炎症
促炎细胞因子
免疫系统
心肌炎
微泡
背景(考古学)
医学
细胞因子
免疫学
生物
内科学
小RNA
古生物学
生物化学
基因
作者
Rick Xing Ze Lu,Naimeh Rafatian,Yimu Zhao,Karl T. Wagner,Erika L. Beroncal,Bo Li,Carol Lee,Jingan Chen,Eryn Churcher,Daniel Vosoughi,Chuan Liu,Ying Wang,Andrew Baker,Uriel Trahtemberg,Bowen Li,Agostino Pierro,Ana C. Andreazza,Claúdia C. dos Santos,Milica Radisic
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2024-03-27
卷期号:10 (13): eadk0164-eadk0164
被引量:41
标识
DOI:10.1126/sciadv.adk0164
摘要
Despite tremendous progress in the development of mature heart-on-a-chip models, human cell-based models of myocardial inflammation are lacking. Here, we bioengineered a vascularized heart-on-a-chip with circulating immune cells to model severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2)-induced acute myocarditis. We observed hallmarks of coronavirus disease (COVID-19)-induced myocardial inflammation, as the presence of immune cells augmented the secretion of proinflammatory cytokines, triggered progressive impairment of contractile function, and altered intracellular calcium transients. An elevation of circulating cell-free mitochondrial DNA (ccf-mtDNA) was measured first in the heart-on-a-chip and then validated in COVID-19 patients with low left ventricular ejection fraction, demonstrating that mitochondrial damage is an important pathophysiological hallmark of inflammation-induced cardiac dysfunction. Leveraging this platform in the context of SARS-CoV-2-induced myocardial inflammation, we established that administration of endothelial cell-derived exosomes effectively rescued the contractile deficit, normalized calcium handling, elevated the contraction force, and reduced the ccf-mtDNA and cytokine release via Toll-like receptor-nuclear factor κB signaling axis.
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