生物
细胞生物学
穿梭机载体
线粒体
胞浆
航天飞机
生物化学
电子传输链
过程(计算)
焊剂(冶金)
生物物理学
基质(水族馆)
生物能学
新陈代谢
NAD+激酶
糖酵解
差速器(机械装置)
细胞
三磷酸腺苷
再生(生物学)
酶
ATP合酶
作者
Julia S. Brunner,Anna E Bridgeman,Benjamin T. Jackson,Sangita Chakraborty,Maider Fagoaga-Eugui,Katrina I. Paras,Abigail Xie,Paige K. Arnold,Julia Losner,Lydia W.S. Finley
出处
期刊:Molecular Cell
[Elsevier BV]
日期:2026-02-26
卷期号:86 (5): 954-967.e7
被引量:1
标识
DOI:10.1016/j.molcel.2026.02.004
摘要
The malate-aspartate shuttle is a major electron shuttle that transfers reducing equivalents from the cytosol to the mitochondria, where they can be safely deposited onto the electron transport chain. Nevertheless, many proliferating cells discard reducing equivalents in the form of lactate, raising the question of what factors limit electron shuttle use. Here, we show that aspartate availability determines engagement of the malate-aspartate shuttle. In proliferating cells, increasing aspartate availability enhances use of the malate-aspartate shuttle and increases metabolism of glucose-derived pyruvate in mitochondria, a process that requires regeneration of oxidized electron carriers in the cytosol. During differentiation, elevated flux through the malate-aspartate shuttle cells enables cells to fuel mitochondrial networks from glucose-derived carbon. Engineering aspartate demand reverses this metabolic signature of differentiated cells. Together, these results demonstrate that cell-state-specific demand for aspartate is sufficient to determine use of the malate-aspartate shuttle and drives changing mitochondrial substrate preferences during differentiation.
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