乌头酸酶
柠檬酸循环
三羧酸
柠檬酸合酶
生物
分解代谢
生物化学
细胞内
新陈代谢
线粒体
功能(生物学)
氧化磷酸化
代谢途径
酶
柠檬酸
胞浆
细胞生物学
乙酰辅酶A
细胞周期
糖酵解
细胞
氨基酸
柠檬酸钠
作者
Abigail Xie,Julia S. Brunner,Sangita Chakraborty,Angela M. Montero,Anna E. Bridgeman,Katrina I. Paras,Ruobing Cui,Maider Fagoaga-Eugui,Monika Komza,Paige K. Arnold,Benjamin T. Jackson,Santiago Noriega Madrazo,Mohamed I. Atmane,Sebastian E. Carrasco,Lydia W.S. Finley
出处
期刊:Cell
[Cell Press]
日期:2026-02-01
标识
DOI:10.1016/j.cell.2026.01.028
摘要
The tricarboxylic acid (TCA) cycle couples nutrient oxidation with the generation of reducing equivalents that power oxidative phosphorylation. Nevertheless, the requirement for components of the TCA cycle is context-specific, raising the question of which TCA cycle outputs support cell fitness. Here, we demonstrate that citrate clearance is an essential function of the TCA cycle. As citrate production increases, so do TCA cycle activity and dependence upon aconitase 2 (ACO2), the enzyme that initiates citrate catabolism in the TCA cycle. Disrupting citrate catabolism activates the integrated stress response and impairs cell fitness, and these effects are reversed by preventing citrate production or promoting mitochondrial citrate efflux. In vivo, ACO2 deficiency induces citrate accumulation and triggers tubular degeneration in the kidney, a tissue that physiologically takes up circulating citrate. Thus, intracellular citrate accumulation can be a metabolic liability, and citrate clearance is a major function of ACO2 in the TCA cycle.
科研通智能强力驱动
Strongly Powered by AbleSci AI