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水通道蛋白-2 突变体在肾性尿崩症中的结构与功能分析。

Structural and functional analysis of aquaporin-2 mutants involved in nephrogenic diabetes insipidus.

机构信息

Department of Biochemistry and Structural Biology, Lund University, Lund, Sweden.

Department of Biomedical Sciences, University of Copenhagen, Copenhagen, Denmark.

出版信息

Sci Rep. 2023 Sep 6;13(1):14674. doi: 10.1038/s41598-023-41616-1.

Abstract

Aquaporins are water channels found in the cell membrane, where they allow the passage of water molecules in and out of the cells. In the kidney collecting duct, arginine vasopressin-dependent trafficking of aquaporin-2 (AQP2) fine-tunes reabsorption of water from pre-urine, allowing precise regulation of the final urine volume. Point mutations in the gene for AQP2 may disturb this process and lead to nephrogenic diabetes insipidus (NDI), whereby patients void large volumes of highly hypo-osmotic urine. In recessive NDI, mutants of AQP2 are retained in the endoplasmic reticulum due to misfolding. Here we describe the structural and functional characterization of three AQP2 mutations associated with recessive NDI: T125M and T126M, situated close to a glycosylation site and A147T in the transmembrane region. Using a proteoliposome assay, we show that all three mutants permit the transport of water. The crystal structures of T125M and T126M together with biophysical characterization of all three mutants support that they retain the native structure, but that there is a significant destabilization of A147T. Our work provides unique molecular insights into the mechanisms behind recessive NDI as well as deepens our understanding of how misfolded proteins are recognized by the ER quality control system.

摘要

水通道蛋白是位于细胞膜上的水分子通道,允许水分子在细胞内外自由通过。在肾脏集合管中,精氨酸加压素依赖性的水通道蛋白-2(AQP2)运输精细地调节了从原尿中重吸收水分,从而精确调节终尿体积。AQP2 基因的点突变可能会干扰这个过程,导致肾性尿崩症(NDI),患者会排出大量高度低渗的尿液。在隐性 NDI 中,由于错误折叠,AQP2 的突变体滞留在内质网中。在这里,我们描述了与隐性 NDI 相关的三种 AQP2 突变体的结构和功能特征:T125M 和 T126M,位于靠近糖基化位点的位置,以及跨膜区域的 A147T。通过使用蛋白脂质体测定法,我们表明所有三种突变体都允许水的运输。T125M 和 T126M 的晶体结构以及所有三种突变体的生物物理特性表明它们保留了天然结构,但 A147T 明显失稳。我们的工作为隐性 NDI 的机制提供了独特的分子见解,并加深了我们对错误折叠蛋白如何被内质网质量控制系统识别的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ccb2/10482962/434cc3f5c2c7/41598_2023_41616_Fig1_HTML.jpg

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