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1.
Diabetes ; 57(8): 2234-44, 2008 Aug.
Article in English | MEDLINE | ID: mdl-18477811

ABSTRACT

OBJECTIVES: To identify, map, clone, and functionally validate a novel mouse model for impaired glucose tolerance and insulin secretion. RESEARCH DESIGN AND METHODS: Haploinsufficiency of the insulin receptor and associated mild insulin resistance has been used to sensitize an N-ethyl-N-nitrosourea (ENU) screen to identify novel mutations resulting in impaired glucose tolerance and diabetes. The new impaired glucose tolerance 4 (IGT4) model was selected using an intraperitoneal glucose tolerance test and inheritance of the phenotype confirmed by generation of backcross progeny. Segregation of the phenotype was correlated with genotype information to map the location of the gene and candidates sequenced for mutations. The function of the SRY-related high mobility group (HMG)-box 4 (Sox4) gene in insulin secretion was tested using another ENU allele and by small interfering RNA silencing in insulinoma cells. RESULTS: We describe two allelic autosomal dominant mutations in the highly conserved HMG box of the transcription factor Sox4. Previously associated with pancreas development, Sox4 mutations in the adult mouse result in an insulin secretory defect, which exhibits impaired glucose tolerance in association with insulin receptor(+/-)-induced insulin resistance. Elimination of the Sox4 transcript in INS1 and Min6 cells resulted in the abolition of glucose-stimulated insulin release similar to that observed for silencing of the key metabolic enzyme glucokinase. Intracellular calcium measurements in treated cells indicate that this defect lies downstream of the ATP-sensitive K(+) channel (K(ATP) channel) and calcium influx. CONCLUSIONS: IGT4 represents a novel digenic model of insulin resistance coupled with an insulin secretory defect. The Sox4 gene has a role in insulin secretion in the adult beta-cell downstream of the K(ATP) channel.


Subject(s)
Glucose Intolerance/physiopathology , High Mobility Group Proteins/physiology , Insulin/metabolism , Trans-Activators/physiology , Animals , Calcium/metabolism , Cell Line, Tumor , Cells, Cultured , Female , Genetic Complementation Test , Genotype , Glucose/pharmacology , Glucose Intolerance/genetics , Glucose Tolerance Test , High Mobility Group Proteins/genetics , Immunohistochemistry , In Vitro Techniques , Insulin Secretion , Islets of Langerhans/drug effects , Islets of Langerhans/metabolism , Male , Mice , Mice, Knockout , Microscopy, Electron, Transmission , Mutation , Phenotype , RNA, Small Interfering/genetics , Receptor, Insulin/genetics , Reverse Transcriptase Polymerase Chain Reaction , SOXC Transcription Factors , Trans-Activators/genetics
2.
Diabetes ; 53(6): 1577-83, 2004 Jun.
Article in English | MEDLINE | ID: mdl-15161764

ABSTRACT

Here we report the first cloned N-ethyl-nitrosourea (ENU)-derived mouse model of diabetes. GENA348 was identified through free-fed plasma glucose measurement, being more than 2 SDs above the population mean of a cohort of >1,201 male ENU mutant mice. The underlying gene was mapped to the maturity-onset diabetes of the young (MODY2) homology region of mouse chromosome 11 (logarithm of odds 6.0). Positional candidate gene analyses revealed an A to T transversion mutation in exon 9 of the glucokinase gene, resulting in an isoleucine to phenylalanine change at amino acid 366 (I366F). Heterozygous mutants have 67% of the enzyme activity of wild-type littermates (P < 0.0012). Homozygous mutants have less enzyme activity (14% of wild-type activity) and are even less glucose tolerant. The GENA348 allele is novel because no mouse or human diabetes studies have described a mutation in the corresponding amino acid position. It is also the first glucokinase missense mutation reported in mice and is homozygous viable, unlike the global knockout mutations. This work demonstrates that ENU mutagenesis screens can be used to generate models of complex phenotypes, such as type 2 diabetes, that are directly relevant to human disease.


Subject(s)
Diabetes Mellitus, Type 2/genetics , Disease Models, Animal , Ethylnitrosourea/pharmacology , Glucokinase/genetics , Mutagens/pharmacology , Mutation, Missense , Adenine , Amino Acid Sequence , Amino Acid Substitution , Animals , Chromosome Mapping , Glucokinase/drug effects , Glucokinase/metabolism , Glucose/metabolism , Glucose Intolerance/genetics , Heterozygote , Homozygote , Isoleucine , Male , Mice , Mice, Mutant Strains , Molecular Sequence Data , Phenylalanine , Phosphorylation , Thymine
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