早熟
表型
萎缩
安普克
LMNA公司
生物
基因组不稳定性
早衰
癌症研究
DNA损伤
细胞生物学
磷酸化
遗传学
内分泌学
蛋白激酶A
基因
DNA
作者
Yu Chen,Shiqi Huang,Zhen Cui,Xian-He Sun,Yansong Tang,Hongjie Zhang,Zhixi Chen,Rui Jiang,Weina Zhang,Xue Li,Jiayu Chen,Baohua Liu,Ying Jiang,Ke Wei,Zhiyong Mao
标识
DOI:10.1073/pnas.2309200120
摘要
Patients with Hutchinson–Gilford progeria syndrome (HGPS) present with a number of premature aging phenotypes, including DNA damage accumulation, and many of them die of cardiovascular complications. Although vascular pathologies have been reported, whether HGPS patients exhibit cardiac dysfunction and its underlying mechanism is unclear, rendering limited options for treating HGPS-related cardiomyopathy. In this study, we reported a cardiac atrophy phenotype in the Lmna G609G/G609G mice (hereafter, HGPS mice). Using a GFP-based reporter system, we demonstrated that the efficiency of nonhomologous end joining (NHEJ) declined by 50% in HGPS cardiomyocytes in vivo, due to the attenuated interaction between γH2AX and Progerin, the causative factor of HGPS. As a result, genomic instability in cardiomyocytes led to an increase of CHK2 protein level, promoting the LKB1-AMPKα interaction and AMPKα phosphorylation, which further led to the activation of FOXO3A-mediated transcription of atrophy-related genes. Moreover, inhibiting AMPK enlarged cardiomyocyte sizes both in vitro and in vivo. Most importantly, our proof-of-concept study indicated that isoproterenol treatment significantly reduced AMPKα and FOXO3A phosphorylation in the heart, attenuated the atrophy phenotype, and extended the mean lifespan of HGPS mice by ~21%, implying that targeting cardiac atrophy may be an approach to HGPS treatment.
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