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The Role of NRF2 in Trinucleotide Repeat Expansion Disorders
Kuo-Hsuan Chang1,2, Chiung-Mei Chen1,2
1Department of Neurology, Chang Gung Memorial Hospital, Linkou Medical Center, Kueishan, Taoyuan 333, Taiwan.
Abstract:
Trinucleotide repeat expansion disorders, a diverse group of neurodegenerative diseases, are caused by abnormal expansions within specific genes. These expansions trigger a cascade of cellular damage, including protein aggregation and abnormal RNA binding. A key contributor to this damage is oxidative stress, an imbalance of reactive oxygen species that harms cellular components. This review explores the interplay between oxidative stress and the NRF2 pathway in these disorders. NRF2 acts as the master regulator of the cellular antioxidant response, orchestrating the expression of enzymes that combat oxidative stress. Trinucleotide repeat expansion disorders often exhibit impaired NRF2 signaling, resulting in inadequate responses to excessive ROS production. NRF2 activation has been shown to upregulate antioxidative gene expression, effectively alleviating oxidative stress damage. NRF2 activators, such as omaveloxolone, vatiquinone, curcumin, sulforaphane, dimethyl fumarate, and resveratrol, demonstrate neuroprotective effects by reducing oxidative stress in experimental cell and animal models of these diseases. However, translating these findings into successful clinical applications requires further research. In this article, we review the literature supporting the role of NRF2 in the pathogenesis of these diseases and the potential therapeutics of NRF2 activators.
Insights
Trinucleotide repeat expansion disorders involve oxidative stress and impaired NRF2 signaling. Activating the NRF2 pathway shows promise for neuroprotection against these neurodegenerative diseases.
Area of Science:
- Neuroscience
- Genetics
- Cellular Biology
Background:
- Trinucleotide repeat expansion disorders are genetic neurodegenerative diseases.
- These disorders cause cellular damage via protein aggregation and oxidative stress.
- Oxidative stress results from an imbalance of reactive oxygen species (ROS).
Purpose of the Study:
- To review the role of the NRF2 pathway in trinucleotide repeat expansion disorders.
- To explore the interplay between oxidative stress and NRF2 signaling in pathogenesis.
- To discuss the therapeutic potential of NRF2 activators.
Main Methods:
- Literature review of studies on trinucleotide repeat expansion disorders.
- Analysis of the NRF2 pathway's function in cellular antioxidant response.
- Examination of experimental models investigating oxidative stress and NRF2.
Main Results:
- Trinucleotide repeat expansion disorders often feature impaired NRF2 signaling.
- NRF2 activation upregulates antioxidant gene expression, reducing oxidative stress.
- NRF2 activators demonstrate neuroprotective effects in preclinical models.
Conclusions:
- NRF2 pathway dysfunction contributes to the pathogenesis of these disorders.
- NRF2 activators represent a potential therapeutic strategy.
- Further clinical research is needed to translate findings into effective treatments.
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