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光周期调节哺乳动物生物钟中的快速延迟整流钾电流。

Photoperiod Modulates Fast Delayed Rectifier Potassium Currents in the Mammalian Circadian Clock.

作者信息

Farajnia Sahar, Meijer Johanna H, Michel Stephan

机构信息

Leiden University Medical Center, Leiden, The Netherlands Netherlands Institute for Neuroscience, Amsterdam, The Netherlands

Leiden University Medical Center, Leiden, The Netherlands.

出版信息

ASN Neuro. 2016 Oct 3;8(5). doi: 10.1177/1759091416670778. Print 2016 Oct.

Abstract

One feature of the mammalian circadian clock, situated in the suprachiasmatic nucleus (SCN), is its ability to measure day length and thereby contribute to the seasonal adaptation of physiology and behavior. The timing signal from the SCN, namely the 24 hr pattern of electrical activity, is adjusted according to the photoperiod being broader in long days and narrower in short days. Vasoactive intestinal peptide and gamma-aminobutyric acid play a crucial role in intercellular communication within the SCN and contribute to the seasonal changes in phase distribution. However, little is known about the underlying ionic mechanisms of synchronization. The present study was aimed to identify cellular mechanisms involved in seasonal encoding by the SCN. Mice were adapted to long-day (light-dark 16:8) and short-day (light-dark 8:16) photoperiods and membrane properties as well as K currents activity of SCN neurons were measured using patch-clamp recordings in acute slices. Remarkably, we found evidence for a photoperiodic effect on the fast delayed rectifier K current, that is, the circadian modulation of this ion channel's activation reversed in long days resulting in 50% higher peak values during the night compared with the unaltered day values. Consistent with fast delayed rectifier enhancement, duration of action potentials during the night was shortened and afterhyperpolarization potentials increased in amplitude and duration. The slow delayed rectifier, transient K currents, and membrane excitability were not affected by photoperiod. We conclude that photoperiod can change intrinsic ion channel properties of the SCN neurons, which may influence cellular communication and contribute to photoperiodic phase adjustment.

摘要

位于视交叉上核(SCN)的哺乳动物生物钟的一个特点是其具有测量白昼长度的能力,从而有助于生理和行为的季节性适应。来自SCN的定时信号,即24小时的电活动模式,会根据光周期进行调整,在长日照时更宽,在短日照时更窄。血管活性肠肽和γ-氨基丁酸在SCN内的细胞间通讯中起关键作用,并促成相位分布的季节性变化。然而,关于同步的潜在离子机制知之甚少。本研究旨在确定SCN参与季节性编码的细胞机制。将小鼠分别适应长日照(明暗周期16:8)和短日照(明暗周期8:16)光周期,并在急性脑片中使用膜片钳记录测量SCN神经元的膜特性以及钾电流活性。值得注意的是,我们发现了光周期对快速延迟整流钾电流有影响的证据,也就是说,该离子通道激活的昼夜节律调制在长日照时发生逆转,导致夜间峰值比未改变的白天值高50%。与快速延迟整流增强一致,夜间动作电位的持续时间缩短,超极化后电位的幅度和持续时间增加。缓慢延迟整流、瞬时钾电流和膜兴奋性不受光周期影响。我们得出结论,光周期可以改变SCN神经元的内在离子通道特性,这可能影响细胞通讯并促成光周期相位调整。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8de3/5051630/704e23924700/10.1177_1759091416670778-fig1.jpg

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