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Oxidative stress and the mechanical properties of naturally occurring chimeric collagen-containing fibers.

机译:天然存在的含嵌合胶原的纤维的氧化应力和机械性能。

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摘要

The byssal threads of marine mussels are a fiber-reinforced composite material. Fibers are continuous, separated by matrix, and consist of chimeric collagens that encompass within the same primary protein structure domains corresponding to collagen, polyhistidine, and either elastin or dragline spider silk. The elastic modulus (stiffness) of the proximal portion of byssal threads was measured by cyclic stress-strain analysis at 50% extension. Before measurement, the threads were conditioned by various treatments, particularly agitation in aerated or nitrogen-sparged seawater. Stiffness can be permanently increased by more than two times, e.g., from 25 MPa to a maximum of 65 MPa, by simple agitation in aerated seawater. Much but not all of this stiffening can be prevented by agitation under nitrogen. Reversible strain stiffening would seem to be a useful adaptation to lower residual stresses arising from the deformation of two joined materials, i.e., distal and proximal portions with rather different elastic moduli. The permanent strain stiffening that characterizes proximal byssal threads subjected to oxidative stress is probably due to protein cross-linking. In the short term, this results in a stronger thread but at the expense of dynamic interactions between the molecules in the structure.
机译:海洋贻贝的底线是纤维增强的复合材料。纤维是连续的,被基质隔开,由嵌合胶原蛋白组成,这些胶原蛋白包含在与胶原蛋白,聚组氨酸和弹性蛋白或拉丝蜘蛛丝相同的主要蛋白质结构域内。通过循环应力-应变分析在50%伸长率下测量牙龈线近端部分的弹性模量(刚度)。在测量之前,通过各种处理对线进行调节,特别是在充气或氮气喷射的海水中进行搅拌。通过在充气的海水中简单搅拌,刚度可以永久地增加两倍以上,例如从25 MPa增加到最大65 MPa。通过氮气搅拌可以防止很多但不是全部这种硬化。可逆的应变硬化似乎是一种有用的适应方法,用于降低由两种接合材料(即具有相当不同的弹性模量的远端和近端部分)变形引起的残余应力。永久性应变变硬是表征近端腓肠肌承受氧化应激的特征,可能是由于蛋白质交联所致。在短期内,这会导致螺纹更牢固,但会以结构中分子之间的动态相互作用为代价。

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