SIK3 isoforms and PKA phosphorylation sites differentially regulate sleep and circadian rhythms.

IF 4.9 2区 医学 Q1 Medicine
Sleep Pub Date : 2026-09-04 DOI:10.1093/sleep/zsag244
Minjeong Park, Aya Ikkyu, Kei Nishida, Noriko Hotta-Hirashima, Miyo Kakizaki, Tomoyuki Fujiyama, Shinya Nakata, Takato Honda, Jing Ma, Zhiqiang Wang, Satomi Kanno, Seiya Mizuno, Satoru Takahashi, Chika Miyoshi, Masashi Yanagisawa, Hiromasa Funato
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引用次数: 0

Abstract

Study objectives: Sleep is regulated by conserved kinase signaling pathways, yet how specific molecular variants encode sleep need, sleep intensity, and circadian timing remains unclear. We investigated the functional specialization of SIK3 isoforms and protein kinase A (PKA)-phosphorylation sites in mouse sleep/wake and circadian regulation.

Methods: We first generated isoform-selective Sik3 knock-in mice expressing either the 150 kDa or 70 kDa SIK3 isoform. To determine the isoform-specific effects of the Sleepy (Slp) mutation, which causes exon 13 skipping and deletes a region containing S551, we introduced the mutation separately into the 150 kDa-specific or 70 kDa-specific allele. In addition, we generated knock-in mice carrying alanine substitutions at the PKA-phosphorylation sites T469, S551, or S674. Sleep/wake states were quantified by EEG/EMG recording, and circadian behavior was assessed by wheel-running under light-dark and constant-dark conditions.

Results: The mouse brain expressed two major SIK3 isoforms: a 150 kDa isoform and a 70 kDa isoform generated by intron 14 retention. Isoform-selective knock-in analyses showed that the 150 kDa isoform was required for normal wakefulness at dark onset and circadian period regulation, whereas the 70 kDa isoform contributed predominantly to NREM sleep EEG delta power. Introducing the Sleepy mutation into either isoform increased NREM sleep time and delta power. Alanine substitution of T469 or S551, but not S674, produced a Sleepy-like hypersomnia phenotype.

Conclusion: Partially separable molecular features of SIK3, including its isoforms and phosphorylation sites, contribute to sleep and circadian regulation.

SIK3亚型和PKA磷酸化位点对睡眠和昼夜节律有不同的调节作用。
研究目的:睡眠是由保守的激酶信号通路调节的,但具体的分子变异是如何编码睡眠需求、睡眠强度和昼夜节律的仍不清楚。我们研究了SIK3亚型和蛋白激酶A (PKA)磷酸化位点在小鼠睡眠/觉醒和昼夜节律调节中的功能特化。方法:我们首先生成表达150 kDa或70 kDa Sik3亚型的Sik3亚型选择性敲入小鼠。为了确定嗜睡(Slp)突变的同工异构体特异性效应,我们分别将该突变引入150 kda特异性或70 kda特异性等位基因中,该突变导致外显子13跳变并删除含有S551的区域。此外,我们产生了在pka磷酸化位点T469、S551或S674上携带丙氨酸替代的敲入小鼠。通过脑电图/肌电图记录来量化睡眠/清醒状态,并通过在光照-黑暗和持续黑暗条件下的轮跑来评估昼夜节律行为。结果:小鼠大脑表达两种主要的SIK3亚型:150 kDa亚型和由内含子14保留产生的70 kDa亚型。同种异构体选择性敲入分析表明,150 kDa同种异构体在黑暗开始时的正常清醒和昼夜节律调节中是必需的,而70 kDa同种异构体主要对非快速眼动睡眠的EEG δ功率起作用。在这两种异构体中引入瞌睡虫突变会增加非快速眼动睡眠时间和δ能量。丙氨酸替换T469或S551,而不是S674,产生嗜睡样嗜睡表型。结论:SIK3的部分可分离分子特征,包括其异构体和磷酸化位点,有助于睡眠和昼夜节律调节。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Sleep
Sleep Medicine-Neurology (clinical)
CiteScore
8.70
自引率
10.70%
发文量
0
期刊介绍: SLEEP® publishes findings from studies conducted at any level of analysis, including: Genes Molecules Cells Physiology Neural systems and circuits Behavior and cognition Self-report SLEEP® publishes articles that use a wide variety of scientific approaches and address a broad range of topics. These may include, but are not limited to: Basic and neuroscience studies of sleep and circadian mechanisms In vitro and animal models of sleep, circadian rhythms, and human disorders Pre-clinical human investigations, including the measurement and manipulation of sleep and circadian rhythms Studies in clinical or population samples. These may address factors influencing sleep and circadian rhythms (e.g., development and aging, and social and environmental influences) and relationships between sleep, circadian rhythms, health, and disease Clinical trials, epidemiology studies, implementation, and dissemination research.
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