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Developmental stage-dependent effects of cardiac fibroblasts on function of stem cell-derived engineered cardiac tissues

机译:心脏成纤维细胞对干细胞衍生的心脏组织功能的发育阶段依赖性作用

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摘要

We investigated whether the developmental stage of mouse cardiac fibroblasts (CFs) influences the formation and function of engineered cardiac tissues made of mouse embryonic stem cell-derived cardiomyocytes (mESC-CMs). Engineered cardiac tissue patches were fabricated by encapsulating pure mESC-CMs, mESC-CMs + adult CFs, or mESC-CMs + fetal CFs in fibrin-based hydrogel. Tissue patches containing fetal CFs exhibited higher velocity of action potential propagation and contractile force amplitude compared to patches containing adult CFs, while pure mESC-CM patches did not form functional syncytium. The functional improvements in mESC-CM + fetal CF patches were associated with differences in structural remodeling and increased expression of proteins involved in cardiac function. To determine role of paracrine signaling, we cultured pure mESC-CMs within miniature tissue “micro-patches” supplemented with media conditioned by adult or fetal CFs. Fetal CF-conditioned media distinctly enhanced CM spreading and contractile activity, which was shown by pathway inhibitor experiments and Western blot analysis to be mediated via MEK-ERK signaling. In mESC-CM monolayers, CF-conditioned media did not alter CM spreading or MEK-ERK activation. Collectively, our studies show that 3D co-culture of mESC-CMs with embryonic CFs is superior to co-culture with adult CFs for in vitro generation of functional myocardium. Ensuring consistent developmental stages of cardiomyocytes and supporting non-myocytes may be a critical factor for promoting functional maturation of engineered cardiac tissues.
机译:我们调查了小鼠心脏成纤维细胞(CFs)的发育阶段是否影响由小鼠胚胎干细胞衍生的心肌细胞(mESC-CMs)制成的工程心脏组织的形成和功能。通过将纯mESC-CM,mESC-CMs +成人CF或mESC-CMs +胎儿CF封装在基于纤维蛋白的水凝胶中,可以制造出工程化的心脏组织贴片。与含有成人CF的贴片相比,含有胎儿CF的组织贴片表现出更高的动作电位传播速度和收缩力幅度,而纯mESC-CM贴片未形成功能合胞体。 mESC-CM +胎CF片的功能改善与结构重塑的差异和参与心脏功能的蛋白质表达增加有关。为了确定旁分泌信号传导的作用,我们在微型组织“微补丁”中培养了纯mESC-CM,并补充了成年或胎儿CF调节的培养基。胎儿CF条件培养基显着增强了CM扩散和收缩活性,这通过途径抑制剂实验和Western blot分析表明是通过MEK-ERK信号传导介导的。在mESC-CM单层中,CF条件培养基不会改变CM扩散或MEK-ERK激活。总体而言,我们的研究表明,mESC-CM与胚胎CF的3D共培养在体外产生功能性心肌方面优于与成人CF的共培养。确保心肌细胞的持续发育阶段和支持非心肌细胞可能是促进工程心脏组织功能成熟的关键因素。

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