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PMID: 9495562 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Review

Neurodegenerative disorders in humans: the role of glutathione in oxidative stress-mediated neuronal death.

Brain research. Brain research reviews ·Vol. 25 ·No. 3 ·1997-12-00 ·Pages 335-58

Bains JS, Shaw CA

Abstract

Oxidative stress has been implicated in both normal aging and in various neurodegenerative disorders and may be a common mechanism underlying various forms of cell death including necrosis, apoptosis, and excitotoxicity. In this review, we develop the hypothesis that oxidative stress-mediated neuronal loss may be initiated by a decline in the antioxidant molecule glutathione (GSH). GSH plays multiple roles in the nervous system including free radical scavenger, redox modulator of ionotropic receptor activity, and possible neurotransmitter. GSH depletion can enhance oxidative stress and may also increase the levels of excitotoxic molecules; both types of action can initiate cell death in distinct neuronal populations. Evidence for a role of oxidative stress and diminished GSH status is presented for Lou Gehrig's disease (ALS), Parkinson's disease, and Alzheimer's disease. Potential links to the Guamanian variant of these diseases (ALS-PD complex) are discussed. In context to the above, we provide a GSH-depletion model of neurodegenerative disorders, suggest experimental verifications of this model, and propose potential therapeutic approaches for preventing or halting these diseases.

MeSH Terms
Animals Cell Death/physiology Glutathione/metabolism Humans Neurodegenerative Diseases/metabolism,pathology Oxidative Stress/physiology
Chemicals
Glutathione
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Bains J S
Department of Ophthalmology, The University of British Columbia, Vancouver, Canada. jbains@unixg.ubc.ca
Shaw C A
Article Info
Journal
Brain research. Brain research reviews
Abbr.
Brain Res Brain Res Rev
Published
1997-12-00
Pages
335-58
Language
English
Region
Netherlands
NLM ID
8908638
Subset
IM
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