Skip to main content
Top
Published in: Diabetologia 4/2008

Open Access 01-04-2008 | Article

Best practice guidelines for the molecular genetic diagnosis of maturity-onset diabetes of the young

Authors: S. Ellard, C. Bellanné-Chantelot, A. T. Hattersley, European Molecular Genetics Quality Network (EMQN) MODY group

Published in: Diabetologia | Issue 4/2008

Login to get access

Abstract

Aims/hypothesis

Mutations in the GCK and HNF1A genes are the most common cause of the monogenic forms of diabetes known as ‘maturity-onset diabetes of the young’. GCK encodes the glucokinase enzyme, which acts as the pancreatic glucose sensor, and mutations result in stable, mild fasting hyperglycaemia. A progressive insulin secretory defect is seen in patients with mutations in the HNF1A and HNF4A genes encoding the transcription factors hepatocyte nuclear factor-1 alpha and -4 alpha. A molecular genetic diagnosis often changes management, since patients with GCK mutations rarely require pharmacological treatment and HNF1A/4A mutation carriers are sensitive to sulfonylureas. These monogenic forms of diabetes are often misdiagnosed as type 1 or 2 diabetes. Best practice guidelines for genetic testing were developed to guide testing and reporting of results.

Methods

A workshop was held to discuss clinical criteria for testing and the interpretation of molecular genetic test results. The participants included 22 clinicians and scientists from 13 countries. Draft best practice guidelines were formulated and edited using an online tool (http://​www.​coventi.​com).

Results

An agreed set of clinical criteria were defined for the testing of babies, children and adults for GCK, HNF1A and HNF4A mutations. Reporting scenarios were discussed and consensus statements produced.

