Transient APC/C inactivation by mTOR boosts glycolysis during cell cycle entry

糖酵解 细胞生物学 CDC20型 生物 柠檬酸循环 细胞周期 氧化磷酸化 生物化学 化学 细胞 新陈代谢 后期
作者
Debasish Paul,Derek L. Bolhuis,Hualong Yan,Sudipto Das,Xia Xu,Christina C. Abbate,Lisa M. Jenkins,Michael J. Emanuele,Þorkell Andrésson,Jing Huang,John G. Albeck,Nicholas G. Brown,Steven D. Cappell
出处
期刊:Nature [Nature Portfolio]
卷期号:646 (8083): 198-207 被引量:8
标识
DOI:10.1038/s41586-025-09328-w
摘要

Abstract Mammalian cells entering the cell cycle favour glycolysis to rapidly generate ATP and produce the biosynthetic intermediates that are required for rapid biomass accumulation 1 . Simultaneously, the ubiquitin-ligase anaphase-promoting complex/cyclosome and its coactivator CDH1 (APC/C CDH1 ) remains active, allowing origin licensing and blocking premature DNA replication. Paradoxically, glycolysis is reduced by APC/C CDH1 through the degradation of key glycolytic enzymes 2 , raising the question of how cells coordinate these mutually exclusive events to ensure proper cell division. Here we show that cells resolve this paradox by transiently inactivating the APC/C during cell cycle entry, which allows a transient metabolic shift favouring glycolysis. After mitogen stimulation, rapid mTOR-mediated phosphorylation of the APC/C adapter protein CDH1 at the amino terminus causes it to partially dissociate from the APC/C. This partial inactivation of the APC/C leads to the accumulation of PFKFB3, a rate-limiting enzyme for glycolysis, promoting a metabolic shift towards glycolysis. Delayed accumulation of phosphatase activity later removes CDH1 phosphorylation, restoring full APC/C activity, and shifting cells back to favouring oxidative phosphorylation. Thus, cells coordinate the simultaneous demands of cell cycle progression and metabolism through an incoherent feedforward loop, which transiently inhibits APC/C activity to generate a pulse of glycolysis that is required for mammalian cell cycle entry.
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