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Updated: Jun 26, 2025

Measurements of Physiological Stress Responses in C. Elegans
Published on: May 21, 2020
VRK1 Regulates Sensitivity to Oxidative Stress by Altering Histone Epigenetic Modifications and the Nuclear
Elena Navarro-Carrasco1,2, Eva Monte-Serrano1,2, Aurora Campos-Díaz1,2
1Instituto de Biología Molecular y Celular del Cáncer, Consejo Superior de Investigaciones Científicas (CSIC), Universidad de Salamanca, E-37007 Salamanca, Spain.
Abstract:
The chromatin organization and its dynamic remodeling determine its accessibility and sensitivity to DNA damage oxidative stress, the main source of endogenous DNA damage. We studied the role of the VRK1 chromatin kinase in the response to oxidative stress. which alters the nuclear pattern of histone epigenetic modifications and phosphoproteome pathways. The early effect of oxidative stress on chromatin was studied by determining the levels of 8-oxoG lesions and the alteration of the epigenetic modification of histones. Oxidative stress caused an accumulation of 8-oxoG DNA lesions that were increased by VRK1 depletion, causing a significant accumulation of DNA strand breaks detected by labeling free 3'-DNA ends. In addition, oxidative stress altered the pattern of chromatin epigenetic marks and the nuclear phosphoproteome pathways that were impaired by VRK1 depletion. Oxidative stress induced the acetylation of H4K16ac and H3K9 and the loss of H3K4me3. The depletion of VRK1 altered all these modifications induced by oxidative stress and resulted in losses of H4K16ac and H3K9ac and increases in the H3K9me3 and H3K4me3 levels. All these changes were induced by the oxidative stress in the epigenetic pattern of histones and impaired by VRK1 depletion, indicating that VRK1 plays a major role in the functional reorganization of chromatin in the response to oxidative stress. The analysis of the nuclear phosphoproteome in response to oxidative stress detected an enrichment of the phosphorylated proteins associated with the chromosome organization and chromatin remodeling pathways, which were significantly decreased by VRK1 depletion. VRK1 depletion alters the histone epigenetic pattern and nuclear phosphoproteome pathways in response to oxidative stress. The enzymes performing post-translational epigenetic modifications are potential targets in synthetic lethality strategies for cancer therapies.
Insights
The VRK1 kinase is crucial for chromatin
Area of Science:
- Cellular biology
- Molecular biology
- Epigenetics
Background:
- Chromatin organization impacts DNA damage sensitivity.
- Oxidative stress is a major endogenous DNA damage source.
- VRK1 kinase role in oxidative stress response is unclear.
Purpose of the Study:
- Investigate VRK1's role in oxidative stress response.
- Analyze VRK1's effect on chromatin epigenetic modifications.
- Examine VRK1's impact on nuclear phosphoproteome pathways.
Main Methods:
- Assessing 8-oxoG lesions and DNA strand breaks.
- Analyzing histone epigenetic modifications (acetylation, methylation).
- Profiling nuclear phosphoproteome pathways.
Main Results:
- VRK1 depletion exacerbates oxidative stress-induced DNA damage.
- VRK1 is essential for normal oxidative stress-induced epigenetic changes.
- VRK1 depletion impairs nuclear phosphoproteome pathways response to oxidative stress.
Conclusions:
- VRK1 is vital for chromatin reorganization during oxidative stress.
- VRK1 influences histone modifications and phosphoproteome pathways.
- VRK1-mediated pathways are potential targets for cancer therapy.
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