医学
下调和上调
心肌梗塞
心脏纤维化
蛋白质组
蛋白质组学
心肌纤维化
SMAD公司
内科学
纤维化
病理生理学
心力衰竭
内生
信号转导
基因剔除小鼠
内分泌学
心脏病学
并发症
受体
心脏破裂
病理
免疫学
心血管生理学
免疫印迹
心脏功能不全
生物信息学
心脏病
细胞生物学
细胞信号
发病机制
心肌细胞
转化生长因子
心室重构
心肌病
动物研究
作者
Wei Gong,Siyi Li,Zekun Zhang,Yan Yan,Hui Ai,Yu Li,Theodore A. Christopher,B. Mongil Lopez,Xinliang Ma,Shaoping Nie
出处
期刊:Circulation
[Lippincott Williams & Wilkins]
日期:2026-09-29
标识
DOI:10.1161/circulationaha.126.079324
摘要
BACKGROUND: Cardiac rupture is a catastrophic complication of acute myocardial infarction (AMI), with poorly understood molecular mechanisms and no available therapeutic interventions. METHODS: Plasma samples were obtained from patients with AMI and animal models, while left ventricular tissue was collected from AMI mice. An unbiased proteomics analysis identified proteins significantly altered in patients with AMI with cardiac rupture. To explore causal relationships and underlying mechanisms, we used loss- and gain-of-function animal models. RESULTS: Proteomics analysis revealed that 9 proteins were significantly upregulated and 24 proteins were significantly downregulated in patients with AMI with cardiac rupture compared with those without. Among these, SMOC-1 (secreted modular calcium-binding protein 1) was the most significantly upregulated protein. Validation in extended patient cohorts and animal models confirmed these findings. A time-course study revealed that SMOC-1 expression was transiently elevated, peaking 1 day after AMI and returning to baseline within a week. Immunological and cell-specific analyses identified cardiomyocytes as the predominant source of SMOC-1 in response to AMI. Surprisingly, cardiomyocyte-specific SMOC-1 knockout doubled the incidence of post-AMI cardiac rupture and reduced survival, while adeno-associated virus serotype 9-mediated SMOC-1 overexpression significantly decreased cardiac rupture rates. Mechanistic studies revealed that cardiomyocyte-derived SMOC-1 supports fibrosis by activating fibroblasts, enhancing collagen synthesis, and promoting collagen maturation, all of which are critical for the formation of reparative scars. SMOC-1 was shown to bind TGF-βR1 (transforming growth factor β receptor 1) in fibroblasts, recruiting EPRS (glutamyl-prolyl-tRNA synthetase) to form a signaling complex that activates the Smad pathway. Inhibiting EPRS abolished the profibrotic effects of SMOC-1. CONCLUSIONS: Our study provides the first evidence that the transient upregulation and secretion of cardiomyocyte-derived SMOC-1 constitute an intrinsic profibrotic and antirupture response to severe ischemic injury. However, this natural protective mechanism is insufficient to fully prevent cardiac rupture, highlighting the potential of enhancing the SMOC-1 pathway as a promising therapeutic strategy to mitigate cardiac rupture and reduce AMI-associated mortality.
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