.
[10] C. Green,et al. Mice under Caloric Restriction Self-Impose a Temporal Restriction of Food Intake as Revealed by an Automated Feeder System. , 2017, Cell metabolism.
[11] M. Lazar,et al. Circadian time signatures of fitness and disease , 2016, Science.
[12] E. Gratton,et al. Spatial dynamics of SIRT1 and the subnuclear distribution of NADH species , 2016, Proceedings of the National Academy of Sciences.
[13] V. Mootha,et al. Complementation of mitochondrial electron transport chain by manipulation of the NAD+/NADH ratio , 2016, Science.
[14] Peter Fristrup,et al. Investigating the Sensitivity of NAD+-dependent Sirtuin Deacylation Activities to NADH* , 2016, The Journal of Biological Chemistry.
[15] J. Rutter,et al. Hepatic Mitochondrial Pyruvate Carrier 1 Is Required for Efficient Regulation of Gluconeogenesis and Whole-Body Glucose Homeostasis. , 2015, Cell metabolism.
[16] M. Scholle,et al. Discovery of SIRT3 Inhibitors Using SAMDI Mass Spectrometry , 2015, Journal of biomolecular screening.
[17] J. Baur,et al. Increasing NAD Synthesis in Muscle via Nicotinamide Phosphoribosyltransferase Is Not Sufficient to Promote Oxidative Metabolism* , 2014, The Journal of Biological Chemistry.
[18] M. Hughes,et al. A circadian gene expression atlas in mammals: Implications for biology and medicine , 2014, Proceedings of the National Academy of Sciences.
[19] L. Rui,et al. Energy metabolism in the liver. , 2014, Comprehensive Physiology.
[20] J. Denu,et al. Circadian Clock NAD+ Cycle Drives Mitochondrial Oxidative Metabolism in Mice , 2013, Science.
[21] F. Vaz,et al. Acylcarnitines , 2012, Diabetes.
[22] J. Takahashi,et al. Transcriptional Architecture and Chromatin Landscape of the Core Circadian Clock in Mammals , 2012, Science.
[23] A. B. Reddy,et al. Circadian Clocks in Human Red Blood Cells , 2010, Nature.
[24] Milan Mrksich,et al. Peptide Arrays Identify Isoform-Selective Substrates for Profiling Endogenous Lysine Deacetylase Activity , 2010, ACS chemical biology.
[25] Joseph S. Takahashi,et al. Disruption of the Clock Components CLOCK and BMAL 1 Leads to Hypoinsulinemia and Diabetes , 2012 .
[26] R. Garofalo,et al. SRT1720, SRT2183, SRT1460, and Resveratrol Are Not Direct Activators of SIRT1♦ , 2010, The Journal of Biological Chemistry.
[27] J. Takahashi,et al. Circadian Clock Feedback Cycle Through NAMPT-Mediated NAD+ Biosynthesis , 2009, Science.
[28] P. Sassone-Corsi,et al. Circadian Control of the NAD+ Salvage Pathway by CLOCK-SIRT1 , 2009, Science.
[29] Takashi Nakagawa,et al. SIRT5 Deacetylates Carbamoyl Phosphate Synthetase 1 and Regulates the Urea Cycle , 2009, Cell.
[30] Qing Xu,et al. Hepatocyte-specific deletion of SIRT1 alters fatty acid metabolism and results in hepatic steatosis and inflammation. , 2009, Cell metabolism.
[31] Kai-Florian Storch,et al. Physiological significance of a peripheral tissue circadian clock , 2008, Proceedings of the National Academy of Sciences.
[32] Florian Kreppel,et al. SIRT1 Regulates Circadian Clock Gene Expression through PER2 Deacetylation , 2008, Cell.
[33] Paolo Sassone-Corsi,et al. The NAD+-Dependent Deacetylase SIRT1 Modulates CLOCK-Mediated Chromatin Remodeling and Circadian Control , 2008, Cell.
[34] F. Alt,et al. Tissue-specific regulation of SIRT1 by calorie restriction. , 2008, Genes & development.
[35] Elias Chaibub Neto,et al. Genetic Networks of Liver Metabolism Revealed by Integration of Metabolic and Transcriptional Profiling , 2008, PLoS genetics.
[36] M. Mrksich. Mass spectrometry of self-assembled monolayers: a new tool for molecular surface science. , 2008, ACS nano.
[37] Weimin He,et al. Nuclear Receptor Expression Links the Circadian Clock to Metabolism , 2006, Cell.
[38] H. Tissenbaum,et al. Overlapping and distinct functions for a Caenorhabditis elegans SIR2 and DAF-16/FOXO , 2006, Mechanisms of Ageing and Development.
[39] A. Fukamizu,et al. Acetylation of Foxo1 alters its DNA-binding ability and sensitivity to phosphorylation. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[40] S. Fields,et al. Substrate-specific Activation of Sirtuins by Resveratrol* , 2005, Journal of Biological Chemistry.
[41] Brian C. Smith,et al. Mechanism of Human SIRT1 Activation by Resveratrol* , 2005, Journal of Biological Chemistry.
[42] F. Turek,et al. Deletion of the mammalian circadian clock gene BMAL1/Mop3 alters baseline sleep architecture and the response to sleep deprivation. , 2005, Sleep.
