ArticleMolecular medicine reports2022
Exenatide exerts a neuroprotective effect against diabetic cognitive impairment in rats by inhibiting apoptosis: Role of the JNK/c‑JUN signaling pathway.
Article in Molecular medicine reports, 2022. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 9 papers.
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Who cites it
9 citing papers in PubMed, 14 citations in OpenAlex.
- Epimedin C: A promising neuroprotective agent that can participate in mediating the JNK/Nrf2/HO-1 signaling pathway to prevent neurodegenerative diseases.Experimental and therapeutic medicine · 2026Article
- Exploring GPR120/FFAR4 pharmacology: Unveiling novel therapeutic avenues through molecular signaling pathways for Alzheimer's disease intervention.Brain, behavior, & immunity - health · 2025Review
- A Study ofGenes · 2024Article
- Conquering Insulin Network Dysfunctions in Alzheimer's Disease: Where Are We Today?Journal of Alzheimer's disease : JAD · 2024Review
- Navigating neurological disorders: harnessing the power of natural compounds for innovative therapeutic breakthroughs.EXCLI journal · 2024Review
- Sex Differences in the Preventive Effect of Cardiovascular and Metabolic Therapeutics on Dementia.Biomolecules & therapeutics · 2023Review
- The Role of a Ketogenic Diet in the Treatment of Dementia in Type 2 Diabetes Mellitus.Nutrients · 2023Review
- The Role of Mitochondrial Quality Control in Cognitive Dysfunction in Diabetes.Neurochemical research · 2022Review
- Lidocaine Ameliorates Diabetic Peripheral Neuropathy in Streptozotocin-Induced Diabetic Rats through Modulating the c-Jun Signaling Pathway.Contrast media & molecular imaging · 2022Article
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Authors and funding
9 authors at 3 institutions in 1 country.
Funding
No grant is acknowledged in the PubMed record.
Abstract
Exenatide could reduce blood glucose and alleviate cognitive dysfunction induced by diabetes mellitus (DM). In the present study, a diabetic model was established in Sprague‑Dawley rats to further explore the mechanism of exenatide on diabetes‑induced cognitive impairment. Notably, the model rats performed poorly in the Morris water maze test and had more apoptotic neurons compared with the control rats. By contrast, exenatide attenuated cognitive impairment and inhibited neuronal apoptosis in the DM rat model. To explore the neuroprotective mechanisms of exenatide, western blotting was performed to detect the expression levels of markers of endoplasmic reticulum stress, including cytochrome c (Cyt‑c), Caspase‑3, JNK and c‑JUN, in hippocampal tissue. Reverse transcription‑quantitative PCR was also performed to measure the mRNA expression levels of Cyt‑c and Caspase‑3. After 16 weeks of treatment, exenatide treatment downregulated Cyt‑c, Caspase‑3, phosphorylated (p)‑JNK and p‑c‑JUN expression in the hippocampal tissue of diabetic rats. Moreover, Cyt‑c, Caspase‑3, JNK and JUN expression levels were detected following treatment with a specific inhibitor of JNK (SP600125). The results revealed that SP600125 had similar inhibitory effects on the JNK pathway and ERS‑related protein expression (Cyt‑t, Caspase‑3, p‑JNK and p‑c‑JUN). These results suggested that exenatide improved cognitive dysfunction in DM rats and that the underlying mechanism may be associated with inhibiting apoptosis by suppressing the activation of JNK/c‑JUN.
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