心脏纤维化
瘦素
纤维化
病态的
内科学
小鼠苗条素受体
内分泌学
医学
内分泌系统
受体
成纤维细胞
心肌纤维化
心室重构
生物
脂肪因子
心脏功能不全
心力衰竭
心肌纤维化
糖尿病
组织重塑
信号转导
心肌细胞
作者
Veronica Larcher,Ariane Fischer,Lunfeng Zhang,Omar Almolla,Mattia Chiesa,Francesca Andriani,Chiara Wernet,Simone Serio,Lukas Tombor,Sofia Peruzzo,Debanjan Mukherjee,Rossana Bussani,Serena Zacchigna,Ralf H. Adams,Stefanie Dimmeler,Sylvia Μ. Evans,Paola Cattaneo,Nuno Guimarães‐Camboa
标识
DOI:10.1161/circresaha.125.327701
摘要
BACKGROUND: Cardiac fibrosis, a hallmark of heart failure and an unmet clinical need, arises from pathological activation of preexisting cardiac fibroblasts (CFs), but the contribution of CF heterogeneity to this process remains unclear. METHODS: Murine models were used to lineage trace or deplete a specific sub-population of CFs at baseline and after myocardial infarction. Transcriptional and epigenetic differences between fibroblast subsets were assessed using next-generation sequencing. Conservation in humans was evaluated through single-cell RNA-seq data sets and histological examination. RESULTS: In mice, fibroblasts were the sole cardiac cell type expressing the signaling-capable isoform of the LepR (leptin receptor). LepR+ CFs emerged neonatally, occupied a defined niche in the coronary adventitia, exhibited enhanced hedgehog signaling, and responded to leptin. After myocardial infarction, LepR-Cre+ CFs proliferated more than interstitial CFs, became a predominant fibroblast lineage in the scar, and their genetic ablation reduced fibrosis while improving function. LepR+ CFs were also detected in the human heart, where they were embedded in an adipocyte-rich niche. CONCLUSIONS: These findings identify adventitial fibroblasts as key drivers of pathological remodeling and demonstrate that fibroblasts, rather than cardiomyocytes, are the principal responders to leptin in the heart, redefining how this major endocrine pathway influences cardiac remodeling and disease.
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