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HPA 轴昼夜节律时间的生理和药理学意义:一种数学建模方法。

The Physiological and Pharmacological Significance of the Circadian Timing of the HPA Axis: A Mathematical Modeling Approach.

机构信息

Chemical & Biochemical Engineering Department, Piscataway, NJ 08854, USA.

Chemical & Biochemical Engineering Department, Piscataway, NJ 08854, USA; Biomedical Engineering Department, Rutgers University, Piscataway, NJ 08540, USA.

出版信息

J Pharm Sci. 2024 Jan;113(1):33-46. doi: 10.1016/j.xphs.2023.08.005. Epub 2023 Aug 18.

Abstract

As a potent endogenous regulator of homeostasis, the circadian time-keeping system synchronizes internal physiology to periodic changes in the external environment to enhance survival. Adapting endogenous rhythms to the external time is accomplished hierarchically with the central pacemaker located in the suprachiasmatic nucleus (SCN) signaling the hypothalamus-pituitary-adrenal (HPA) axis to release hormones, notably cortisol, which help maintain the body's circadian rhythm. Given the essential role of HPA-releasing hormones in regulating physiological functions, including immune response, cell cycle, and energy metabolism, their daily variation is critical for the proper function of the circadian timing system. In this review, we focus on cortisol and key fundamental properties of the HPA axis and highlight their importance in controlling circadian dynamics. We demonstrate how systems-driven, mathematical modeling of the HPA axis complements experimental findings, enhances our understanding of complex physiological systems, helps predict potential mechanisms of action, and elucidates the consequences of circadian disruption. Finally, we outline the implications of circadian regulation in the context of personalized chronotherapy. Focusing on the chrono-pharmacology of synthetic glucocorticoids, we review the challenges and opportunities associated with moving toward personalized therapies that capitalize on circadian rhythms.

摘要

作为一种强大的内源性稳态调节剂,昼夜节律计时系统将内部生理学与外部环境的周期性变化同步,以增强生存能力。通过位于视交叉上核 (SCN) 的中枢起搏器对下丘脑-垂体-肾上腺 (HPA) 轴发出信号,使内源性节律适应外部时间,从而释放激素,特别是皮质醇,这有助于维持身体的昼夜节律。鉴于 HPA 释放激素在调节生理功能(包括免疫反应、细胞周期和能量代谢)方面的重要作用,其日常变化对昼夜计时系统的正常功能至关重要。在这篇综述中,我们重点介绍皮质醇和 HPA 轴的关键基本特性,并强调它们在控制昼夜动力学中的重要性。我们展示了如何通过系统驱动的 HPA 轴数学建模来补充实验发现,增强我们对复杂生理系统的理解,帮助预测潜在的作用机制,并阐明昼夜节律中断的后果。最后,我们概述了昼夜节律调节在个性化时间治疗中的意义。我们重点讨论了合成糖皮质激素的 chrono-pharmacology,回顾了在利用昼夜节律向个性化治疗转变方面所面临的挑战和机遇。

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