Conclusions/interpretation

Best practice guidelines have been established for monogenic forms of diabetes caused by mutations in the GCK, HNF1A and HNF4A genes. The guidelines include both diagnostic and predictive genetic tests and interpretation of the results.
Appendix
Available only for authorised users
Literature
1.
go back to reference Tattersall RB (1974) Mild familial diabetes with dominant inheritance. Q J Med 43:339–357PubMed Tattersall RB (1974) Mild familial diabetes with dominant inheritance. Q J Med 43:339–357PubMed
2.
go back to reference Tattersall RB, Fajans SS (1975) A difference between the inheritance of classical juvenile-onset and maturity-onset type diabetes of young people. Diabetes 24:44–53PubMedCrossRef Tattersall RB, Fajans SS (1975) A difference between the inheritance of classical juvenile-onset and maturity-onset type diabetes of young people. Diabetes 24:44–53PubMedCrossRef
3.
go back to reference Frayling TM, Evans JC, Bulman MP et al (2001) Beta-cell genes and diabetes: molecular and clinical characterization of mutations in transcription factors. Diabetes 50(Suppl 1):S94–S100PubMedCrossRef Frayling TM, Evans JC, Bulman MP et al (2001) Beta-cell genes and diabetes: molecular and clinical characterization of mutations in transcription factors. Diabetes 50(Suppl 1):S94–S100PubMedCrossRef
4.
go back to reference Lenderman H (1995) Is maturity-onset diabetes at young age (MODY) more common in Europe than previously assumed? Lancet 345:648CrossRef Lenderman H (1995) Is maturity-onset diabetes at young age (MODY) more common in Europe than previously assumed? Lancet 345:648CrossRef
5.
go back to reference American Diabetes Association (2007) Diagnosis and classification of diabetes mellitus. Diabetes Care 30(Suppl 1):S42–S47CrossRef American Diabetes Association (2007) Diagnosis and classification of diabetes mellitus. Diabetes Care 30(Suppl 1):S42–S47CrossRef
6.
go back to reference Gill-Carey O, Shields B, Colclough K, Ellard S, Hattersley AT (2007) Finding a glucokinase mutation alters patient treatment. Diabet Med 24(Suppl 1):6 (Abstract) Gill-Carey O, Shields B, Colclough K, Ellard S, Hattersley AT (2007) Finding a glucokinase mutation alters patient treatment. Diabet Med 24(Suppl 1):6 (Abstract)
7.
go back to reference Schnyder S, Mullis P, Ellard S, Hattersley A, Fluck C (2005) Genetic testing for glucokinase mutations in clinically selected patients with MODY: a worthwhile investment. Swiss Med Wkly 135:352–356PubMed Schnyder S, Mullis P, Ellard S, Hattersley A, Fluck C (2005) Genetic testing for glucokinase mutations in clinically selected patients with MODY: a worthwhile investment. Swiss Med Wkly 135:352–356PubMed
8.
go back to reference Spyer G, Hattersley AT, Sykes JE, Sturley RH, MacLeod KM (2001) Influence of maternal and fetal glucokinase mutations in gestational diabetes. Am J Obstet Gynecol 185:240–241PubMedCrossRef Spyer G, Hattersley AT, Sykes JE, Sturley RH, MacLeod KM (2001) Influence of maternal and fetal glucokinase mutations in gestational diabetes. Am J Obstet Gynecol 185:240–241PubMedCrossRef
9.
go back to reference Pearson ER, Starkey BJ, Powell RJ, Gribble FM, Clark PM, Hattersley AT (2003) Genetic cause of hyperglycaemia and response to treatment in diabetes. Lancet 362:1275–1281PubMedCrossRef Pearson ER, Starkey BJ, Powell RJ, Gribble FM, Clark PM, Hattersley AT (2003) Genetic cause of hyperglycaemia and response to treatment in diabetes. Lancet 362:1275–1281PubMedCrossRef
10.
go back to reference Shepherd M, Pearson ER, Houghton J, Salt G, Ellard S, Hattersley AT (2003) No deterioration in glycemic control in HNF-1alpha maturity-onset diabetes of the young following transfer from long-term insulin to sulphonylureas. Diabetes Care 26:3191–3192PubMedCrossRef Shepherd M, Pearson ER, Houghton J, Salt G, Ellard S, Hattersley AT (2003) No deterioration in glycemic control in HNF-1alpha maturity-onset diabetes of the young following transfer from long-term insulin to sulphonylureas. Diabetes Care 26:3191–3192PubMedCrossRef
