扩张型心肌病
纤维化
心脏纤维化
心肌病
医学
袋3
成纤维细胞
心肌纤维化
癌症研究
心力衰竭
心脏病学
内科学
生物
自噬
细胞培养
遗传学
细胞凋亡
作者
Bryan Wang,Margaretha Morsink,Seong Won Kim,Lori J. Luo,Xiaokan Zhang,Rajesh K. Soni,Roberta I. Lock,Jenny Rao,Youngbin Kim,Anran Zhang,Meraj Neyazi,Joshua Gorham,Yuri Kim,Kemar Brown,Daniel M. DeLaughter,Qi Zhang,Barbara McDonough,Josephine M Watkins,Katherine Cunningham,Gavin Y. Oudit
摘要
Loss of Bcl2-associated athanogene 3 (BAG3) is associated with dilated cardiomyopathy (DCM). BAG3 regulates sarcomere protein turnover in cardiomyocytes; however, the function of BAG3 in other cardiac cell types is understudied. In this study, we used an isogenic pair of BAG3-knockout and wild-type human induced pluripotent stem cells (hiPSCs) to interrogate the role of BAG3 in hiPSC-derived cardiac fibroblasts (CFs). Analysis of cell type-specific conditional knockout engineered heart tissues revealed an essential contribution of CF BAG3 to contractility and cardiac fibrosis, recapitulating the phenotype of DCM. In BAG3-/- CFs, we observed an increased sensitivity to TGF-β signaling and activation of a fibrogenic response when cultured at physiological stiffness (8 kPa). Mechanistically, we showed that loss of BAG3 increased transforming growth factor-β receptor 2 (TGFBR2) levels by directly binding TGFBR2 and mediating its ubiquitination and proteasomal degradation. To further validate these results, we performed single-nucleus RNA sequencing of cardiac tissue from DCM patients carrying pathogenic BAG3 variants. BAG3 pathogenic variants increased fibrotic gene expression in CFs. Together, these results extend our understanding of the roles of BAG3 in heart disease beyond the cardiomyocyte-centric view and highlight the ability of tissue-engineered hiPSC models to elucidate cell type-specific aspects of cardiac disease.
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