Sleep duration and metabolic syndrome
详细信息    查看全文
  • 作者:Dr. K.V. Allebrandt PhD. (1)
  • 关键词:Sleep duration ; Body mass index ; Metabolic syndrome ; Clock genes ; Seasonality ; Schlafdauer ; Body ; Mass ; Index ; Metabolisches Syndrom ; Uhrengene ; Saisonalit?t
  • 刊名:Somnologie - Schlafforschung und Schlafmedizin
  • 出版年:2013
  • 出版时间:March 2013
  • 年:2013
  • 卷:17
  • 期:1
  • 页码:15-20
  • 全文大小:903KB
  • 参考文献:1. Akrouh A, Halcomb SE, Nichols CG, Sala-Rabanal M (2009) Molecular biology of K(ATP) channels and implications for health and disease. IUBMB life 61:971-78 CrossRef
    2. Allebrandt KV, Amin N, Muller-Myhsok B et al (2013) A K(ATP) channel gene effect on sleep duration: from genome-wide association studies to function in Drosophila. Mol Psychiatry 18:122-32 CrossRef
    3. Allebrandt KV, Roenneberg T (2008) The search for circadian clock components in humans: new perspectives for association studies. Braz J Med Biol Res 41:716-21 CrossRef
    4. Allebrandt KV, Teder-Laving M, Akyol M et al (2010) CLOCK gene variants associate with sleep duration in two independent populations. Biol Psychiatry 67:1040-047 CrossRef
    5. Ashcroft FM, Gribble FM (1999) ATP-sensitive K+ channels and insulin secretion: their role in health and disease. Diabetologia 42:903-19 CrossRef
    6. Boden JM, Fergusson DM, Horwood LJ (2010) Cigarette smoking and depression: tests of causal linkages using a longitudinal birth cohort. Br J Psychiatry 196:440-46 CrossRef
    7. Borbely AA (1998) Processes underlying sleep regulation. Horm Res 49:114-17 CrossRef
    8. Chutkow WA, Samuel V, Hansen PA et al (2001) Disruption of Sur2-containing K(ATP) channels enhances insulin-stimulated glucose uptake in skeletal muscle. Proc Natl Acad Sci U S A 98:11760-1764 CrossRef
    9. Ciarleglio CM, Axley JC, Strauss BR et al (2011) Perinatal photoperiod imprints the circadian clock. Nat Neurosci 14:25-7 CrossRef
    10. Cizza G, Requena M, Galli G, Jonge L de (2011) Chronic sleep deprivation and seasonality: implications for the obesity epidemic. J Endocrinol Invest 34:793-00
    11. Franken P, Dijk DJ (2009) Circadian clock genes and sleep homeostasis. Eur J Neurosci 29:1820-829 CrossRef
    12. Franken P, Thomason R, Heller HC, O’Hara BF (2007) A non-circadian role for clock-genes in sleep homeostasis: a strain comparison. BMC Neurosci 8:87 CrossRef
    13. Garaulet M, Sanchez-Moreno C, Smith CE et al (2011) Ghrelin, sleep reduction and evening preference: relationships to CLOCK 3111 T/C SNP and weight loss. PLoS One 6:e17435 CrossRef
    14. Gottlieb DJ, O’Connor GT, Wilk JB (2007) Genome-wide association of sleep and circadian phenotypes. BMC Med Genet 8(Suppl 1):9 CrossRef
    15. He Y, Jones CR, Fujiki N et al (2009) The transcriptional repressor DEC2 regulates sleep length in mammals. Science 325:866-70 CrossRef
    16. Huang W, Ramsey KM, Marcheva B, Bass J (2011) Circadian rhythms, sleep, and metabolism. J Clin Invest 121:2133-141 CrossRef
    17. Jones CR, Campbell SS, Zone SE et al (1999) Familial advanced sleep-phase syndrome: a short-period circadian rhythm variant in humans. Nat Med 5:1062-065 CrossRef
    18. Kantermann T, Juda M, Merrow M, Roenneberg T (2007) The human circadian clock’s seasonal adjustment is disrupted by daylight saving time. Curr Biol 17:1996-000 CrossRef
    19. Laposky AD, Bass J, Kohsaka A, Turek FW (2008) Sleep and circadian rhythms: key components in the regulation of energy metabolism. FEBS Lett 582:142-51 CrossRef
    20. Luke A, Guo X, Adeyemo AA et al (2001) Heritability of obesity-related traits among Nigerians, Jamaicans and US black people. Int J Obes Relat Metab Disord 25:1034-041 CrossRef