11.
go back to reference Menzel R, Kaisaki PJ, Rjasanowski I, Heinke P, Kerner W, Menzel S (1998) A low renal threshold for glucose in diabetic patients with a mutation in the hepatocyte nuclear factor-1alpha (HNF-1alpha) gene. Diabet Med 15:816–820PubMedCrossRef Menzel R, Kaisaki PJ, Rjasanowski I, Heinke P, Kerner W, Menzel S (1998) A low renal threshold for glucose in diabetic patients with a mutation in the hepatocyte nuclear factor-1alpha (HNF-1alpha) gene. Diabet Med 15:816–820PubMedCrossRef
12.
go back to reference Stride A, Ellard S, Clark P et al (2005) Beta-cell dysfunction, insulin sensitivity, and glycosuria precede diabetes in hepatocyte nuclear factor-1alpha mutation carriers. Diabetes Care 28:1751–1756PubMedCrossRef Stride A, Ellard S, Clark P et al (2005) Beta-cell dysfunction, insulin sensitivity, and glycosuria precede diabetes in hepatocyte nuclear factor-1alpha mutation carriers. Diabetes Care 28:1751–1756PubMedCrossRef
13.
go back to reference Ellard S, Colclough K (2006) Mutations in the genes encoding the transcription factors hepatocyte nuclear factor 1 alpha (HNF1A) and 4 alpha (HNF4A) in maturity-onset diabetes of the young. Hum Mutat 27:854–869PubMedCrossRef Ellard S, Colclough K (2006) Mutations in the genes encoding the transcription factors hepatocyte nuclear factor 1 alpha (HNF1A) and 4 alpha (HNF4A) in maturity-onset diabetes of the young. Hum Mutat 27:854–869PubMedCrossRef
14.
go back to reference Gloyn AL (2003) Glucokinase (GCK) mutations in hyper- and hypoglycemia: maturity-onset diabetes of the young, permanent neonatal diabetes, and hyperinsulinemia of infancy. Hum Mutat 22:353–362PubMedCrossRef Gloyn AL (2003) Glucokinase (GCK) mutations in hyper- and hypoglycemia: maturity-onset diabetes of the young, permanent neonatal diabetes, and hyperinsulinemia of infancy. Hum Mutat 22:353–362PubMedCrossRef
15.
go back to reference Ellard S, Thomas K, Edghill EL et al (2007) Partial and whole gene deletion mutations of the GCK and HNF1A genes in maturity-onset diabetes of the young. Diabetologia 50:2313–2317PubMedCrossRef Ellard S, Thomas K, Edghill EL et al (2007) Partial and whole gene deletion mutations of the GCK and HNF1A genes in maturity-onset diabetes of the young. Diabetologia 50:2313–2317PubMedCrossRef
16.
go back to reference Bellanné-Chantelot C, Carette C, Riveline J et al (2008) The type and the position of HNF1A mutation modulate age at diagnosis of diabetes in patients with maturity-onset diabetes of the young (MODY)-3 Diabetes 57:503–508 Bellanné-Chantelot C, Carette C, Riveline J et al (2008) The type and the position of HNF1A mutation modulate age at diagnosis of diabetes in patients with maturity-onset diabetes of the young (MODY)-3 Diabetes 57:503–508
17.
go back to reference Harries LW, Ellard S, Stride A, Morgan NG, Hattersley AT (2006) Isomers of the TCF1 gene encoding hepatocyte nuclear factor-1 alpha show differential expression in the pancreas and define the relationship between mutation position and clinical phenotype in monogenic diabetes. Hum Mol Genet 15:2216–2224PubMedCrossRef Harries LW, Ellard S, Stride A, Morgan NG, Hattersley AT (2006) Isomers of the TCF1 gene encoding hepatocyte nuclear factor-1 alpha show differential expression in the pancreas and define the relationship between mutation position and clinical phenotype in monogenic diabetes. Hum Mol Genet 15:2216–2224PubMedCrossRef
18.
go back to reference Cockburn BN, Bermano G, Boodram LL et al (2004) Insulin promoter factor-1 mutations and diabetes in Trinidad: identification of a novel diabetes-associated mutation (E224K) in an Indo-Trinidadian family. J Clin Endocrinol Metab 89:971–978PubMedCrossRef Cockburn BN, Bermano G, Boodram LL et al (2004) Insulin promoter factor-1 mutations and diabetes in Trinidad: identification of a novel diabetes-associated mutation (E224K) in an Indo-Trinidadian family. J Clin Endocrinol Metab 89:971–978PubMedCrossRef
19.
