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Updated: Aug 30, 2026

Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
Comparison of checkpoint responses triggered by DNA polymerase inhibition versus DNA damaging agents
Jen-Sing Liu1, Shu-Ru Kuo, Thomas Melendy
1Department of Microbiology, Witebsky Center for Microbial Pathogenesis & Immunology, School of Medicine & Biomedical Sciences, 138 Farber Hall, SUNY at Buffalo, Buffalo, NY 14214-3000, USA.
Abstract:
To better understand the different cellular responses to replication fork pausing versus blockage, early DNA damage response markers were compared after treatment of cultured mammalian cells with agents that either inhibit DNA polymerase activity (hydroxyurea (HU) or aphidicolin) or selectively induce S-phase DNA damage responses (the DNA alkylating agents, methyl methanesulfonate (MMS) and adozelesin). These agents were compared for their relative abilities to induce phosphorylation of Chk1, H2AX, and replication protein A (RPA), and intra-nuclear focalization of gamma-H2AX and RPA. Treatment by aphidicolin and HU resulted in phosphorylation of Chk1, while HU, but not aphidicolin, induced focalization of gamma-H2AX and RPA. Surprisingly, pre-treatment with aphidicolin to stop replication fork progression, did not abrogate HU-induced gamma-H2AX and RPA focalization. This suggests that HU may act on the replication fork machinery directly, such that fork progression is not required to trigger these responses. The DNA-damaging fork-blocking agents, adozelesin and MMS, both induced phosphorylation and focalization of H2AX and RPA. Unlike adozelesin and HU, the pattern of MMS-induced RPA focalization did not match the BUdR incorporation pattern and was not blocked by aphidicolin, suggesting that MMS-induced damage is not replication fork-dependent. In support of this, MMS was the only reagent used that did not induce phosphorylation of Chk1. These results indicate that induction of DNA damage checkpoint responses due to adozelesin is both replication fork and fork progression dependent, induction by HU is replication fork dependent but progression independent, while induction by MMS is independent of both replication forks and fork progression.
Insights
Hydroxyurea (HU) and adozelesin trigger DNA damage responses dependent on replication forks, while methyl methanesulfonate (MMS) does not. HU
Area of Science:
- Cellular biology
- Molecular biology
- Genetics
Background:
- Cellular responses to DNA replication stress are critical for genomic stability.
- Distinguishing between replication fork pausing and blockage is essential for understanding DNA damage response pathways.
Purpose of the Study:
- To compare cellular responses to replication fork pausing versus blockage.
- To investigate the roles of hydroxyurea (HU), aphidicolin, methyl methanesulfonate (MMS), and adozelesin in triggering DNA damage responses.
Main Methods:
- Cultured mammalian cells were treated with DNA polymerase inhibitors (HU, aphidicolin) or DNA alkylating agents (MMS, adozelesin).
- Early DNA damage response markers including Chk1, H2AX, and replication protein A (RPA) phosphorylation and focalization were analyzed.
Main Results:
- Aphidicolin and HU induced Chk1 phosphorylation; HU induced gamma-H2AX and RPA focalization, independent of aphidicolin pre-treatment.
- Adozelesin and MMS induced H2AX and RPA phosphorylation and focalization.
- MMS-induced responses were independent of replication forks and fork progression, unlike adozelesin and HU.
Conclusions:
- DNA damage checkpoint induction by adozelesin is replication fork and progression dependent.
- HU-induced responses are replication fork dependent but progression independent.
- MMS-induced responses are independent of both replication forks and fork progression, suggesting a distinct damage mechanism.
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