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March 26, 2009Diabetes162 citationsOpen Access

Inactivation of GSK-3β by Metallothionein Prevents Diabetes-Related Changes in Cardiac Energy Metabolism, Inflammation, Nitrosative Damage, and Remodeling

YWYuehui WangWFWenke FengWXWanli Xue

Structured PICO

Does metallothionein overexpression or GSK-3beta inhibition prevent diabetic cardiomyopathy in streptozotocin-induced diabetic mice?

P
Population
Cardiac-specific metallothionein-overexpressing transgenic (MT-TG) mice and wild-type mice with streptozotocin-induced diabetes
I
Intervention
Cardiac metallothionein overexpression (MT-TG) or GSK-3beta-specific inhibitor
C
Comparator
Wild-type diabetic mice
O
Outcome
Changes in energy metabolism-related molecules, lipid accumulation, inflammation, nitrosative damage, and fibrotic remodelingsurrogate

Inactivation of GSK-3beta by metallothionein or a specific inhibitor prevents the development of diabetic cardiomyopathy in a mouse model.

Abstract

OBJECTIVE: Glycogen synthase kinase (GSK)-3beta plays an important role in cardiomyopathies. Cardiac-specific metallothionein-overexpressing transgenic (MT-TG) mice were highly resistant to diabetes-induced cardiomyopathy. Therefore, we investigated whether metallothionein cardiac protection against diabetes is mediated by inactivation of GSK-3beta. RESEARCH DESIGN AND METHODS: Diabetes was induced with streptozotocin in both MT-TG and wild-type mice. Changes of energy metabolism-related molecules, lipid accumulation, inflammation, nitrosative damage, and fibrotic remodeling were examined in the hearts of diabetic mice 2 weeks, 2 months, and 5 months after the onset of diabetes with Western blotting, RT-PCR, and immunohistochemical assays. RESULTS: Activation (dephosphorylation) of GSK-3beta was evidenced in the hearts of wild-type diabetic mice but not MT-TG diabetic mice. Correspondingly, cardiac glycogen synthase phosphorylation, hexokinase II, PPARalpha, and PGC-1alpha expression, which mediate glucose and lipid metabolisms, were significantly changed along with cardiac lipid accumulation, inflammation (TNF-alpha, plasminogen activator inhibitor 1 PAI-1, and intracellular adhesion molecule 1 ICAM-1), nitrosative damage (3-nitrotyrosin accumulation), and fibrosis in the wild-type diabetic mice. The above pathological changes were completely prevented either by cardiac metallothionein in the MT-TG diabetic mice or by inhibition of GSK-3beta activity in the wild-type diabetic mice with a GSK-3beta-specific inhibitor. CONCLUSIONS: These results suggest that activation of GSK-3beta plays a critical role in diabetes-related changes in cardiac energy metabolism, inflammation, nitrosative damage, and remodeling. Metallothionein inactivation of GSK-3beta plays a critical role in preventing diabetic cardiomyopathy.

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Cite This Study

Wang et al. (2009) studied this question.

synapsesocial.com/papers/69f2cb29be8e9f1f31c5781ehttps://doi.org/10.2337/db08-1697
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