Literature DB >> 11536078

Three families with autosomal dominant nephrogenic diabetes insipidus caused by aquaporin-2 mutations in the C-terminus.

M Kuwahara1, K Iwai, T Ooeda, T Igarashi, E Ogawa, Y Katsushima, I Shinbo, S Uchida, Y Terada, M F Arthus, M Lonergan, T M Fujiwara, D G Bichet, F Marumo, S Sasaki.   

Abstract

The vasopressin-regulated water channel aquaporin-2 (AQP2) is known to tetramerize in the apical membrane of the renal tubular cells and contributes to urine concentration. We identified three novel mutations, each in a single allele of exon 4 of the AQP2 gene, in three families showing autosomal dominant nephrogenic diabetes insipidus (NDI). These mutations were found in the C-terminus of AQP2: a deletion of G at nucleotide 721 (721 delG), a deletion of 10 nucleotides starting at nucleotide 763 (763-772del), and a deletion of 7 nucleotides starting at nucleotide 812 (812-818del). The wild-type AQP2 is predicted to be a 271-amino acid protein, whereas these mutant genes are predicted to encode proteins that are 330-333 amino acids in length, because of the frameshift mutations. Interestingly, these three mutant AQP2s shared the same C-terminal tail of 61 amino acids. In Xenopus oocytes injected with mutant AQP2 cRNAs, the osmotic water permeability (Pf) was much smaller than that of oocytes with the AQP2 wild-type (14%-17%). Immunoblot analysis of the lysates of the oocytes expressing the mutant AQP2s detected a band at 34 kD, whereas the immunoblot of the plasma-membrane fractions of the oocytes and immunocytochemistry failed to show a significant surface expression, suggesting a defect in trafficking of these mutant proteins. Furthermore, coinjection of wild-type cRNAs with mutant cRNAs markedly decreased the oocyte Pf in parallel with the surface expression of the wild-type AQP2. Immunoprecipitation with antibodies against wild-type and mutant AQP2 indicated the formation of mixed oligomers composed of wild-type and mutant AQP2 monomers. Our results suggest that the trafficking of mutant AQP2 is impaired because of elongation of the C-terminal tail, and the dominant-negative effect is attributed to oligomerization of the wild-type and mutant AQP2s. Segregation of the mutations in the C-terminus of AQP2 with dominant-type NDI underlies the importance of this domain in the intracellular trafficking of AQP2.

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Year:  2001        PMID: 11536078      PMCID: PMC1226060          DOI: 10.1086/323643

Source DB:  PubMed          Journal:  Am J Hum Genet        ISSN: 0002-9297            Impact factor:   11.025


  35 in total

1.  Functional analysis of aquaporin-2 mutants associated with nephrogenic diabetes insipidus by yeast expression.

Authors:  I Shinbo; K Fushimi; M Kasahara; K Yamauchi; S Sasaki; F Marumo
Journal:  Am J Physiol       Date:  1999-11

2.  Intracellular protein trafficking defects in human disease.

Authors:  J F Amara; S H Cheng; A E Smith
Journal:  Trends Cell Biol       Date:  1992-05       Impact factor: 20.808

3.  Report of 33 novel AVPR2 mutations and analysis of 117 families with X-linked nephrogenic diabetes insipidus.

Authors:  Marie-Françoise Arthus; Michèle Lonergan; M Joyce Crumley; Anna K Naumova; Denis Morin; Luiz A DE Marco; Bernard S Kaplan; Gary L Robertson; Sei Sasaki; Kenneth Morgan; Daniel G Bichet; T Mary Fujiwara
Journal:  J Am Soc Nephrol       Date:  2000-06       Impact factor: 10.121

4.  Molecular structure of the water channel through aquaporin CHIP. The hourglass model.

Authors:  J S Jung; G M Preston; B L Smith; W B Guggino; P Agre
Journal:  J Biol Chem       Date:  1994-05-20       Impact factor: 5.157

5.  The three-dimensional structure of aquaporin-1.

Authors:  T Walz; T Hirai; K Murata; J B Heymann; K Mitsuoka; Y Fujiyoshi; B L Smith; P Agre; A Engel
Journal:  Nature       Date:  1997-06-05       Impact factor: 49.962

6.  Cleavage of structural proteins during the assembly of the head of bacteriophage T4.

Authors:  U K Laemmli
Journal:  Nature       Date:  1970-08-15       Impact factor: 49.962

7.  Requirement of human renal water channel aquaporin-2 for vasopressin-dependent concentration of urine.

Authors:  P M Deen; M A Verdijk; N V Knoers; B Wieringa; L A Monnens; C H van Os; B A van Oost
Journal:  Science       Date:  1994-04-01       Impact factor: 47.728

8.  Novel mutations in aquaporin-2 gene in female siblings with nephrogenic diabetes insipidus: evidence of disrupted water channel function.

