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Polypeptide Friction and Adhesion on Hydrophobic and Hydrophilic Surfaces: A Molecular Dynamics Case Study

机译:疏水和亲水表面上多肽的摩擦和粘附:分子动力学案例研究

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Using all-atomistic MD simulations including explicit water, the mobility and adhesion of a mildly hydrophobic single polypeptide chain adsorbed on hydrophobic and hydrophilic diamond surfaces is investigated by application of lateral and vertical pulling forces. Forced motion on the hydrophilic surface exhibits stick-slip due to breaking and reformation of hydrogen bonds; in contrast, on the hydrophobic surface, the motion is smooth. By carefully tuning the driving force magnitude, the linear-response regime is reached on a hydrophobic surface and equilibrium values for mobility and adhesive strength are obtained. On the hydrophilic surface, on the other hand, slow hydrogen-bond kinetics prevents equilibration and only upper bounds for adhesion force and mobility can be estimated. Whereas the desorption force is rather comparable on the two surfaces and differs at most by a factor of 2, the mobility on the hydrophilic surface is at least 30-fold reduced compared to the hydrophobic one. A simple model based on a single particle diffusing in a corrugated potential landscape suggests that cooperativity is rather limited and that the small mobility on a hydrophilic surface can be rationalized in terms of incoherently moving monomers. The experimentally well-known peptide mobility in bulk water is quantitatively reproduced in our simulations, which serves as a sensitive test on our methodology employed.
机译:使用包括显性水在内的全原子MD模拟,通过施加横向和垂直拉力,研究了吸附在疏水性和亲水性金刚石表面上的中等疏水性单多肽链的迁移率和粘附性。由于氢键的断裂和重新形成,亲水表面上的强制运动表现出粘滑现象。相反,在疏水表面上,运动是平滑的。通过仔细调节驱动力的大小,可以在疏水表面上达到线性响应状态,并获得流动性和粘合强度的平衡值。另一方面,在亲水性表面上,缓慢的氢键动力学阻止了平衡,只能估算出粘附力和迁移率的上限。尽管在两个表面上的解吸力相当,并且最多相差2倍,但与疏水性表面相比,亲水性表面的迁移率至少降低了30倍。一个基于单个粒子在波纹势能中扩散的简单模型表明,协作性相当有限,亲水性表面上的小迁移率可以通过非相干移动的单体得到合理化。我们在模拟中定量再现了实验中众所周知的在大量水中的肽迁移率,这对我们所采用的方法进行了敏感测试。

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