ER-tethered stress sensor CREBH regulates mitochondrial unfolded protein response to maintain energy homeostasis

未折叠蛋白反应 蛋白质稳态 线粒体 细胞生物学 内质网 生物 平衡 自噬 生物化学 细胞凋亡
作者
Hyunbae Kim,Qi Chen,Donghong Ju,Neeraja Purandare,Xuequn Chen,Lobelia Samavati,Li Li,Ren Zhang,Lawrence I. Grossman,Kezhong Zhang
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [Proceedings of the National Academy of Sciences]
卷期号:121 (49)
标识
DOI:10.1073/pnas.2410486121
摘要

The Mitochondrial Unfolded Protein Response (UPR mt ), a mitochondria-originated stress response to altered mitochondrial proteostasis, plays important roles in various pathophysiological processes. In this study, we revealed that the endoplasmic reticulum (ER)-tethered stress sensor CREBH regulates UPR mt to maintain mitochondrial homeostasis and function in the liver. CREBH is enriched in and required for hepatic Mitochondria-Associated Membrane (MAM) expansion induced by energy demands. Under a fasting challenge or during the circadian cycle, CREBH is activated to promote expression of the genes encoding the key enzymes, chaperones, and regulators of UPR mt in the liver. Activated CREBH, cooperating with peroxisome proliferator-activated receptor α (PPARα), activates expression of Activating Transcription Factor (ATF) 5 and ATF4, two major UPR mt transcriptional regulators, independent of the ER-originated UPR (UPR ER ) pathways. Hepatic CREBH deficiency leads to accumulation of mitochondrial unfolded proteins, decreased mitochondrial membrane potential, and elevated cellular redox state. Dysregulation of mitochondrial function caused by CREBH deficiency coincides with increased hepatic mitochondrial oxidative phosphorylation (OXPHOS) but decreased glycolysis. CREBH knockout mice display defects in fatty acid oxidation and increased reliance on carbohydrate oxidation for energy production. In summary, our studies uncover that hepatic UPR mt is activated through CREBH under physiological challenges, highlighting a molecular link between ER and mitochondria in maintaining mitochondrial proteostasis and energy homeostasis under stress conditions.
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