The NAD+-Dependent Deacetylase SIRT1 Modulates CLOCK-Mediated Chromatin Remodeling and Circadian Control
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Paolo Sassone-Corsi | L. Guarente | Danica Chen | P. Sassone-Corsi | M. Kaluzová | J. Hirayama | S. Sahar | B. Grimaldi | Y. Nakahata | Yasukazu Nakahata | Milota Kaluzova | Benedetto Grimaldi | Saurabh Sahar | Jun Hirayama | Danica Chen | Leonard P. Guarente | Yasukazu Nakahata
[1] E. Seto,et al. The Rpd3/Hda1 family of lysine deacetylases: from bacteria and yeast to mice and men , 2008, Nature Reviews Molecular Cell Biology.
[2] F. Tamanini,et al. Phase Resetting of the Mammalian Circadian Clock by DNA Damage , 2008, Current Biology.
[3] R. A. Reid,et al. Rev-erbα, a Heme Sensor That Coordinates Metabolic and Circadian Pathways , 2007, Science.
[4] Paolo Sassone-Corsi,et al. CLOCK-mediated acetylation of BMAL1 controls circadian function , 2007, Nature.
[5] S. McKnight,et al. A Conserved DNA Damage Response Pathway Responsible for Coupling the Cell Division Cycle to the Circadian and Metabolic Cycles , 2007, Cell cycle.
[6] D. Reinberg,et al. SIRT1 regulates the histone methyl-transferase SUV39H1 during heterochromatin formation , 2007, Nature.
[7] L. Guarente,et al. Genetic links between diet and lifespan: shared mechanisms from yeast to humans , 2007, Nature Reviews Genetics.
[8] L. Guarente,et al. SIRT1 deacetylates and positively regulates the nuclear receptor LXR. , 2007, Molecular cell.
[9] D. Sinclair,et al. The role of nuclear architecture in genomic instability and ageing , 2007, Nature Reviews Molecular Cell Biology.
[10] E. Verdin,et al. Sirtuins: critical regulators at the crossroads between cancer and aging , 2007, Oncogene.
[11] Jiandie D. Lin,et al. Transcriptional coactivator PGC-1α integrates the mammalian clock and energy metabolism , 2007, Nature.
[12] S. Boulton,et al. Emerging links between the biological clock and the DNA damage response , 2007, Chromosoma.
[13] Paolo Sassone-Corsi,et al. Riding Tandem: Circadian Clocks and the Cell Cycle , 2007, Cell.
[14] P. Sassone-Corsi,et al. Signaling to the circadian clock: plasticity by chromatin remodeling. , 2007, Current opinion in cell biology.
[15] R. Evans,et al. PGC-1β controls mitochondrial metabolism to modulate circadian activity, adaptive thermogenesis, and hepatic steatosis , 2007, Proceedings of the National Academy of Sciences.
[16] Bing Li,et al. The Role of Chromatin during Transcription , 2007, Cell.
[17] T. Kouzarides. Chromatin Modifications and Their Function , 2007, Cell.
[18] P. Sassone-Corsi,et al. Chromatin remodeling and circadian control: master regulator CLOCK is an enzyme. , 2007, Cold Spring Harbor symposia on quantitative biology.
[19] R. A. Reid,et al. Rev-erbalpha, a heme sensor that coordinates metabolic and circadian pathways. , 2007, Science.
[20] P. Puigserver,et al. Resveratrol Improves Mitochondrial Function and Protects against Metabolic Disease by Activating SIRT1 and PGC-1α , 2006, Cell.
[21] Michael W Young,et al. Interplay of circadian clocks and metabolic rhythms. , 2006, Annual review of genetics.
[22] A. Ladurner,et al. Rheostat control of gene expression by metabolites. , 2006, Molecular cell.
[23] M. Antoch,et al. Early aging and age-related pathologies in mice deficient in BMAL1, the core componentof the circadian clock. , 2006, Genes & development.
[24] J. Boeke,et al. The biochemistry of sirtuins. , 2006, Annual review of biochemistry.
[25] Paolo Sassone-Corsi,et al. Circadian Regulator CLOCK Is a Histone Acetyltransferase , 2006, Cell.
[26] S. Gery,et al. The circadian gene per1 plays an important role in cell growth and DNA damage control in human cancer cells. , 2006, Molecular cell.
[27] P. Hardin,et al. Circadian Transcription: Passing the HAT to CLOCK , 2006, Cell.
[28] Ueli Schibler,et al. Rhythmic CLOCK-BMAL1 binding to multiple E-box motifs drives circadian Dbp transcription and chromatin transitions , 2006, Nature Genetics.
[29] A. Brasier,et al. Two-step cross-linking method for identification of NF-kappaB gene network by chromatin immunoprecipitation. , 2005, BioTechniques.
[30] Paolo Sassone-Corsi,et al. Circadian Clock Control by SUMOylation of BMAL1 , 2005, Science.
[31] Minoru Yoshida,et al. HDAC6 regulates Hsp90 acetylation and chaperone-dependent activation of glucocorticoid receptor. , 2005, Molecular cell.
[32] Fred W. Turek,et al. Obesity and Metabolic Syndrome in Circadian Clock Mutant Mice , 2005, Science.
[33] S. Nemoto,et al. SIRT1 Functionally Interacts with the Metabolic Regulator and Transcriptional Coactivator PGC-1α* , 2005, Journal of Biological Chemistry.
[34] Aziz Sancar,et al. Coupling of Human Circadian and Cell Cycles by the Timeless Protein , 2005, Molecular and Cellular Biology.
[35] L. Guarente,et al. Calorie restriction, SIRT1 and metabolism: understanding longevity , 2005, Nature Reviews Molecular Cell Biology.
