Literature DB >> 10232700

Lessons on renal physiology from transgenic mice lacking aquaporin water channels.

A S Verkman1.   

Abstract

Several aquaporin-type water channels are expressed in kidney: AQP1 in the proximal tubule, thin descending limb of Henle, and vasa recta; AQP2, AQP3, and AQP4 in the collecting duct; AQP6 in the papilla; and AQP7 in the proximal tubule. AQP2 is the vasopressin-regulated water channel that is important in hereditary and acquired diseases affecting urine-concentrating ability. It has been difficult to establish the roles of the other aquaporins in renal physiology because suitable aquaporin inhibitors are not available. One approach to the problem has been to generate and analyze transgenic knockout mice in which individual aquaporins have been selectively deleted by targeted gene disruption. Phenotype analysis of kidney and extrarenal function in knockout mice has been very informative in defining the role of aquaporins in organ physiology and addressing basic questions regarding the route of transepithelial water transport and the mechanism of near iso-osmolar fluid reabsorption. This article describes new renal physiologic insights revealed by phenotype analysis of aquaporin-knockout mice and the prospects for further basic and clinical developments.

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Year:  1999        PMID: 10232700     DOI: 10.1681/ASN.V1051126

Source DB:  PubMed          Journal:  J Am Soc Nephrol        ISSN: 1046-6673            Impact factor:   10.121


  11 in total

1.  Mesoscopic surfactant organization and membrane protein crystallization.

Authors:  M C Wiener; A S Verkman; R M Stroud; A N van Hoek
Journal:  Protein Sci       Date:  2000-07       Impact factor: 6.725

Review 2.  Small bowel review: Normal physiology, part 1.

Authors:  Alan B R Thomson; Laurie Drozdowski; Claudiu Iordache; Ben K A Thomson; Severine Vermeire; M Tom Clandinin; Gary Wild
Journal:  Dig Dis Sci       Date:  2003-08       Impact factor: 3.199

3.  Functional implications of the three-dimensional architecture of the rat renal inner medulla.

Authors:  Anita T Layton; Thomas L Pannabecker; William H Dantzler; Harold E Layton
Journal:  Am J Physiol Renal Physiol       Date:  2010-01-06

4.  Isotonic transport by the Na+-glucose cotransporter SGLT1 from humans and rabbit.

Authors:  T Zeuthen; A K Meinild; D D Loo; E M Wright; D A Klaerke
Journal:  J Physiol       Date:  2001-03-15       Impact factor: 5.182

Review 5.  Aquaporin water channels in gastrointestinal physiology.

Authors:  T Ma; A S Verkman
Journal:  J Physiol       Date:  1999-06-01       Impact factor: 5.182

6.  Colon water transport in transgenic mice lacking aquaporin-4 water channels.

Authors:  K S Wang; T Ma; F Filiz; A S Verkman; J A Bastidas
Journal:  Am J Physiol Gastrointest Liver Physiol       Date:  2000-08       Impact factor: 4.052

Review 7.  Cell culture models and animal models for studying the patho-physiological role of renal aquaporins.

Authors:  G Tamma; G Procino; M Svelto; G Valenti
Journal:  Cell Mol Life Sci       Date:  2011-12-22       Impact factor: 9.261

8.  A bell-shaped pattern of urinary aquaporin-2-bearing extracellular vesicle release in an experimental model of nephronophthisis.

Authors:  Nobuyuki Mikoda; Hiroko Sonoda; Sayaka Oshikawa; Yuya Hoshino; Toshiyuki Matsuzaki; Masahiro Ikeda
Journal:  Physiol Rep       Date:  2019-05

Review 9.  Phosphoproteomic Identification of Vasopressin/cAMP/Protein Kinase A-Dependent Signaling in Kidney.

Authors:  Karim Salhadar; Allanah Matthews; Viswanathan Raghuram; Kavee Limbutara; Chin-Rang Yang; Arnab Datta; Chung-Lin Chou; Mark A Knepper
Journal:  Mol Pharmacol       Date:  2020-04-03       Impact factor: 4.436

10.  Novel Endothelial Cell-Specific AQP1 Knockout Mice Confirm the Crucial Role of Endothelial AQP1 in Ultrafiltration during Peritoneal Dialysis.

Authors:  Wei Zhang; Marc Freichel; Frank van der Hoeven; Peter Paul Nawroth; Hugo Katus; Florian Kälble; Edgar Zitron; Vedat Schwenger
Journal:  PLoS One       Date:  2016-01-13       Impact factor: 3.240

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