Back to Search Start Over

Glut10 restrains neointima formation by promoting SMCs mtDNA demethylation and improving mitochondrial function.

Authors :
Wu, Qi
Hu, Zhipeng
Wang, Zhiwei
Che, Yanjia
Zhang, Min
Zheng, Sihao
Xing, Kai
Zhong, Xiaohan
Chen, Yuanyang
Shi, Feng
Yuan, Shun
Source :
Translational Research: The Journal of Laboratory & Clinical Medicine; Oct2023, Vol. 260, p1-16, 16p
Publication Year :
2023

Abstract

Neointimal hyperplasia is a major clinical complication of coronary artery bypass graft and percutaneous coronary intervention. Smooth muscle cells (SMCs) play a vital roles in neointimal hyperplasia development and undergo complex phenotype switching. Previous studies have linked glucose transporter member 10(Glut10) to the phenotypic transformation of SMCs. In this research, we reported that Glut10 helps maintain the contractile phenotype of SMCs. The Glut10-TET2/3 signaling axis can arrest neointimal hyperplasia progression by improving mitochondrial function via promotion of mtDNA demethylation in SMCs. Glut10 is significantly downregulated in both human and mouse restenotic arteries. Global Glut10 deletion or SMC-specific Glut10 ablation in the carotid artery of mice accelerated neointimal hyperplasia, while Glut10 overexpression in the carotid artery triggered the opposite effects. All of these changes were accompanied by a significant increase in vascular SMCs migration and proliferation. Mechanistically, Glut10 is expressed primarily in the mitochondria after platelet-derived growth factor-BB (PDGF-BB) treatment. Glut10 ablation induced a reduction in ascorbic acid (VitC) concentrations in mitochondria and mitochondrial DNA (mtDNA) hypermethylation by decreasing the activity and expression of the Ten-eleven translocation (TET) protein family. We also observed that Glut10 deficiency aggravated mitochondrial dysfunction and decreased the adenosinetriphosphate (ATP) content and the oxygen consumption rate, which also caused SMCs to switch their phenotype from contractile to synthetic phenotype. Furthermore, mitochondria-specific TET family inhibition partially reversed these effects. These results suggested that Glut10 helps maintain the contractile phenotype of SMCs. The Glut10-TET2/3 signaling axis can arrest neointimal hyperplasia progression by improving mitochondrial function via the promotion of mtDNA demethylation in SMCs. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
19315244
Volume :
260
Database :
Supplemental Index
Journal :
Translational Research: The Journal of Laboratory & Clinical Medicine
Publication Type :
Academic Journal
Accession number :
170412572
Full Text :
https://doi.org/10.1016/j.trsl.2023.05.001