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Design of a Fibrin-Based Vascular Graft Seeded with Blood Outgrowth Endothelial Cells

机译:基于血纤维内皮细胞的纤维蛋白基血管移植物的设计

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摘要

A clinical need for small-diameter vascular grafts exists, particularly in cases where coronary artery bypass surgery is the best treatment option, but the patient lacks a viable autologous graft due to repeat procedures or diseased vasculature. The comprehensive goal of this work was the in vitro fabrication and assessment of a completely biological, small-diameter vascular graft. Our approach uses tissue cells entrapped in a tubular fibrin gel with blood outgrowth endothelial cells (BOECs) seeded on the lumenal surface, in an attempt to recreate important properties of the medial and intimal layers of a native artery. Two major areas were examined to achieve this goal: 1) controlled fibrin degradation and its possible role in improving new matrix deposition, cellularity, and ultimately, mechanical properties and 2) seeding of BOECs on these small-diameter grafts to form a complete vessel and ensure thromboresistance.;We hypothesized that controlling the rate of fibrin degradation could allow for improved matrix remodeling in fibrin-based constructs. To this end, we examined collagen and elastin deposition and cellularity in fibrin-based constructs grown in varied concentrations of the fibrinolysis inhibitor epsilon-aminocaproic acid (ACA). Decreasing the concentration of ACA led to increased fibrin degradation and better biochemical and mechanical properties. The byproducts of fibrin degradation, fibrin degradation products (FDPs), were shown to be physiological stimulators of collagen deposition, a fact that can be exploited to increase collagen deposition in fibrin-based vascular constructs.;These fibrin-based constructs were then utilized as a substrate for seeding of BOECs, a novel endothelial cell expanded from circulating endothelial progenitor cells in peripheral blood. BOECs adhered to the bioartificial tissue and remained adherent under physiological shear stress. They also exhibited low expression of pro-inflammatory markers and reduced platelet binding compared to unseeded tissue. Exposure to shear stress decreased pro-inflammatory marker expression on TNF-alpha stimulated BOECs, increased endothelial nitric oxide synthase expression and nitric oxide production, and decreased platelet adhesion during whole blood flow. These outcomes indicate that BOECs are shear stress responsive and are functionally similar to mature endothelial cells in their response to shear stress and their ability to limit platelet binding to bioartificial vascular grafts.;Together, these lines of research allow for the formation of a functional, small-diameter vascular graft, while elucidating key aspects of the remodeling process and BOEC phenotype.
机译:存在小直径血管移植物的临床需求,特别是在冠状动脉搭桥手术是最佳治疗选择的情况下,但由于重复手术或患病的脉管系统,患者缺乏可行的自体移植物。这项工作的综合目标是在体外制造和评估完全生物学的小直径血管移植物。我们的方法使用包埋在管状纤维蛋白凝胶中的组织细胞,并在管腔表面播种血液向外生长的内皮细胞(BOEC),以尝试重建天然动脉的内膜和内膜层的重要特性。为实现该目标,研究了两个主要领域:1)控制纤维蛋白降解及其在改善新基质沉积,细胞结构以及最终改善机械性能方面的可能作用; 2)BOECs在这些小直径移植物上形成完整的血管;以及确保血栓形成抗性。我们假设控制纤维蛋白的降解速率可以改善基于纤维蛋白的构建体中的基质重塑。为此,我们检查了在各种浓度的纤维蛋白溶解抑制剂ε-氨基己酸(ACA)中生长的基于纤维蛋白的构建物中的胶原蛋白和弹性蛋白沉积以及细胞结构。降低ACA的浓度导致纤维蛋白降解增加以及更好的生化和机械性能。纤维蛋白降解的副产物纤维蛋白降解产物(FDPs)被证明是胶原蛋白沉积的生理刺激剂,这一事实可以被利用来增加基于纤维蛋白的血管构建物中胶原蛋白的沉积。这些基于纤维蛋白的构建物随后被用作作为BOEC播种的基质,一种新的内皮细胞从外周血中的循环内皮祖细胞中扩增而来。 BOEC粘附在生物人工组织上,并在生理剪切应力下保持粘附。与未播种的组织相比,它们还表现出促炎性标志物的低表达和减少的血小板结合。暴露于剪切应力下会降低TNF-α刺激的BOEC上促炎性标志物的表达,增加内皮一氧化氮合酶的表达和一氧化氮的产生,并降低全血期间的血小板粘附。这些结果表明,BOEC对剪切应力具有响应性,并且在功能上与成熟的内皮细胞相似,它们对剪切应力的响应以及限制血小板与生物人工血管移植物结合的能力。这些研究共同致力于形成功能性,小直径血管移植物,同时阐明了重塑过程和BOEC表型的关键方面。

著录项

  • 作者

    Ahmann, Katherine A.;

  • 作者单位

    University of Minnesota.;

  • 授予单位 University of Minnesota.;
  • 学科 Biomedical engineering.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 191 p.
  • 总页数 191
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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