蛋氨酸
骨骼肌
糖酵解
衰老
心肌细胞
生物
碳水化合物代谢
肌萎缩
C2C12型
三磷酸腺苷
新陈代谢
内分泌学
生物化学
细胞生物学
肌发生
氨基酸
作者
Nika Rajabian,Izuagie Ikhapoh,Shahryar Shahini,Debanik Choudhury,Ramkumar Thiyagarajan,Aref Shahini,Joseph Kulczyk,Kendall Breed,Shilpashree Saha,Mohamed Alaa Mohamed,Susan B. Udin,Aimee Stablewski,Kenneth L. Seldeen,Bruce R. Troen,Kirkwood E. Personius,Stelios T. Andreadis
标识
DOI:10.1038/s41467-023-36483-3
摘要
Abstract We investigate the age-related metabolic changes that occur in aged and rejuvenated myoblasts using in vitro and in vivo models of aging. Metabolic and signaling experiments reveal that human senescent myoblasts and myoblasts from a mouse model of premature aging suffer from impaired glycolysis, insulin resistance, and generate Adenosine triphosphate by catabolizing methionine via a methionine adenosyl-transferase 2A-dependant mechanism, producing significant levels of ammonium that may further contribute to cellular senescence. Expression of the pluripotency factor NANOG downregulates methionine adenosyltransferase 2 A, decreases ammonium, restores insulin sensitivity, increases glucose uptake, and enhances muscle regeneration post-injury. Similarly, selective inhibition of methionine adenosyltransferase 2 A activates Akt2 signaling, repairs pyruvate kinase, restores glycolysis, and enhances regeneration, which leads to significant enhancement of muscle strength in a mouse model of premature aging. Collectively, our investigation indicates that inhibiting methionine metabolism may restore age-associated impairments with significant gain in muscle function.
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