Sleep and immune function

被引:0
作者
Luciana Besedovsky
Tanja Lange
Jan Born
机构
[1] University of Tübingen,Department of Medical Psychology and Behavioral Neurobiology
[2] University of Lübeck,Department of Neuroendocrinology
来源
Pflügers Archiv - European Journal of Physiology | 2012年 / 463卷
关键词
Sleep; Circadian; Immune; Cytokines; Neuroimmunology; Inflammation;
D O I
暂无
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学科分类号
摘要
Sleep and the circadian system exert a strong regulatory influence on immune functions. Investigations of the normal sleep–wake cycle showed that immune parameters like numbers of undifferentiated naïve T cells and the production of pro-inflammatory cytokines exhibit peaks during early nocturnal sleep whereas circulating numbers of immune cells with immediate effector functions, like cytotoxic natural killer cells, as well as anti-inflammatory cytokine activity peak during daytime wakefulness. Although it is difficult to entirely dissect the influence of sleep from that of the circadian rhythm, comparisons of the effects of nocturnal sleep with those of 24-h periods of wakefulness suggest that sleep facilitates the extravasation of T cells and their possible redistribution to lymph nodes. Moreover, such studies revealed a selectively enhancing influence of sleep on cytokines promoting the interaction between antigen presenting cells and T helper cells, like interleukin-12. Sleep on the night after experimental vaccinations against hepatitis A produced a strong and persistent increase in the number of antigen-specific Th cells and antibody titres. Together these findings indicate a specific role of sleep in the formation of immunological memory. This role appears to be associated in particular with the stage of slow wave sleep and the accompanying pro-inflammatory endocrine milieu that is hallmarked by high growth hormone and prolactin levels and low cortisol and catecholamine concentrations.
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页码:121 / 137
页数:16
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[1]  
Benedict C(2007)Sleep enhances serum interleukin-7 concentrations in humans Brain Behav Immun 21 1058-1062
[2]  
Dimitrov S(2009)Enhancing influence of intranasal interleukin-6 on slow-wave activity and memory consolidation during sleep FASEB J 23 3629-3636
[3]  
Marshall L(1996)Catecholamine-induced leukocytosis: early observations, current research, and future directions Brain Behav Immun 10 77-91
[4]  
Born J(1996)Immune-neuro-endocrine interactions: facts and hypotheses Endocr Rev 17 64-102
[5]  
Benedict C(2011)Central and peripheral cytokines mediate immune–brain connectivity Neurochem Res 36 1-6
[6]  
Scheller J(1997)Slow wave sleep drives inhibition of pituitary-adrenal secretion in humans J Neuroendocrinol 9 479-484
[7]  
Rose-John S(2009)Melatonin, sleep disturbance and cancer risk Sleep Med Rev 13 257-264
[8]  
Born J(2009)Sleep-dependent activity of T cells and regulatory T cells Clin Exp Immunol 155 231-238
[9]  
Marshall L(2010)The influence of regulatory T cells and diurnal hormone rhythms on T helper cell activity Immunology 131 488-500
[10]  
Benschop RJ(2001)Aging-induced changes in 24-h rhythms of mitogenic responses, lymphocyte subset populations and neurotransmitter and amino acid content in rat submaxillary lymph nodes during Freund’s adjuvant arthritis Exp Gerontol 36 267-282