Department of Information Engineering, Electronics and Telecommunications, La Sapienza University, 00184 Rome, Italy.
School of Chemical and Bioprocess Engineering, University College Dublin, Belfield, Dublin, D4, Ireland.
J Chem Phys. 2018 Dec 28;149(24):245102. doi: 10.1063/1.5044665.
Human aquaporin 4 has been studied using non-equilibrium molecular dynamics simulations in the absence and presence of pulses of external electric fields. The pulses were 100 ns in duration and 0.005-0.015 V/Å in intensity acting along the pores' axes. Water diffusivity and the dipolar response of various residues of interest within the pores have been studied. Results show relatively little change in levels of water permeability within aquaporin channels during axially oriented field impulses, although care must be taken with regard to statistical certainty. However, the spatial variation of water permeability vis-à-vis electric-field intensity within the milieu of the channels, as revealed by heterogeneity in diffusivity-map gradients, indicates the possibility of somewhat enhanced diffusivity, owing to several residues being affected substantially by external fields, particularly for HIS 201 and 95 and ILE 93. This has the effect of increasing slightly intra-pore water diffusivity in the "pore-mouths" locale, albeit rendering it more spatially uniform overall vis-à-vis zero-field conditions (via manipulation of the selectivity filter).
使用非平衡分子动力学模拟研究了人水通道蛋白 4,分别在不存在和存在外加电场脉冲的情况下进行了研究。脉冲持续时间为 100ns,强度为 0.005-0.015V/Å,沿孔的轴作用。研究了水扩散率和孔内感兴趣的各种残基的偶极响应。结果表明,在轴向定向场脉冲期间,水通道蛋白通道中的水渗透率水平变化相对较小,尽管必须注意统计确定性。然而,通过扩散率图梯度的异质性揭示了通道环境中渗透率相对于电场强度的空间变化,表明由于几个残基受到外部场的强烈影响,扩散率可能略有增强,特别是对 HIS201 和 95 以及 ILE93。这导致“孔口”局部腔内水扩散率略有增加,尽管与零场条件相比,总体上更加空间均匀(通过选择性过滤器的操纵)。