[36] Frederick W. Alt,et al. DNA Repair, Genome Stability, and Aging , 2005, Cell.
[37] R. Mishra,et al. To SIR with Polycomb: linking silencing mechanisms. , 2005, BioEssays : news and reviews in molecular, cellular and developmental biology.
[38] Steven P Gygi,et al. Nutrient control of glucose homeostasis through a complex of PGC-1alpha and SIRT1. , 2005, Nature.
[39] Haruhiko Soma,et al. Transcriptional oscillation of canonical clock genes in mouse peripheral tissues , 2004, BMC Molecular Biology.
[40] C. Peterson,et al. Histones and histone modifications , 2004, Current Biology.
[41] Namjin Chung,et al. Sirt1 promotes fat mobilization in white adipocytes by repressing PPAR-γ , 2004, Nature.
[42] Steven P. Gygi,et al. Stress-Dependent Regulation of FOXO Transcription Factors by the SIRT1 Deacetylase , 2004, Science.
[43] Delin Chen,et al. Mammalian SIRT1 Represses Forkhead Transcription Factors , 2004, Cell.
[44] F. Alt,et al. Developmental defects and p53 hyperacetylation in Sir2 homolog (SIRT1)-deficient mice , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[45] M. Antoch,et al. BMAL1-dependent circadian oscillation of nuclear CLOCK: posttranslational events induced by dimerization of transcriptional activators of the mammalian clock system. , 2003, Genes & development.
[46] Michael Grunstein,et al. Histone acetylation and deacetylation in yeast , 2003, Nature Reviews Molecular Cell Biology.
[47] Paolo Sassone-Corsi,et al. A Web of Circadian Pacemakers , 2002, Cell.
[48] A. Kimura,et al. Chromosomal gradient of histone acetylation established by Sas2p and Sir2p functions as a shield against gene silencing , 2002, Nature Genetics.
[49] Michael Grunstein,et al. Sir2p and Sas2p opposingly regulate acetylation of yeast histone H4 lysine16 and spreading of heterochromatin , 2002, Nature Genetics.
[50] Sumio Sugano,et al. A transcription factor response element for gene expression during circadian night , 2002, Nature.
[51] P. Sassone-Corsi,et al. Phenotypic Rescue of a Peripheral Clock Genetic Defect via SCN Hierarchical Dominance , 2002, Cell.
[52] Paolo Sassone-Corsi,et al. Bimodal regulation of mPeriod promoters by CREB-dependent signaling and CLOCK/BMAL1 activity , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[53] B. H. Miller,et al. Coordinated Transcription of Key Pathways in the Mouse by the Circadian Clock , 2002, Cell.
[54] Kai-Florian Storch,et al. Extensive and divergent circadian gene expression in liver and heart , 2002, Nature.
[55] Jared Rutter,et al. Metabolism and the control of circadian rhythms. , 2002, Annual review of biochemistry.
[56] Steven M. Reppert,et al. Posttranslational Mechanisms Regulate the Mammalian Circadian Clock , 2001, Cell.
[57] R. Weinberg,et al. hSIR2SIRT1 Functions as an NAD-Dependent p53 Deacetylase , 2001, Cell.
[58] Delin Chen,et al. Negative Control of p53 by Sir2α Promotes Cell Survival under Stress , 2001, Cell.
[59] A. Sehgal,et al. Regulation of CLOCK and MOP4 by Nuclear Hormone Receptors in the Vasculature A Humoral Mechanism to Reset a Peripheral Clock , 2001, Cell.
[60] R. Schiltz,et al. A role for histone deacetylase HDAC1 in modulating the transcriptional activity of MyoD: inhibition of the myogenic program , 2001, The EMBO journal.
[61] L. Guarente,et al. Increased dosage of a sir-2 gene extends lifespan in Caenorhabditis elegans , 2001, Nature.
[62] L. Guarente,et al. Negative control of p53 by Sir2alpha promotes cell survival under stress. , 2001, Cell.
[63] C. Allis,et al. Light induces chromatin modification in cells of the mammalian circadian clock , 2000, Nature Neuroscience.
[64] C. Allis,et al. Signaling to Chromatin through Histone Modifications , 2000, Cell.
[65] C. Allis,et al. Synergistic coupling of histone H3 phosphorylation and acetylation in response to epidermal growth factor stimulation. , 2000, Molecular cell.
[66] S. Berger,et al. Phosphorylation of serine 10 in histone H3 is functionally linked in vitro and in vivo to Gcn5-mediated acetylation at lysine 14. , 2000, Molecular cell.
[67] R. Sternglanz,et al. The silencing protein SIR2 and its homologs are NAD-dependent protein deacetylases. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[68] L. Guarente,et al. Transcriptional silencing and longevity protein Sir2 is an NAD-dependent histone deacetylase , 2000, Nature.
[69] T. Kouzarides,et al. Regulation of E2F1 activity by acetylation , 2000, The EMBO journal.
[70] C. Allis,et al. The language of covalent histone modifications , 2000, Nature.
[71] K. Struhl. Histone acetylation and transcriptional regulatory mechanisms. , 1998, Genes & development.
[72] J. Workman,et al. Alteration of nucleosome structure as a mechanism of transcriptional regulation. , 1998, Annual review of biochemistry.
[73] M. Grunstein. Histone acetylation in chromatin structure and transcription , 1997, Nature.
[74] Anne-Marie Chang,et al. Functional Identification of the Mouse Circadian Clock Gene by Transgenic BAC Rescue , 1997, Cell.
[75] A. Wolffe,et al. Histone acetyltransferases in control. , 1997, Current biology : CB.
[76] N. Andrews,et al. A rapid micropreparation technique for extraction of DNA-binding proteins from limiting numbers of mammalian cells. , 1991, Nucleic acids research.