柠檬酸循环
细胞生物学
生物
线粒体
效应器
线粒体内膜
生物化学
新陈代谢
作者
Francesc Baixauli,Klara Piletič,Daniel J. Puleston,Matteo Villa,Cameron S. Field,Lea J. Flachsmann,Andrea Quintana,Nisha Rana,Joy Edwards-Hicks,Mai Matsushita,Michal A. Stanczak,Katarzyna M. Grzes,Agnieszka M. Kabat,Mario Fabri,George Caputa,Beth Kelly,Mauro Corrado,Yaarub Musa,Katarzyna Duda,Gerhard Mittler
出处
期刊:Nature
[Nature Portfolio]
日期:2022-09-28
卷期号:610 (7932): 555-561
被引量:54
标识
DOI:10.1038/s41586-022-05264-1
摘要
CD4+ T cell differentiation requires metabolic reprogramming to fulfil the bioenergetic demands of proliferation and effector function, and enforce specific transcriptional programmes1–3. Mitochondrial membrane dynamics sustains mitochondrial processes4, including respiration and tricarboxylic acid (TCA) cycle metabolism5, but whether mitochondrial membrane remodelling orchestrates CD4+ T cell differentiation remains unclear. Here we show that unlike other CD4+ T cell subsets, T helper 17 (TH17) cells have fused mitochondria with tight cristae. T cell-specific deletion of optic atrophy 1 (OPA1), which regulates inner mitochondrial membrane fusion and cristae morphology6, revealed that TH17 cells require OPA1 for its control of the TCA cycle, rather than respiration. OPA1 deletion amplifies glutamine oxidation, leading to impaired NADH/NAD+ balance and accumulation of TCA cycle metabolites and 2-hydroxyglutarate—a metabolite that influences the epigenetic landscape5,7. Our multi-omics approach revealed that the serine/threonine kinase liver-associated kinase B1 (LKB1) couples mitochondrial function to cytokine expression in TH17 cells by regulating TCA cycle metabolism and transcriptional remodelling. Mitochondrial membrane disruption activates LKB1, which restrains IL-17 expression. LKB1 deletion restores IL-17 expression in TH17 cells with disrupted mitochondrial membranes, rectifying aberrant TCA cycle glutamine flux, balancing NADH/NAD+ and preventing 2-hydroxyglutarate production from the promiscuous activity of the serine biosynthesis enzyme phosphoglycerate dehydrogenase (PHGDH). These findings identify OPA1 as a major determinant of TH17 cell function, and uncover LKB1 as a sensor linking mitochondrial cues to effector programmes in TH17 cells. OPA1 regulates the formation of the distinct mitochondrial morphology observed in T helper 17 cells, which influences cytokine expression via LKB1.
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