Partial activation of salt-inducible kinase 3 delays the onset of wakefulness and alleviates hypersomnia due to the lack of protein kinase A-phosphorylation site.

IF 5.6 2区 医学 Q1 Medicine Sleep Pub Date : 2025-02-10 DOI:10.1093/sleep/zsae279
Shinya Nakata, Tomoyuki Fujiyama, Fuyuki Asano, Haruna Komiya, Noriko Hotta-Hirashima, Motoki Juichi, Daiki Komine, Miyo Kakizaki, Aya Ikkyu, Seiya Mizuno, Satoru Takahashi, Chika Miyoshi, Hiromasa Funato, Masashi Yanagisawa
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Abstract

Study objectives: Sleep/wakefulness is regulated by intracellular signaling pathways composed of protein kinases such as salt-inducible kinase 3 (Sik3). Sik3-deficiency in neurons decreases nonrapid eye movement (NREM) sleep time and electroencephalogram (EEG) delta power during NREM sleep, while Sik3Slp mice lacking a protein kinase A (PKA)-phosphorylation site, S551, show hypersomnia phenotype. In this study, we examined how a phosphomimetic mutation of the 221st threonine residue (T221E), which provides a partial (weak) constitutive activity of the kinase, affects sleep/wakefulness and circadian behavior. We also examined the effect of T221E substitution on the hypersomnia phenotype of Sik3Slp mice.

Methods: We examined the sleep/wake behavior of heterozygous and homozygous Sik3T221E mice and Sik3T221E;Slp mice using EEG and electromyogram recording. We also examined the circadian behavior of Sik3T221E mice using a running wheel under the light-dark cycle and constant darkness.

Results: Heterozygous and homozygous Sik3T221E mice showed normal sleep time and sleep homeostatic responses. Homozygous Sik3T221E mice exhibited a delayed onset of wakefulness at the early dark phase and longer circadian periods. Sik3T221E;Slp mice showed decreased NREM sleep time and homeostatic responses compared to Sik3Slp mice.

Conclusions: Our results suggest that the peak onset of wakefulness is sensitive to disturbed kinase activity of SIK3, and the relationship between phosphorylation at T221 and S551 is critical for regulating sleep need.

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由于缺乏蛋白激酶a -磷酸化位点,SIK3的部分激活延迟了觉醒的发生,减轻了嗜睡。
研究目的:睡眠/觉醒是由盐诱导激酶3 (Sik3)等蛋白激酶组成的细胞内信号通路调节的。神经元sik3缺失减少了NREM睡眠时间和NREM睡眠期间的脑电图(EEG) δ功率,而Sik3Slp小鼠缺乏蛋白激酶a (PKA)磷酸化位点S551,表现出嗜睡表型。在这项研究中,我们研究了提供部分(弱)组成活性的第221苏氨酸残基(T221E)的拟磷突变如何影响睡眠/觉醒和昼夜节律行为。我们还研究了T221E替代对Sik3Slp小鼠嗜睡表型的影响。方法:采用脑电图和肌电图(EMG)记录观察杂合子Sik3T221E小鼠和纯合子Sik3T221E;Slp小鼠的睡眠/觉醒行为。我们还研究了Sik3T221E小鼠在光-暗循环和持续黑暗下的昼夜节律行为。结果:杂合子和纯合子Sik3T221E小鼠均表现出正常的睡眠时间和睡眠稳态反应。纯合子Sik3T221E小鼠表现出在早期黑暗阶段延迟觉醒和更长的昼夜周期。Sik3T221E;与Sik3Slp小鼠相比,Slp小鼠的NREM睡眠时间和稳态反应减少。结论:我们的研究结果表明,觉醒的峰值对SIK3激酶活性的干扰很敏感,T221和S551磷酸化之间的关系对调节睡眠需求至关重要。
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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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