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ZIPK collaborates with STAT5A in p53-mediated ROS accumulation in hyperglycemia-induced vascular injury
Qichao Wu1,2,3, Tingting Xie1,2, Chang Fu4,5
1Department of Anesthesiology, Zhongshan Hospital, Fudan University, Shanghai 200031, China.
Abstract:
In this study we investigate the role of Zipper-interacting protein kinase (ZIPK) in high glucose-induced vascular injury, focusing on its interaction with STAT5A and its effects on p53 and inducible nitric oxide synthase (NOS2) expression. Human umbilical vein endothelial cells (HUVECs) are cultured under normal (5 mM) and high (25 mM) glucose conditions. Protein and gene expression levels are assessed by western blot analysis and qPCR respectively, while ROS levels are measured via flow cytometry. ZIPK expression is manipulated using overexpression plasmids, siRNAs, and shRNAs. The effects of the ZIPK inhibitor TC-DAPK6 are evaluated in a diabetic rat model. Our results show that high glucose significantly upregulates ZIPK, STAT5A, p53, and NOS2 expressions in HUVECs, thus increasing oxidative stress. Silencing of STAT5A reduces p53 and NOS2 expressions and reactive oxygen species (ROS) accumulation. ZIPK is essential for high glucose-induced p53 expression and ROS accumulation, while silencing of ZIPK reverses these effects. Overexpression of ZIPK combined with STAT5A silencing attenuates glucose-induced alterations in p53 and NOS2 expression, thereby preventing cell damage. Coimmunoprecipitation reveals a direct interaction between ZIPK and STAT5A in the nucleus under high-glucose condition. In diabetic rats, TC-DAPK6 treatment significantly decreases ZIPK, p53, and NOS2 expressions. Our findings suggest that ZIPK plays a critical role in high glucose-induced vascular injury via STAT5A-mediated pathways, proposing that ZIPK is a potential therapeutic target for diabetic vascular complications.
Insights
Zipper-interacting protein kinase (ZIPK) drives vascular injury in high glucose by activating STAT5A, leading to increased p53 and NOS2. Inhibiting ZIPK may treat diabetic vascular complications.
Area of Science:
- Biochemistry
- Molecular Biology
- Vascular Biology
Background:
- High glucose levels contribute to vascular injury, a key complication of diabetes.
- The role of Zipper-interacting protein kinase (ZIPK) in this process is not fully understood.
- Understanding molecular pathways involved in high glucose-induced vascular damage is crucial for developing effective treatments.
Purpose of the Study:
- To investigate the role of ZIPK in high glucose-induced vascular injury.
- To elucidate the interaction between ZIPK, STAT5A, p53, and inducible nitric oxide synthase (NOS2).
- To evaluate ZIPK as a potential therapeutic target for diabetic vascular complications.
Main Methods:
- Human umbilical vein endothelial cells (HUVECs) were cultured under normal and high glucose conditions.
- ZIPK and STAT5A expression was manipulated using genetic tools (overexpression, siRNA, shRNA).
- Protein and gene expression, ROS levels, and cell damage were assessed; a diabetic rat model was used to test a ZIPK inhibitor.
Main Results:
- High glucose upregulated ZIPK, STAT5A, p53, and NOS2, increasing oxidative stress (ROS).
- STAT5A and ZIPK were essential for high glucose-induced p53 expression and ROS accumulation.
- ZIPK and STAT5A directly interact in the nucleus under high glucose.
- ZIPK inhibition reduced vascular injury markers in diabetic rats.
Conclusions:
- ZIPK plays a critical role in high glucose-induced vascular injury through STAT5A-mediated pathways.
- Targeting ZIPK may offer a novel therapeutic strategy for managing diabetic vascular complications.
- The ZIPK-STAT5A-p53-NOS2 axis is a key pathway in diabetic vascular damage.
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