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首页> 外文期刊>ACS Omega >Effects of Hydrodynamic Interactions on the Near-Surface Diffusion of Spheroidal Molecules
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Effects of Hydrodynamic Interactions on the Near-Surface Diffusion of Spheroidal Molecules

机译:流体动力相互作用对球形分子近表面扩散的影响

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We investigated diffusion of spheroidal molecules near a planar surface, accounting for spatially dependent translational and rotational mobilities of molecules resulting from their hydrodynamic interactions with the plane. Rigid-body Brownian dynamics simulations of prolate ellipsoids of revolution of an axial ratio in the range of 1.5 to 3.0, suspended in a viscous fluid, with a no-slip flat boundary confining the suspension were employed. Mobility tensor matrices of molecules were evaluated as functions of spheroids’ distance and orientation with respect to the plane. Hydrodynamic interactions with the surface lead to substantial changes of spheroids’ translational diffusion coefficients both in the direction perpendicular and parallel to the plane when compared with the values characterizing the bulk diffusion. Moreover, the short-time translational diffusion of molecules, measured in the laboratory frame, both in an unbounded fluid and under the confinement, is non-Gaussian, with much larger deviations from Gaussianity observed in the latter case. In an unbounded fluid, distributions of translational displacements of molecules deviate from those expected for a simple Brownian motion as a result of shape anisotropy. In the presence of the plane, spheroids experience an additional anisotropic drag, and consequently, their mobilities depend on their positions and orientations. Therefore, anomalies in the short-time dynamics observed under confinement can be explained in terms of the so-called diffusing-diffusivity mechanism. Our findings have implications for understanding of a wide range of biological and technological processes that involve diffusion of anisotropic molecules near surfaces of natural and model cell membranes, biosensors and nanosensors, and electrodes.
机译:我们研究了球状分子在平面附近的扩散,这是由于分子与平面的流体动力相互作用导致分子的空间依赖的平移和旋转运动。使用了悬浮于粘性流体中,轴向滑动比为1.5到3.0的扁长椭球体的刚体布朗动力学模拟,其中无滑动平面边界限制了该悬浮体。根据球体相对于平面的距离和方向评估分子的迁移率张量矩阵。当与表征体扩散的值进行比较时,与表面的流体动力相互作用会导致球体的平移扩散系数在垂直于和平行于平面的方向上发生很大变化。此外,在实验室框架内在无界流体中和在受限条件下测得的分子的短时平移扩散都是非高斯的,在后一种情况下观察到的与高斯的偏差要大得多。在无界流体中,由于形状各向异性,分子的平移位移分布与简单布朗运动所预期的位移偏离。在存在平面的情况下,椭球体会遭受额外的各向异性阻力,因此,它们的运动性取决于它们的位置和方向。因此,可以用所谓的扩散-扩散机制来解释在限制条件下观察到的短时动力学异常。我们的发现对于理解涉及自然分子和模型细胞膜,生物传感器和纳米传感器以及电极表面附近的各向异性分子扩散的广泛生物学和技术过程具有重要意义。

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