生物
细胞生物学
线粒体
氧化磷酸化
糖酵解
细胞器
效应器
细胞
线粒体融合
线粒体分裂
厌氧糖酵解
合成代谢
线粒体DNA
新陈代谢
生物化学
基因
作者
Michael D. Buck,David O’Sullivan,Ramon I. Klein Geltink,Jonathan D. Curtis,Chih‐Hao Chang,David E. Sanin,Jing Qiu,Oliver Kretz,Daniel Braas,Gerritje J. W. van der Windt,Qiongyu Chen,Stanley Ching‐Cheng Huang,Christina M. O’Neill,Brian T. Edelson,Edward J. Pearce,Hiromi Sesaki,Tobias B. Huber,Angelika S. Rambold,Erika L. Pearce
出处
期刊:Cell
[Cell Press]
日期:2016-06-01
卷期号:166 (1): 63-76
被引量:1399
标识
DOI:10.1016/j.cell.2016.05.035
摘要
Activated effector T (TE) cells augment anabolic pathways of metabolism, such as aerobic glycolysis, while memory T (TM) cells engage catabolic pathways, like fatty acid oxidation (FAO). However, signals that drive these differences remain unclear. Mitochondria are metabolic organelles that actively transform their ultrastructure. Therefore, we questioned whether mitochondrial dynamics controls T cell metabolism. We show that TE cells have punctate mitochondria, while TM cells maintain fused networks. The fusion protein Opa1 is required for TM, but not TE cells after infection, and enforcing fusion in TE cells imposes TM cell characteristics and enhances antitumor function. Our data suggest that, by altering cristae morphology, fusion in TM cells configures electron transport chain (ETC) complex associations favoring oxidative phosphorylation (OXPHOS) and FAO, while fission in TE cells leads to cristae expansion, reducing ETC efficiency and promoting aerobic glycolysis. Thus, mitochondrial remodeling is a signaling mechanism that instructs T cell metabolic programming.
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