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电动力学 3D 打印具有层特异性取向的多尺度导电支架用于心脏组织工程。

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

机构信息

State key laboratory for manufacturing systems engineering, Xi'an Jiaotong University, Xi'an 710049, China.

出版信息

Nanoscale. 2019 Aug 15;11(32):15195-15205. doi: 10.1039/c9nr04989d.

Abstract

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.

摘要

在体外模拟天然心肌的层次微观结构在心脏组织工程中起着重要作用。在这里,我们提出了一种新的策略,通过结合基于溶液和基于熔融的静电纺丝(EHD)打印技术,生产具有层特异性纤维取向的多尺度导电支架,用于心脏再生。通过基于熔融的 EHD 打印来打印聚己内酯(PCL)微纤维,并且可以根据用户特定的设计以逐层的方式灵活控制纤维取向。所打印的微纤维支架可以为接种的细胞提供必要的接触线索,以引导层特异性细胞排列。通过基于溶液的 EHD 打印同时将亚微米级导电纤维合并到组织良好的 PCL 支架内,这显著提高了导电性以及细胞黏附和增殖能力。多尺度导电支架可以进一步指导原代心肌细胞的多层排列,并促进心肌细胞特异性基因表达,与纯微纤维支架相比,其表现出增强的同步搏动行为。可以预见,所提出的混合 EHD 打印技术可能为制造具有仿生结构、导电性甚至生物传感性能的多功能微/纳米纤维支架提供一种有前途的策略,用于电活性组织的再生。

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