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通过七种脊椎动物水通道蛋白8亚型的同源建模对其进行结构预测。

A structural preview of aquaporin 8 via homology modeling of seven vertebrate isoforms.

作者信息

Kirscht Andreas, Sonntag Yonathan, Kjellbom Per, Johanson Urban

机构信息

Division of Biochemistry and Structural Biology, Center for Molecular Protein Science, Department of Chemistry, Lund University, Box 124, SE-221 00, Lund, Sweden.

出版信息

BMC Struct Biol. 2018 Feb 17;18(1):2. doi: 10.1186/s12900-018-0081-8.

Abstract

BACKGROUND

Aquaporins (AQPs) facilitate the passage of small neutral polar molecules across membranes of the cell. In animals there are four distinct AQP subfamilies, whereof AQP8 homologues constitute one of the smallest subfamilies with just one member in man. AQP8 conducts water, ammonia, urea, glycerol and HO through various membranes of animal cells. This passive channel has been connected to a number of phenomena, such as volume change of mitochondria, ammonia neurotoxicity, and mitochondrial dysfunction related to oxidative stress. Currently, there is no experimentally determined structure of an AQP8, hence the structural understanding of this subfamily is limited. The recently solved structure of the plant AQP, AtTIP2;1, which has structural and functional features in common with AQP8s, has opened up for construction of homology models that are likely to be more accurate than previous models.

RESULTS

Here we present homology models of seven vertebrate AQP8s. Modeling based on the AtTIP2;1 structure alone resulted in reasonable models except for the pore being blocked by a phenylalanine that is not present in AtTIP2;1. To achieve an open pore, these models were supplemented with models based on the bacterial water specific AQP, EcAqpZ, creating a chimeric monomeric model for each AQP8 isoform. The selectivity filter (also named the aromatic/arginine region), which defines the permeant substrate profile, comprises five amino acid residues in AtTIP2;1, including a histidine coming from loop C. Compared to AtTIP2;1, the selectivity filters of modelled AQP8s only deviates in that they are slightly more narrow and more hydrophobic due to a phenylalanine replacing the histidine from loop C. Interestingly, the models do not exclude the existence of a side pore beneath loop C similar to that described in the structure of AtTIP2;1.

CONCLUSIONS

Our models concur that AQP8s are likely to have an AtTIP2;1-like selectivity filter. The detailed description of the expected configuration of residues in the selectivity filters of AQP8s provides an excellent starting point for planning of as well as rationalizing the outcome of mutational studies. Our strategy to compile hybrid models based on several templates may prove useful also for other AQPs for which structural information is limited.

摘要

背景

水通道蛋白(AQPs)促进小的中性极性分子跨细胞膜运输。在动物中存在四个不同的水通道蛋白亚家族,其中水通道蛋白8(AQP8)同源物构成最小的亚家族之一,在人类中只有一个成员。AQP8可介导水、氨、尿素、甘油和过氧化氢通过动物细胞的各种膜。这种被动通道与许多现象有关,如线粒体体积变化、氨神经毒性以及与氧化应激相关的线粒体功能障碍。目前,尚无AQP8的实验测定结构,因此对该亚家族的结构了解有限。最近解析的植物水通道蛋白AtTIP2;1的结构与AQP8具有共同的结构和功能特征,这为构建可能比以前的模型更准确的同源模型开辟了道路。

结果

在此,我们展示了七种脊椎动物AQP8的同源模型。仅基于AtTIP2;1结构进行建模得到的模型较为合理,但存在一个问题,即孔被AtTIP2;1中不存在的苯丙氨酸堵塞。为了获得开放的孔,这些模型用基于细菌水特异性水通道蛋白EcAqpZ的模型进行补充,为每个AQP8异构体创建了一个嵌合单体模型。定义渗透底物谱的选择性过滤器(也称为芳香族/精氨酸区域)在AtTIP2;1中由五个氨基酸残基组成,包括一个来自环C的组氨酸。与AtTIP2;1相比,建模的AQP8的选择性过滤器仅在以下方面有所不同:由于苯丙氨酸取代了环C中的组氨酸,它们稍微更窄且更疏水。有趣的是,这些模型并不排除在环C下方存在类似于AtTIP2;1结构中描述的侧孔。

结论

我们的模型一致认为,AQP8可能具有类似AtTIP2;1的选择性过滤器。对AQP8选择性过滤器中预期残基构型的详细描述为规划突变研究以及合理化其结果提供了一个很好的起点。我们基于多个模板编译混合模型的策略可能对其他结构信息有限的水通道蛋白也有用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/680c/5816522/6245bede3df6/12900_2018_81_Fig1_HTML.jpg

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