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具有抗血栓形成性和增强内皮细胞亲和力的硫酸软骨素/聚己内酯/明胶电纺纳米纤维作为血管组织工程的潜在支架

Chondroitin Sulfate/Polycaprolactone/Gelatin Electrospun Nanofibers with Antithrombogenicity and Enhanced Endothelial Cell Affinity as a Potential Scaffold for Blood Vessel Tissue Engineering.

作者信息

Kong Xiangqian, He Yuxiang, Zhou Hua, Gao Peixian, Xu Lei, Han Zonglin, Yang Le, Wang Mo

机构信息

Vascular Surgury, Shandong Provincial Hospital Affiliated to Shandong First Medical University, Jinan, 250021, China.

出版信息

Nanoscale Res Lett. 2021 Apr 17;16(1):62. doi: 10.1186/s11671-021-03518-x.

Abstract

Electrospun polymer nanofibers have gained much attention in blood vessel tissue engineering. However, conventional nanofiber materials with the deficiencies of slow endothelialization and thrombosis are not effective in promoting blood vessel tissue repair and regeneration. Herein, biomimetic gelatin (Gt)/polycaprolactone (PCL) composite nanofibers incorporating a different amount of chondroitin sulfate (CS) were developed via electrospinning technology to investigate their effects on antithrombogenicity and endothelial cell affinity. Varying CS concentrations in PG nanofibers affects fiber morphology and diameter. The CS/Gt/PCL nanofibers have suitable porosity (~ 80%) and PBS solution absorption (up to 650%). The introduction of CS in Gt/PCL nanofibers greatly enhances their anticoagulant properties, prolongs their coagulation time, and facilitates cell responses. Particularly, 10%CS/Gt/PCL nanofibers display favorable cell attachment, elongation, and proliferation. Thus, the Gt/PCL nanofibers containing a certain amount of CS could be excellent candidates as a promising tissue-engineering scaffold in blood vessel repair and regeneration.

摘要

静电纺丝聚合物纳米纤维在血管组织工程中备受关注。然而,传统的纳米纤维材料存在内皮化缓慢和血栓形成等缺陷,在促进血管组织修复和再生方面效果不佳。在此,通过静电纺丝技术制备了含有不同量硫酸软骨素(CS)的仿生明胶(Gt)/聚己内酯(PCL)复合纳米纤维,以研究其对抗血栓形成性和内皮细胞亲和力的影响。PG纳米纤维中不同的CS浓度会影响纤维形态和直径。CS/Gt/PCL纳米纤维具有合适的孔隙率(约80%)和PBS溶液吸收率(高达650%)。在Gt/PCL纳米纤维中引入CS极大地增强了其抗凝性能,延长了凝血时间,并促进了细胞反应。特别是,10%CS/Gt/PCL纳米纤维表现出良好的细胞附着、伸长和增殖。因此,含有一定量CS的Gt/PCL纳米纤维有望成为血管修复和再生中极具潜力的组织工程支架材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7c18/8053139/832c39d6b22d/11671_2021_3518_Fig1_HTML.jpg

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