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Identification of Prominin‐2 as a new player of cardiomyocyte senescence in the aging heart

衰老 端粒 生物 下调和上调 转录组 DNA损伤 细胞生物学 肌肉肥大 心肌细胞 内科学 内分泌学 癌症研究 基因表达 基因 遗传学 医学 DNA
作者
Damien Maggiorani,Yohan Santin,Karina Formoso,Elise Drapé,Hélène Martini,S. Brun,G. Cousin,Olivier Lairez,Frank Lezoualc’h,Angelo Parini,Victorine Douin‐Echinard,Jeanne Mialet‐Perez
出处
期刊:Aging Cell [Wiley]
标识
DOI:10.1111/acel.14204
摘要

Abstract The aging heart is characterized by a number of structural changes leading to ventricular stiffness, impaired resistance to stress and increased risk of developing heart failure (HF). Genetic or pharmacological removal of senescent cells has recently demonstrated the possibility to relieve some cardiac aging features such as hypertrophy and fibrosis. However, the contribution of the different cell types in cardiac aging remains fragmentary due to a lack of cell‐specific markers. Cardiomyocytes undergo post‐mitotic senescence in response to telomere damage, characterized by persistent DNA damage response and expression of the classical senescence markers p21 and p16, which are shared by many other cell types. In the present study, we used transcriptomic approaches to discover new markers specific for cardiomyocyte senescence. We identified Prominin2 (Prom2), encoding a transmembrane glycoprotein, as the most upregulated gene in cardiomyocytes of aged mice compared to young mice. We showed that Prom2 was upregulated by a p53‐dependent pathway in stress‐induced premature senescence. Prom2 expression correlated with cardiomyocyte hypertrophy in the hearts of aged mice and was increased in atrial samples of patients with HF with preserved ejection fraction. Consistently, Prom2 overexpression was sufficient to drive senescence, hypertrophy and resistance to cytotoxic stress while Prom2 shRNA silencing inhibited these features in doxorubicin‐treated cardiac cells. In conclusion, we identified Prom2 as a new player of cardiac aging, linking cardiomyocyte hypertrophy to senescence. These results could provide a better understanding and targeting of cell‐type specific senescence in age‐associated cardiac diseases.

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