哺乳动物生物钟的遗传和表观遗传研究进展
收稿日期: 2017-10-27
修回日期: 2017-11-16
网络出版日期: 2017-12-20
基金资助
国家自然科学基金项目(31571208);安徽省自然科学基金项目(1608085MH212);安徽大学大学生科研训练计划项目(J10118520418)
Genetic and epigeneticregulations of mammalian circadian rhythms
Received date: 2017-10-27
Revised date: 2017-11-16
Online published: 2017-12-20
Supported by
the National Natural Science Foundation of China(31571208);the Natural Science Foundation of Anhui Province(1608085MH212);Anhui University Undergraduate Student Training Grant(J10118520418)
生物钟对生物机体的生存与环境适应具有着重要意义,其相关研究近年来受到人们的广泛关注。生物钟的重要性质之一是内源节律的周期性,当前的研究认为这种周期性是由生物钟相关基因转录翻译的多反馈环路构成核心机制调控着近似24 h的节律振荡。哺乳动物的生物钟系统存在一个多层次的结构,包括位于视交叉上核的主时钟和外周器官和组织的子时钟。虽然主时钟和子时钟存在的组织不同,但是参与调节生物钟的分子机制是一致的。近年来,通过正向、反向遗传学方法和表观遗传学的研究方法,对生物钟的分子机制的解析和认知愈发深入。本文在简单回顾生物钟基因发现历史的基础上,重点从遗传学和表观遗传学两个方面,从振荡周期的角度,对哺乳动物生物钟分子机制的研究进展进行了综述性介绍,以期为靶向调节生物钟来改善机体的稳态系统的研究提供参考,同时希望能促进时间生物学领域与更多其他领域形成交叉研究。
岳敏, 杨禹, 郭改丽, 秦曦明 . 哺乳动物生物钟的遗传和表观遗传研究进展[J]. 遗传, 2017 , 39(12) : 1122 -1137 . DOI: 10.16288/j.yczz.17-350
The circadian clocks are vital to many organisms for their survival and adaption to the surrounding environment. More and more people are interested in the circadian clock and related researches. One of the key characteristics of this endogenous clock is its periodicity. Mechanisms underlying the mammalian circadian rhythms with ~24 h periodicity involve interlocked transcriptional and translational feedback loops. The circadian clock system in mammals consists of hierarchical structures, with the suprachiasmatic nucleus (SCN) as the central pacemaker and peripheral oscillators in other organs. In spite of the central and peripheral oscillators, the molecular mechanisms are the same within the SCN and peripheral organs. In the past decades, major achievements are accomplished by using forward and reverse genetics, as well as epigenetic approaches. In this review, we recapitulate the history of how clock-related genes were identified, and summarize the main achievements in genetics and epigenetics to understand the molecular underpinnings. We hope it can offer basic knowledge for further researches, a reference for experimental designs aiming to adjust organisms’ homeostasis by modulating the clock, and provide a foundation to build interdisciplinary research networks.
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