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首页> 外文期刊>Colloids and Surfaces, B. Biointerfaces >Molecular dynamics simulations of collagen adsorption onto grooved rutile surface: The effects of groove width
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Molecular dynamics simulations of collagen adsorption onto grooved rutile surface: The effects of groove width

机译:胶原吸附到沟槽金红石表面的分子动力学模拟:沟槽宽度的影响

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摘要

The early adsorption stages of collagen onto nano-grooved rutile surface without hydroxylation were studied using molecular dynamics and steered MD simulations. On the basis of plane rutile (110),two kinds of models have been adopted: single groove and parallel grooves along [1-11] crystal orientation with various width dimensions. Initially, collagens were parallel or perpendicular to the groove orientation, respectively, in order to investigate the influence of groove width on collagen adsorption. The simulation result suggests that surface grooves could exert a strong effect on collagen adsorption: when collagen was parallel to the groove direction, adsorption was favored if the groove width matched well with the dimension of collagen. However, adsorption strength may decrease as the groove width expanded. As for the condition of collagen perpendicular to the groove orientation, collagen was difficult to bend and insert into grooves in the free adsorption procedure. But the steered MD simulation results reveal that more energy was consumed for collagen to insert into narrower grooves which may be interpreted as strong barrier for adsorption. We believe that adsorption will be favored if appropriate dimension match between dimension of collagen and the groove width was approached.
机译:使用分子动力学和转向MD模拟研究了胶原蛋白在纳米沟槽金红石表面上无羟基化的早期吸附阶段。在平面金红石(110)的基础上,采用了两种模型:沿[1-11]晶体取向具有不同宽度尺寸的单槽和平行槽。最初,胶原蛋白分别平行于或垂直于凹槽方向,以研究凹槽宽度对胶原蛋白吸附的影响。仿真结果表明,表面沟槽对胶原蛋白的吸附具有很强的作用:当胶原蛋白与沟槽方向平行时,如果沟槽的宽度与胶原蛋白的尺寸很好地匹配,则有利于吸附。但是,随着槽宽度的扩大,吸附强度可能降低。至于垂直于凹槽取向的胶原的条件,在自由吸附过程中,胶原难以弯曲并插入凹槽中。但是,转向的MD模拟结果表明,胶原蛋白要插入狭窄的凹槽中会消耗更多的能量,这可以解释为吸附的强屏障。我们认为,如果接近胶原蛋白的尺寸和凹槽宽度之间的尺寸匹配,吸附将是有利的。

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