Department of Biomedical Engineering, University of Wisconsin-Madison, Madison, Wisconsin, USA.
Wisconsin Institute for Discovery, University of Wisconsin-Madison, Madison, Wisconsin, USA.
Physiol Rep. 2021 Oct;9(19):e15045. doi: 10.14814/phy2.15045.
In native heart tissue, cardiac fibroblasts provide the structural framework of extracellular matrix (ECM) while also influencing the electrical and mechanical properties of cardiomyocytes. Recent advances in the field of stem cell differentiation have led to the availability of human pluripotent stem cell-derived cardiac fibroblasts (iPSC-CFs) in addition to cardiomyocytes (iPSC-CMs). Here we use a novel 2D in vitro micropatterned platform that provides control over ECM geometry and substrate stiffness. When cultured alone on soft micropatterned substrates, iPSC-CFs are confined to the micropatterned features and remodel the ECM into anisotropic fibers. Similar remodeling and ECM production occurs when cultured with iPSC-CMs in a co-culture model. In addition to modifications in the ECM, our results show that iPSC-CFs influence iPSC-CM function with accelerated Ca transient rise-up time and greater contractile strains in the co-culture conditions compared to when iPSC-CMs are cultured alone. These combined observations highlight the important role cardiac fibroblasts play in vivo and the need for co-culture models like the one presented here to provide more representative in vitro cardiac constructs.
在原生心脏组织中,心肌成纤维细胞为细胞外基质 (ECM) 的结构框架提供支持,同时还影响心肌细胞的电学和机械特性。干细胞分化领域的最新进展使得除了心肌细胞 (iPSC-CMs) 之外,还可以获得人多能干细胞衍生的心肌成纤维细胞 (iPSC-CFs)。在这里,我们使用了一种新颖的 2D 体外微图案化平台,该平台可以控制 ECM 的几何形状和基质硬度。当单独在软微图案化基底上培养时,iPSC-CFs 被限制在微图案化特征内,并将 ECM 重塑为各向异性纤维。当在共培养模型中与 iPSC-CMs 一起培养时,也会发生类似的重塑和 ECM 产生。除了 ECM 的改变之外,我们的结果还表明,与 iPSC-CMs 单独培养相比,iPSC-CFs 在共培养条件下会影响 iPSC-CM 的功能,导致 Ca2+瞬变上升时间加快,收缩应变增加。这些综合观察结果突出了心肌成纤维细胞在体内的重要作用,以及需要像这里提出的共培养模型那样提供更具代表性的体外心脏构建体。