Department of Medicine and Wellcome - MRC Cambridge Stem Cell Institute, University of Cambridge, Cambridge, UK.
Department of Biochemistry, University of Cambridge, UK.
Biomaterials. 2021 Feb;269:120612. doi: 10.1016/j.biomaterials.2020.120612. Epub 2020 Dec 16.
In this study, we investigated the role of cardiomyocyte (CM) and endothelial cell (EC) specific interactions with collagen in the assembly of an operational myocardium in vitro. Engineered cardiac patches represent valuable tools for myocardial repair following infarction and are generally constituted of a suitable biomaterial populated by CMs and supportive cell types. Among those, ECs are required for tissue vascularization and positively modulate CM function. To direct the function of human embryonic stem cell (hESC)-derived CM and EC seeded on biomaterials, we replicated cell-collagen interactions, which regulate cellular behaviour in the native myocardium, using triple-helical peptides (THPs) that are ligands for collagen-binding proteins. THPs enhanced proliferation and activity of CMs and ECs separately and in co-culture, drove CM maturation and enabled coordinated cellular contraction on collagen films. These results highlight the importance of collagen interactions on cellular response and establish THP-functionalized biomaterials as novel tools to produce engineered cardiac tissues.
在这项研究中,我们研究了心肌细胞(CM)和内皮细胞(EC)与胶原蛋白的特异性相互作用在体外构建功能性心肌中的作用。工程化心脏贴片是梗塞后心肌修复的有价值工具,通常由富含 CM 和支持细胞类型的合适生物材料构成。其中,EC 是组织血管生成所必需的,并可正向调节 CM 的功能。为了指导在生物材料上接种的人胚胎干细胞(hESC)衍生的 CM 和 EC 的功能,我们使用三螺旋肽(THP)复制了调节天然心肌中细胞行为的细胞-胶原蛋白相互作用,THP 是胶原蛋白结合蛋白的配体。THP 分别和共培养时增强了 CM 和 EC 的增殖和活性,促进了 CM 的成熟,并使细胞在胶原蛋白膜上协调收缩。这些结果强调了胶原蛋白相互作用对细胞反应的重要性,并确立了 THP 功能化生物材料作为生产工程化心脏组织的新型工具。