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Microgravity influences circadian clock oscillation in human keratinocytes

机译:微重力影响人类角质形成细胞的昼夜节律振荡

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摘要

Microgravity and sudden changes of gravitational forces exert numerous effects on tissues, organs and apparatus. Responses to these forces variably applied to cells indicate the existence of mechanotransduction pathways able to modulate transcription. Oscillation of circadian clocks similarly influences many cellular and metabolic processes. Here we hypothesized that signals derived from changes of gravitational forces applied to epidermal cells might influence their physiology in harmony with the oscillation of the molecular clock. In this study, we describe amplified oscillations of Bmal1 circadian clock gene in human keratinocytes exposed to short simulated microgravity and to rapid variation of gravitational forces. We found that exposure to microgravity enhances the amplitude of the Bmal1 feedback loop sustained by an apparently lower variability of Rev-erb@a transcription, while recovery from microgravity is characterized by increased amplitude of Bmal1 expression and elongation of the oscillatory periods of Bmal1 and Rev-erb@a. These data highlight the existence of integrated signaling network connecting mechanosensitive pathways to circadian gene regulation.
机译:微重力和重力的突然变化会对组织,器官和设备产生多种影响。对这些作用于细胞的力的反应表明存在能够调节转录的机械转导途径。昼夜节律时钟的振荡同样会影响许多细胞和代谢过程。在这里,我们假设从施加在表皮细胞上的重力变化产生的信号可能会影响它们的生理,并与分子钟的振荡协调一致。在这项研究中,我们描述了人类角质形成细胞中Bmal1昼夜节律时钟基因的放大振荡,该角化细胞暴露于短模拟微重力和重力快速变化中。我们发现暴露于微重力下会通过Rev-erb @ a转录的明显较低的变异来增强Bmal1反馈环的振幅,而从微重力下恢复的特征在于Bmal1表达的振幅增加以及Bmal1和Rev振荡周期的延长-erb @ a。这些数据突显了将机械敏感途径连接至昼夜节律基因调控的整合信号网络的存在。

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