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衰老影响中央生物钟下游光周期适应的能力。

Aging Affects the Capacity of Photoperiodic Adaptation Downstream from the Central Molecular Clock.

机构信息

Department of Cellular and Chemical Biology, Laboratory for Neurophysiology, Leiden University Medical Center, Leiden, the Netherlands.

Lorentz Institute for Theoretical Physics, Leiden University, Leiden, the Netherlands.

出版信息

J Biol Rhythms. 2020 Apr;35(2):167-179. doi: 10.1177/0748730419900867. Epub 2020 Jan 27.

Abstract

Aging impairs circadian clock function, leading to disrupted sleep-wake patterns and a reduced capability to adapt to changes in environmental light conditions. This makes shift work or the changing of time zones challenging for the elderly and, importantly, is associated with the development of age-related diseases. However, it is unclear what levels of the clock machinery are affected by aging, which is relevant for the development of targeted interventions. We found that naturally aged mice of >24 months had a reduced rhythm amplitude in behavior compared with young controls (3-6 months). Moreover, the old animals had a strongly reduced ability to adapt to short photoperiods. Recording PER2::LUC protein expression in the suprachiasmatic nucleus revealed no impairment of the rhythms in PER2 protein under the 3 different photoperiods tested (LD: 8:16, 12:12, and 16:8). Thus, we observed a discrepancy between the behavioral phenotype and the molecular clock, and we conclude that the aging-related deficits emerge downstream of the core molecular clock. Since it is known that aging affects several intracellular and membrane components of the central clock cells, it is likely that an impairment of the interaction between the molecular clock and these components is contributing to the deficits in photoperiod adaptation.

摘要

衰老会损害生物钟功能,导致睡眠-觉醒模式紊乱,并降低适应环境光照条件变化的能力。这使得老年人在轮班工作或时区变化方面面临挑战,而且重要的是,这与与年龄相关的疾病的发展有关。然而,目前尚不清楚生物钟机制的哪些水平会受到衰老的影响,这对于开发有针对性的干预措施很重要。我们发现,与年轻对照(3-6 个月)相比,>24 个月的自然衰老小鼠的行为节律幅度降低。此外,这些老年动物适应短光照周期的能力大大降低。在视交叉上核中记录 PER2::LUC 蛋白表达,发现 PER2 蛋白在测试的 3 种不同光周期(LD:8:16、12:12 和 16:8)下的节律没有受损。因此,我们观察到行为表型和分子钟之间存在差异,我们得出结论,衰老相关的缺陷出现在核心分子钟的下游。由于已知衰老会影响中枢时钟细胞的几个细胞内和膜成分,因此分子钟与其这些成分之间的相互作用受损很可能导致适应光周期的能力缺陷。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3490/7134598/56c1c42407ac/10.1177_0748730419900867-fig1.jpg

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