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Atorvastatin Alleviates Experimental Diabetic Cardiomyopathy by Regulating the GSK-3β-PP2Ac-NF-κB Signaling Axis
Xiao-Min Ren1, Guang-Feng Zuo1, Wen Wu1
1Department of Cardiology, Nanjing First Hospital, Nanjing Medical University, Qinhuai, Nanjing 210006, P.R. China.
Abstract:
Recent studies reported that atorvastatin (ATOR) alleviated progression of experimental diabetic cardiomyopathy (DCM), possibly by protecting against apoptosis. However, the underlying mechanisms of this protective effect remain unclear. Therefore, our study investigated the role of the glycogen synthase kinase (GSK)-3β-protein phosphatase 2A(PP2A)-NF-κB signaling pathway in the anti-apoptotic and cardioprotective effects of ATOR on cardiomyocytes cultured in high glucose (HG) and in DCM. Our results showed that, in HG-cultured cardiomyocytes, phosphorylation of GSK-3β was decreased, while that of the PP2A catalytic subunit C (PP2Ac) and IKK/IкBα was increased, followed by NF-кB nuclear translocation and apoptosis. IKK/IкBα phosphorylation and NF-кB nuclear translocation were also increased by treatment of cells with okadaic acid (OA), a selective PP2A inhibitor, or by silencing PP2Ac expression. The opposite results were obtained by silencing GSK-3β expression, which resulted in PP2Ac activation. Furthermore, IKK/IкBα phosphorylation and NF-кB nuclear translocation were markedly inhibited and apoptosis attenuated in cells treated with ATOR. These effects occurred through inactivation of GSK-3β and subsequent activation of PP2Ac. They were abolished by treatment of cells with OA or PP2Ac siRNA. In mice with type 1 diabetes mellitus, treatment with ATOR, at 10 mg-kg-1-d-1, significantly suppressed GSK-3β activation, IKK/IкBα phosphorylation, NF-кB nuclear translocation and caspase-3 activation, while also activating PP2Ac. Finally, improvements in histological abnormalities, fibrosis, apoptosis and cardiac dysfunction were observed in diabetic mice treated with ATOR. These findings demonstrated that ATOR protected against HG-induced apoptosis in cardiomyocytes and alleviated experimental DCM by regulating the GSK-3β-PP2A-NF-κB signaling pathway.
Insights
Atorvastatin (ATOR) protects heart cells from high glucose damage and diabetic cardiomyopathy by regulating the GSK-3β-PP2A-NF-κB pathway, reducing apoptosis and improving cardiac function.
Area of Science:
- Cardiology
- Molecular Biology
- Pharmacology
Background:
- Diabetic cardiomyopathy (DCM) is a significant complication of diabetes, often involving cardiomyocyte apoptosis.
- Atorvastatin (ATOR) has shown potential in alleviating DCM, but its precise anti-apoptotic mechanisms are not fully understood.
Purpose of the Study:
- To investigate the role of the glycogen synthase kinase (GSK)-3β-protein phosphatase 2A (PP2A)-NF-κB signaling pathway in the cardioprotective effects of ATOR against high glucose-induced apoptosis and experimental DCM.
Main Methods:
- Utilized high glucose (HG)-cultured cardiomyocytes and a mouse model of type 1 diabetes mellitus.
- Investigated the effects of ATOR, okadaic acid (OA), and genetic silencing/inactivation of GSK-3β, PP2A catalytic subunit C (PP2Ac), and NF-κB on cellular apoptosis and signaling pathways.
- Assessed cardiac function, histological abnormalities, and fibrosis in diabetic mice treated with ATOR.
Main Results:
- In HG-induced cardiomyocytes, ATOR inactivated GSK-3β, activated PP2Ac, inhibited IKK/IкBα phosphorylation and NF-κB nuclear translocation, and attenuated apoptosis.
- These effects were dependent on PP2A activity and abolished by PP2A inhibition or silencing.
- ATOR treatment in diabetic mice improved cardiac function, reduced fibrosis and apoptosis, and modulated the GSK-3β-PP2A-NF-κB pathway.
Conclusions:
- ATOR exerts anti-apoptotic and cardioprotective effects in DCM by modulating the GSK-3β-PP2A-NF-κB signaling pathway.
- This pathway represents a key mechanism underlying ATOR's beneficial actions in diabetic heart disease.
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