柠檬酸循环
氧化磷酸化
分解代谢
生物化学
代谢途径
化学
新陈代谢
胞浆
脂肪酸
β氧化
线粒体
酶
作者
Julia Ritterhoff,Timothy S. McMillen,Hanna Foundas,Roland Palkovacs,Gernot Poschet,Arianne Caudal,Yaxin Liu,Patrick Most,Matthew Walker,Rong Tian
出处
期刊:American Journal of Physiology-cell Physiology
[American Physical Society]
日期:2024-11-29
标识
DOI:10.1152/ajpcell.00611.2023
摘要
The TCA cycle serves as a central hub to balance catabolic and anabolic needs of the cell, where carbon moieties can either contribute to oxidative metabolism or support biosynthetic reactions. This differential TCA cycle engagement for glucose-derived carbon has been extensively studied in cultured cells, but the fate of fatty acid (FA)-derived carbons is poorly understood. To fill the knowledge gap, we have developed a strategy to culture cells with long-chain FAs without altering cell viability. By tracing 13 C-FA we show that FA oxidation (FAO) is robust in both proliferating and oxidative cells while the metabolic pathway after citrate formation is distinct. In proliferating cells, a significant portion of carbon derived from FAO exits canonical TCA cycle as citrate and converts to unlabeled malate in cytosol. Increasing FA supply or b-oxidation does not change the partition of FA-derived carbon between cytosol and mitochondria. Oxidation of glucose competes with FA derived carbon for the canonical TCA pathway thus promoting FA carbon flowing into the alternative TCA pathway. Moreover, the coupling between FAO and the canonical TCA pathway changes with the state of oxidative energy metabolism.
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