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首页> 外文期刊>Journal of biomaterials and nanobiotechnology. >Molecular Dynamics Study of Collagen Fibrils: Relation between Mechanical Properties and Molecular Chirality
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Molecular Dynamics Study of Collagen Fibrils: Relation between Mechanical Properties and Molecular Chirality

机译:胶原纤维分子动力学研究:机械性能与分子性儿的关系

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摘要

Collagen is a basic biopolymer usually found in animal bodies, but its mechanical property and behavior are not sufficiently understood so as to apply to effective regenerative medicine and so on. Since the collagen material is composed of many hierarchical structures from atomistic level to tissue or organ level, we need to well understand fundamental and atomistic mechanism of the collagen in mechanical response. First, we approach at exactly atomistic level by using all-atom modeling of tropocollagen (TC) molecule, which is a basic structural unit of the collagen. We perform molecular dynamics (MD) simulations concerning tensile loading of a single TC model. The main nature of elastic (often superelastic) behavior and the dependency on temperature and size are discussed. Then, to aim at coarse-graining of atomic configuration into some bundle structure of TC molecules (TC fibril), as a model of higher collagen structure, we construct a kind of mesoscopic model by adopting a simulation framework of beads-spring model which is ordinarily used in polymer simulation. Tensile or compression simulation to the fibril model reveals that the dependency of yield or buckling limit on the number of TCs in the model. Also, we compare the models with various molecular orientations in winding process of initial spiral of TC. The results are analyzed geometrically and it shows that characteristic orientational change of molecules increases or decreases depending on the direction and magnitude of longitudinal strain.
机译:胶原蛋白是通常在动物体中发现的基本生物聚合物,但其机械性能和行为不充分理解,以适用于有效的再生药等。由于胶原蛋白材料由许多来自原子水平与组织或器官水平的分层结构组成,因此我们需要详细了解胶原蛋白的基本和原子机制在机械反应中。首先,我们通过使用Groprocollagen(TC)分子的全原子建模来实现恰好原子级别,这是胶原蛋白的基本结构单元。我们执行关于单个TC模型的拉伸负载的分子动力学(MD)模拟。讨论了弹性(通常是超弹性)行为的主要性质和对温度和尺寸的依赖性。然后,为了将原子构型的粗晶体构成造成的TC分子(TC纤维)的一些束结构,作为更高胶原结构的模型,我们通过采用珠子簧模型的仿真框架来构建一种介观模型通常用于聚合物模拟。用于纤维模型的拉伸或压缩模拟表明,产量或屈曲限制对模型中的TCS数量的依赖性。此外,我们将模型与TC的初始螺旋绕组过程中具有各种分子取向的模型。结果几何上分析了结果,表明分子的特征取向变化根据纵向应变的方向和大小而增加或减少。

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