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Dynamic Proteomic and miRNA Analysis of Polysomes from Isolated Mouse Heart After Langendorff Perfusion
Published on: August 29, 2018
Integrative spatiotemporal analysis uncovers an Fto-mediated epigenetic-metabolic axis governing myocardial ischemic
Ruolan Chen1, Xuezhe Wang2, RuoFeng Wang3
1Department of Cardiology, The Affiliated Hospital of Qingdao University, No. 59 Haier Road, Qingdao 266100, Shandong, China; Xiamen Key Laboratory of Cardiovascular Diseases, Xiamen Cardiovascular Hospital of Xiamen University, School of Medicine, Xiamen University, Xiamen, Fujian 361000, China.
Abstract:
Fat mass and obesity-associated protein (Fto), a pivotal RNA N6-methyladenosine (m6A) demethylase, is critically involved in the progression of myocardial infarction (MI). However, the role of Fto in MI remains controversial; divergent observation timeframes and unclarified cell-type specificity hinder consensus on its post-MI expression profile and biological functions. In this study, by integrating transcriptomic and single-nucleus sequencing data, we revealed that post-MI Fto downregulation predominantly targets cardiomyocytes and facilitates their apoptosis in an m6A-dependent manner. In vitro, Fto knockdown promoted m6A levels, impaired mitochondrial ATP synthesis, and drove oxidative stress and apoptosis. Overexpression of Fto rescued OGD-induced mitochondrial dysfunction and apoptosis. Interestingly, the m6A inhibitor cycloleucine reversed Fto deficiency-induced mitochondrial dysfunction, confirming that Fto regulates cardiac metabolism and apoptosis in an m6A-dependent manner. In vivo, AAV9-mediated cardiac-specific overexpression of Fto protected against MI injury by improving cardiac function and attenuating fibrosis and apoptosis. In conclusion, this study constructed the first single-cell spatiotemporal expression map of Fto after myocardial infarction, resolving previous contradictory findings regarding Fto's biological function. We demonstrated that Fto deficiency aggravates ischemic injury via m6A-mediated mitochondrial dysfunction and apoptosis, identifying Fto as a viable clinical target for MI.
