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Combining Electrospun Fiber Mats and Bioactive Coatings for Vascular Graft Prostheses

机译:用于血管移植假体的电纺纤维垫和生物活性涂层

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摘要

The patency of small-diameter (<6 min) synthetic vascular grafts (VGs) is still limited by the absence of a confluent, blood flow-resistant monolayer Of endothelial cells (ECs) on the lumen and of vascular smooth muscle cell (VSMC) growth into the media layer. In this research, electrospirming has been combined with bioactive coatings based on chondroitin sulfate (CS) to create scaffolds that possess optimal morphological and bioactive properties for subsequent cell seeding. We fabricated random and aligned electrospun poly-(ethylene terephthalate); ePET, mats with small pores (3.2 +/- 0.5 or 3.9 +/- 0.3 mu m) and then investigated the effects of topography and bioactive coatings on EC adhesion, growth, and resistance to shear stress. Bioactive coatings were found to dominate the cell behavior, which enabled creation of a near-confluent EC monolayer that resisted physiological shear-flow conditions. CS is particularly interesting since it prevents platelet adhesion, a key issue to avoid blood clot formation in case of an incomplete EC monolayer or partial cell detachment. Regarding the media layer, circumferentially oriented nanofibers with larger pores (6.3 +/- 0.5 mu m) allowed growth, survival; and inward penetration of VSMCs, especially when the CS was further coated with tethered, oriented epithelial growth factor (EGF). In summary, the techniques developed here can lead to adequate scaffolds for the luminal and media layers of small-diameter synthetic VGs.
机译:小直径(<6分钟)合成血管移植物(VGS)的通畅仍然受到杂交,内皮细胞(ECS)上的沟槽和血管平滑肌细胞(VSMC)的限制生长到媒体层。在该研究中,电刺刺与基于软骨素(CS)的生物活性涂层相结合,以产生具有用于随后细胞播种的最佳形态学和生物活性性的支架。我们制造随机和对齐的电纺 - (乙二醇酯); EPET,小毛孔(3.2 +/- 0.5或3.9 +/-0.3μm),然后研究了地形和生物活性涂层对EC粘附,生长和抗剪切应力的影响的影响。发现生物活性涂层占据调节细胞行为,这使得能够产生抵抗生理剪切流动条件的近汇合的EC单层。 CS是特别有趣的,因为它可以防止血小板粘附,以避免在不完全的EC单层或部分细胞脱离的情况下避免血凝块形成的关键问题。关于介质层,周向定向纳米纤维,孔的较大孔(6.3 +/-0.5μm)允许生长,存活;和内向渗透VSMC,特别是当Cs进一步涂有束缚的上皮生长因子(EGF)时。总之,这里开发的技术可以导致小直径合成VGS的腔和介质层的足够支架。

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  • 来源
    《Biomacromolecules》 |2017年第1期|共8页
  • 作者单位

    Ecole Polytech Inst Biomed Engn Montreal PQ H3T 1J4 Canada;

    Ctr Hosp Univ Montreal Res Ctr Lab Endovasc Biomat LBeV Montreal PQ H2W 1T7 Canada;

    Ctr Hosp Univ Montreal Res Ctr Lab Endovasc Biomat LBeV Montreal PQ H2W 1T7 Canada;

    Ecole Polytech Dept Chem Engn Montreal PQ H3T 1J4 Canada;

    Ecole Polytech Inst Biomed Engn Montreal PQ H3T 1J4 Canada;

    Ecole Polytech Inst Biomed Engn Montreal PQ H3T 1J4 Canada;

    Ecole Polytech Inst Biomed Engn Montreal PQ H3T 1J4 Canada;

    Ctr Hosp Univ Montreal Res Ctr Lab Endovasc Biomat LBeV Montreal PQ H2W 1T7 Canada;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子生物学;
  • 关键词

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