首页> 外文会议>Symposium Proceedings vol.874; Symposium on Structure and Mechanical Behavior of Biological Materials; 20050329-31; San Francisco,CA(US) >Protein Forced Unfolding and Its Effects on the Finite Deformation Stress-Strain Behavior of Biomacromolecular Solids
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Protein Forced Unfolding and Its Effects on the Finite Deformation Stress-Strain Behavior of Biomacromolecular Solids

机译:蛋白质强迫展开及其对生物大分子固体有限变形应力应变行为的影响

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摘要

Many proteins have been experimentally observed to exhibit a force-extension behavior with a characteristic repeating pattern of a nonlinear rise in force with imposed displacement to a peak, followed by a significant force drop upon reaching the peak (a "saw-tooth" profile) due to successive unfolding of modules during extension. This behavior is speculated to play a governing role in biological and mechanical functions of natural materials and biological networks composed of assemblies of such protein molecules. In this paper, a constitutive model for the finite deformation stress-strain behavior of crosslinked networks of modular macromolecules is developed. The force-extension behavior of the individual modular macromolecule is represented using the Freely Jointed Chain (FJC) statistical mechanics model together with a two-state theory to capture unfolding. The single molecule behavior is then incorporated into a formal continuum mechanics framework to construct a constitutive model. Simulations illustrate a relatively smooth "yield'Mike stress-strain behavior of these materials due to activate unfolding in these microstructures.
机译:实验上已经观察到许多蛋白质表现出力的延伸行为,并具有特征性的重复模式,即力的非线性上升(施加到峰值处发生位移),然后在到达峰值时出现明显的力下降(“锯齿”轮廓)由于扩展过程中模块的连续展开。据推测,这种行为在天然材料的生物和机械功能以及由这种蛋白质分子的组装物组成的生物网络中起着主导作用。本文建立了模块化大分子交联网络的有限变形应力-应变行为的本构模型。使用自由连接链(FJC)统计力学模型以及两态理论来捕获展开,来表示单个模块化大分子的力-延伸行为。然后将单分子行为整合到正式的连续力学机制中以构建本构模型。仿真表明由于激活了这些微结构中的展开,这些材料的“屈服”迈克应力-应变行为相对平稳。

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