衰老
细胞生物学
脂质代谢
代谢组
脂滴
生物化学
生物
转录组
新陈代谢
磷酸酶
焊剂(冶金)
化学
基因表达
酶
基因
代谢物
有机化学
作者
Khaled Tighanimine,José Américo Nabuco Leva Ferreira de Freitas,Ivan Nemazanyy,Alexia Bankolé,Delphine Benarroch-Popivker,Susanne Brodesser,Gregory J. Dore,Lucas Robinson,Paule Bénit,Sophia Ladraa,Yara Bou Saada,Bertrand Friguet,Philippe Bertolino,David Bernard,Guillaume Canaud,Pierre Rustin,Éric Gilson,Oliver Bischof,Stefano Fumagalli,Mario Pende
标识
DOI:10.1038/s42255-023-00972-y
摘要
Cellular senescence affects many physiological and pathological processes and is characterized by durable cell cycle arrest, an inflammatory secretory phenotype and metabolic reprogramming. Here, by using dynamic transcriptome and metabolome profiling in human fibroblasts with different subtypes of senescence, we show that a homoeostatic switch that results in glycerol-3-phosphate (G3P) and phosphoethanolamine (pEtN) accumulation links lipid metabolism to the senescence gene expression programme. Mechanistically, p53-dependent glycerol kinase activation and post-translational inactivation of phosphate cytidylyltransferase 2, ethanolamine regulate this metabolic switch, which promotes triglyceride accumulation in lipid droplets and induces the senescence gene expression programme. Conversely, G3P phosphatase and ethanolamine-phosphate phospho-lyase-based scavenging of G3P and pEtN acts in a senomorphic way by reducing G3P and pEtN accumulation. Collectively, our study ties G3P and pEtN accumulation to controlling lipid droplet biogenesis and phospholipid flux in senescent cells, providing a potential therapeutic avenue for targeting senescence and related pathophysiology.
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