Fiber-reinforced gelatin-based hydrogel biocomposite tubular scaffolds with programmable mechanical properties.

Xiong Yu, Zhongfei Zou, Yi Li, Jiachun Li, Yuewei Chen, Wenhai Shi, Xixia Liu, Rui Guo, Xianhui Cai
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Abstract

Tissue-engineered tubular scaffolds (TETS) provide an effective repair solution for human tubular tissue loss and damage caused by congenital defects, disease, or mechanical trauma. However, there are still major challenges to developing TETS with excellent mechanical properties and biocompatibility for human tubular tissue repair. Gelatin-based hydrogels are suitable candidates for tissue-engineered scaffolds because they are hydrolyzed collagen products and have excellent biocompatibility and degradability. However, the mechanical properties of gelatin-based hydrogels are relatively poor and do not align well with the mechanical properties of human tubular tissues. Inspired by the extracellular matrix architecture of human tubular tissues, this study utilizes high-precision 3D printing to fabricate ultrafine fiber network tubular scaffolds (UFNTS) that mimic the arrangement of collagen fibers, which are then embedded in a cell-compatible gelatin-based hydrogel, resulting in the preparation of a fiber/hydrogel biocomposite tubular scaffold (BCTS) with tunable mechanical properties and a J-shaped stress-strain response. Finite element analysis was employed to predict the mechanical behavior of the UFNTS and BCTS. Experimental results indicate that by modifying the structural parameters of the UFNTS, the mechanical properties of the BCTS can be effectively tuned, achieving a programmable range of tensile modulus (0.2-4.35 MPa) and burst pressure (1580-7850 mmHg), which broadly covers the mechanical properties of most human tubular tissues. The design and fabrication of BCTS offer a new approach for the development of TETS while also providing a personalized strategy for such scaffolds in tissue engineering.

具有可编程力学性能的纤维增强明胶基水凝胶生物复合材料管状支架。
组织工程管状支架(TETS)为先天性缺陷、疾病或机械创伤引起的人体管状组织丢失和损伤提供了一种有效的修复方案。然而,开发具有良好力学性能和生物相容性的TETS用于人体管状组织修复仍存在重大挑战。明胶基水凝胶是胶原蛋白水解产物,具有良好的生物相容性和可降解性,是组织工程支架的理想选择。然而,明胶基水凝胶的力学性能相对较差,与人体管状组织的力学性能不一致。受人类管状组织的细胞外基质结构的启发,本研究利用高精度3D打印技术制造了模拟胶原纤维排列的超细纤维网络管状支架(unts),然后将其嵌入细胞相容的明胶基水凝胶中,从而制备出具有可调机械性能和j型应力应变响应的纤维/水凝胶生物复合管状支架(BCTS)。采用有限元分析方法对unts和BCTS的力学行为进行预测。实验结果表明,通过改变管状组织的结构参数,可以有效地调节管状组织的力学性能,实现拉伸模量(0.2 ~ 4.35 MPa)和破裂压力(1580 ~ 7850 mmHg)的可编程范围,基本涵盖了大多数人体管状组织的力学性能。BCTS的设计和制造为TETS的发展提供了新的途径,同时也为组织工程中此类支架的个性化设计提供了策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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