乙酰辅酶合成酶 3 (ACSF3) 的昼夜调节是线粒体赖氨酸酰化和肝脏代谢的基础

Enora LeQuestel, Charlene Besnard, Florian Atger, Yolene Foucher, Alwena Tollec, Victoria Pakulska, Arsenio Rodrigues Oliveira, Chloe Clotteau, Mathilde Gourdel, Ivan Nemazanyy, Mikael Croyal, Yohann Coute, David Jacobi, Bertrand Cariou, Daniel Mauvoisin
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引用次数: 0

摘要

昼夜节律是维持健康的基本要素,也与各种疾病有关。在肝脏中,每日节律通过摄食节律和分子昼夜节律钟之间的相互作用而得到协调,从而确保新陈代谢的平衡。进食节律的破坏会导致昼夜节律失调,从而引发代谢紊乱,但其潜在的分子机制仍不清楚。最近的证据表明,翻译后修饰在调节昼夜节律功能输出方面发挥着关键作用。在这一框架中,线粒体是一个汇聚点,整合了新陈代谢节律、进食节律和昼夜节律。在本研究中,我们采用多组学方法研究了酰基-CoA 合成酶 3(ACSF3)在驱动赖氨酸-丙二酰化和调节肝脏日常代谢中的作用。我们发现,ACSF3 的表达及其对赖氨酸-丙二酰化的介导影响是有节律的,并在很大程度上受进食节律的支配。虽然肝脏 ACSF3 基因敲除并不能改变饮食诱导的代谢异常,但我们的研究结果表明,ACSF3 在肝糖原储存、新脂肪生成和甘油三酯合成的昼夜调节中发挥作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Diurnal regulation of Acyl-CoA synthetase 3 (ACSF3) underlies daily mitochondrial lysine-malonylation and hepatic metabolism
Circadian rhythms are fundamental to maintaining health and are implicated in various diseases. In the liver, daily rhythms are coordinated via the interplay between feeding rhythms and the molecular circadian clock, ensuring metabolic homeostasis. Disruption of feeding rhythms can lead to circadian misalignment, contributing to metabolic disorders, yet the underlying molecular mechanisms remain unclear. Recent evidence suggests that post-translational modifications play a key role in regulating circadian functional output. In this framework, mitochondria serve as a convergence point, integrating rhythms in metabolism, feeding rhythms and the circadian clock. In the present study, we used a multi-omics approach to investigate the role of the Acyl-CoA synthetase 3 (ACSF3) in driving lysine-malonylation and in regulating daily hepatic metabolism. We found that ACSF3 expression and its mediated impact on lysine-malonylation are rhythmic and largely governed by feeding rhythms. While hepatic ACSF3 knockdown did not alter diet-induced metabolic abnormalities, our results demonstrate that ACSF3 plays a role in the diurnal regulation of liver glycogen storage, de novo lipogenesis, and triglyceride synthesis.
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