[1]刘 畅.营养感知与生物时钟[J].南京师大学报(自然科学版),2014,37(03):1.
 Liu Chang.Nutrient Sensing and the Circadian Clock[J].Journal of Nanjing Normal University(Natural Science Edition),2014,37(03):1.
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营养感知与生物时钟()
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《南京师大学报(自然科学版)》[ISSN:1001-4616/CN:32-1239/N]

卷:
第37卷
期数:
2014年03期
页码:
1
栏目:
出版日期:
2014-09-30

文章信息/Info

Title:
Nutrient Sensing and the Circadian Clock
作者:
刘 畅
南京师范大学生命科学学院,江苏 南京 210023
Author(s):
Liu Chang
School of Life Sciences,Nanjing Normal University,Nanjing 210023,China
关键词:
生物时钟能量代谢营养信号整合
Keywords:
circadian clockenergy metabolismnutrient signalsintegration
分类号:
Q493.9
文献标志码:
A
摘要:
地球自转产生了昼夜明暗交替循环,为了适应这一环境,生物体进化出时钟系统,控制着行为和生理进程同步化于光线的周期变化,以使能量利用达到最优状态.时钟的分子结构分级组建,其中中枢时钟掌管着进食/禁食之间的日际转换,而外周时钟导致能量储存/利用的24 h周期振荡.最近的研究表明,生物时钟响应于营养信号,而且高脂饮食影响了动物自发运动的周期(时钟的核心特质之一).生物时钟研究的一个主要目标是阐明代谢和时钟通路的交互对话.在本综述中,我们将讨论激素和作为营养信号的大分子如何整合时钟和代谢系统.
Abstract:
The circadian system synchronizes behavioral and physiological processes with daily changes in the external light-dark cycle,optimizing energetic cycles with the rising and setting of the sun.Molecular clocks are organized hierarchically,with neural clocks orchestrating the daily switch between periods of feeding and fasting,and peripheral clocks generating 24 h oscillations of energy storage and utilizations.Recent studies indicate that clocks respond to nutrient signals,and that high-fat diet influences the period of locomotor activity under free-running conditions,a core property of the clock.A major goal is to identify the molecular basis for the reciprocal relationship between metabolic and circadian pathways.In this review,we will discuss the role of peptidergic hormones and macromolecules as nutrient signals integrating circadian and metabolic systems.

参考文献/References:

