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下丘脑弓状核 kisspeptin 神经元的超昼夜节律及其发育过程。

Ultradian Rhythms in the Hypothalamic Arcuate Nucleus Kisspeptin Neurons and Developmental Processes.

机构信息

Department of Brain and Cognitive Sciences, Daegu Gyeongbuk Institute of Science and Technology (DGIST), Daegu 42988, Korea.

出版信息

Mol Cells. 2020 Jul 31;43(7):600-606. doi: 10.14348/molcells.2020.0066.

Abstract

Numerous physiological processes in nature have multiple oscillations within 24 h, that is, ultradian rhythms. Compared to the circadian rhythm, which has a period of approximately one day, these short oscillations range from seconds to hours, and the mechanisms underlying ultradian rhythms remain largely unknown. This review aims to explore and emphasize the implications of ultradian rhythms and their underlying regulations. Reproduction and developmental processes show ultradian rhythms, and these physiological systems can be regulated by short biological rhythms. Specifically, we recently uncovered synchronized calcium oscillations in the organotypic culture of hypothalamic arcuate nucleus (ARN) kisspeptin neurons that regulate reproduction. Synchronized calcium oscillations were dependent on voltage-gated ion channel-mediated action potentials and were repressed by chemogenetic inhibition, suggesting that the network within the ARN and between the kisspeptin population mediates the oscillation. This minireview describes that ultradian rhythms are a general theme that underlies biological features, with special reference to calcium oscillations in the hypothalamic ARN from a developmental perspective. We expect that more attention to these oscillations might provide insight into physiological or developmental mechanisms, since many oscillatory features in nature still remain to be explored.

摘要

自然界中许多生理过程在 24 小时内存在多种波动,即超周期节律。与周期约为一天的昼夜节律相比,这些短周期波动范围从几秒钟到几个小时不等,超周期节律的机制在很大程度上尚不清楚。本综述旨在探讨和强调超周期节律及其潜在规律的意义。生殖和发育过程表现出超周期节律,这些生理系统可以受到短生物节律的调节。具体来说,我们最近在体外培养的下丘脑弓状核(ARC)促性腺激素释放素神经元中发现了同步钙振荡,这些钙振荡调节生殖。同步钙振荡依赖于电压门控离子通道介导的动作电位,并受到化学遗传抑制的抑制,表明 ARC 内的网络和促性腺激素释放素神经元群体之间的网络介导了这种振荡。这篇短文描述了超周期节律是一个普遍存在的主题,它是生物特征的基础,特别参考了从发育角度看下丘脑 ARC 的钙振荡。我们希望更多地关注这些振荡可能会为生理或发育机制提供深入了解,因为自然界中仍有许多振荡特征有待探索。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c134/7398798/65eb9a8e6c20/molce-43-600-f1.jpg

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