go back to reference Stoffers D, Ferrer J, Clarke W, Habener J (1997) Early-onset diabetes mellitus (MODY4) linked to IPF1. Nat Genet 17:138–139PubMedCrossRef Stoffers D, Ferrer J, Clarke W, Habener J (1997) Early-onset diabetes mellitus (MODY4) linked to IPF1. Nat Genet 17:138–139PubMedCrossRef
20.
go back to reference Kristinsson SY, Thorolfsdottir ET, Talseth B et al (2001) MODY in Iceland is associated with mutations in HNF-1alpha and a novel mutation in NeuroD1. Diabetologia 44:2098–2103PubMedCrossRef Kristinsson SY, Thorolfsdottir ET, Talseth B et al (2001) MODY in Iceland is associated with mutations in HNF-1alpha and a novel mutation in NeuroD1. Diabetologia 44:2098–2103PubMedCrossRef
21.
go back to reference Malecki MT, Jhala U, Antonellis A et al (1999) Mutations in NEUROD1 are associated with the development of type 2 diabetes mellitus. Nat Genet 23:323–328PubMedCrossRef Malecki MT, Jhala U, Antonellis A et al (1999) Mutations in NEUROD1 are associated with the development of type 2 diabetes mellitus. Nat Genet 23:323–328PubMedCrossRef
22.
go back to reference Bellanne-Chantelot C, Clauin S, Chauveau D et al (2005) Large genomic rearrangements in the hepatocyte nuclear factor-1beta (TCF2) gene are the most frequent cause of maturity-onset diabetes of the young type 5. Diabetes 54:3126–3132PubMedCrossRef Bellanne-Chantelot C, Clauin S, Chauveau D et al (2005) Large genomic rearrangements in the hepatocyte nuclear factor-1beta (TCF2) gene are the most frequent cause of maturity-onset diabetes of the young type 5. Diabetes 54:3126–3132PubMedCrossRef
23.
go back to reference Edghill EL, Bingham C, Ellard S, Hattersley AT (2006) Mutations in hepatocyte nuclear factor-1beta and their related phenotypes. J Med Genet 43:84–90PubMedCrossRef Edghill EL, Bingham C, Ellard S, Hattersley AT (2006) Mutations in hepatocyte nuclear factor-1beta and their related phenotypes. J Med Genet 43:84–90PubMedCrossRef
24.
go back to reference Horikawa Y, Iwasaki N, Hara M et al (1997) Mutation in hepatocyte nuclear factor-1 beta gene (TCF2) associated with MODY. Nat Genet 17:384–385PubMedCrossRef Horikawa Y, Iwasaki N, Hara M et al (1997) Mutation in hepatocyte nuclear factor-1 beta gene (TCF2) associated with MODY. Nat Genet 17:384–385PubMedCrossRef
25.
go back to reference Raeder H, Johansson S, Holm PI et al (2006) Mutations in the CEL VNTR cause a syndrome of diabetes and pancreatic exocrine dysfunction. Nat Genet 38:54–62PubMedCrossRef Raeder H, Johansson S, Holm PI et al (2006) Mutations in the CEL VNTR cause a syndrome of diabetes and pancreatic exocrine dysfunction. Nat Genet 38:54–62PubMedCrossRef
26.
go back to reference Feigerlova E, Pruhova S, Dittertova L et al (2006) Aetiological heterogeneity of asymptomatic hyperglycaemia in children and adolescents. Eur J Pediatr 165:446–452PubMedCrossRef Feigerlova E, Pruhova S, Dittertova L et al (2006) Aetiological heterogeneity of asymptomatic hyperglycaemia in children and adolescents. Eur J Pediatr 165:446–452PubMedCrossRef
27.
go back to reference Stride A, Vaxillaire M, Tuomi T et al (2002) The genetic abnormality in the beta cell determines the response to an oral glucose load. Diabetologia 45:427–435PubMedCrossRef Stride A, Vaxillaire M, Tuomi T et al (2002) The genetic abnormality in the beta cell determines the response to an oral glucose load. Diabetologia 45:427–435PubMedCrossRef
28.
go back to reference Hattersley AT, Beards F, Ballantyne E, Appleton M, Harvey R, Ellard S (1998) Mutations in the glucokinase gene of the fetus result in reduced birth weight. Nat Genet 19:268–270PubMedCrossRef Hattersley AT, Beards F, Ballantyne E, Appleton M, Harvey R, Ellard S (1998) Mutations in the glucokinase gene of the fetus result in reduced birth weight. Nat Genet 19:268–270PubMedCrossRef
29.
go back to reference Ellard S, Beards F, Allen LIS et al (2000) A high prevalence of glucokinase mutations in gestational diabetic subjects selected by clinical criteria. Diabetologia 43:250–253PubMedCrossRef Ellard S, Beards F, Allen LIS et al (2000) A high prevalence of glucokinase mutations in gestational diabetic subjects selected by clinical criteria. Diabetologia 43:250–253PubMedCrossRef
