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Postnatal Deletion of Bmal1 in Cardiomyocyte Promotes Pressure Overload Induced Cardiac Remodeling in Mice

压力过载 医学 内科学 心室重构 心力衰竭 心脏病学 心肌肥大
作者
Qing Liang,Hu Xu,Min Liu,Qian Lei,Yan Jin,Guangrui Yang,Lihong Chen
出处
期刊:Journal of the American Heart Association [Ovid Technologies (Wolters Kluwer)]
卷期号:11 (13) 被引量:11
标识
DOI:10.1161/jaha.121.025021
摘要

Background Mice with cardiomyocyte‐specific deletion of Bmal1, a core clock gene, had spontaneous abnormal cardiac metabolism, dilated cardiomyopathy, and shortened lifespan. However, the role of cardiomyocyte Bmal1 in pressure overload induced cardiac remodeling is unknown. Here we aimed to understand the contribution of cardiomyocyte Bmal1 to cardiac remodeling in response to pressure overload induced by transverse aortic constriction or chronic angiotensin Ⅱ (AngⅡ) infusion. Methods and Results By generating a tamoxifen‐inducible cardiomyocyte‐specific Bmal1 knockout mouse line (cKO) and challenging the mice with transverse aortic constriction or AngⅡ, we found that compared to littermate controls, the cKO mice displayed remarkably increased cardiac hypertrophy and augmented fibrosis both after transverse aortic constriction and AngⅡ induction, as assessed by echocardiographic, gravimetric, histologic, and molecular analyses. Mechanistically, RNA‐sequencing analysis of the heart after transverse aortic constriction exposure revealed that the PI3K/AKT signaling pathway was significantly activated in the cKOs. Consistent with the in vivo findings, in vitro study showed that knockdown of Bmal1 in cardiomyocytes significantly promoted phenylephrine‐induced cardiomyocyte hypertrophy and triggered fibroblast‐to‐myofibroblast differentiation, while inhibition of AKT remarkedly reversed the pro‐hypertrophy and pro‐fibrosis effects of Bmal1 knocking down. Conclusions These results suggest that postnatal deletion of Bmal1 in cardiomyocytes may promote pressure overload‐induced cardiac remodeling. Moreover, we identified PI3K/AKT signaling pathway as the potential mechanistic ties between Bmal1 and cardiac remodeling.

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