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水通道蛋白的发现:肾脏水转运研究的一项突破。

Discovery of aquaporins: a breakthrough in research on renal water transport.

作者信息

van Lieburg A F, Knoers N V, Deen P M

机构信息

Department of Paediatrics, University of Nijmegen, The Netherlands.

出版信息

Pediatr Nephrol. 1995 Apr;9(2):228-34. doi: 10.1007/BF00860757.

DOI:10.1007/BF00860757
PMID:7540850
Abstract

Several membranes of the kidney are highly water permeable, thereby enabling this organ to retain large quantities of water. Recently, the molecular identification of water channels responsible for this high water permeability has finally been accomplished. At present, four distinct renal water channels have been identified, all members of the family of major intrinsic proteins. Aquaporin 1 (AQP1), aquaporin 2 (AQP2) and the mercury-insensitive water channel (MIWC) are water-selective channel proteins, whereas the fourth, referred to as aquaporin 3 (AQP3), permits transport of urea and glycerol as well. Furthermore, a putative renal water channel (WCH3) has been found. AQP1 is expressed in apical and basolateral membranes of proximal tubules and descending limbs of Henle, AQP2 predominantly in apical membranes of principal and inner medullary collecting duct cells and AQP3 in basolateral membranes of kidney collecting duct cells. MIWC is expressed in the inner medulla of the kidney and has been suggested to be localised in the vasa recta. The human genes encoding AQP1 and AQP2 have been cloned, permitting deduction of their amino acid sequence, prediction of their two-dimensional structure by hydropathy analysis, speculations on their way of functioning and DNA analysis in patients with diseases possibly caused by mutant aquaporins. Mutations in the AQP1 gene were recently detected in clinically normal individuals, a finding which contradicts the presumed vital importance of this protein. Mutations in the AQP2 gene were shown to cause autosomal recessive nephrogenic diabetes insipidus. The renal unresponsiveness to arginine vasopressin, which characterises this disease, is in accordance with the assumption that AQP2 is the effector protein of the renal vasopressin pathway.(ABSTRACT TRUNCATED AT 250 WORDS)

摘要

肾脏的几层膜具有高度的水渗透性,从而使该器官能够保留大量水分。最近,终于完成了对负责这种高水渗透性的水通道的分子鉴定。目前,已鉴定出四种不同的肾水通道,它们都是主要内在蛋白家族的成员。水通道蛋白1(AQP1)、水通道蛋白2(AQP2)和汞不敏感水通道(MIWC)是水选择性通道蛋白,而第四种,即水通道蛋白3(AQP3),还允许尿素和甘油的转运。此外,还发现了一种推定的肾水通道(WCH3)。AQP1在近端小管的顶端和基底外侧膜以及髓袢降支中表达,AQP2主要在主细胞和髓质内集合管细胞的顶端膜中表达,AQP3在肾集合管细胞的基底外侧膜中表达。MIWC在肾内髓质中表达,有人认为它位于直小血管中。编码AQP1和AQP2的人类基因已被克隆,从而可以推导它们的氨基酸序列,通过亲水性分析预测它们的二维结构,推测它们的功能方式,并对可能由突变水通道蛋白引起疾病的患者进行DNA分析。最近在临床正常个体中检测到AQP1基因的突变,这一发现与该蛋白假定的至关重要性相矛盾。已表明AQP2基因的突变会导致常染色体隐性遗传性肾性尿崩症。该疾病的特征是肾脏对精氨酸加压素无反应,这与AQP2是肾脏加压素途径的效应蛋白这一假设相符。(摘要截短于250字)

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Fourfold reduction of water permeability in inner medullary collecting duct of aquaporin-4 knockout mice.水通道蛋白-4基因敲除小鼠髓质内集合管水通透性降低四倍。
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Importance of the mercury-sensitive cysteine on function and routing of AQP1 and AQP2 in oocytes.汞敏感半胱氨酸对卵母细胞中AQP1和AQP2功能及转运途径的重要性。
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本文引用的文献

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Water transport mechanisms: water movement through lipid bilayers, pores, and plasma membranes.水运输机制:水通过脂质双层、孔道和质膜的移动。
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The vacuolar membrane protein gamma-TIP creates water specific channels in Xenopus oocytes.液泡膜蛋白γ-TIP在非洲爪蟾卵母细胞中形成水特异性通道。
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ILK and cytoskeletal architecture: an important determinant of AQP2 recycling and subsequent entry into the exocytotic pathway.整合素连接激酶与细胞骨架结构:水通道蛋白2再循环及随后进入胞吐途径的重要决定因素。
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Diabetes insipidus.尿崩症
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Concurrent expression of erythroid and renal aquaporin CHIP and appearance of water channel activity in perinatal rats.围产期大鼠中红细胞和肾脏水通道蛋白CHIP的共表达及水通道活性的出现
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