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PMID: 15115830 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Activating mutations in the gene encoding the ATP-sensitive potassium-channel subunit Kir6.2 and permanent neonatal diabetes.

The New England journal of medicine ·Vol. 350 ·No. 18 ·2004-04-29 ·Pages 1838-49

Gloyn AL, Pearson ER, Antcliff JF, Proks P, Bruining GJ, Slingerland AS, Howard N, Srinivasan S, Silva JM, Molnes J, Edghill EL, Frayling TM, Temple IK, Mackay D, Shield JP, Sumnik Z, van Rhijn A, Wales JK, Clark P, Gorman S, Aisenberg J, Ellard S, Njølstad PR, Ashcroft FM, Hattersley AT

Abstract

Patients with permanent neonatal diabetes usually present within the first three months of life and require insulin treatment. In most, the cause is unknown. Because ATP-sensitive potassium (K(ATP)) channels mediate glucose-stimulated insulin secretion from the pancreatic beta cells, we hypothesized that activating mutations in the gene encoding the Kir6.2 subunit of this channel (KCNJ11) cause neonatal diabetes. We sequenced the KCNJ11 gene in 29 patients with permanent neonatal diabetes. The insulin secretory response to intravenous glucagon, glucose, and the sulfonylurea tolbutamide was assessed in patients who had mutations in the gene. Six novel, heterozygous missense mutations were identified in 10 of the 29 patients. In two patients the diabetes was familial, and in eight it arose from a spontaneous mutation. Their neonatal diabetes was characterized by ketoacidosis or marked hyperglycemia and was treated with insulin. Patients did not secrete insulin in response to glucose or glucagon but did secrete insulin in response to tolbutamide. Four of the patients also had severe developmental delay and muscle weakness; three of them also had epilepsy and mild dysmorphic features. When the most common mutation in Kir6.2 was coexpressed with sulfonylurea receptor 1 in Xenopus laevis oocytes, the ability of ATP to block mutant K(ATP) channels was greatly reduced. Heterozygous activating mutations in the gene encoding Kir6.2 cause permanent neonatal diabetes and may also be associated with developmental delay, muscle weakness, and epilepsy. Identification of the genetic cause of permanent neonatal diabetes may facilitate the treatment of this disease with sulfonylureas.

MeSH Terms
DNA Mutational Analysis Developmental Disabilities/genetics Diabetes Mellitus/genetics Epilepsy/genetics Face/abnormalities Female Heterozygote Humans Infant, Newborn Islets of Langerhans/metabolism Male Mutation Pedigree Potassium Channels, Inwardly Rectifying/chemistry,genetics,metabolism Sequence Analysis, DNA
Chemicals
Potassium Channels, Inwardly Rectifying
Authors & Affiliations
25 authors, click to expand affiliations / ORCID
Gloyn Anna L
Institute of Biomedical and Clinical Science, Peninsula Medical School, Exeter, United Kingdom.
Pearson Ewan R
Antcliff Jennifer F
Proks Peter
Bruining G Jan
Slingerland Annabelle S
Howard Neville
Srinivasan Shubha
Silva José M C L
Molnes Janne
Edghill Emma L
Frayling Timothy M
Temple I Karen
Mackay Deborah
Shield Julian P H
Sumnik Zdenek
van Rhijn Adrian
Wales Jerry K H
Clark Penelope
Gorman Shaun
Aisenberg Javier
Ellard Sian
Njølstad Pål R
Ashcroft Frances M
Hattersley Andrew T
Article Info
Journal
The New England journal of medicine
Abbr.
N Engl J Med
ISSN
1533-4406
Published
2004-04-29
Pages
1838-49
Language
English
Region
United States
NLM ID
0255562
Subset
IM
Corrections
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