Chemical & Biochemical Engineering Department, Rutgers University, Piscataway, NJ, United States of America.
Chemical & Biochemical Engineering Department, Rutgers University, Piscataway, NJ, United States of America; Biomedical Engineering Department, Rutgers University, Piscataway, NJ, United States of America; Department of Surgery, Rutgers - Robert Wood Johnson Medical School, New Brunswick, NJ, United States of America.
Horm Behav. 2019 Apr;110:77-89. doi: 10.1016/j.yhbeh.2019.02.018. Epub 2019 Mar 15.
Circadian time-keeping mechanisms preserve homeostasis by synchronizing internal physiology with predictable variations in the environment and temporally organize the activation of physiological signaling mechanisms to promote survival and optimize the allocation of energetic resources. In this paper, we highlight the importance of the robust circadian dynamics of allostatic mediators, with a focus on the hypothalamic-pituitary-adrenal (HPA) axis, for the optimal regulation of host physiology and in enabling organisms to adequately respond and adapt to physiological stressors. We review studies showing how the chronic disruption of circadian rhythms can result in the accumulation of allostatic load, which impacts the appropriate functioning of physiological systems and diminishes the resilience of internal systems to adequately respond to subsequent stressors. A careful consideration of circadian rhythm dynamics leads to a more comprehensive characterization of individual variability in allostatic load and stress resilience. Finally, we suggest that the restoration of circadian rhythms after pathological disruption can enable the re-engagement of allostatic mechanisms and re-establish stress resilience.
昼夜节律计时机制通过使内部生理与环境中的可预测变化同步,来维持体内平衡,并在时间上组织生理信号机制的激活,以促进生存和优化能量资源的分配。在本文中,我们强调了应激反应中介的强大昼夜节律动态的重要性,重点是下丘脑-垂体-肾上腺 (HPA) 轴,这对于宿主生理的最佳调节以及使生物体能够充分应对和适应生理应激至关重要。我们回顾了一些研究,这些研究表明,昼夜节律的慢性破坏会导致应激负荷的积累,从而影响生理系统的正常功能,并降低内部系统对后续应激源的适应能力。仔细考虑昼夜节律动态可以更全面地描述应激负荷和应激适应能力的个体差异。最后,我们认为,在病理破坏后恢复昼夜节律可以使应激反应机制重新参与,并重新建立应激适应能力。