Operational Research Unit, Fondazione di Ricerca e Cura Giovanni Paolo II, Largo Gemelli, Campobasso, 86100, Italy.
Institute of Cell Biology and Neurobiology (IBCN), National Research Council of Italy (CNR), Monterotondo Scalo, Rome, 00015, Italy.
Sci Rep. 2018 Sep 10;8(1):13532. doi: 10.1038/s41598-018-31848-x.
The myocardium behaves like a sophisticated orchestra that expresses its true potential only if each member performs the correct task harmonically. Recapitulating its complexity within engineered 3D functional constructs with tailored biological and mechanical properties, is one of the current scientific priorities in the field of regenerative medicine and tissue engineering. In this study, driven by the necessity of fabricating advanced model of cardiac tissue, we present an innovative approach consisting of heterogeneous, multi-cellular constructs composed of Human Umbilical Vein Endothelial Cells (HUVECs) and induced pluripotent cell-derived cardiomyocytes (iPSC-CMs). Cells were encapsulated within hydrogel strands containing alginate and PEG-Fibrinogen (PF) and extruded through a custom microfluidic printing head (MPH) that allows to precisely tailor their 3D spatial deposition, guaranteeing a high printing fidelity and resolution. We obtained a 3D cardiac tissue compose of iPSC-derived CMs with a high orientation index imposed by the different defined geometries and blood vessel-like shapes generated by HUVECs which, as demonstrated by in vivo grafting, better support the integration of the engineered cardiac tissue with host's vasculature.
心肌的表现就像一个复杂的管弦乐队,只有每个成员协调地完成正确的任务,它才能发挥出真正的潜力。在再生医学和组织工程领域,目前的科学重点之一是在具有定制生物和机械特性的工程 3D 功能结构中再现其复杂性。在这项研究中,我们受制造先进的心脏组织模型的需求驱动,提出了一种创新的方法,该方法由包含人脐静脉内皮细胞 (HUVEC) 和诱导多能干细胞衍生的心肌细胞 (iPSC-CMs) 的异质多细胞构建体组成。细胞被包裹在含有藻酸盐和 PEG-纤维蛋白原 (PF) 的水凝胶丝中,并通过定制的微流控打印头 (MPH) 挤出,该打印头可以精确地调整它们的 3D 空间沉积,保证高打印保真度和分辨率。我们获得了由 iPSC 衍生的 CMs 组成的 3D 心脏组织,其取向指数很高,这是由不同的定义几何形状和 HUVEC 产生的类似血管的形状所强加的,体内移植表明,这些形状可以更好地支持工程化心脏组织与宿主血管的整合。