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水通道蛋白的隐藏复杂性:常见结构支架中的显著细节。

The Hidden Intricacies of Aquaporins: Remarkable Details in a Common Structural Scaffold.

机构信息

Institute of Biophysics, Johannes Kepler University Linz, Gruberstr. 40, Linz, 4020, Austria.

Stuttgart Center for Simulation Science, University of Stuttgart, Cluster of Excellence EXC 2075, Universitätsstr. 32, 70569, Stuttgart, Germany.

出版信息

Small. 2022 Aug;18(31):e2202056. doi: 10.1002/smll.202202056. Epub 2022 Jul 8.

Abstract

Evolution turned aquaporins (AQPs) into the most efficient facilitators of passive water flow through cell membranes at no expense of solute discrimination. In spite of a plethora of solved AQP structures, many structural details remain hidden. Here, by combining extensive sequence- and structural-based analysis of a unique set of 20 non-redundant high-resolution structures and molecular dynamics simulations of four representatives, key aspects of AQP stability, gating, selectivity, pore geometry, and oligomerization, with a potential impact on channel functionality, are identified. The general view of AQPs possessing a continuous open water pore is challenged and it is depicted that AQPs' selectivity is not exclusively shaped by pore-lining residues but also by the relative arrangement of transmembrane helices. Moreover, this analysis reveals that hydrophobic interactions constitute the main determinant of protein thermal stability. Finally, a numbering scheme of the conserved AQP scaffold is established, facilitating direct comparison of, for example, disease-causing mutations and prediction of potential structural consequences. Additionally, the results pave the way for the design of optimized AQP water channels to be utilized in biotechnological applications.

摘要

进化使水通道蛋白(AQPs)成为通过细胞膜被动运输水的最有效促进剂,而不会牺牲溶质的选择性。尽管已经解决了大量的 AQP 结构,但仍有许多结构细节不为人知。在这里,通过对一组独特的 20 个非冗余高分辨率结构进行广泛的序列和结构分析,并对四个代表进行分子动力学模拟,确定了 AQP 稳定性、门控、选择性、孔几何形状和寡聚化的关键方面,这些方面可能会影响通道功能。挑战了普遍认为 AQPs 具有连续开放水孔的观点,并描绘了 AQPs 的选择性不仅由孔衬残基塑造,还由跨膜螺旋的相对排列塑造。此外,该分析表明疏水性相互作用是蛋白质热稳定性的主要决定因素。最后,建立了保守的 AQP 支架编号方案,便于直接比较,例如,致病突变和预测潜在的结构后果。此外,该结果为设计优化的 AQP 水通道以用于生物技术应用铺平了道路。

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