30.
go back to reference Pearson ER, Liddell WG, Shepherd M, Corrall RJ, Hattersley AT (2000) Sensitivity to sulphonylureas in patients with hepatocyte nuclear factor-1alpha gene mutations: evidence for pharmacogenetics in diabetes. Diabet Med 17:543–545PubMedCrossRef Pearson ER, Liddell WG, Shepherd M, Corrall RJ, Hattersley AT (2000) Sensitivity to sulphonylureas in patients with hepatocyte nuclear factor-1alpha gene mutations: evidence for pharmacogenetics in diabetes. Diabet Med 17:543–545PubMedCrossRef
31.
go back to reference Pearson ER, Pruhova S, Tack CJ et al (2005) Molecular genetics and phenotypic characteristics of MODY caused by hepatocyte nuclear factor 4alpha mutations in a large European collection. Diabetologia 48:878–885PubMedCrossRef Pearson ER, Pruhova S, Tack CJ et al (2005) Molecular genetics and phenotypic characteristics of MODY caused by hepatocyte nuclear factor 4alpha mutations in a large European collection. Diabetologia 48:878–885PubMedCrossRef
32.
go back to reference Fajans SS, Brown MB (1993) Administration of sulfonylureas can increase glucose-induced insulin secretion for decades in patients with maturity-onset diabetes of the young. Diabetes Care 16:1254–1261PubMedCrossRef Fajans SS, Brown MB (1993) Administration of sulfonylureas can increase glucose-induced insulin secretion for decades in patients with maturity-onset diabetes of the young. Diabetes Care 16:1254–1261PubMedCrossRef
33.
go back to reference Fajans SS, Bell GI (2007) Macrosomia and neonatal hypoglycaemia in RW pedigree subjects with a mutation (Q268X) in the gene encoding hepatocyte nuclear factor 4alpha (HNF4A). Diabetologia 50:2600–2601PubMedCrossRef Fajans SS, Bell GI (2007) Macrosomia and neonatal hypoglycaemia in RW pedigree subjects with a mutation (Q268X) in the gene encoding hepatocyte nuclear factor 4alpha (HNF4A). Diabetologia 50:2600–2601PubMedCrossRef
34.
go back to reference Pearson ER, Boj SF, Steele AM et al (2007) Macrosomia and hyperinsulinaemic hypoglycaemia in patients with heterozygous mutations in the HNF4A gene. PLoS Med 4:e118PubMedCrossRef Pearson ER, Boj SF, Steele AM et al (2007) Macrosomia and hyperinsulinaemic hypoglycaemia in patients with heterozygous mutations in the HNF4A gene. PLoS Med 4:e118PubMedCrossRef
35.
go back to reference Collins JS, Schwartz CE (2002) Detecting polymorphisms and mutations in candidate genes. Am J Hum Genet 71:1251–1252PubMedCrossRef Collins JS, Schwartz CE (2002) Detecting polymorphisms and mutations in candidate genes. Am J Hum Genet 71:1251–1252PubMedCrossRef
36.
go back to reference Bulman MP, Harries LW, Hansen T et al (2002) Abnormal splicing of hepatocyte nuclear factor 1 alpha in maturity-onset diabetes of the young. Diabetologia 45:1463–1467PubMedCrossRef Bulman MP, Harries LW, Hansen T et al (2002) Abnormal splicing of hepatocyte nuclear factor 1 alpha in maturity-onset diabetes of the young. Diabetologia 45:1463–1467PubMedCrossRef
37.
go back to reference Harries LW, Ellard S, Jones RW, Hattersley AT, Bingham C (2004) Abnormal splicing of hepatocyte nuclear factor-1 beta in the renal cysts and diabetes syndrome. Diabetologia 47:937–942PubMedCrossRef Harries LW, Ellard S, Jones RW, Hattersley AT, Bingham C (2004) Abnormal splicing of hepatocyte nuclear factor-1 beta in the renal cysts and diabetes syndrome. Diabetologia 47:937–942PubMedCrossRef
38.
go back to reference Sun F, Knebelmann B, Pueyo ME et al (1993) Deletion of the donor splice site of intron 4 in the glucokinase gene causes maturity-onset diabetes of the young. J Clin Invest 92:1174–1180PubMedCrossRef Sun F, Knebelmann B, Pueyo ME et al (1993) Deletion of the donor splice site of intron 4 in the glucokinase gene causes maturity-onset diabetes of the young. J Clin Invest 92:1174–1180PubMedCrossRef
39.
