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Published on: October 13, 2023
Memantine Modulates Oxidative Stress in the Rat Brain following Experimental Autoimmune Encephalomyelitis
Beata Dąbrowska-Bouta1, Lidia Strużyńska1, Marta Sidoryk-Węgrzynowicz1
1Laboratory of Pathoneurochemistry, Department of Neurochemistry, Mossakowski Medical Research Institute, Polish Academy of Sciences, 5 Pawińskiego Str., 02-106 Warsaw, Poland.
Abstract:
Experimental autoimmune encephalomyelitis (EAE) is an animal model most commonly used in research on the pathomechanisms of multiple sclerosis (MS). The inflammatory processes, glutamate excitotoxicity, and oxidative stress have been proposed as determinants accompanying demyelination and neuronal degeneration during the course of MS/EAE. The aim of the current study was to characterize the role of NMDA receptors in the induction of oxidative stress during the course of EAE. The effect of memantine, the uncompetitive NMDA receptor antagonist, on modulation of neurological deficits and oxidative stress in EAE rats was analyzed using several experimental approaches. We demonstrated that the expression of antioxidative enzymes (superoxide dismutases SOD1 and SOD2) were elevated in EAE rat brains. Under the same experimental conditions, we observed alterations in oxidative stress markers such as increased levels of malondialdehyde (MDA) and decreased levels of sulfhydryl (-SH) groups, both protein and non-protein (indicating protein damage), and a decline in reduced glutathione. Importantly, pharmacological inhibition of ionotropic NMDA glutamate receptors by their antagonist memantine improved the physical activity of EAE rats, alleviated neurological deficits such as paralysis of tail and hind limbs, and modulated oxidative stress parameters (MDA, -SH groups, SOD's). Furthermore, the current therapy aiming to suppress NMDAR-induced oxidative stress was partially effective when NMDAR's antagonist was administered at an early (asymptomatic) stage of EAE.
Insights
Memantine, an NMDA receptor antagonist, reduced oxidative stress and improved neurological deficits in experimental autoimmune encephalomyelitis (EAE) rats. Early administration of memantine showed partial therapeutic effectiveness in this multiple sclerosis model.
Area of Science:
- Neuroscience
- Immunology
- Biochemistry
Background:
- Experimental autoimmune encephalomyelitis (EAE) models multiple sclerosis (MS) pathology.
- Inflammation, glutamate excitotoxicity, and oxidative stress are implicated in MS/EAE.
- The role of NMDA receptors in EAE-induced oxidative stress requires further elucidation.
Purpose of the Study:
- To investigate the role of NMDA receptors in oxidative stress during EAE.
- To evaluate the therapeutic potential of memantine, an NMDA receptor antagonist, in EAE.
Main Methods:
- EAE was induced in rats.
- Neurological deficits and oxidative stress markers (SOD1, SOD2, MDA, -SH groups, glutathione) were assessed.
- The effects of memantine administration were analyzed.
Main Results:
- EAE rats exhibited elevated antioxidative enzymes (SOD1, SOD2) and increased oxidative stress markers (MDA, decreased -SH groups and glutathione).
- Memantine treatment improved physical activity, alleviated neurological deficits (paralysis), and modulated oxidative stress parameters.
- Early administration of memantine during the asymptomatic stage of EAE demonstrated partial therapeutic efficacy.
Conclusions:
- NMDA receptors contribute to oxidative stress in EAE.
- Memantine effectively mitigates neurological deficits and oxidative stress in EAE.
- Targeting NMDA receptor-mediated oxidative stress early in EAE shows therapeutic promise for MS.
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