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Published in: Diabetologia 3/2008

01-03-2008 | Commentary

Candidate gene studies reveal that the WFS1 gene joins the expanding list of novel type 2 diabetes genes

Authors: J. Wasson, M. A. Permutt

Published in: Diabetologia | Issue 3/2008

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Excerpt

Wolfram syndrome, originally described in 1938, is a rare, autosomal recessive disease that is characterised by young onset insulin-dependent diabetes, progressive sensorineural deafness, diabetes insipidus, autonomic nervous system dysfunction and, ultimately, brainstem atrophy and premature death [1]. The Wolfram gene (WFS1), which encodes wolframin, was mapped to chromosome 4p in families with multiple affected individuals [2], and cloned in 1998 [3]. Wolframin is a protein of 890 amino acids that is produced in a wide variety of tissues, most prominently in pancreatic beta cells and brain. Over 100 missense and non-sense mutations have been described patients. As these mutations are associated with a non-immune loss of beta cells and diabetes, the gene was subsequently evaluated in more common forms of diabetes. …
Literature
1.
go back to reference Minton JA, Rainbow LA, Ricketts C, Barrett TG (2003) Wolfram syndrome. Rev Endocr Metab Disord 4:53–59PubMedCrossRef Minton JA, Rainbow LA, Ricketts C, Barrett TG (2003) Wolfram syndrome. Rev Endocr Metab Disord 4:53–59PubMedCrossRef
2.
go back to reference Polymeropoulos MH, Swift RG, Swift M (1994) Linkage of the gene for Wolfram syndrome to markers on the short arm of chromosome 4. Nat Genet 8:95–97PubMedCrossRef Polymeropoulos MH, Swift RG, Swift M (1994) Linkage of the gene for Wolfram syndrome to markers on the short arm of chromosome 4. Nat Genet 8:95–97PubMedCrossRef
3.
go back to reference Inoue H, Tanizawa Y, Wasson J et al (1998) A gene encoding a transmembrane protein is mutated in patients with diabetes mellitus and optic atrophy (Wolfram syndrome). Nat Genet 20:143–148PubMedCrossRef Inoue H, Tanizawa Y, Wasson J et al (1998) A gene encoding a transmembrane protein is mutated in patients with diabetes mellitus and optic atrophy (Wolfram syndrome). Nat Genet 20:143–148PubMedCrossRef
4.
go back to reference Barrett TG (2007) Differential diagnosis of type 1 diabetes: which genetic syndromes need to be considered? Pediatr Diabetes 8(Suppl 6):15–23PubMedCrossRef Barrett TG (2007) Differential diagnosis of type 1 diabetes: which genetic syndromes need to be considered? Pediatr Diabetes 8(Suppl 6):15–23PubMedCrossRef
5.
go back to reference Minton JA, Hattersley AT, Owen K et al (2002) Association studies of genetic variation in the WFS1 gene and type 2 diabetes in U.K. populations. Diabetes 51:1287–1290PubMedCrossRef Minton JA, Hattersley AT, Owen K et al (2002) Association studies of genetic variation in the WFS1 gene and type 2 diabetes in U.K. populations. Diabetes 51:1287–1290PubMedCrossRef
6.
go back to reference Sandhu MS, Weedon MN, Fawcett KA et al (2007) Common variants in WFS1 confer risk of type 2 diabetes. Nat Genet 39:951–953PubMedCrossRef Sandhu MS, Weedon MN, Fawcett KA et al (2007) Common variants in WFS1 confer risk of type 2 diabetes. Nat Genet 39:951–953PubMedCrossRef
7.
go back to reference Franks PW, Rolandsson O, Debenham SL et al (2008) Replication of the association between variants in WFS1 and risk of type 2 diabetes in European populations. Diabetologia (in press) DOI 10.1007/s00125-007-0887-6 Franks PW, Rolandsson O, Debenham SL et al (2008) Replication of the association between variants in WFS1 and risk of type 2 diabetes in European populations. Diabetologia (in press) DOI 10.​1007/​s00125-007-0887-6
8.
go back to reference Saxena R, Voight BF, Lyssenko V et al (2007) Genome-wide association analysis identifies loci for type 2 diabetes and triglyceride levels. Science 316:1331–1336PubMedCrossRef Saxena R, Voight BF, Lyssenko V et al (2007) Genome-wide association analysis identifies loci for type 2 diabetes and triglyceride levels. Science 316:1331–1336PubMedCrossRef
9.
go back to reference Scott LJ, Mohlke KL, Bonnycastle LL et al (2007) A genome-wide association study of type 2 diabetes in Finns detects multiple susceptibility variants. Science 316:1341–1345PubMedCrossRef Scott LJ, Mohlke KL, Bonnycastle LL et al (2007) A genome-wide association study of type 2 diabetes in Finns detects multiple susceptibility variants. Science 316:1341–1345PubMedCrossRef
10.
