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Effect of fiber diameter on the assembly of functional 3D cardiac patches

机译:纤维直径对功能性3D心脏贴片组装的影响

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摘要

The cardiac ECM has a unique 3D structure responsible for tissue morphogenesis and strong contractions. It is divided into three fiber groups with specific roles and distinct dimensions; nanoscale endomysial fibers, perimysial fibers with a diameter of 1 mu m, and epimysial fibers, which have a diameter of several micrometers. We report here on our work, where distinct 3D fibrous scaffolds, each of them recapitulating the dimension scales of a single fiber population in the heart matrix, were fabricated. We have assessed the mechanical properties of these scaffolds and the contribution of each fiber population to cardiomyocyte morphogenesis, tissue assembly and function. Our results show that the nanoscale fiber scaffolds were more elastic than the microscale scaffolds, however, cardiomyocytes cultured on microscale fiber scaffolds exhibited enhanced spreading and elongation, both on the single cell and on the engineered tissue levels. In addition, lower fibroblast proliferation rates were observed on these microscale topographies. Based on the collected data we have fabricated composite scaffolds containing micro and nanoscale fibers, promoting superior tissue morphogenesis without compromising tissue contraction. Cardiac tissues, engineered within these composite scaffolds exhibited superior function, including lower excitation threshold and stronger contraction forces than tissue engineered within the single-population fiber scaffolds.
机译:心脏ECM具有负责组织形态发生和强烈收缩的独特3D结构。它分为三个具有特定作用和不同尺寸的纤维组。纳米级肌内膜纤维,直径为1微米的肌周纤维和表皮纤维,其直径为几微米。我们在这里报告我们的工作,制造了不同的3D纤维支架,每个支架都概括了心脏基质中单个纤维种群的尺度。我们已经评估了这些支架的机械性能以及每种纤维群对心肌细胞形态发生,组织组装和功能的贡献。我们的结果表明,纳米级纤维支架比微米级支架更具弹性,但是,在微米级纤维支架上培养的心肌细胞在单细胞和工程组织水平上均表现出增强的铺展和伸长。另外,在这些微观形貌上观察到较低的成纤维细胞增殖率。根据收集的数据,我们制造了包含微米和纳米级纤维的复合支架,可促进优异的组织形态发生,而不会损害组织的收缩。在这些复合支架中进行工程改造的心脏组织具有优越的功能,包括比在单种群纤维支架中进行改造的组织更低的激发阈值和更强的收缩力。

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