生物相容性
纳米纤维
材料科学
超细纤维
生物医学工程
血管移植
细菌纤维素
制作
复合数
聚氨酯
细胞粘附
弹性(物理)
复合材料
纳米技术
粘附
纺纱
弹性纤维
血管
生物材料
川地31
韧性
血管组织
纤维
内皮干细胞
纤维素
组织工程
生物相容性材料
弹性体
内皮
弹性模量
作者
Jie Wang,Guoli Kang,Zhiwu Huang,S. Li,Xiaowei Xun,Junping Tu,Jifu Mao,Y. Z. Wan,Quanchao Zhang
标识
DOI:10.1021/acsapm.5c04426
摘要
No breakthrough has yet been achieved in developing small-diameter vascular grafts for clinical application. Mimicking both the native intimal architecture and the physiological elasticity of natural blood vessels is widely regarded as a highly promising strategy. Polyurethane (PU) is a mechanically suitable candidate for vascular grafts owing to its molecular tunability and intrinsic elasticity. However, conventional PU materials often suffer from inadequate biocompatibility and insufficient elastic stability. To address these challenges, we have developed a PU elastomer that demonstrates exceptional resistance to degradation and alkali solutions. Subsequently, a micronano fibrous graft integrating bacterial cellulose nanofibers (BC) with PU microfibrous (PUF) film was fabricated using a combined weaving and in situ biosynthesis approach. The resulting micronano composite fibrous film exhibits excellent elastic stability in simulated physiological fluids. Moreover, incorporation of BC significantly enhances the hydrophilicity, hemocompatibility, and cytocompatibility of the PUF. Importantly, this unique micronano architecture upregulates the expression of CD31 and VEGF, thereby promoting endothelial cell adhesion and proliferation. The bridging structure of BC nanofibers over the rough PU microfibers further facilitates cell migration. These findings suggest that the BC/PUF composite holds significant promise as an artificial graft material capable of supporting the rapid formation of an endothelial cell monolayer.
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