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Behavioral Assessment of Visual Function via Optomotor Response and Cognitive Function via Y-Maze in Diabetic Rats
Published on: October 23, 2020
Meloxicam Improves Cognitive Impairment of Diabetic Rats through COX2-PGE2-EPs-cAMP/pPKA Pathway
1The Key Laboratory of Biochemistry and Molecular Pharmacology, Department of Pharmacology , Chongqing Medical University , Chongqing 400016 , China.
Abstract:
Diabetics often face greater risk of cognitive impairment than nondiabetics. However, how to prevent this disease is still unconfirmed. In this study, we investigated the potential protection and mechanism of meloxicam on cognitive impairment in diabetic rats. The diabetic rat model was established with a high-fat diet and a small dose of streptozotocin (40 mg/kg). The changes of spatial learning and memory, histopathology, and the protein expressions of amyloid protein precursor (APP) and β-amyloid (Aβ) indicated that diabetic rats had neuronal injury and cognitive impairment. Tumor necrosis factor α (TNFα), interleukin 6 (IL-6), C reactive protein (CRP) and prostaglandin E2 (PGE2) levels, and microglial cell number were significantly increased in the diabetic rat brain. Meanwhile, the protein expressions of APP, Aβ, cyclooxygenases2 (COX2), E-type prostanoid recptors 1 (EP1) and EP2, and the level of cyclic adenosine monophosphate (cAMP) were significantly increased, while the protein expressions of EP3 and phosphorylated protein kinase A (pPKA) were significantly decreased in the diabetic rat hippocampus and cortex. However, the EP4 protein expression had no significant changes. Meloxicam significantly improved neuronal injury and cognitive impairment, and significantly decreased inflammatory cytokines levels. Meloxicam also significantly decreased the protein expressions of APP, Aβ, COX2, EP1 and EP2, and the level of cAMP and significantly increased the EP3 and pPKA protein expressions in rat hippocampus and cortex. However, meloxicam did not significantly influence the levels of blood glucose, lipids, and insulin of rats. Our results suggest that meloxicam could significantly protect diabetic rats from cognitive impairment via a mechanism that may be associated with rebalancing the COX2-PGE2-EPs-cAMP/PKA pathway.
Insights
Meloxicam protects diabetic rats from cognitive impairment by rebalancing the COX2-PGE2-EPs-cAMP/PKA pathway, reducing inflammation and neuronal injury without affecting blood glucose levels.
Area of Science:
- Neuroscience
- Pharmacology
- Endocrinology
Background:
- Diabetes mellitus increases the risk of cognitive impairment.
- The precise mechanisms underlying diabetic cognitive dysfunction and effective preventative strategies remain unclear.
Purpose of the Study:
- To investigate the protective effects and underlying mechanisms of meloxicam against cognitive impairment in a rat model of diabetes.
- To explore meloxicam's impact on neuroinflammation and specific molecular pathways involved in cognitive function.
Main Methods:
- A diabetic rat model was induced using a high-fat diet and streptozotocin.
- Evaluated spatial learning and memory, performed histopathological analysis, and measured protein and cytokine levels (APP, Aβ, TNFα, IL-6, CRP, PGE2, COX2, EPs, cAMP, PKA).
- Assessed the effects of meloxicam treatment on these parameters.
Main Results:
- Diabetic rats exhibited significant cognitive impairment, neuronal injury, and increased markers of inflammation and amyloid precursor protein (APP) and beta-amyloid (Aβ) processing.
- Meloxicam treatment ameliorated cognitive deficits and neuronal damage, reduced inflammatory markers, and modulated the COX2-PGE2-EPs-cAMP/PKA pathway.
- Meloxicam did not significantly alter blood glucose, lipid, or insulin levels.
Conclusions:
- Meloxicam demonstrates significant neuroprotective effects against cognitive impairment in diabetic rats.
- The mechanism involves the modulation of the COX2-PGE2-EPs-cAMP/PKA signaling pathway and reduction of neuroinflammation.
- Meloxicam represents a potential therapeutic agent for preventing cognitive decline associated with diabetes.
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