首页> 中文期刊> 《生物设计与制作(英文)》 >A biomimetic basementmembrane consisted of hybrid aligned nanofibers andmicrofibers with immobilized collagen IV and laminin for rapid endothelialization

A biomimetic basementmembrane consisted of hybrid aligned nanofibers andmicrofibers with immobilized collagen IV and laminin for rapid endothelialization

         

摘要

Rapid formation of a continuous endothelial cell(EC)monolayer with healthy endothelium function on the luminal surface of vascular implants is imperative to improve the longtime patency of small-diameter vascular implants.In the present study,we combined the contact guidance effects of aligned nanofibers,which enhance EC adhesion and proliferation because of its similar fiber scale with native vascular basement membranes,and aligned microfibers,which could induce EC elongation effectively and allow ECs infiltration.It was followed by successive immobilization of collagen IV and laminin to fabricate a biomimetic basement membrane(BBM)with structural and compositional biomimicry.The hemolysis assay and platelet adhesion results showed that the BBM exhibited excellent hemocompatibility.Meanwhile,the adhered human umbilical vein endothelial cells(HUVECs)onto theBBMaligned along the orientation of the microfibers with an elongated morphology,and the data demonstrated that the BBM showed favorable effects on EC attachment,proliferation,and viability.The oriented EC monolayer formed on the BBM exhibited improved antithrombotic capability as indicated by higher production of nitric oxide and prostacyclin(PGI2).Furthermore,fluorescence images indicated that HUVECs could infiltrate into the BBM,implying theBBM’s ability to enhance transmural endothelialization.Hence,theBBMpossessed the properties to regulate ECbehaviors and allow transmural ingrowth,demonstrating the potential to be applied as the luminal surface of small-diameter vascular implants for rapid endothelialization.

著录项

  • 来源
    《生物设计与制作(英文)》 |2021年第2期|P.171-189|共19页
  • 作者单位

    Key Laboratory of Textile Industry for Biomedical Textile Materials and Technology College of Textiles Donghua University 2999 North Renmin Road Songjiang District Shanghai 201620 ChinaEngineering Research Center of Technical Textiles of Ministry of Education College of Textiles Donghua University Shanghai 201620 ChinaWisconsin Institute for Discovery University of Wisconsin-Madison 330 North Orchard Street Madison WI 53715 USADepartment of Mechanical Engineering University of Wisconsin-Madison 1513 University Ave Madison WI 53706 USA;

    Key Laboratory of Textile Industry for Biomedical Textile Materials and Technology College of Textiles Donghua University 2999 North Renmin Road Songjiang District Shanghai 201620 ChinaEngineering Research Center of Technical Textiles of Ministry of Education College of Textiles Donghua University Shanghai 201620 China;

    Wisconsin Institute for Discovery University of Wisconsin-Madison 330 North Orchard Street Madison WI 53715 USADepartment of Mechanical Engineering University of Wisconsin-Madison 1513 University Ave Madison WI 53706 USA;

    Key Laboratory of Textile Industry for Biomedical Textile Materials and Technology College of Textiles Donghua University 2999 North Renmin Road Songjiang District Shanghai 201620 ChinaEngineering Research Center of Technical Textiles of Ministry of Education College of Textiles Donghua University Shanghai 201620 China;

    Wisconsin Institute for Discovery University of Wisconsin-Madison 330 North Orchard Street Madison WI 53715 USADepartment of Mechanical Engineering University of Wisconsin-Madison 1513 University Ave Madison WI 53706 USA;

    Wisconsin Institute for Discovery University of Wisconsin-Madison 330 North Orchard Street Madison WI 53715 USADepartment of Mechanical Engineering University of Wisconsin-Madison 1513 University Ave Madison WI 53706 USA;

  • 原文格式 PDF
  • 正文语种 chi
  • 中图分类 肿瘤学;
  • 关键词

    Biomimetic basement membranes; Aligned electrospun fibers; Surface modification; Endothelialization; Anti-thrombogenicity; Transmural ingrowth;

    机译:仿生基底膜;对齐的电纺纤维;表面改性;内皮化;抗血栓形成性;透息;
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