Modelling cardiac fibrosis using three-dimensional cardiac microtissues derived from human embryonic stem cells.

干细胞 组织工程 再生医学 诱导多能干细胞 细胞外基质 心功能曲线 移植 心脏发育 生物 心肌细胞 细胞分化 祖细胞 去细胞化 心肌细胞 纤维化 细胞 生物医学工程 定向微分 细胞疗法 胚胎心脏
作者
Mi-Ok Lee,Kwang Bo Jung,Seong-Jae Jo,Sung-Ae Hyun,Kyoung-Sik Moon,Joung-Wook Seo,Sang Heon Kim,Mi-Young Son
出处
期刊:Journal of Biological Engineering [BioMed Central]
卷期号:13 (1): 15-15 被引量:36
标识
DOI:10.1186/s13036-019-0139-6
摘要

Cardiac fibrosis is the most common pathway of many cardiac diseases. To date, there has been no suitable in vitro cardiac fibrosis model that could sufficiently mimic the complex environment of the human heart. Here, a three-dimensional (3D) cardiac sphere platform of contractile cardiac microtissue, composed of human embryonic stem cell (hESC)-derived cardiomyocytes (CMs) and mesenchymal stem cells (MSCs), is presented to better recapitulate the human heart. We hypothesized that MSCs would develop an in vitro fibrotic reaction in response to treatment with transforming growth factor-β1 (TGF-β1), a primary inducer of cardiac fibrosis. The addition of MSCs improved sarcomeric organization, electrophysiological properties, and the expression of cardiac-specific genes, suggesting their physiological relevance in the generation of human cardiac microtissue model in vitro. MSCs could also generate fibroblasts within 3D cardiac microtissues and, subsequently, these fibroblasts were transdifferentiated into myofibroblasts by the exogenous addition of TGF-β1. Cardiac microtissues displayed fibrotic features such as the deposition of collagen, the presence of numerous apoptotic CMs and the dissolution of mitochondrial networks. Furthermore, treatment with pro-fibrotic substances demonstrated that this model could reproduce key molecular and cellular fibrotic events. This highlights the potential of our 3D cardiac microtissues as a valuable tool for manifesting and evaluating the pro-fibrotic effects of various agents, thereby representing an important step forward towards an in vitro system for the prediction of drug-induced cardiac fibrosis and the study of the pathological changes in human cardiac fibrosis.

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