Suppr超能文献

[昼夜节律时钟机制在体温日节律调节中的作用]

[Roles of the Circadian Clock Mechanism in the Regulation of Daily Rhythms of Body Temperature].

作者信息

Miyake Takahito, Doi Masao

机构信息

Department of Systems Biology, Division of Bioinformatics and Chemical Genomics, Graduate School of Pharmaceutical Sciences, Kyoto University.

出版信息

Brain Nerve. 2022 Feb;74(2):159-166. doi: 10.11477/mf.1416202001.

Abstract

Body temperature of thermostatic animals does not stay constant but displays a regular circadian fluctuation, which has a role in maintaining homeostasis of sleep and metabolism as well as entraining the peripheral circadian clocks in the body. Following the discovery of clock genes that generate the circadian rhythm and the master clock structure in the brain and recent advances in infrared temperature imaging, there is a greater opportunity to investigate the mechanism underlying body temperature regulation, which currently remains unclear. In this review, we summarize our recent findings on a mechanism of body temperature regulation through a non-coding cis-element of the core clock gene Per2. The body temperature during siesta is controlled by the calcitonin receptors, which exhibit restricted expression in the suprachiasmatic nucleus, the locus of the central circadian clock in the brain. This review also refers to a recent machine learning-assisted thermography recording procedure, a technique that enables real-time simultaneous monitoring of circadian fluctuations in body temperature, locomotor activity, feeding, and drinking behaviors of animals. We will discuss the current challenges and open questions in understanding the molecular and circuit level mechanisms that give rise to circadian rhythms in body temperature.

摘要

恒温动物的体温并非保持恒定不变,而是呈现出有规律的昼夜波动,这在维持睡眠和新陈代谢的稳态以及调节体内外周生物钟方面发挥着作用。随着产生昼夜节律的时钟基因以及大脑中主时钟结构的发现,再加上红外温度成像技术的最新进展,现在有了更多机会去探究目前仍不清楚的体温调节机制。在这篇综述中,我们总结了我们最近关于通过核心时钟基因Per2的非编码顺式元件进行体温调节机制的研究发现。午睡期间的体温由降钙素受体控制,而降钙素受体在视交叉上核(大脑中央昼夜节律时钟的所在位置)中呈现出受限表达。这篇综述还提到了一种最近的机器学习辅助热成像记录程序,该技术能够实时同步监测动物体温、运动活动、进食和饮水行为的昼夜波动。我们将讨论在理解产生体温昼夜节律的分子和回路水平机制方面当前面临的挑战和悬而未决的问题。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验