[1] Pittendrigh C S.Temporal organization:reflections of a Darwinian clock-watcher[J].Annu Rev Physiol,1993,55:16-54.
[2]Reppert S M,Weaver D R.Coordination of circadian timing in mammals[J].Nature,2002,418:935-941.
[3]Lamia K A,Sachdeva U M,DiTacchio L,et al.AMPK regulates the circadian clock by cryptochrome phosphorylation and degradation[J].Science,2009,326:437-440.
[4]Etchegaray J P,Machida K K,Noton E,et al.Casein kinase 1 delta regulates the pace of the mammalian circadian clock[J].Mol Cell Biol,2009,29:3 853-3 866.
[5]Asher G,Schibler U.Crosstalk between components of circadian and metabolic cycles in mammals[J].Cell Metab,2011,13:125-137.
[6]Schibler U,Ripperger J,Brown S A.Peripheral circadian oscillators in mammals:time and food[J].J Biol Rhythms,2003,18:250-260.
[7]Turek F W,Joshu C,Kohsaka A,et al.Obesity and metabolic syndrome in circadian Clock mutant mice[J].Science,2005,308:1 043-1 045.
[8]Marcheva B,Ramsey KM,Buhr E D,et al.Disruption of the clock components CLOCK and BMAL1 leads to hypoinsulinaemia and diabetes[J].Nature,2010,466:627-631.
[9]Bunger M K,Walisser J A,Sullivan R,et al.Progressive arthropathy in mice with a targeted disruption of the Mop3/Bmal-1 locus[J].Genesis,2005,41:122-132.
[10]Arble D M,Bass J,Laposky A D,et al.Circadian timing of food intake contributes to weight gain[J].Obesity,2009,17:2 100-2 102.
[11]Kohsaka A,Laposky A D,Ramsey K M,et al.High-fat diet disrupts behavioral and molecular circadian rhythms in mice[J].Cell Metab,2007,6:414-421.
[12]Damiola F,Le Minh N,Preitner N,et al.Restricted feeding uncouples circadian oscillators in peripheral tissues from the central pacemaker in the suprachiasmatic nucleus[J].Genes Dev,2000,14:2 950-2 961.
[13]Ramsey K M,Yoshino J,Brace C S,et al. Circadian clock feedback cycle through NAMPT-mediated NAD+ biosynthesis[J].Science,2009,324:651-654.
[14]Sahar S,Nin V,Barbosa M T,et al.Altered behavioral and metabolic circadian rhythms in mice with disrupted NAD+ oscillation[J].Aging,2011,3:794-802.
[15]Saunders L R,Verdin E.Sirtuins:critical regulators at the crossroads between cancer and aging[J].Oncogene,2007,26:5 489-5 504.
[16]Rodgers J T,Lerin C,Haas W,et al.Nutrient control of glucose homeostasis through a complex of PGC-1alpha and SIRT1[J].Nature,2005,434:113-118.
[17]Nakahata Y,Kaluzova M,Grimaldi B,et al.The NAD+-dependent deacetylase SIRT1 modulates CLOCK-mediated chromatin remodeling and circadian control[J].Cell,2008,134:329-340.
[18]Asher G,Gatfield D,Stratmann M,et al.SIRT1 regulates circadian clock gene expression through PER2 deacetylation[J].Cell,2008,134:317-328.
[19]Rodgers J T,Lerin C,Gerhart-Hines Z,et al.Metabolic adaptations through the PGC-1 alpha and SIRT1 pathways[J].FEBS Lett,2008,582:46-53.
[20]Huang J Y,Hirschey M D,Shimazu T,et al.Mitochondrial sirtuins[J].Biochim Biophys Acta,2010,1804:1 645-1 651.
[21]Hirschey M D,Shimazu T,Goetzman E,et al.SIRT3 regulates mitochondrial fatty-acid oxidation by reversible enzyme deacetylation[J].Nature,2010,464:121-125.
[22]Hallows W C,Yu W,Smith B C,et al.Sirt3 promotes the urea cycle and fatty acid oxidation during dietary restriction[J].Mol Cell,2011,41:139-149.
[23]Shimazu T,Hirschey M D,Hua L,et al.SIRT3 deacetylates mitochondrial 3-hydroxy-3-methylglutaryl CoA synthase 2 and regulates ketone body production[J].Cell Metab,2010,12:654-661.
[24]Someya S,Yu W,Hallows W C,et al.Sirt3 mediates reduction of oxidative damage and prevention of age-related hearing loss under caloric restriction[J].Cell,2010,143:802-812.
[25]Haigis M C,Mostoslavsky R,Haigis K M,et al.SIRT4 inhibits glutamate dehydrogenase and opposes the effects of calorie restriction in pancreatic beta cells[J].Cell,2006,126:941-954.
[26]Nakagawa T,Guarente L.Urea cycle regulation by mitochondrial sirtuin[J],SIRT5 Aging,2009,1:578-581.
[27]Asher G,Reinke H,Altmeyer M,et al.Poly(ADP-ribose)polymerase 1 participates in the phase entrainment of circadian clocks to feeding[J].Cell,2010,142:943-953.
[28]Rutter J,Reick M,Wu L C,et al.Regulation of clock and NPAS2 DNA binding by the redox state of NAD cofactors[J].Science,2001,293:510-514.
[29]O’Neill J S,Van Ooijen G,Dixon L E,et al.Circadian rhythms persist without transcription in a eukaryote[J].Nature,2011,469:554-558.
[30]Brok-Simoni F,Ashkenazi Y E,Ramot B,et al.The diurnal rhythm of enzymes in human red cells[J].Br J Haematol,1976,32:601-608.
[31]O’Neill J S,Reddy A B.Circadian clocks in human red blood cells[J].Nature,2011,469:498-503.
[32]Sonoda J,Pei L,Evans R M.Nuclear receptors:decoding metabolic disease[J].FEBS Lett,2008,582:2-9.
