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酿酒酵母钾离子转运蛋白Trk1p的精确原子尺度模型与实验证据相结合,证实了选择性过滤器中甘氨酸和其他关键残基的作用。

A refined atomic scale model of the Saccharomyces cerevisiae K+-translocation protein Trk1p combined with experimental evidence confirms the role of selectivity filter glycines and other key residues.

作者信息

Zayats Vasilina, Stockner Thomas, Pandey Saurabh Kumar, Wörz Katharina, Ettrich Rüdiger, Ludwig Jost

机构信息

Institute of Nanobiology and Structural Biology, Global Change Research Center, Academy of Sciences of the Czech Republic, Nove Hrady, Czech Republic; Faculty of Sciences, University of South Bohemia, Nove Hrady, Czech Republic.

Institute of Pharmacology, Medical University of Vienna, Vienna, Austria.

出版信息

Biochim Biophys Acta. 2015 May;1848(5):1183-95. doi: 10.1016/j.bbamem.2015.02.007. Epub 2015 Feb 14.

Abstract

Potassium ion (K+) uptake in yeast is mediated mainly by the Trk1/2 proteins that enable cells to survive on external K+ concentration as low as a few μM. Fungal Trks are related to prokaryotic TRK and Ktr and plant HKT K+ transport systems. Overall sequence similarity is very low, thus requiring experimental verification of homology models. Here a refined structural model of the Saccharomyces cerevisiae Trk1 is presented that was obtained by combining homology modeling, molecular dynamics simulation and experimental verification through functional analysis of mutants. Structural models and experimental results showed that glycines within the selectivity filter, conserved among the K-channel/transporter family, are not only important for protein function, but are also required for correct folding/membrane targeting. A conserved aspartic acid in the PA helix (D79) and a lysine in the M2D helix (K1147) were proposed earlier to interact. Our results suggested individual roles of these residues in folding, structural integrity and function. While mutations of D79 completely abolished protein folding, mutations at position 1147 were tolerated to some extent. Intriguingly, a secondary interaction of D79 with R76 could enhance folding/stability of Trk1 and enable a fraction of Trk1[K1147A] to fold. The part of the ion permeation path containing the selectivity filter is shaped similar to that of ion channels. However below the selectivity filter it is obstructed or regulated by a proline containing loop. The presented model could provide the structural basis for addressing the long standing question if Trk1 is a passive or active ion-translocation system.

摘要

酵母中钾离子(K+)的摄取主要由Trk1/2蛋白介导,这些蛋白使细胞能够在低至几微摩尔的外部K+浓度下存活。真菌Trks与原核生物的TRK和Ktr以及植物HKT K+转运系统相关。总体序列相似性非常低,因此需要对同源模型进行实验验证。本文提出了酿酒酵母Trk1的精细结构模型,该模型是通过同源建模、分子动力学模拟以及通过突变体功能分析进行实验验证相结合而获得的。结构模型和实验结果表明,在K通道/转运蛋白家族中保守的选择性过滤器内的甘氨酸不仅对蛋白质功能很重要,而且对于正确折叠/膜靶向也是必需的。较早前有人提出PA螺旋中的保守天冬氨酸(D79)和M2D螺旋中的赖氨酸(K1147)相互作用。我们的结果表明这些残基在折叠、结构完整性和功能中各自发挥作用。虽然D79的突变完全消除了蛋白质折叠,但1147位的突变在一定程度上是可以耐受的。有趣的是,D79与R76的二级相互作用可以增强Trk1的折叠/稳定性,并使一部分Trk1[K1147A]能够折叠。包含选择性过滤器的离子渗透路径部分的形状与离子通道相似。然而,在选择性过滤器下方,它被一个含脯氨酸的环阻塞或调节。所提出的模型可以为解决Trk1是被动还是主动离子转运系统这一长期存在的问题提供结构基础。

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