具有排列微纤维的多尺度分层支架促进细胞排列。

Chengjin Wang, Yuanyuan Xu, Jingjing Xia, Zhenzhen Zhou, Yongcong Fang, Lei Zhang, Wei Sun
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引用次数: 11

摘要

细胞排列在细胞骨架重组、细胞外基质重塑和血管组织、心肌和肌腱等组织的生物力学特性调节中起着重要作用。基于天然组织中细胞的自然取向特征,各种仿生支架已经被报道,并引入排列良好的超细纤维来诱导细胞排列。然而,如何制造出具有合适力学性能、仿生微环境和促进细胞排列能力的支架仍然是一个挑战。在本文中,我们提出了一种集成的3D打印系统,用于制造由介观、微观和纳米纤维长丝组成的多尺度分层支架,其中通过熔融沉积建模、熔融电纺丝书写和溶液电纺丝制备的介观、微观和纳米纤维分别提供结构支撑、促进细胞排列和创造仿生微环境以促进细胞功能。通过对接触角的测量,对支架表面进行了等离子体修饰,改善了支架的表面润湿性。所得的微生物学结果验证了多尺度分层支架在熔融电纺丝写入制备的排列微纤维引导下增强细胞粘附和增殖的能力,并促进细胞排列。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multi-scale hierarchical scaffolds with aligned micro-fibers for promoting cell alignment.

Cell alignment plays an essential role in cytoskeleton reorganization, extracellular matrix remodeling, and biomechanical properties regulation of tissues such as vascular tissues, cardiac muscles, and tendons. Based on the natural-oriented features of cells in native tissues, various biomimetic scaffolds have been reported with the introduction of well-arranged ultrafine fibers to induce cell alignment. However, it is still a challenge to fabricate scaffolds with suitable mechanical properties, biomimetic microenvironment, and ability to promote cell alignment. In this paper, we propose an integrated 3D printing system to fabricate multi-scale hierarchical scaffolds combined with meso-, micro-, and nano-fibrous filaments, in which the meso-, micro-, and nano-fibers fabricated via fused deposition modeling, melt electrospining writing, and solution electrospining can provide structural support, promote cell alignment, and create a biomimetic microenvironment to facilitate cell function, respectively. The plasma surface modification was performed improve the surface wettability of the scaffolds by measuring the contact angle. The obtainedin vitrobiological results validate the ability of multi-scale hierarchical scaffolds to enhance cell adhesion and proliferation, and promote cell alignment with the guidance of the aligned microfibers produced via melt electrospining writing in hierarchical scaffolds.

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