AI Article Synopsis

  • Oxidative stress linked to Alzheimer's disease (AD) is partly due to the loss of glutathione (GSH), and a GSH analog called Ψ-GSH shows promise in reducing this stress and improving memory in mouse models of AD.
  • In a study, APP/PS1 transgenic mice were treated with Ψ-GSH at different ages, leading to reduced oxidative stress markers, restored enzyme activity, and decreased levels of harmful proteins associated with AD.
  • The findings suggest that Ψ-GSH not only decreases inflammation and protein deposits linked to AD but also protects against neuron loss, indicating its potential as a treatment for slowing or reversing AD progression.

Article Abstract

Oxidative stress in Alzheimer's disease (AD) is mediated, in part, by the loss of glutathione (GSH). Previous studies show that γ-glutamyl transpeptidase (GGT)-resistant GSH analog, Ψ-GSH, improves brain GSH levels, reduces oxidative stress markers in brains of APP/PS1 transgenic mice, a mouse model of AD, and attenuates early memory deficits in the APP/PS1 model. Herein, we examined whether Ψ-GSH can attenuate the disease progression when administered following the onset of AD-like pathology in vivo. Cohorts of APP/PS1 mice were administered Ψ-GSH for 2 months starting at 8 month or 12 months of age. We show that Ψ-GSH treatment reduces indices of oxidative stress in older mice by restoration of enzyme glyoxalase-1 (Glo-1) activity and reduces levels of insoluble Aβ. Quantitative neuropathological analyses show that Ψ-GSH treatment significantly reduces Aβ deposition and brain inflammation in APP/PS1 mice compared to vehicle-treated mice. More importantly, Ψ-GSH treatment attenuated the progressive loss of cortical TH+ afferents and the loss of TH+ neurons in the locus coeruleus (LC). Collectively, the results show that Ψ-GSH exhibits significant antioxidant activity in aged APP/PS1 mice and chronic Ψ-GSH treatment administered after the onset of AD pathology can reverse/slow further progression of AD-like pathology and neurodegeneration in vivo.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8614797PMC
http://dx.doi.org/10.3390/antiox10111796DOI Listing

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