go back to reference Gragnoli C, Lindner T, Cockburn BN et al (1997) Maturity-onset diabetes of the young due to a mutation in the hepatocyte nuclear factor-4 alpha binding site in the promoter of the hepatocyte nuclear factor-1 alpha gene. Diabetes 46:1648–1651PubMedCrossRef Gragnoli C, Lindner T, Cockburn BN et al (1997) Maturity-onset diabetes of the young due to a mutation in the hepatocyte nuclear factor-4 alpha binding site in the promoter of the hepatocyte nuclear factor-1 alpha gene. Diabetes 46:1648–1651PubMedCrossRef
40.
go back to reference Hansen SK, Parrizas M, Jensen ML et al (2002) Genetic evidence that HNF-1alpha-dependent transcriptional control of HNF-4alpha is essential for human pancreatic beta cell function. J Clin Invest 110:827–833PubMed Hansen SK, Parrizas M, Jensen ML et al (2002) Genetic evidence that HNF-1alpha-dependent transcriptional control of HNF-4alpha is essential for human pancreatic beta cell function. J Clin Invest 110:827–833PubMed
41.
go back to reference Raeder H, Bjorkhaug L, Johansson S et al (2006) A hepatocyte nuclear factor-4 alpha gene (HNF4A) P2 promoter haplotype linked with late-onset diabetes: studies of HNF4A variants in the Norwegian MODY registry. Diabetes 55:1899–1903PubMedCrossRef Raeder H, Bjorkhaug L, Johansson S et al (2006) A hepatocyte nuclear factor-4 alpha gene (HNF4A) P2 promoter haplotype linked with late-onset diabetes: studies of HNF4A variants in the Norwegian MODY registry. Diabetes 55:1899–1903PubMedCrossRef
42.
go back to reference Thomas H, Jaschkowitz K, Bulman M et al (2001) A distant upstream promoter of the HNF-4alpha gene connects the transcription factors involved in maturity-onset diabetes of the young. Hum Mol Genet 10:2089–2097PubMedCrossRef Thomas H, Jaschkowitz K, Bulman M et al (2001) A distant upstream promoter of the HNF-4alpha gene connects the transcription factors involved in maturity-onset diabetes of the young. Hum Mol Genet 10:2089–2097PubMedCrossRef
43.
go back to reference Harries LW, Hattersley AT, Ellard S (2004) Messenger RNA transcripts of the hepatocyte nuclear factor-1alpha gene containing premature termination codons are subject to nonsense-mediated decay. Diabetes 53:500–504PubMedCrossRef Harries LW, Hattersley AT, Ellard S (2004) Messenger RNA transcripts of the hepatocyte nuclear factor-1alpha gene containing premature termination codons are subject to nonsense-mediated decay. Diabetes 53:500–504PubMedCrossRef
44.
go back to reference Shepherd M, Ellis I, Ahmad AM et al (2001) Predictive genetic testing in maturity-onset diabetes of the young (MODY). Diabet Med 18:417–421PubMedCrossRef Shepherd M, Ellis I, Ahmad AM et al (2001) Predictive genetic testing in maturity-onset diabetes of the young (MODY). Diabet Med 18:417–421PubMedCrossRef
45.
go back to reference Chartier FL, Bossu JP, Laudet V, Fruchart JC, Laine B (1994) Cloning and sequencing of cDNAs encoding the human hepatocyte nuclear factor 4 indicate the presence of two isoforms in human liver. Gene 147:269–272PubMedCrossRef Chartier FL, Bossu JP, Laudet V, Fruchart JC, Laine B (1994) Cloning and sequencing of cDNAs encoding the human hepatocyte nuclear factor 4 indicate the presence of two isoforms in human liver. Gene 147:269–272PubMedCrossRef
46.
go back to reference Drewes T, Senkel S, Holewa B, Ryffel GU (1996) Human hepatocyte nuclear factor 4 isoforms are encoded by distinct and differentially expressed genes. Mol Cell Biol 16:925–931PubMed Drewes T, Senkel S, Holewa B, Ryffel GU (1996) Human hepatocyte nuclear factor 4 isoforms are encoded by distinct and differentially expressed genes. Mol Cell Biol 16:925–931PubMed
Metadata
Title
Best practice guidelines for the molecular genetic diagnosis of maturity-onset diabetes of the young
Authors
S. Ellard
C. Bellanné-Chantelot
A. T. Hattersley
European Molecular Genetics Quality Network (EMQN) MODY group
Publication date
01-04-2008
Publisher
Springer-Verlag
Published in
Diabetologia / Issue 4/2008
Print ISSN: 0012-186X
Electronic ISSN: 1432-0428
DOI
https://doi.org/10.1007/s00125-008-0942-y

Other articles of this Issue 4/2008

Diabetologia 4/2008 Go to the issue