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Electrohydrodynamic 3D printing of layer-specifically oriented, multiscale conductive scaffolds for cardiac tissue engineering

机译:Electrohydrodynamic 3 d印刷面向layer-specifically,多尺度导电支架的心脏组织工程

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Mimicking the hierarchical microarchitecture of native myocardium in vitro plays an important role in cardiac tissue engineering. Here we present a novel strategy to produce multiscale conductive scaffolds with layer-specific fiber orientations for cardiac regeneration by combining solution-based and melt-based electrohydrodynamic (EHD) printing techniques. Polycaprolactone (PCL) microfibers were printed by melt-based EHD printing and the fiber orientation was flexibly controlled in a layer-by-layer manner according to user-specific design. The as-printed microfibrous scaffolds can provide the seeded cells necessary contact cues to guide layer-specific cellular alignments. Sub-microscale conductive fibers were simultaneously incorporated inside the well-organized PCL scaffolds by solution-based EHD printing, which significantly improved the conductivity as well as the cellular adhesion and proliferation capacity. The multiscale conductive scaffolds can further direct the multiple-layer alignments of primary cardiomyocytes and facilitate cardiomyocyte-specific gene expressions, which exhibited enhanced synchronous beating behavior compared with pure microfibrous scaffolds. It is envisioned that the proposed hybrid EHD printing technique might provide a promising strategy to fabricate multifunctional micro/nanofibrous scaffolds with biomimetic architectures, electrical conductivity and even biosensing properties for the regeneration of electroactive tissues.
机译:模仿的分级微体系结构本机在体外心肌中扮演一个重要的在心脏组织工程中的作用。现在一项新策略来产生多尺度导电支架与分层的纤维心脏再生的方向结合为基础的解决方案和melt-basedelectrohydrodynamic (EHD)印刷技术。聚已酸内酯(PCL)超细纤维被打印出来由melt-based EHD印刷和纤维定位在一个灵活控制根据特定于用户的分层技术的方式设计。提供种子细胞必要的联系线索指导分层的细胞排列。Sub-microscale导电纤维同时结合在组织良好的PCL支架为基础的解决方案EHD印刷,这大大提高了电导率以及细胞粘附增殖能力。支架可以进一步指导多层主要心肌细胞和比对促进cardiomyocyte-specific基因表达式,它表现出增强的同步相对于纯microfibrous殴打行为支架。可能会提供一个混合EHD印刷技术有前途的战略制造多功能微/ nanofibrous与仿生支架体系结构、导电性甚至若属性的再生电活性组织。

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