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PMID: 20133622 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Recessive mutations in the INS gene result in neonatal diabetes through reduced insulin biosynthesis.

Garin I, Edghill EL, Akerman I, Rubio-Cabezas O, Rica I, Locke JM, Maestro MA, Alshaikh A, Bundak R, del Castillo G, Deeb A, Deiss D, Fernandez JM, Godbole K, Hussain K, O'Connell M, Klupa T, Kolouskova S, Mohsin F, Perlman K, Sumnik Z, Rial JM, Ugarte E, Vasanthi T, Neonatal Diabetes International Group, Johnstone K, Flanagan SE, Martínez R, Castaño C, Patch AM, Fernández-Rebollo E, Raile K, Morgan N, Harries LW, Castaño L, Ellard S, Ferrer J, Perez de Nanclares G, Hattersley AT

Abstract

Heterozygous coding mutations in the INS gene that encodes preproinsulin were recently shown to be an important cause of permanent neonatal diabetes. These dominantly acting mutations prevent normal folding of proinsulin, which leads to beta-cell death through endoplasmic reticulum stress and apoptosis. We now report 10 different recessive INS mutations in 15 probands with neonatal diabetes. Functional studies showed that recessive mutations resulted in diabetes because of decreased insulin biosynthesis through distinct mechanisms, including gene deletion, lack of the translation initiation signal, and altered mRNA stability because of the disruption of a polyadenylation signal. A subset of recessive mutations caused abnormal INS transcription, including the deletion of the C1 and E1 cis regulatory elements, or three different single base-pair substitutions in a CC dinucleotide sequence located between E1 and A1 elements. In keeping with an earlier and more severe beta-cell defect, patients with recessive INS mutations had a lower birth weight (-3.2 SD score vs. -2.0 SD score) and were diagnosed earlier (median 1 week vs. 10 weeks) compared to those with dominant INS mutations. Mutations in the insulin gene can therefore result in neonatal diabetes as a result of two contrasting pathogenic mechanisms. Moreover, the recessively inherited mutations provide a genetic demonstration of the essential role of multiple sequence elements that regulate the biosynthesis of insulin in man.

MeSH Terms
DNA Mutational Analysis DNA Primers/genetics Diabetes Mellitus/genetics Gene Dosage Genes, Recessive/genetics Humans Infant, Newborn Insulin/biosynthesis,genetics Male Mutation/genetics Oligonucleotide Probes Protein Precursors/genetics
Chemicals
DNA Primers Insulin Oligonucleotide Probes Protein Precursors preproinsulin
Authors & Affiliations
39 authors, click to expand affiliations / ORCID
Garin Intza
Endocrinology and Diabetes Research Group, Hospital de Cruces, Barakaldo, 48903 Spain.
Edghill Emma L
Akerman Ildem
Rubio-Cabezas Oscar
Rica Itxaso
Locke Jonathan M
Maestro Miguel Angel
Alshaikh Adnan
Bundak Ruveyde
del Castillo Gabriel
Deeb Asma
Deiss Dorothee
Fernandez Juan M
Godbole Koumudi
Hussain Khalid
O'Connell Michele
Klupa Thomasz
Kolouskova Stanislava
Mohsin Fauzia
Perlman Kusiel
Sumnik Zdenek
Rial Jose M
Ugarte Estibaliz
Vasanthi Thiruvengadam
Neonatal Diabetes International Group
Johnstone Karen
Flanagan Sarah E
Martínez Rosa
Castaño Carlos
Patch Ann-Marie
Fernández-Rebollo Eduardo
Raile Klemens
Morgan Noel
Harries Lorna W
Castaño Luis
Ellard Sian
Ferrer Jorge
Perez de Nanclares Guiomar
Hattersley Andrew T
Investigators
4 investigators, click to expand
Bas Firdevs
Cinek Ondrej
Malecki Maciek
Rachmiel Marianna
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Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
1091-6490
Published
2010-02-16
Epub
2010-00-28
Pages
3105-10
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC2840338
Subset
IM
Grants
Wellcome Trust · 067463/Z/2/Z · United Kingdom
Wellcome Trust · 081278/Z/06/Z · United Kingdom
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