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Redox regulation of genome stability by effects on gene expression, epigenetic pathways and DNA damage/repair
Yuliya Mikhed, Agnes Görlach, Ulla G. Knaus, Andreas Daiber
Redox Biology · 2015 · ▲ 183 citations
Genomic instability
Epigenetic alterations
Mitochondrial dysfunction
Altered intercellular communication
Human
Review
Abstract
Reactive oxygen and nitrogen species (e.g. H2O2, nitric oxide) confer redox regulation of essential cellular signaling pathways such as cell differentiation, proliferation, migration and apoptosis. In addition, classical regulation of gene expression or activity, including gene transcription to RNA followed by translation to the protein level, by transcription factors (e.g. NF-κB, HIF-1α) and mRNA binding proteins (e.g. GAPDH, HuR) is subject to redox regulation. This review will give an update of recent discoveries in this field, and specifically highlight the impact of reactive oxygen and nitrogen species on DNA repair systems that contribute to genomic stability. Emphasis will be placed on the emerging role of redox mechanisms regulating epigenetic pathways (e.g. miRNA, DNA methylation and histone modifications). By providing clinical correlations we discuss how oxidative stress can impact on gene regulation/activity and vise versa, how epigenetic processes, other gene regulatory mechanisms and DNA repair can influence the cellular redox state and contribute or prevent development or progression of disease.
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Provenance
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- OpenAlex
- DOI
- 10.1016/j.redox.2015.05.008
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- 2026-07-22 MST
Cite this
APA
Mikhed, Y., Görlach, A., Knaus, U.G., & Daiber, A. (2015). Redox regulation of genome stability by effects on gene expression, epigenetic pathways and DNA damage/repair. <em>Redox Biology</em>. https://doi.org/10.1016/j.redox.2015.05.008
Vancouver
Mikhed Y, Görlach A, Knaus UG, Daiber A. Redox regulation of genome stability by effects on gene expression, epigenetic pathways and DNA damage/repair. Redox Biology. 2015. doi:10.1016/j.redox.2015.05.008.
BibTeX
@article{yuliya2015Redoxr,
title = {Redox regulation of genome stability by effects on gene expression, epigenetic pathways and DNA damage/repair},
author = {Yuliya Mikhed and Agnes Görlach and Ulla G. Knaus and Andreas Daiber},
journal = {Redox Biology},
year = {2015},
doi = {10.1016/j.redox.2015.05.008},
}
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