Authors:  K Goji; M Kuwahara; Y Gu; M Matsuo; F Marumo; S Sasaki
Journal:  J Clin Endocrinol Metab       Date:  1998-09       Impact factor: 5.958

9.  Cloning, characterization, and chromosomal mapping of human aquaporin of collecting duct.

Authors:  S Sasaki; K Fushimi; H Saito; F Saito; S Uchida; K Ishibashi; M Kuwahara; T Ikeuchi; K Inui; K Nakajima
Journal:  J Clin Invest       Date:  1994-03       Impact factor: 14.808

10.  Expression of VAMP-2-like protein in kidney collecting duct intracellular vesicles. Colocalization with Aquaporin-2 water channels.

Authors:  S Nielsen; D Marples; H Birn; M Mohtashami; N O Dalby; M Trimble; M Knepper
Journal:  J Clin Invest       Date:  1995-10       Impact factor: 14.808

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  39 in total

1.  Nephrogenic diabetes insipidus in mice caused by deleting COOH-terminal tail of aquaporin-2.

Authors:  Peijun P Shi; Xiao R Cao; Jing Qu; Ken A Volk; Patricia Kirby; Roger A Williamson; John B Stokes; Baoli Yang
Journal:  Am J Physiol Renal Physiol       Date:  2007-01-16

2.  Dominant-negative suppression of big brain ion channel activity by mutation of a conserved glutamate in the first transmembrane domain.

Authors:  Andrea J Yool
Journal:  Gene Expr       Date:  2007

Review 3.  Aquaporins in kidney pathophysiology.

Authors:  Yumi Noda; Eisei Sohara; Eriko Ohta; Sei Sasaki
Journal:  Nat Rev Nephrol       Date:  2010-01-26       Impact factor: 28.314

Review 4.  Dynamic regulation and dysregulation of the water channel aquaporin-2: a common cause of and promising therapeutic target for water balance disorders.

Authors:  Yumi Noda
Journal:  Clin Exp Nephrol       Date:  2013-10-16       Impact factor: 2.801

Review 5.  Mechanisms of cell polarity and aquaporin sorting in the nephron.

Authors:  Bayram Edemir; Hermann Pavenstädt; Eberhard Schlatter; Thomas Weide
Journal:  Pflugers Arch       Date:  2011-02-16       Impact factor: 3.657

Review 6.  Congenital nephrogenic diabetes insipidus: the current state of affairs.

Authors:  Daniel Wesche; Peter M T Deen; Nine V A M Knoers
Journal:  Pediatr Nephrol       Date:  2012-03-17       Impact factor: 3.714

Review 7.  Familial forms of diabetes insipidus: clinical and molecular characteristics.

Authors:  Muriel Babey; Peter Kopp; Gary L Robertson
Journal:  Nat Rev Endocrinol       Date:  2011-07-05       Impact factor: 43.330

8.  Clinical characteristics of eight patients with congenital nephrogenic diabetes insipidus.

Authors:  Haruo Mizuno; Yukari Sugiyama; Yoichiro Ohro; Hiroki Imamine; Masanori Kobayashi; Sei Sasaki; Sinichi Uchida; Hajime Togari
Journal:  Endocrine       Date:  2004-06       Impact factor: 3.633

9.  Two novel mutations in the aquaporin 2 gene in a girl with congenital nephrogenic diabetes insipidus.

Authors:  Hae Il Cheong; Su Jin Cho; Shou Huan Zheng; Hee Yeon Cho; Il Soo Ha; Yong Choi
Journal:  J Korean Med Sci       Date:  2005-12       Impact factor: 2.153

10.  Hereditary nephrogenic diabetes insipidus in Japanese patients: analysis of 78 families and report of 22 new mutations in AVPR2 and AQP2.

Authors:  Sei Sasaki; Motoko Chiga; Eriko Kikuchi; Tatemitsu Rai; Shinichi Uchida
Journal:  Clin Exp Nephrol       Date:  2012-11-14       Impact factor: 2.801

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