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螺旋内盐桥在环 E 半环中的存在会影响 AQP1 和 GlpF 通道的传输性质:基于分子动力学模拟的虚拟突变体研究。

Presence of Intra-helical Salt-Bridge in Loop E Half-Helix Can Influence the Transport Properties of AQP1 and GlpF Channels: Molecular Dynamics Simulations of In Silico Mutants.

机构信息

Department of Biological Sciences and Bioengineering, Indian Institute of Technology Kanpur, Kanpur, 208016, India.

National Institute of Pharmaceutical Education and Research, Ahmedabad, India.

出版信息

J Membr Biol. 2019 Feb;252(1):17-29. doi: 10.1007/s00232-018-0054-7. Epub 2018 Nov 23.

Abstract

Major intrinsic protein (MIP) superfamily contains water-transporting AQP1 and glycerol-specific GlpF belonging to two major phylogenetic groups, namely aquaporins (AQPs) and aquaglyceroporins (AQGPs). MIP channels have six transmembrane helices (TM1 to TM6) and two half-helices (LB and LE). LE region contributes two residues to the aromatic/arginine (Ar/R) selectivity filter (SF) within the MIP channel. Bioinformatics analyses have shown that all AQGPs have an intra-helical salt-bridge (IHSB) in LE half-helix and all AQGPs and majority of AQPs have helix destabilizing Gly and/or Pro in the same region. In this paper, we mutated in silico the acidic and basic residues in GlpF to Ser and introduced salt-bridge interaction in AQP1 LE half-helix by substituting Ser residues at the equivalent positions with acidic and basic residues. We investigated the influence of IHSB in LE half-helix on the transport properties of GlpF and AQP1 mutant channels using molecular dynamics simulations. With IHSB abolished in LE half-helix, the GlpF mutant exhibited a significantly reduced water transport. In contrast, the introduction of IHSB in the two AQP1 mutants has increased water transport. Absence of salt-bridge in LE half-helix alters the SF geometry and results in a higher energy barrier for the solutes in the Ar/R selectivity filter. Presence/absence of IHSB in LE half-helix influences the channel transport properties and it is evident especially for the AQGPs. By modulating its helical flexibility, LE half-helix can perhaps play a regulatory role in transport either on its own or in conjunction with other extracellular regions.

摘要

主要内在蛋白 (MIP) 超家族包含水转运 AQP1 和甘油特异性 GlpF,它们属于两个主要的进化群,即水通道蛋白 (AQPs) 和水甘油通道蛋白 (AQGPs)。MIP 通道具有六个跨膜螺旋 (TM1 到 TM6) 和两个半螺旋 (LB 和 LE)。LE 区域为 MIP 通道内的芳香族/精氨酸 (Ar/R) 选择性过滤器 (SF) 贡献两个残基。生物信息学分析表明,所有 AQGPs 在 LE 半螺旋内都有一个内螺旋盐桥 (IHSB),并且所有 AQGPs 和大多数 AQPs 在同一区域都有螺旋不稳定的甘氨酸和/或脯氨酸。在本文中,我们通过用酸性和碱性残基替代 LE 半螺旋中相应位置的丝氨酸,在 GlpF 中进行了 LE 半螺旋中酸性和碱性残基的盐桥相互作用的计算机模拟突变。我们使用分子动力学模拟研究了 LE 半螺旋中 IHSB 对 GlpF 和 AQP1 突变通道转运特性的影响。LE 半螺旋中 IHSB 被废除后,GlpF 突变体的水转运显著减少。相比之下,在两个 AQP1 突变体中引入 IHSB 增加了水的转运。LE 半螺旋中盐桥的缺失改变了 SF 的几何形状,导致 Ar/R 选择性过滤器中溶质的能量势垒增加。LE 半螺旋中 IHSB 的存在/缺失会影响通道的转运特性,这在 AQGPs 中尤为明显。通过调节其螺旋灵活性,LE 半螺旋可能会单独或与其他细胞外区域一起在转运中发挥调节作用。

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