[33]Yang X,Downes M,Yu R T,et al.Nuclear receptor expression links the circadian clock to metabolism[J].Cell,2006,126:801-810.
[34]Preitner N,Damiola F,Zakany J,et al.The orphan nuclear receptor REV-ERBalpha controls circadian transcription within the positive limb of the mammalian circadian oscillator[J].Cell,2002,110:251-260.
[35]Le Martelot G,Claudel T,Gatfield D,et al.REV-ERBalpha participates in circadian SREBP signaling and bile acid homeostasis[J].PLoS Biol,2009,7:e1000181.
[36]Feng D,Liu T,Sun Z,et al.A circadian rhythm orchestrated by histone deacetylase 3 controls hepatic lipid metabolism[J].Science,2011,331:1 315-1 319.
[37]Mamontova A,Séguret-Macé S,Esposito B,et al.Severe atherosclerosis and hypoalphalipoproteinemia in the staggerer mouse,a mutant of the nuclear receptor RORalpha[J].Circulation,1998,98:2 738-2 743.
[38]Liu C,Li S,Liu T,et al.Transcriptional coactivator PGC-1alpha integrates the mammalian clock and energy metabolism[J].Nature,2007,447:477-481.
[39]Spiegelman B M.Transcriptional control of mitochondrial energy metabolism through the PGC1 coactivators[J].Novartis Found Symp,2007,287:60-63.
[40]Huss J M,Kopp R P,Kelly D P,et al.Peroxisome proliferator-activated receptor coactivator-1alpha(PGC-1alpha)coactivates the cardiac-enriched nuclear receptors estrogen-related receptor-alpha and gamma.Identification of novel leucine-rich interaction motif within PGC-1alpha[J].J Biol Chem,2002,277(43):40 265-40 274.
[41]Dufour C R,Levasseur M P,Pham N H H,et al.Genomic convergence among ERRalpha,PROX1,and BMAL1 in the control of metabolic clock outputs[J].PLoS Genet,2011,7:e1002143.
[42]Kallen J,Schlaeppi J M,Bitsch F,et al.Crystal structure of the human RORalpha Ligand binding domain in complex with cholesterol sulfate at 2.2 A[J].J Biol Chem,2004,279:14 033-14 038.
[43]Lau P,Fitzsimmons R L,Raichur S,et al.The orphan nuclear receptor,RORalpha,regulates gene expression that controls lipid metabolism:staggerer(SG/SG)mice are resistant to diet-induced obesity[J].J Biol Chem,2008,283:18 411-18 421.
[44]Yin L,Wu N,Lazar M A.Nuclear receptor Rev-erb alpha,a heme sensor that coordinates metabolic and circadian pathway[J].Science,2007,318:1 786-1 789.
[45]Dickmeis T,Foulkes N S.Glucocorticoids and circadian clock control of cell proliferation:at the interface between three dynamic systems[J].Mol Cell Endocrinol,2011,331:11-22.
[46]Oster H,Damerow S,Kiessling S,et al.The circadian rhythm of glucocorticoids is regulated by a gating mechanism residing in the adrenal cortical clock[J].Cell Metab,2006,4:163-173.
[47]Teboul M,Gréchez-Cassiau A,Guillaumond F,et al.How nuclear receptors tell time[J].J Appl Physiol,2009,107:1 965-1 971.
[48]Balsalobre A,Brown S A,Marcacci L,et al.Resetting of circadian time in peripheral tissues by glucocorticoid signaling[J].Science,2000,289:2 344-2 347.
[49]Le Minh N,Damiola F,Tronche F,et al.Glucocorticoid hormones inhibit food-induced phase-shifting of peripheral circadian oscillators[J].EMBO J,2001,20:7 128-7 136.
[50]Yang X,Lamia K A,Evans R M.Nuclear receptors,metabolism,and the circadian clock[J].Cold Spring Harb Symp Quant Biol,2007,72:387-394.
[51]Li S,Lin J D.Molecular control of circadian metabolic rhythms[J].J Appl Physiol,2009,107:1 959-1 964.
[52]Fu J,Gaetani S,Oveisi F,et al.Oleylethanolamide regulates feeding and body weight through activation of the nuclear receptor PPAR-alpha[J].Nature,2003,425:90-93.[53]Wang N,Yang G,Jia Z,et al.Vascular PPARgamma controls circadian variation in blood pressure and heart rate through Bmal1[J].Cell Metab,2008,8:482-491.[54]Kalra S P,Bagnasco M,Otukonyong E E,et al.Rhythmic,reciprocal ghrelin and leptin signaling:new insight in the development of obesity[J].Regul Pept,2003,111:1-11.[55]Sinha M K,Ohannesian J P,Heiman M L,et al. Nocturnal rise of leptin in lean,obese,and non-insulin-dependent diabetes mellitus subjects[J].J Clin Invest,1996,97:1 344-1 347.[56]Cummings D E,Purnell J Q,Frayo R S,et al.A preprandial rise in plasma ghrelin levels suggests a role in meal initiation in humans[J].Diabetes,2001,50:1 714-1 719.[57]Huang W,Ramsey K M,Marcheva B,et al.Circadian rhythms,sleep,and metabolism[J].J Clin Invest,2011,121:2133-2141.[58]Minami Y,Kasukawa T,Kakazu Y,et al. Measurement of internal body time by blood metabolomics[J].Proc Natl Acad Sci USA,2009,106:9 890-9 895.

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备注/Memo

备注/Memo:
收稿日期:2014-07-20.
基金项目:科技部973重点基础研究发展计划(2012CB947600、2013CB911600)、国家自然科学基金(31171137、31271261)、教育部新世纪优秀人才支持计划(NCET-11-0990).
通讯联系人:刘畅,教授,研究方向:能量代谢的分子调节机制.E-mail:changliu@njnu.edu.cn
更新日期/Last Update: 2014-09-30