PAQR9 regulates hepatic ketogenesis and fatty acid oxidation during fasting by modulating protein stability of PPARα

Background: The cycle of feeding and fasting is fundamental to life and closely coordinated with changes of metabolic programs. During extended starvation, ketogenesis coupled with fatty acid oxidation in the liver supplies ketone bodies to extrahepatic tissues as the major form of fuel. In this stu...

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Main Authors: Yijun Lin (Author), Lingling Chen (Author), Xue You (Author), Zixuan Li (Author), Chenchen Li (Author), Yan Chen (Author)
Format: Book
Published: Elsevier, 2021-11-01T00:00:00Z.
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001 doaj_5be66ca5e2be4f04b17a195c61b030d6
042 |a dc 
100 1 0 |a Yijun Lin  |e author 
700 1 0 |a Lingling Chen  |e author 
700 1 0 |a Xue You  |e author 
700 1 0 |a Zixuan Li  |e author 
700 1 0 |a Chenchen Li  |e author 
700 1 0 |a Yan Chen  |e author 
245 0 0 |a PAQR9 regulates hepatic ketogenesis and fatty acid oxidation during fasting by modulating protein stability of PPARα 
260 |b Elsevier,   |c 2021-11-01T00:00:00Z. 
500 |a 2212-8778 
500 |a 10.1016/j.molmet.2021.101331 
520 |a Background: The cycle of feeding and fasting is fundamental to life and closely coordinated with changes of metabolic programs. During extended starvation, ketogenesis coupled with fatty acid oxidation in the liver supplies ketone bodies to extrahepatic tissues as the major form of fuel. In this study, we demonstrated that PAQR9, a member of the progesterone and adipoQ receptor family, has a regulatory role on hepatic ketogenesis. Methods: We analyzed the phenotype of Paqr9-deleted mice. We also used biochemical methods to investigate the interaction of PAQR9 with PPARα and HUWE1, an E3 ubiquitin ligase. Results: The expression of Paqr9 was decreased during fasting partly depending on PPARγ. The overall phenotype of the mice was not altered by Paqr9 deletion under normal chow feeding. However, fasting-induced ketogenesis and fatty acid oxidation were attenuated by Paqr9 deletion. Mechanistically, Paqr9 deletion decreased protein stability of PPARα via enhancing its poly-ubiquitination. PAQR9 competed with HUWE1 for interaction with PPARα, thus preventing ubiquitin-mediated degradation of PPARα. Conclusion: Our study reveals that PAQR9 impacts starvation-mediated metabolic changes in the liver via post-translational regulation of PPARα. 
546 |a EN 
690 |a PAQR9 
690 |a PPARα 
690 |a HUWE1 
690 |a Starvation 
690 |a Ketogenesis 
690 |a Fatty acid oxidation 
690 |a Internal medicine 
690 |a RC31-1245 
655 7 |a article  |2 local 
786 0 |n Molecular Metabolism, Vol 53, Iss , Pp 101331- (2021) 
787 0 |n http://www.sciencedirect.com/science/article/pii/S2212877821001782 
787 0 |n https://doaj.org/toc/2212-8778 
856 4 1 |u https://doaj.org/article/5be66ca5e2be4f04b17a195c61b030d6  |z Connect to this object online.