昼夜节律是理解自闭症谱系障碍的新途径吗?

Q Medicine
M-M. Geoffray , A. Nicolas , M. Speranza , N. Georgieff
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引用次数: 56

摘要

自闭症谱系障碍(ASD)是一种常见的神经发育障碍。ASD可能是基因和环境之间复杂的相互作用的结果,逐渐改变了大脑结构和功能的发展。昼夜节律是一个复杂的内在计时系统,由几乎和人体细胞一样多的时钟组成。它们调节各种生理和行为过程,如睡眠-觉醒节奏。ASD通常与睡眠障碍和褪黑激素水平低有关。这第一点提出了一个假设,即昼夜节律可能与ASD病因学有关。此外,昼夜节律是由自调节遗传反馈回路产生的,由转录因子CLOCK和BMAL1驱动,它们在不同的细胞背景下驱动大量时钟控制基因(CCGs)的日常转录模式。其中,一些CCGs编码与ASD易感性相关的突触分子。此外,有证据表明昼夜节律控制着大脑发育过程的时间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Are circadian rhythms new pathways to understand Autism Spectrum Disorder?

Autism Spectrum Disorder (ASD) is a frequent neurodevelopmental disorder. ASD is probably the result of intricate interactions between genes and environment altering progressively the development of brain structures and functions. Circadian rhythms are a complex intrinsic timing system composed of almost as many clocks as there are body cells. They regulate a variety of physiological and behavioral processes such as the sleep-wake rhythm. ASD is often associated with sleep disorders and low levels of melatonin. This first point raises the hypothesis that circadian rhythms could have an implication in ASD etiology. Moreover, circadian rhythms are generated by auto-regulatory genetic feedback loops, driven by transcription factors CLOCK and BMAL1, who drive transcription daily patterns of a wide number of clock-controlled genes (CCGs) in different cellular contexts across tissues. Among these, are some CCGs coding for synapses molecules associated to ASD susceptibility. Furthermore, evidence emerges about circadian rhythms control of time brain development processes.

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来源期刊
Journal of Physiology-Paris
Journal of Physiology-Paris 医学-神经科学
CiteScore
2.02
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: Each issue of the Journal of Physiology (Paris) is specially commissioned, and provides an overview of one important area of neuroscience, delivering review and research papers from leading researchers in that field. The content will interest both those specializing in the experimental study of the brain and those working in interdisciplinary fields linking theory and biological data, including cellular neuroscience, mathematical analysis of brain function, computational neuroscience, biophysics of brain imaging and cognitive psychology.
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