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A non-linear hierarchical model of stretch-induced injury to skeletal muscle fibers.

机译:拉伸引起的骨骼肌纤维损伤的非线性层次模型。

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摘要

Muscle is a unique material that converts chemical energy into mechanical work. Additionally, skeletal muscle in the passive state can undergo strains of 50% without damage to the microstructure. In contrast, when skeletal muscle is maximally activated, repetitive strains of 10% or single strains of 20% produce injury to the basic functional unit of skeletal muscle, the sarcomere. Current evaluations of contraction-induced injury do not permit rigorous testing of hypotheses because the number of sarcomeres injured does not correlate well with global strains applied to whole fibers, and current techniques do not permit visualization of the induction of injury.; The purposes of this study were to: (1) describe the architecture of skeletal muscle tissue detailing the structure-function relationships and the mechanical properties of the constituent proteins, (2) characterize the non-linear active force generation and passive elastic material response based on the anatomy and physiology of skeletal muscle, (3) develop a hierarchical model for multi-scale analysis based on the homogenization method for modeling large deformation of a non-linear material with an active stress component, (4) formulate a method of analysis that accurately maps displacements across multiple spatial scales, (5) implement the hierarchical computational model to evaluate existing theories regarding the etiology of contraction-induced injury by estimating strains of myofibrillar proteins.; Skeletal muscle has a hierarchical structure that requires a multi-scale modeling approach. The structural analyses were performed at two levels. First, representative volume elements (RVE's) were constructed to model the organization of structural and contractile proteins. These RVE's were then used to determine the mechanical response of global elements that represent regions within a muscle fiber. The displacement boundary conditions were applied at the level of the global elements. The responses of the global elements were in turn used to calculate protein level displacements, stresses, and strains.; The results from this study demonstrate that in addition to reproducing the active and passive behavior of skeletal muscle, the analysis supports the hypothesis that contraction-induced injury is the result of heterogeneity in active force generation between sarcomeres in series rather than degradation of passive stiffness.
机译:肌肉是一种将化学能转化为机械功的独特材料。另外,处于被动状态的骨骼肌可以承受50%的应变,而不会破坏微观结构。相反,当骨骼肌被最大程度地激活时,重复性10%的应变或20%的单个应变会损害骨骼肌的基本功能单元,即肌节。当前对收缩引起的损伤的评估尚不能对假设进行严格的检验,因为损伤的肉瘤的数量与施加于全纤维的整体应变没有很好的相关性,而当前的技术也无法直观地观察损伤的诱导。这项研究的目的是:(1)描述骨骼肌组织的结构,详细说明组成蛋白的结构-功能关系和机械性能,(2)表征基于非线性主动力的产生和被动弹性材料的响应关于骨骼肌的解剖学和生理学,(3)建立基于均质化方法的多尺度分析层次模型,该模型用于对具有活动应力分量的非线性材料的大变形进行建模,(4)制定分析方法(5)实施分层计算模型,通过估计肌原纤维蛋白的菌株,评估有关收缩诱发损伤的病因学的现有理论;骨骼肌具有层次结构,需要采用多尺度建模方法。结构分析分为两个级别进行。首先,构建具有代表性的体积元素(RVE),以模拟结构蛋白和收缩蛋白的组织。然后将这些RVE用于确定代表肌肉纤维内区域的整体元素的机械响应。位移边界条件应用于整体单元的水平。整体元素的响应又被用来计算蛋白质水平的位移,应力和应变。这项研究的结果表明,除了重现骨骼肌的主动和被动行为外,该分析还支持以下假设:收缩诱发的损伤是一系列肉瘤之间主动力产生的异质性的结果,而不是被动刚度的降低。

著录项

  • 作者

    Palmer, Mark L.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Mechanical.; Engineering Biomedical.; Biology Animal Physiology.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 208 p.
  • 总页数 208
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;生物医学工程;生理学;
  • 关键词

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