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Updated: Jun 21, 2026

Quantitative Detection of DNA-Protein Crosslinks and Their Post-Translational Modifications
Published on: April 21, 2023
Proteasome-dependent processing of topoisomerase I-DNA adducts into DNA double strand breaks at arrested replication
Chao-Po Lin1, Yi Ban1, Yi Lisa Lyu1
1Department of Pharmacology, University of Medicine and Dentistry of New Jersey-Robert Wood Johnson Medical School, Piscataway, New Jersey 08854-5635.
Abstract:
Reversible topoisomerase I (Top1)-DNA cleavage complexes are the key DNA lesion induced by anticancer camptothecins (CPTs) (e.g. topotecan and irinotecan) as well as structurally perturbed DNAs (e.g. oxidatively damaged, UV-irradiated, or alkylated DNA). It has been proposed that Top1 cleavage complexes arrest advancing replication forks, triggering the formation of DNA double strand breaks (DSBs) because of replication fork runoff at the Top1 cleavage complex sites on the leading strand. In this study, we show that the formation of replication-dependent DSBs requires the ubiquitin-proteasome pathway in CPT-treated cells. First, the proteasome inhibitor MG-132 specifically inhibited CPT-induced but not ionizing radiation- or hydroxyurea-induced DSBs as revealed by both the neutral comet assay and measurements of the specific DNA damage signals (e.g. gamma-H2AX, phosphorylated ataxia telangiectasia mutated (Ser-1981), and phosphorylated Chk2 (Ser-33/35)) that are characteristic for DSBs. Knocking down the 20 S proteasome maturation protein also supported the requirement of the proteasome activity for CPT-induced DSBs. Second, CPT-induced DSB signals were shown to require ubiquitin, ubiquitin-activating enzyme (E1), a CUL-3-based ubiquitin ligase (E3), and the formation of Lys-48-linked polyubiquitin chains on Top1. Third, immunocytochemical studies revealed that the CPT-induced formation of gamma-H2AX foci occurred at the replication forks and was attenuated by co-treatment with the proteasome inhibitor MG-132. In the aggregate, these results support a replication fork collision model in which Top1 cleavage complexes at the arrested replication forks are degraded by proteasome prior to replication fork runoff on the leading strand to generate DSBs.
Insights
The ubiquitin-proteasome system degrades Topoisomerase I (Top1) cleavage complexes at replication forks, preventing DNA double-strand breaks (DSBs) in camptothecin-treated cells. This degradation is essential for avoiding replication fork collapse and subsequent DNA damage.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Topoisomerase I (Top1) cleavage complexes are DNA lesions induced by camptothecins (CPTs) and DNA damage.
- These complexes are proposed to arrest replication forks, leading to DNA double-strand breaks (DSBs).
Purpose of the Study:
- To investigate the role of the ubiquitin-proteasome pathway in the formation of replication-dependent DSBs induced by CPTs.
- To elucidate the mechanism by which Top1 cleavage complexes lead to DSBs.
Main Methods:
- Proteasome inhibitor MG-132 treatment and neutral comet assay.
- Knockdown of 20 S proteasome maturation protein.
- Analysis of ubiquitination of Top1 and formation of Lys-48-linked polyubiquitin chains.
- Immunocytochemistry for gamma-H2AX foci at replication forks.
Main Results:
- MG-132 specifically inhibited CPT-induced DSBs, but not those induced by ionizing radiation or hydroxyurea.
- Proteasome activity and ubiquitination of Top1, including Lys-48-linked chains, were required for CPT-induced DSBs.
- Gamma-H2AX foci at replication forks were reduced by MG-132 treatment.
Conclusions:
- Replication-dependent DSBs in CPT-treated cells require the ubiquitin-proteasome pathway.
- Top1 cleavage complexes at arrested replication forks are degraded by the proteasome to prevent replication fork runoff and DSB formation.
- These findings support a replication fork collision model involving proteasomal degradation of Top1-DNA complexes.
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