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MECHANICAL PROPERTIES OF SPIDER SILK FOR USE AS A BIOMATERIAL -MOLECULAR DYNAMICS INVESTIGATIONS

机译:蜘蛛丝用作生物材料分子动力学研究的机械性能

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Even though silkworm are the most dominant type of silk fibers used for commercial applications, spider silk has a definitive role in biomedical applications due to its biocompatibility and excellent mechanical properties as biomaterials. In recent years, recombinant production of the silk proteins at a larger scale has found new interest. Spider silk composites with a combination of a variety of other biomaterials have also been used to improve properties such as bio-compatibility, mechanical strength and controlled degradation. [1] A major constituent of spider silk fibers, are spidroin proteins. These are made up of repetitive segments flanked by conserved non-repetitive domains. The fiber proteins consist of a light chain and a heavy chain that are connected via a single disulfide bond. [2] Present paper employed steered molecular dynamics (SMD) as the principal method of investigating the mechanical properties of these nanoscale spider silk protein 3LR2, with a residual count of 134 amino acids. [3]. SMD simulations were performed by pulling on β-chain of the protein in the x-direction, while holding the other fixed. The focus of this paper is to investigate the mechanical properties of the nanoscale spider silk proteins with lengths of about 4.5nm in a folded state, leading to understanding of their feasibility in bio-printing of a composite spider silk biomaterial with a blend of various other biomaterials such as collagen. An in-depth insight into the fraying and tensile deformation and structural properties of the spider silk proteins are of innovative significance for a multitude of biomedical engineering applications. A calculated Gibbs free energy value of 18.59 kCal/mol via umbrella sampling corresponds with a complete separation of a single chain from a spider silk protein in case of fraying. Force needed for complete separation of the chain from the spider silk protein is analyzed, and discussed in this paper. It is found that the protein molecule undergoes a tensile stretch at strain rates of = 11.65. An elastic modulus of 20.136 GPa, calculated via simple SMD simulations by subjecting the silk β-chain to a tensile stretch is also presented.
机译:尽管家蚕是用于商业应用的最主丝绸纤维,但由于其生物相容性和优异的机械性能作为生物材料,蜘蛛丝具有明确的生物医学应用中的作用。近年来,以较大规模的丝蛋白的重组生产已发现新的兴趣。具有各种其他生物材料的组合的蜘蛛丝复合材料也已用于改善生物相容性,机械强度和受控降解等性质。 [1]蜘蛛丝纤维的主要组成部分,是蜘蛛蛋白蛋白质。这些由保守的非重复域侧翼侧翼的重复段组成。纤维蛋白质由轻链和通过单硫化键连接的重链组成。本文采用转向分子动力学(SMD)作为研究这些纳米级蜘蛛丝蛋白3LR2的机械性能的主要方法,具有134个氨基酸的残余计数。 [3]。通过在X方向上拉动蛋白质的β-链来进行SMD仿真,同时握住另一个固定。本文的焦点是探讨纳米级蜘蛛丝蛋白的长度为约4.5nm的折叠状态的机械性能,从而了解其在复合蜘蛛丝生物材料的生物印刷中的可行性,其中包含各种其他胶原蛋白等生物材料。深入了解蜘蛛丝蛋白的磨损和拉伸变形和结构性能对众多生物医学工程应用具有创新意义。通过伞采样计算的Gibbs自由能值18.59kcal / mol对应于在磨损的情况下从蜘蛛丝蛋白完全分离单链。分析了从蜘蛛丝蛋白完全分离链所需的力,并在本文中讨论。发现蛋白质分子以= 11.65的应变速率经历拉伸拉伸。还介绍了通过通过简单的SMD模拟计算通过使丝β链进行拉伸拉伸来计算的20.136GPa的弹性模量。

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