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Updated: Jan 9, 2026

Visualization of miniSOG Tagged DNA Repair Proteins in Combination with Electron Spectroscopic Imaging ESI
Published on: September 24, 2015
Dynamic genome-wide mapping reveals how chromatin context shapes OGG1-mediated repair and related mutagenesis in
Jie Li1, Lin Li2, Yuanqing Tan3
1Shanghai Fifth People's Hospital, Shanghai Key Laboratory of Medical Epigenetics, International Co-laboratory of Medical Epigenetics and Metabolism (Ministry of Science and Technology), Institutes of Biomedical Sciences, Fudan University, Shanghai 200032, China.
Abstract:
Potassium bromate-induced DNA damage, including 8-oxo-7,8-dihydroguanine (OG) and 2,6-diamino-4-hydroxy-5-formamidopyrimidine (FapyG), are common oxidatively generated DNA lesions with mutagenic potential if not efficiently repaired. While sequencing-based studies have shown that damage formation is influenced by DNA sequence context, secondary structures, and chromatin features, how OGG1-mediated repair is regulated within chromatin remains unclear. Here, we apply CLAPS-seq to generate genome-wide, single-nucleotide resolution maps of OGG1-mediated repair over time in human cells, and systematically analyze how chromatin context affects repair efficiency across hierarchical scales. We find that chromatin accessibility governs rapid initial repair, whereas higher-order chromatin structures increasingly influence later-phase repair. In addition, nucleosome occupancy and transcription factor binding, exemplified by CCCTC-binding factor (CTCF), modulate OGG1-mediated repair at both local and base scales. Overall, mutational outcomes correlate more strongly with repair dynamics than with damage levels. Together, these findings establish a comprehensive framework linking chromatin organization, DNA repair kinetics, and oxidatively induced mutagenesis, and offer new insights into the origins of mutation patterns in cancer and diseases associated with oxidative stress.
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