[43] K. Oishi,et al. CLOCK is involved in the circadian transactivation of peroxisome-proliferator-activated receptor α (PPARα) in mice , 2005 .
[44] Wilhelm Haas,et al. Nutrient control of glucose homeostasis through a complex of PGC-1α and SIRT1 , 2005, Nature.
[45] B. Rogina,et al. Sir2 mediates longevity in the fly through a pathway related to calorie restriction. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[46] D. Reinberg,et al. Human SirT1 interacts with histone H1 and promotes formation of facultative heterochromatin. , 2004, Molecular cell.
[47] Brian C. Smith,et al. Coenzyme Specificity of Sir2 Protein Deacetylases , 2004, Journal of Biological Chemistry.
[48] Myriam Gorospe,et al. Calorie Restriction Promotes Mammalian Cell Survival by Inducing the SIRT1 Deacetylase , 2004, Science.
[49] Satoko Aratani,et al. Silent information regulator 2 potentiates Foxo1-mediated transcription through its deacetylase activity. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[50] David Millington,et al. Hepatic expression of malonyl-CoA decarboxylase reverses muscle, liver and whole-animal insulin resistance , 2004, Nature Medicine.
[51] R. Weindruch,et al. Influence of age and caloric restriction on liver glycolytic enzyme activities and metabolite concentrations in mice , 2003, Experimental Gerontology.
[52] R. Weindruch,et al. Caloric restriction increases gluconeogenic and transaminase enzyme activities in mouse liver , 2003, Experimental Gerontology.
[53] G. Fink,et al. Calorie restriction extends Saccharomyces cerevisiae lifespan by increasing respiration , 2002, Nature.
[54] Kai-Florian Storch,et al. Extensive and divergent circadian gene expression in liver and heart , 2002, Nature.
[55] R. Weinberg,et al. hSIR2SIRT1 Functions as an NAD-Dependent p53 Deacetylase , 2001, Cell.
[56] J. L. Stringer,et al. In Vivo Role of NAD(P)H:Quinone Oxidoreductase 1 (NQO1) in the Regulation of Intracellular Redox State and Accumulation of Abdominal Adipose Tissue* , 2001, The Journal of Biological Chemistry.
[57] P. Defossez,et al. Requirement of NAD and SIR2 for life-span extension by calorie restriction in Saccharomyces cerevisiae. , 2000, Science.
[58] J. A. Zimmerman,et al. Methionine restriction increases blood glutathione and longevity in F344 rats , 1994, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[59] J. McGarry,et al. Cloning, sequencing, and expression of a cDNA encoding rat liver carnitine palmitoyltransferase I. Direct evidence that a single polypeptide is involved in inhibitor interaction and catalytic function. , 1993, The Journal of biological chemistry.
[60] J. A. Zimmerman,et al. Low methionine ingestion by rats extends life span. , 1993, The Journal of nutrition.
[61] C. McMahan,et al. Dietary restriction alters characteristics of glucose fuel use. , 1992, Journal of gerontology.
[62] Roberto Refinetti,et al. The circadian rhythm of body temperature , 1992, Physiology & Behavior.
[63] M. Litt,et al. Analysis of pyridine dinucleotides in cultured rat hepatocytes by high-performance liquid chromatography. , 1989, Analytical biochemistry.
[64] R. Weindruch,et al. The retardation of aging in mice by dietary restriction: longevity, cancer, immunity and lifetime energy intake. , 1986, The Journal of nutrition.
[65] H. Sies,et al. State of oxidation-reduction and state of binding in the cytosolic NADH-system as disclosed by equilibration with extracellular lactate-pyruvate in hemoglobin-free perfused rat liver. , 1972, European journal of biochemistry.
[66] H. Krebs,et al. The redox state of free nicotinamide-adenine dinucleotide in the cytoplasm and mitochondria of rat liver. , 1967, The Biochemical journal.
[67] V. Paetkau,et al. Paths of carbon in gluconeogenesis and lipogenesis. 3. The role and regulation of mitochondrial processes involved in supplying precursors of phosphoenolpyruvate. , 1966, The Journal of biological chemistry.
[68] V. Paetkau,et al. Paths of carbon in gluconeogenesis and lipogenesis: the role of mitochondria in supplying precursors of phosphoenolpyruvate. , 1965, Proceedings of the National Academy of Sciences of the United States of America.
[69] P. Mclean,et al. The determination of oxidized and reduced diphosphopyridine nucleotide and triphosphopyridine nucleotide in animal tissues. , 1955, The Biochemical journal.
[70] Jack A. Taylor,et al. Supplementary file 1. , 2011 .
[71] H. Lardy,et al. Paths of Carbon in Gluconeogenesis and Lipogenesis , 2011 .
[72] Steven P Gygi,et al. Nutrient control of glucose homeostasis through a complex of PGC-1alpha and SIRT1. , 2005, Nature.
[73] L. Guarente,et al. Calorie restriction extends yeast life span by lowering the level of NADH. , 2004, Genes & development.
[74] L. Guarente,et al. Negative control of p53 by Sir2alpha promotes cell survival under stress. , 2001, Cell.
[75] W. Wahli,et al. Peroxisome proliferator-activated receptor alpha mediates the adaptive response to fasting. , 1999, The Journal of clinical investigation.
[76] H. Krebs,et al. Generation of extramitochondrial reducing power in gluconeogenesis. , 1967, The Biochemical journal.