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SCN-HPA 外周昼夜节律计时系统:时钟同步的数学建模与光周期对时差适应影响。

The SCN-HPA-Periphery Circadian Timing System: Mathematical Modeling of Clock Synchronization and the Effects of Photoperiod on Jetlag Adaptation.

机构信息

Department of Chemical & Biochemical Engineering, Rutgers University-New Brunswick, New Brunswick, New Jersey, USA.

Department of Biomedical Engineering, Rutgers University, Piscataway, New Jersey, USA.

出版信息

J Biol Rhythms. 2023 Dec;38(6):601-616. doi: 10.1177/07487304231188541. Epub 2023 Aug 2.

Abstract

Synchronizing the circadian timing system (CTS) to external light/dark cycles is crucial for homeostasis maintenance and environmental adaptation. The CTS is organized hierarchically, with the central pacemaker located in the suprachiasmatic nuclei (SCN) generating coherent oscillations that are entrained to light/dark cycles. These oscillations regulate the release of glucocorticoids by the hypothalamus-pituitary-adrenal (HPA) axis, which acts as a systemic entrainer of peripheral clocks throughout the body. The SCN adjusts its network plasticity in response to variations in photoperiod, leading to changes in the rhythmic release of glucocorticoids and ultimately impacting peripheral clocks. However, the effects of photoperiod-induced variations of glucocorticoids on the synchronization of peripheral clocks are not fully understood, and the interaction between jetlag adaption and photoperiod changes is unclear. This study presents a semi-mechanistic mathematical model to investigate how the CTS responds to changes in photoperiod. Specifically, the study focuses on the entrainment properties of a system composed of the SCN, HPA axis, and peripheral clocks. The results show that high-amplitude glucocorticoid rhythms lead to a more coherent phase distribution in the periphery. In addition, our study investigates the effect of photoperiod exposure on jetlag recovery time and phase shift, proposing different interventional strategies for eastward and westward jetlag. The findings suggest that decreasing photic exposure before jetlag during eastward traveling and after jetlag during westward traveling can accelerate jetlag readaptation. The study provides insights into the mechanisms of CTS organization and potential recovery strategies for transitions between time zones and lighting zones.

摘要

同步生物钟(CTS)与外部光/暗周期对于维持体内平衡和适应环境至关重要。CTS 是分层组织的,中央起搏器位于视交叉上核(SCN),产生与光/暗周期同步的相干振荡。这些振荡调节下丘脑-垂体-肾上腺(HPA)轴释放的糖皮质激素,HPA 轴作为全身节律器,调节全身外周时钟。SCN 会根据光周期的变化调整其网络可塑性,导致糖皮质激素节律释放的变化,最终影响外周时钟。然而,光周期诱导的糖皮质激素变化对外周时钟同步的影响尚不完全清楚,时差适应和光周期变化之间的相互作用也不清楚。本研究提出了一个半机械数学模型来研究 CTS 如何响应光周期的变化。具体来说,该研究侧重于由 SCN、HPA 轴和外周时钟组成的系统的同步特性。研究结果表明,高振幅糖皮质激素节律导致外周相位分布更加一致。此外,我们的研究还调查了光周期暴露对时差恢复时间和相位偏移的影响,针对东向和西向时差提出了不同的干预策略。研究结果表明,在向东旅行时减少时差前的光暴露,在向西旅行时差后增加光暴露,可以加速时差适应。该研究深入了解了 CTS 组织的机制以及在时区和光照区之间过渡的潜在恢复策略。

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