go back to reference Sladek R, Rocheleau G, Rung J et al (2007) A genome-wide association study identifies novel risk loci for type 2 diabetes. Nature 445:881–885PubMedCrossRef Sladek R, Rocheleau G, Rung J et al (2007) A genome-wide association study identifies novel risk loci for type 2 diabetes. Nature 445:881–885PubMedCrossRef
11.
go back to reference Florez JC, Jablonski KA, McAteer J et al (2008) Testing of diabetes-associated WFS1 polymorphisms in the Diabetes Prevention Program. Diabetologia (in press) DOI 10.1007/s00125-007-0891-x Florez JC, Jablonski KA, McAteer J et al (2008) Testing of diabetes-associated WFS1 polymorphisms in the Diabetes Prevention Program. Diabetologia (in press) DOI 10.1007/s00125-007-0891-x
12.
go back to reference Hofmann S, Philbrook C, Gerbitz KD, Bauer MF (2003) Wolfram syndrome: structural and functional analyses of mutant and wild-type wolframin, the WFS1 gene product. Hum Mol Genet 12:2003–2012PubMedCrossRef Hofmann S, Philbrook C, Gerbitz KD, Bauer MF (2003) Wolfram syndrome: structural and functional analyses of mutant and wild-type wolframin, the WFS1 gene product. Hum Mol Genet 12:2003–2012PubMedCrossRef
13.
go back to reference Osman AA, Saito M, Makepeace C et al (2003) Wolframin expression induces novel ion channel activity in endoplasmic reticulum membranes and increases intracellular calcium. J Biol Chem 278:52755–52762PubMedCrossRef Osman AA, Saito M, Makepeace C et al (2003) Wolframin expression induces novel ion channel activity in endoplasmic reticulum membranes and increases intracellular calcium. J Biol Chem 278:52755–52762PubMedCrossRef
14.
go back to reference Riggs AC, Bernal-Mizrachi E, Ohsugi M et al (2005) Mice conditionally lacking the Wolfram gene in pancreatic islet beta cells exhibit diabetes as a result of enhanced endoplasmic reticulum stress and apoptosis. Diabetologia 48:2313–2321PubMedCrossRef Riggs AC, Bernal-Mizrachi E, Ohsugi M et al (2005) Mice conditionally lacking the Wolfram gene in pancreatic islet beta cells exhibit diabetes as a result of enhanced endoplasmic reticulum stress and apoptosis. Diabetologia 48:2313–2321PubMedCrossRef
15.
go back to reference Ueda K, Kawano J, Takeda K et al (2005) Endoplasmic reticulum stress induces Wfs1 gene expression in pancreatic beta-cells via transcriptional activation. Eur J Endocrinol 153:167–176PubMedCrossRef Ueda K, Kawano J, Takeda K et al (2005) Endoplasmic reticulum stress induces Wfs1 gene expression in pancreatic beta-cells via transcriptional activation. Eur J Endocrinol 153:167–176PubMedCrossRef
16.
go back to reference Lipson KL, Fonseca SG, Ishigaki S et al (2006) Regulation of insulin biosynthesis in pancreatic beta cells by an endoplasmic reticulum-resident protein kinase IRE1. Cell Metab 4:245–254PubMedCrossRef Lipson KL, Fonseca SG, Ishigaki S et al (2006) Regulation of insulin biosynthesis in pancreatic beta cells by an endoplasmic reticulum-resident protein kinase IRE1. Cell Metab 4:245–254PubMedCrossRef
17.
go back to reference Harding HP, Zeng H, Zhang Y et al (2001) Diabetes mellitus and exocrine pancreatic dysfunction in Perk−/− mice reveals a role for translational control in secretory cell survival. Mol Cell 7:1153–1163PubMedCrossRef Harding HP, Zeng H, Zhang Y et al (2001) Diabetes mellitus and exocrine pancreatic dysfunction in Perk−/− mice reveals a role for translational control in secretory cell survival. Mol Cell 7:1153–1163PubMedCrossRef
18.
go back to reference Senee V, Vattem KM, Delepine M et al (2004) Wolcott–Rallison syndrome: clinical, genetic, and functional study of EIF2AK3 mutations and suggestion of genetic heterogeneity. Diabetes 53:1876–1883PubMedCrossRef Senee V, Vattem KM, Delepine M et al (2004) Wolcott–Rallison syndrome: clinical, genetic, and functional study of EIF2AK3 mutations and suggestion of genetic heterogeneity. Diabetes 53:1876–1883PubMedCrossRef
19.
go back to reference Ishihara H, Takeda S, Tamura A et al (2004) Disruption of the WFS1 gene in mice causes progressive beta-cell loss and impaired stimulus-secretion coupling in insulin secretion. Hum Mol Genet 13:1159–1170PubMedCrossRef Ishihara H, Takeda S, Tamura A et al (2004) Disruption of the WFS1 gene in mice causes progressive beta-cell loss and impaired stimulus-secretion coupling in insulin secretion. Hum Mol Genet 13:1159–1170PubMedCrossRef
Metadata
Title
Candidate gene studies reveal that the WFS1 gene joins the expanding list of novel type 2 diabetes genes
Authors
J. Wasson
M. A. Permutt
Publication date
01-03-2008
Publisher
Springer-Verlag
Published in
Diabetologia / Issue 3/2008
Print ISSN: 0012-186X
Electronic ISSN: 1432-0428
DOI
https://doi.org/10.1007/s00125-007-0920-9

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