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Targeting Autophagy, Apoptosis, and SIRT1/Nrf2 Axis with Topiramate Underlies Its Neuroprotective Effect against
Hany H Arab1,2, Ahmed H Eid3, Rania Yahia3
1Department of Pharmacology and Toxicology, College of Pharmacy, Taif University, P.O. Box 11099, Taif 21944, Saudi Arabia.
Abstract:
Cadmium is an environmental toxicant that instigates cognitive deficits with excessive glutamate excitatory neuroactivity in the brain. Topiramate, a glutamate receptor antagonist, has displayed favorable neuroprotection against epilepsy, cerebral ischemia, and Huntington's disease; however, its effect on cadmium neurotoxicity remains to be investigated. In this study, topiramate was tested for its potential to combat the cognitive deficits induced by cadmium in rats with an emphasis on hippocampal oxidative insult, apoptosis, and autophagy. After topiramate intake (50 mg/kg/day; p.o.) for 8 weeks, behavioral disturbances and molecular changes in the hippocampal area were explored. Herein, Morris water maze, Y-maze, and novel object recognition test revealed that topiramate rescued cadmium-induced memory/learning deficits. Moreover, topiramate significantly lowered hippocampal histopathological damage scores. Mechanistically, topiramate significantly replenished hippocampal GLP-1 and dampened Aβ42 and p-tau neurotoxic cues. Notably, it significantly diminished hippocampal glutamate content and enhanced acetylcholine and GABA neurotransmitters. The behavioral recovery was prompted by hippocampal suppression of the pro-oxidant events with notable activation of SIRT1/Nrf2/HO-1 axis. Moreover, topiramate inactivated GSK-3β and dampened the hippocampal apoptotic changes. In tandem, stimulation of hippocampal pro-autophagy events, including Beclin 1 upregulation, was triggered by topiramate that also activated AMPK/mTOR pathway. Together, the pro-autophagic, antioxidant, and anti-apoptotic features of topiramate contributed to its neuroprotective properties in rats intoxicated with cadmium. Therefore, it may be useful to mitigate cadmium-induced cognitive deficits.
Insights
Topiramate, an anti-epileptic drug, reversed cadmium-induced cognitive deficits in rats. It protected the hippocampus by reducing oxidative stress, apoptosis, and enhancing autophagy, offering potential for cadmium toxicity mitigation.
Area of Science:
- Neuroscience
- Toxicology
- Pharmacology
Background:
- Cadmium exposure causes cognitive deficits via glutamate excitotoxicity.
- Topiramate is a glutamate receptor antagonist with known neuroprotective effects.
- The neuroprotective potential of topiramate against cadmium toxicity is unexplored.
Purpose of the Study:
- To investigate topiramate's efficacy in mitigating cadmium-induced cognitive deficits in rats.
- To explore the underlying mechanisms involving hippocampal oxidative stress, apoptosis, and autophagy.
Main Methods:
- Rats were treated with topiramate (50 mg/kg/day) for 8 weeks after cadmium exposure.
- Cognitive function was assessed using Morris water maze, Y-maze, and novel object recognition tests.
- Hippocampal tissues were analyzed for oxidative insult, apoptosis, autophagy markers, and neurotransmitter levels.
Main Results:
- Topiramate administration significantly improved memory and learning in cadmium-exposed rats.
- It reduced hippocampal histopathological damage, oxidative stress (SIRT1/Nrf2/HO-1 activation), and apoptosis (GSK-3β inactivation).
- Topiramate also promoted autophagy (Beclin 1, AMPK/mTOR activation) and modulated neurotransmitters (glutamate, acetylcholine, GABA).
Conclusions:
- Topiramate exhibits significant neuroprotective effects against cadmium-induced cognitive deficits in rats.
- Its benefits are attributed to antioxidant, anti-apoptotic, and pro-autophagic actions in the hippocampus.
- Topiramate shows promise as a therapeutic agent for mitigating cadmium neurotoxicity.
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