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Malvidin's Effects on Rat Pial Microvascular Permeability Changes Due to Hypoperfusion and Reperfusion Injury
Dominga Lapi1, Martina Chiurazzi1, Martina Di Maro1
1Department of Clinical Medicine and Surgery, School of Medicine, University of Naples Federico II Naples, Italy.
Abstract:
The present study was aimed to evaluate the malvidin's protective effects on damage induced by 30 min bilateral common carotid artery occlusion (BCCAO) and 60 min reperfusion (RE) in rat pial microcirculation. Rat pial microcirculation was observed using fluorescence microscopy through a closed cranial window. Western blotting analysis was performed to investigate the endothelial nitric oxide synthase (eNOS), phosphorylated eNOS (p-eNOS) and matrix metalloproteinase 9 (MMP-9) expression. Moreover, MMP-9 activity was evaluated by zymography. Finally, neuronal damage and radical oxygen species (ROS) formation were assessed. In all animals, pial arterioles were classified in five orders of branching according to Strahler's method. In hypoperfused rats, 30 min BCCAO and 60 min RE caused a decrease in arteriolar diameter, an increase in microvascular leakage and leukocyte adhesion, accompanied by decreased capillary perfusion and red blood cell velocity (VRBC). Moreover, marked neuronal damage and evident ROS generation were detected. Conversely, malvidin administration induced arteriolar dilation in dose-related manner, reducing microvascular leakage as well as leukocyte adhesion. Capillary perfusion and VRBC were protected. Nitric oxide (NO) synthase inhibition significantly attenuated malvidin's effects on arteriolar diameter. Western blotting analysis revealed an increase in eNOS and p-eNOS expression, while zymography indicated a decrease in MMP-9 activity after malvidin's administration. Furthermore, malvidin was able to prevent neuronal damage and to decrease ROS generation. In conclusion, malvidin protects rat pial microcirculation against BCCAO/RE injury, preventing blood-brain impairment and neuronal loss. Malvidin's effects appear to be mediated by eNOS activation and scavenger activity.
Insights
Malvidin protects rat brain microcirculation from blood flow restriction and reperfusion injury. It enhances blood flow, reduces inflammation, and prevents neuronal damage by activating nitric oxide synthase and scavenging free radicals.
Area of Science:
- Neuroscience
- Pharmacology
- Cardiovascular Biology
Background:
- Bilateral common carotid artery occlusion (BCCAO) followed by reperfusion (RE) causes significant damage to the rat pial microcirculation.
- This damage includes reduced arteriolar diameter, increased microvascular leakage, leukocyte adhesion, and impaired capillary perfusion.
Purpose of the Study:
- To evaluate the protective effects of malvidin against BCCAO/RE-induced injury in rat pial microcirculation.
- To investigate the underlying mechanisms, including effects on endothelial nitric oxide synthase (eNOS), matrix metalloproteinase 9 (MMP-9), neuronal damage, and reactive oxygen species (ROS).
Main Methods:
- Rat pial microcirculation was observed using fluorescence microscopy.
- Western blotting was used to assess eNOS, phosphorylated eNOS (p-eNOS), and MMP-9 expression.
- Zymography evaluated MMP-9 activity, while neuronal damage and ROS generation were also measured.
Main Results:
- Malvidin administration dose-dependently improved arteriolar diameter, reduced microvascular leakage and leukocyte adhesion, and preserved capillary perfusion and red blood cell velocity.
- Malvidin increased eNOS and p-eNOS expression and decreased MMP-9 activity.
- Malvidin treatment prevented neuronal damage and reduced ROS generation.
Conclusions:
- Malvidin offers significant protection to rat pial microcirculation against BCCAO/RE injury, mitigating blood-brain barrier impairment and neuronal loss.
- The protective effects are attributed to the activation of eNOS and antioxidant (scavenger) activity.

