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Elastic and physiochemical relationships within cortical bone: Growth hormone treatment of a dwarf rat model.

机译:皮质骨内的弹性和理化关系:矮大鼠模型的生长激素治疗。

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摘要

This doctoral dissertation project examines the relationships between the elastic and physicochemical properties of cortical bone as well as the efficacy of the use of recombinant human growth hormone (hGH) as a treatment to counter the effects of hormonal growth disruption (dwarfism) in a rat model. The goals of the project are to refine the ultrasonic elasticity technique for use with small specimens ({dollar}<{dollar}1.0 mm) and determine if the administration of hGH can counter the elastic and physicochemical characteristics of cortical bone resulting from hormone-suppressed downregulation. Ultrasonic wave propagation and density measurements were used to determine the three-dimensional material properties of rat femoral cortical bone. X-ray powder diffraction, morphometry, and biochemical analysis techniques were used to describe physicochemical properties including mineral crystal size, cortical porosity, and mineral and nonmineral content. Microstructural characteristics were also explored via scanning electron microscopy. Mathematical relationships between the local physicochemical (independent variable) and elastic (dependent variable) properties have been formulated via linear and nonlinear regression analysis. Generally, apparent density was found as the highest correlate with Young's moduli (R{dollar}sp2{dollar} = 0.30 to 0.60) while apparent density, porosity, and mineral content proved to be the best predictors of shear moduli (R{dollar}sp2{dollar} = 0.40 to 0.80). Concomitantly, mineral crystal width and porosity offered the closest descriptions of Poisson's ratios (R{dollar}sp2{dollar} = 0.20 to 0.60). These correlations contribute to the fundamental relationships between microstructure and material properties within cortical bone. Evaluation of the changes due to the treatment of dwarfism with hGH have also been quantified. Wilcoxon t-tests verified a significant decrease in the elastic properties in dwarf rat cortical bone after hGH treatments (p {dollar}<{dollar} 0.05). Physicochemical measures of bone quality (density, crystal size) generally decreased while measures of bone quantity (cortical area, moments of inertia) generally increased (p {dollar}<{dollar} 0.05) after hGH treatments. Some mineral and nonmineral properties were unchanged. The unique contributions of this project are determination of a quantifiable link between cortical bone elasticity and its composite construction and determination of elasticity and physicochemical changes between dwarf bone and hGH treated dwarf bone. The methodology for the measurement of orthotropic elastic constants of small bone specimens is proven to be a unique and valuable research tool.
机译:该博士论文项目研究了皮质骨的弹性和理化性质之间的关系,以及使用重组人生长激素(hGH)来治疗大鼠模型中荷尔蒙生长破坏(侏儒症)的影响的功效。该项目的目标是完善超声弹性技术,以用于小样本({dollar} <{dollar} 1.0 mm),并确定hGH的使用是否可以抵消激素抑制导致的皮质骨的弹性和理化特性下调。超声波传播和密度测量用于确定大鼠股骨皮质的三维材料特性。 X射线粉末衍射,形态学和生化分析技术被用来描述物理化学性质,包括矿物晶体的大小,皮质孔隙率以及矿物和非矿物的含量。通过扫描电子显微镜也探索了微结构特征。通过线性和非线性回归分析,已建立了局部物理化学(独立变量)和弹性(独立变量)特性之间的数学关系。通常,表观密度与杨氏模量之间的相关性最高(R {dollar} sp2 {dollar} = 0.30至0.60),而表观密度,孔隙率和矿物质含量被证明是剪切模量(R {dollar})的最佳预测指标sp2 {dollar} = 0.40至0.80)。同时,矿物晶体的宽度和孔隙率提供了泊松比的最接近描述(R {dollar} sp2 {dollar} = 0.20至0.60)。这些相关性有助于皮质骨内微结构与材料特性之间的基本关系。还已经量化了因使用hGH治疗侏儒症而引起的变化的评估。 Wilcoxon t检验证实了hGH治疗后矮化大鼠皮质骨的弹性特性显着降低(p {dollar} <{dollar} 0.05)。 hGH治疗后,骨质的物理化学测量(密度,晶体大小)通常降低,而骨量(皮质区域,惯性矩)的测量通常升高(p {dollar} <{dollar} 0.05)。一些矿物质和非矿物质的特性没有变化。该项目的独特贡献是确定了皮质骨弹性与其复合结构之间的可量化联系,并确定了矮人骨和经hGH处理的矮人骨之间的弹性和理化变化。小骨标本的正交各向异性弹性常数的测量方法被证明是一种独特而有价值的研究工具。

著录项

  • 作者

    Kohles, Sean Stephen.;

  • 作者单位

    The University of Wisconsin - Madison.;

  • 授予单位 The University of Wisconsin - Madison.;
  • 学科 Engineering Biomedical.; Applied Mechanics.; Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 1994
  • 页码 120 p.
  • 总页数 120
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物医学工程;应用力学;机械、仪表工业;
  • 关键词

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