MFN2型
线粒体融合
线粒体
收缩性
细胞生物学
心功能曲线
基因剔除小鼠
β氧化
化学
生物
内分泌学
内科学
新陈代谢
生物化学
医学
线粒体DNA
受体
心力衰竭
基因
作者
Zhang Ru,Ailin Yang,Zhang Li,Linjie He,Xiaoming Gu,Caiyong Yu,Zhenxing Lu,Chuang Wang,Feng Zhou,Fei Li,Lele Ji,Jinliang Xing,Haitao Guo
摘要
Abstract Aim Under hypobaric hypoxia (HH), the heart triggers various defense mechanisms including metabolic remodeling against lack of oxygen. Mitofusin 2 (MFN2), located at the mitochondrial outer membrane, is closely involved in the regulation of mitochondrial fusion and cell metabolism. To date, however, the role of MFN2 in cardiac response to HH has not been explored. Methods Loss‐ and gain‐of‐function approaches were used to investigate the role of MFN2 in cardiac response to HH. In vitro, the function of MFN2 in the contraction of primary neonatal rat cardiomyocytes under hypoxia was examined. Non‐targeted metabolomics and mitochondrial respiration analyses, as well as functional experiments were performed to explore underlying molecular mechanisms. Results Our data demonstrated that, following 4 weeks of HH, cardiac‐specific MFN2 knockout (MFN2 cKO) mice exhibited significantly better cardiac function than control mice. Moreover, restoring the expression of MFN2 clearly inhibited the cardiac response to HH in MFN2 cKO mice. Importantly, MFN2 knockout significantly improved cardiac metabolic reprogramming during HH, resulting in reduced capacity for fatty acid oxidation (FAO) and oxidative phosphorylation, and increased glycolysis and ATP production. In vitro data showed that down‐regulation of MFN2 promoted cardiomyocyte contractility under hypoxia. Interestingly, increased FAO through palmitate treatment decreased contractility of cardiomyocyte with MFN2 knockdown under hypoxia. Furthermore, treatment with mdivi‐1, an inhibitor of mitochondrial fission, disrupted HH‐induced metabolic reprogramming and subsequently promoted cardiac dysfunction in MFN2‐knockout hearts. Conclusion Our findings provide the first evidence that down‐regulation of MFN2 preserves cardiac function in chronic HH by promoting cardiac metabolic reprogramming.
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