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Mitochondria-derived PEP licenses glycerolipid synthesis via SLC25A35

Yamamuro, T.; Katoh, D.; Silva, G. M.; Nishida, H.; Oikawa, S.; Higuchi, Y.; Wang, D.; Fujimoto, M.; Yoshida, N.; Li, M.; Shin, J.; Zhao, Z.; Yook, J.-S.; Sun, L.; Kajimura, S.

2025-12-16 cell biology
10.64898/2025.12.12.693842 bioRxiv
Show abstract

Mitochondria provide a variety of metabolites, in addition to ATP, to meet cell-specific needs. One such metabolite is phosphoenolpyruvate (PEP), which contains a higher-energy phosphate bond than ATP and has diverse biological functions. However, how mitochondria-generated PEP is delivered to the cytosol and fulfills cell-specific requirements remains elusive. Here, we show that SLC25A35 regulates mitochondrial PEP efflux and glyceroneogenesis in lipogenic cells that utilize the pyruvate-to-PEP bypass. Reconstitution and structural studies demonstrated PEP transport by SLC25A35 in a pH gradient-dependent manner. Loss of SLC25A35 in adipocytes impaired the conversion of mitochondrial PEP into glycerol-3-phosphate, thereby reducing glycerolipid synthesis. Significantly, hepatic inhibition of SLC25A35 in obese mice alleviated steatosis and improved systemic glucose homeostasis. Together, these results suggest that mitochondria facilitate glycerolipid synthesis by providing PEP via SLC25A35, offering lipogenic mitochondria as a target to limit glycerolipid synthesis, a pivotal step in the pathogenesis of hepatic steatosis and Type 2 diabetes.

Published in Cell (predicted rank #4) · training set

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