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Design and in-vitro evaluation of a tissue engineered large vessel prosthesis.

机译:组织工程化大血管假体的设计和体外评估。

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摘要

Tissue engineering of large diameter blood vessels can offer a promising long-term solution to the large population suffering from congenital vascular defects and other vascular disease. In this report design, assembly, in vitro maturation and evaluation of a large diameter, chitosan-based prosthesis is described. To facilitate cell adhesion and proliferation, collagen was included as a scaffold component to a chitosan scaffold. In vitro studies evaluated the role of collagen content, crosslinker type and crosslinking density on degradation kinetics, mechanical properties and cellular interactions. Finally, the vessel scaffold (ID = 12 mm, OD = 15 mm) was fabricated from a moderately cross-linked, 90%/10% chitosan/collagen material. A tubular scaffold with gradient porosity and interconnected pores was generated by controlled freezing and lyophilization of the polymer.;For graft culture laminar and pulsatile flow systems were designed and porous scaffolds were seeded with vascular cells under static conditions. Laminar system grafts were seeded and cultured/analyzed over an 8 week period (15ml/min). For the pulsatile system SMC were seeded and after 2 weeks of pulsatile flow culture (360ml/min, 82 beats/min) microvascular EC were seeded lumenally to initiate a microvascular network followed by aortic EC seeding at 3 weeks. For both systems, cell viability at different culture periods showed the formation of high density of cell within few weeks of graft culture. However, the pulsatile flow system graft showed a significant increase in mechanical properties and ECM protein (collagen and elastin) deposition overtime. This novel chitosan based tissue engineered vascular graft shows promising results for large vessel replacements.
机译:大直径血管的组织工程可以为患有先天性血管缺陷和其他血管疾病的大量人群提供有希望的长期解决方案。在本报告中,描述了基于壳聚糖的大直径假体的设计,组装,体外成熟和评估。为了促进细胞粘附和增殖,将胶原作为壳聚糖支架的支架组分包括在内。体外研究评估了胶原含量,交联剂类型和交联密度对降解动力学,机械性能和细胞相互作用的作用。最后,由中等交联的90%/ 10%壳聚糖/胶原蛋白材料制成血管支架(内径= 12毫米,外径= 15毫米)。通过控制聚合物的冷冻和冻干作用,生成了具有梯度孔隙和相互连通的孔的管状支架。播种层系统移植物,并在8周内(15毫升/分钟)进行培养/分析。对于脉动系统,播种SMC,在脉动流培养2周(360ml / min,82次/ min)后,将微血管EC腔内播种以启动微血管网络,然后在3周主动脉EC播种。对于这两个系统,在不同培养期的细胞存活率表明在移植培养的几周内形成了高密度的细胞。但是,脉动血流系统移植物的机械性能和ECM蛋白(胶原蛋白和弹性蛋白)的沉积随着时间的推移显着增加。这种基于壳聚糖的新型组织工程血管移植物显示出大血管置换的有希望的结果。

著录项

  • 作者

    Mahmood, Ayesha.;

  • 作者单位

    Wayne State University.;

  • 授予单位 Wayne State University.;
  • 学科 Biomedical engineering.;Materials science.;Chemical engineering.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 152 p.
  • 总页数 152
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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