Abstract
Type 1 diabetes mellitus, a T-cell-mediated autoimmune disease, results from the selective destruction of insulin-producing pancreatic beta cells. Autoantibodies against beta-cell components are used clinically as sensitive markers of this disease; however, their physiological role has not been clear. To investigate the role of glutamic acid decarboxylase 65 (GAD65) in the development of the Type 1 diabetes of non-obese diabetic (NOD) mice, we analysed and characterised NOD mice with targeted disruption of the GAD65 gene. GAD65-deficient mice were previously established. After backcrossing the knockout mutation onto the NOD genetic background for up to eight generations, female littermates of the three resulting genotypes were produced by intercrossing: GAD65 +/+ (n=23), GAD65 +/- (n=62), and GAD65 -/- (n=31). The cumulative incidence of autoimmune diabetes showed no significant difference among the three groups in longitudinal studies using the Kaplan-Meier method. Islet morphology showed that the progression of islet infiltration did not differ significantly between the three groups. The cumulative incidence of autoimmune diabetes was not influenced by the GAD65 deficiency. These data suggest that GAD65 is not a major regulatory target of beta-cell autoimmunity in NOD mice.
MeSH Terms
Age Factors
Animals
Blotting, Northern
Codon, Terminator/genetics
Diabetes Mellitus, Type 1/epidemiology,etiology,genetics
Disease-Free Survival
Female
Gene Expression/genetics
Glutamate Decarboxylase/genetics,physiology
Glycosuria/epidemiology,etiology,genetics
Growth/genetics
Heterozygote
Homozygote
Hybridization, Genetic
Inflammation/pathology
Islets of Langerhans/pathology
Isoenzymes/genetics,physiology
Male
Mice
Mice, Inbred NOD
Mice, Knockout
Mutation/genetics
Open Reading Frames/genetics
Seizures/genetics
Chemicals
Codon, Terminator
Isoenzymes
Glutamate Decarboxylase
glutamate decarboxylase 1
glutamate decarboxylase 2
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
Yamamoto T
Division of Stem Cell Regulation Research, G6, Osaka University Graduate School of Medicine, Suita, Osaka, Japan.
Yamato E
Tashiro F
Sato T
Noso S
Ikegami H
Tamura S
Yanagawa Y
Miyazaki J-I
References (9)
9 references, click to expand
-
Differential expression of GAD65 and GAD67 in human, rat, and mouse pancreatic islets.
Diabetes. 1993 Dec;42(12):1799-808
PMID: 8243826
-
Epilepsy in mice deficient in the 65-kDa isoform of glutamic acid decarboxylase.
Proc Natl Acad Sci U S A. 1997 Dec 9;94(25):14060-5
PMID: 9391152
-
Control of autoimmune diabetes in NOD mice by GAD expression or suppression in beta cells.
Science. 1999 May 14;284(5417):1183-7
PMID: 10325232
-
Enrichment and efficient screening of ES cells containing a targeted mutation: the use of DT-A gene with the polyadenylation signal as a negative selection maker.
Transgenic Res. 1999 Jun;8(3):215-21
PMID: 10478491
-
Normal incidence of diabetes in NOD mice tolerant to glutamic acid decarboxylase.
J Exp Med. 2003 Jun 16;197(12):1635-44
PMID: 12796471
-
Epitope dominance: evidence for reciprocal determinant spreading to glutamic acid decarboxylase in non-obese diabetic mice.
Immunol Rev. 1998 Aug;164:111-8
PMID: 9795769
-
Immune response to glutamic acid decarboxylase correlates with insulitis in non-obese diabetic mice.
Nature. 1993 Nov 4;366(6450):72-5
PMID: 8232539
-
Glutamate decarboxylase and GABA in pancreatic islets: lessons from knock-out mice.
Horm Metab Res. 1999 May;31(5):340-4
PMID: 10422732
-
GAD-reactive CD4+ Th1 cells induce diabetes in NOD/SCID mice.
J Clin Invest. 1998 Jan 1;101(1):68-73
PMID: 9421467