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Updated: Jun 26, 2025

Using Next Generation Sequencing to Identify Mutations Associated with Repair of a CAS9-induced Double Strand Break Near the CD4 Promoter
Published on: March 31, 2022
DNA lesion bypass and the stochastic dynamics of transcription-coupled repair
Michael D Nicholson1, Craig J Anderson2, Duncan T Odom3,4
1Cancer Research United Kingdom Scotland Centre, Institute of Genetics and Cancer, University of Edinburgh, Edinburgh EH4 2XU, United Kingdom.
Abstract:
DNA base damage is a major source of oncogenic mutations and disruption to gene expression. The stalling of RNA polymerase II (RNAP) at sites of DNA damage and the subsequent triggering of repair processes have major roles in shaping the genome-wide distribution of mutations, clearing barriers to transcription, and minimizing the production of miscoded gene products. Despite its importance for genetic integrity, key mechanistic features of this transcription-coupled repair (TCR) process are controversial or unknown. Here, we exploited a well-powered in vivo mammalian model system to explore the mechanistic properties and parameters of TCR for alkylation damage at fine spatial resolution and with discrimination of the damaged DNA strand. For rigorous interpretation, a generalizable mathematical model of DNA damage and TCR was developed. Fitting experimental data to the model and simulation revealed that RNA polymerases frequently bypass lesions without triggering repair, indicating that small alkylation adducts are unlikely to be an efficient barrier to gene expression. Following a burst of damage, the efficiency of transcription-coupled repair gradually decays through gene bodies with implications for the occurrence and accurate inference of driver mutations in cancer. The reinitation of transcription from the repair site is not a general feature of transcription-coupled repair, and the observed data is consistent with reinitiation never taking place. Collectively, these results reveal how the directional but stochastic activity of TCR shapes the distribution of mutations following DNA damage.
Insights
DNA damage triggers transcription-coupled repair (TCR), but RNA polymerases often bypass lesions. TCR efficiency decreases over time, influencing cancer mutation patterns and gene expression.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- DNA base damage is a primary driver of cancer mutations and gene expression disruption.
- Transcription-coupled repair (TCR) is crucial for maintaining genome integrity but its mechanisms remain unclear.
- Understanding TCR is vital for comprehending mutation distribution and its role in oncogenesis.
Purpose of the Study:
- To investigate the mechanistic properties of TCR for alkylation damage in vivo.
- To determine how TCR parameters influence mutation patterns and gene expression.
- To clarify the role of RNA polymerase II (RNAP) stalling and repair site reinitiation in TCR.
Main Methods:
- Utilized a mammalian model system to study TCR at high spatial resolution.
- Differentiated between damaged and undamaged DNA strands.
- Developed and applied a mathematical model to analyze experimental data and simulations.
Main Results:
- RNA polymerases frequently bypass DNA lesions without initiating repair, suggesting small alkylation adducts are not significant transcriptional barriers.
- TCR efficiency diminishes along gene bodies after DNA damage, impacting mutation occurrence and inference in cancer.
- Transcription reinitiation from repair sites is not a general feature of TCR and may not occur at all.
Conclusions:
- The directional yet stochastic nature of TCR significantly shapes genome-wide mutation distribution following DNA damage.
- Findings provide mechanistic insights into how cells respond to DNA damage and maintain genetic stability.
- This study refines our understanding of TCR dynamics and its implications for cancer genomics.
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