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Electromechanical properties of normal cartilage and biomechanical regulation of transplanted chondrocytes: Implications for articular cartilage tissue engineering.

机译:正常软骨的机电特性和移植软骨细胞的生物力学调节:对关节软骨组织工程的意义。

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摘要

Transplantation of chondrocytes has shown promise for augmenting the repair of articular cartilage defects. An in vitro model system was developed to examine the role of static compression on chondrocytes transplanted to articular cartilage explants. In addition, as a major step toward understanding how dynamic loading may influence chondrocyte-mediated repair, the fields, forces and flows that result from the loading of full-thickness cartilage that has inhomogeneous properties was theoretically and experimentally assessed. These studies used continuum electromechanics, biomechanical testing, biochemical assays, and immunohistochemistry techniques to gain an understanding of the biomechanical-metabolic relationships in cartilage.;Transplantation of bovine chondrocytes onto articular cartilage disks at densities up to 650,000 cells/cm;The in vitro studies also examined proteoglycan biosynthesis by bovine chondrocytes after transplantation onto and compression between articular cartilage disks. After short seeding times (1 h), chondrocyte retention was susceptible to loading. Compression of up to 0.6 MPa inhibited proteoglycan biosynthesis.;These studies suggest that mechanical forces regulate the metabolic response of transplanted chondrocytes. Static compression due to the tightness of the "press fit" at sites of chondrocyte transplantation may affect subsequent integrative repair.;A new method of assessing streaming potentials in articular cartilage was developed using the confined compression creep test. The electrokinetic material property, k;Analysis of cartilage mechanics and electromechanics using homogeneous and layered (inhomogeneous) models indicated significant differences in the streaming potential and stiffness behavior of full-thickness cartilage.;The departures of the potential and stiffness behavior, in a frequency- and offset-compression-dependent manner, of articular cartilage from that predicted for a homogeneous sample may be useful characteristic indicators of normal tissue.
机译:软骨细胞的移植已显示出有望增强关节软骨缺损的修复。开发了一种体外模型系统,以检查静态压缩对移植到关节软骨外植体的软骨细胞的作用。另外,作为了解动态负荷如何影响软骨细胞介导的修复的重要一步,理论和实验评估了由具有不均匀特性的全厚度软骨负荷所产生的场,力和流量。这些研究使用连续的机电学,生物力学测试,生化测定和免疫组织化学技术来了解软骨中的生物力学-代谢关系;牛软骨细胞以高达650,000个细胞/厘米的密度移植到关节软骨盘上;体外研究还研究了牛软骨细胞移植到关节软骨盘上并受其压缩后,其蛋白聚糖的生物合成。在较短的播种时间(1小时)后,软骨细胞的保留很容易受到负荷的影响。高达0.6 MPa的压缩会抑制蛋白聚糖的生物合成。;这些研究表明,机械力调节了移植软骨细胞的代谢反应。由于软骨细胞移植部位“压配合”的紧密性而产生的静态压迫可能会影响随后的整体修复。;使用封闭压迫蠕变试验开发了一种评估关节软骨中流势的新方法。电动材料特性k;使用均质和分层(不均质)模型进行的软骨力学和机电分析表明,全厚度软骨的流动电势和刚度行为存在显着差异;电势和刚度行为在频率上的偏离-和偏移压缩相关的方式,从均质样品中预测的方式可能是正常组织的有用特征指标。

著录项

  • 作者

    Chen, Albert Chi-Shoung.;

  • 作者单位

    University of California, San Diego.;

  • 授予单位 University of California, San Diego.;
  • 学科 Engineering Biomedical.
  • 学位 Ph.D.
  • 年度 1997
  • 页码 147 p.
  • 总页数 147
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;
  • 关键词

  • 入库时间 2022-08-17 11:48:52

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