生物
多细胞生物
利基
细胞生物学
人口
基因沉默
祖细胞
祖细胞
干细胞巢
干细胞
病变
伤口愈合
疾病
再生(生物学)
细胞
心功能曲线
电池类型
成纤维细胞生长因子
功能(生物学)
神经科学
细胞分化
哺乳动物心脏
基因调控网络
基因表达
成纤维细胞
肌成纤维细胞
细胞周期
心脏病
转录组
病理
髓样
基因表达调控
转录因子
作者
Andy Chan,Joachim Greiner,Lisa Marschhäuser,Tomás A. Brennan,Stefanie Perez‐Feliz,Ankit Agrawal,Helene Hemmer,Katrin Sinning,Jennifer Wing Lam Cheung,Zafar Iqbal,Alexander Klesen,Tamara Vico,Julieta Aprea,Ingo Hilgendorf,Thomas Seidel,Martin Vaeth,Eva A. Rog‐Zielinska,Peter Köhl,Franziska Schneider‐Warme,Dominic Grün
标识
DOI:10.1038/s44161-025-00739-6
摘要
Abstract The heart is one of the least regenerative organs in humans, and ischemic heart disease is the leading cause of death worldwide. Understanding the cellular and molecular processes that occur during cardiac wound healing is an essential prerequisite to reducing health burden and improving cardiac function after myocardial tissue damage. Here, by integrating single-cell RNA sequencing with high-resolution spatial transcriptomics, we reconstruct the spatiotemporal dynamics of the fibrotic niches after cardiac injury in adult mice. We reveal a complex multicellular network that regulates cardiac repair, including fibroblast proliferation silencing by Trem2 high macrophages to prevent excessive fibrosis. We further discovered a rare population of progenitor-like cardiomyocytes after lesion, promoted by myeloid and lymphoid niche signals. Culturing non-regenerative mouse cardiomyocytes or human heart tissue with these niche factors reactivated progenitor gene expression and cell cycle activity. In summary, this spatiotemporal atlas provides valuable insights into the heterocellular interactions that control cardiac repair.
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