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The role of histone modifications in transcription regulation upon DNA damage
Angelina Job Kolady1, Siyao Wang1,2
1Institute for Genome Stability in Ageing and Disease, Medical Faculty, University of Cologne, Germany.
Abstract:
Cells are constantly exposed to various sources of DNA damage, including radiation, chemicals, replicative stress and oxidative stress, that threaten genome stability. To ensure faithful DNA repair, transcription regulation needs to be tightly controlled. This regulation involves transcriptional suppression, selective activation of DNA repair-related genes and transcriptional recovery post-repair. Failure to properly modulate transcription during DNA damage can result in collisions between transcriptional and repair machineries, misregulation of repair genes and delayed recovery, ultimately compromising genomic integrity. Chromatin modifications play a central role in this process. These modifications include phosphorylation, methylation, acetylation and ubiquitination, which orchestrate DNA accessibility for repair machinery and fine-tune transcriptional responses. Absence of these modifications leads to inefficient DNA repair and transcriptional errors that are implicated in diseases such as cancer, premature ageing and neurodegenerative disorders. In this review, we delve into the role of various types of histone modifications, such as phosphorylation, methylation, acetylation and ubiquitination and how they regulate transcription in response to DNA damage. Impact Statement This review elucidates how histone modifications orchestrate transcription regulation during DNA damage response, safeguarding genome stability. We also discuss transcription dysregulation in diseases such as cancer and premature aging. Our review provide insights on chromatin-based repair pathways and guide researchers in developing therapeutic targets.
Insights
Histone modifications regulate gene transcription during DNA damage responses to maintain genome stability. Dysregulation of these processes contributes to diseases like cancer and premature aging.
Area of Science:
- Molecular Biology
- Genetics
- Epigenetics
Background:
- Cells face constant DNA damage from various sources, threatening genome stability.
- Proper transcription regulation is crucial for efficient DNA repair and maintaining genomic integrity.
Purpose of the Study:
- To review the role of histone modifications in regulating transcription during DNA damage response.
- To explore the impact of these modifications on genome stability and disease development.
Main Methods:
- Literature review focusing on histone modifications (phosphorylation, methylation, acetylation, ubiquitination).
- Analysis of how these modifications influence DNA accessibility and transcriptional control post-DNA damage.
Main Results:
- Histone modifications orchestrate DNA accessibility for repair machinery and fine-tune transcriptional responses.
- Failure in these modifications leads to inefficient DNA repair and transcriptional errors.
Conclusions:
- Histone modifications are central to safeguarding genome stability during DNA damage.
- Dysregulation is implicated in cancer, premature aging, and neurodegenerative disorders, highlighting potential therapeutic targets.
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