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Mechanical properties of fibroblast populated collagen matrices.

机译:成纤维细胞填充的胶原蛋白基质的机械性能。

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摘要

Bio-artificial tissues, composed of cells in a collagen matrix, are being developed as replacement organs for damaged biologic tissue. A review of the current literature shows a need for more comprehensive mechanical testing of these replacement organs. Characterization of the mechanical properties is especially important in load bearing applications such as bio-artificial blood vessels.; Fibroblast populated collagen matrices (FPCMs) were used to investigate the mechanical behavior of bio-artificial tissues. Uniaxial tests on FPCM rings showed that these tissues exhibit nonlinear, viscoelastic and softening behavior. The uniaxial results were used to design protocols for biaxial testing. A pressure-diameter, force-length test system was designed and built for biaxial testing of FPCMs. For biaxial tests, the FPCM geometry was changed and the new tissues were termed FPCVs (fibroblast populated collagen vessels).; The mechanical constraints were controlled during FPCV incubation to produce tissues with two different cell orientations: axial and circumferential. FPCVs with oriented cells could be stretched to higher strains with lower stresses in the direction perpendicular to the cell orientation, than in the direction parallel to the cell orientation. Biaxial tests were also performed with added drugs to eliminate the mechanical contribution of the cells. The FPCVs were anisotropic even without the cellular contribution.; A constitutive model, based on the model presented in Zahalak et al. (2000), was developed to relate the FPCV microstructure to the mechanical properties. The FPCV stress was considered to be the sum of the contributions from linearly elastic cells with a preferred orientation and a nonlinear, pseudo-elastic, orthotropic matrix. Model parameters were fit to the biaxial test data for each FPCV, but it was difficult to determine unique parameters from the biaxial test data alone.; The test data and modeling in this dissertation are a first step toward providing material parameters and a constitutive relation to predict the behavior of bio-artificial tissues in vivo. A microstructurally based constitutive relation would allow tissues to be designed with specific mechanical properties. However, to predict the total stress from the contributions of cells and matrix, more information must be obtained about the relative stress contribution of each component.
机译:由胶原基质中的细胞组成的生物人工组织正被开发为受损生物组织的替代器官。对现有文献的回顾表明,需要对这些置换器官进行更全面的机械测试。机械性能的表征在诸如生物人工血管的承重应用中尤其重要。成纤维细胞填充胶原蛋白基质(FPCM)用于研究生物人工组织的力学行为。 FPCM环的单轴测试表明,这些组织表现出非线性,粘弹性和软化行为。单轴结果用于设计双轴测试方案。设计并构建了一种压力直径,力长测试系统,用于FPCM的双轴测试。对于双轴测试,改变了FPCM的几何形状,并将新组织称为FPCV(成纤维细胞组成的胶原血管)。在FPCV孵育过程中控制了机械约束,以产生具有两种不同细胞方向的组织:轴向和周向。具有取向细胞的FPCV可以在垂直于细胞取向的方向上比在平行于细胞取向的方向上以较低的应力拉伸至较高的应变。还使用添加的药物进行了双轴测试,以消除细胞的机械作用。 FPCV是各向异性的,即使没有细胞的贡献。本构模型,基于Zahalak等人提出的模型。 (2000年),发展到FPCV的微观结构与力学性能。 FPCV应力被认为是具有优先取向的线性弹性单元和非线性,拟弹性,正交各向异性矩阵的贡献之和。模型参数适合每个FPCV的双轴测试数据,但是仅凭双轴测试数据很难确定唯一参数。本文的测试数据和建模是迈向提供材料参数和本构关系以预测体内生物人工组织行为的第一步。基于微结构的本构关系将允许组织被设计为具有特定的机械性能。但是,要根据细胞和基质的作用预测总应力,必须获得有关每个组件的相对应力作用的更多信息。

著录项

  • 作者

    Wagenseil, Jessica Eleanor.;

  • 作者单位

    Washington University.;

  • 授予单位 Washington University.;
  • 学科 Engineering Biomedical.; Health Sciences Medicine and Surgery.
  • 学位 D.Sc.
  • 年度 2003
  • 页码 224 p.
  • 总页数 224
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;
  • 关键词

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