    21. McCrimmon RJ, Evans ML, Fan X et al (2005) Activation of ATP-sensitive K+ channels in the ventromedial hypothalamus amplifies counterregulatory hormone responses to hypoglycemia in normal and recurrently hypoglycemic rats. Diabetes 54:3169-174 CrossRef
    22. Mikulecky M, Minarik P, Michalkova D (2004) Insulin gene profile cycles with season of birth of future diabetic children and their relatives. J Pediatr Endocrinol Metab 17:727-30 CrossRef
    23. Partinen M, Kaprio J, Koskenvuo M et al (1983) Genetic and environmental determination of human sleep. Sleep 6:179-85
    24. Rajajarvi E, Antila M, Kieseppa T et al (2010) The effect of seasons and seasonal variation on neuropsychological test performance in patients with bipolar I disorder and their first-degree relatives. J Affect Disord 127:58-5 CrossRef
    25. Roenneberg T, Allebrandt KV, Merrow M, Vetter C (2012) Social jetlag and obesity. Curr Biol 22:939-43 CrossRef
    26. Roenneberg T, Merrow M (2005) Circadian clocks—the fall and rise of physiology. Nat Rev 6:965-71 CrossRef
    27. Scheer FAJL, Hilton MF, Mantzoros CS, Shea SA (2009) Adverse metabolic and cardiovascular consequences of circadian misalignment. Proc Natl Acad Sci U S A 106:4453-458 CrossRef
    28. Taheri S, Lin L, Austin D et al (2004) Short sleep duration is associated with reduced leptin, elevated ghrelin, and increased body mass index. PLoS Med 1:e62 CrossRef
    29. Taheri S, Thomas GN (2008) Is sleep duration associated with obesity—where do U stand? Sleep Med Rev 12:299-02 CrossRef
    30. Turek FW, Joshu C, Kohsaka A et al (2005) Obesity and metabolic syndrome in circadian Clock mutant mice. Science 308:1043-045 CrossRef
    31. Watson NF, Buchwald D, Vitiello MV et al (2010) A twin study of sleep duration and body mass index. J Clin Sleep Med 6:11-7
    32. Wyse CA (2012) Does human evolution in different latitudes influence susceptibility to obesity via the circadian pacemaker?: migration and survival of the fittest in the modern age of lifestyle-induced circadian desynchrony. Bioessays 34:921-24 CrossRef
  • 作者单位:Dr. K.V. Allebrandt PhD. (1)

    1. Institute of Medical Psychology, Medical Faculty, Ludwig-Maximilians-University, Goethestr. 31, 80336, Munich, Germany
文摘
Extremes in duration of sleep have been associated with adverse health, specifically with the symptomatology characteristic of the metabolic syndrome. Body homeostasis and circadian rhythm are thought to interact and to influence energy metabolism. Environmental cues, such as time of year and amplitude of seasonal changes (changes in photoperiod length) influence both sleep behavior and energy metabolism, supporting a link between these two systems. However, little is known about the molecular mechanism underlying the relationships of sleep and the metabolic syndrome symptoms, or the sleep–circadian phenotypes per se. In genetic association studies on sleep duration (candidate clock genes approach and genome-wide association studies), we identified genes that are functionally involved in the development of the metabolic syndrome symptomatology. Although the relationship between sleep duration and body mass index may partly be caused by environmental influences such as voluntary sleep restriction and circadian misalignment, the association of sleep duration with genes related to metabolism indicates that genetic factors are central to it. In this article, the latest evidence of a gene–environment influence on the relationship of sleep duration with the metabolic syndrome symptomatology is discussed. Greater understanding of a common genetic pathway linking sleep duration to metabolic dysfunction, and the role of environment in the mediation of this relationship, will lead to the development of new guidelines for treatment of obesity, which is a major health issues in our society.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700