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Interactions between DNA helicases and frozen topoisomerase IV-quinolone-DNA ternary complexes
1Department of Pharmacology, University of Minnesota Medical School, Minneapolis, Minnesota 55455, USA.
Abstract:
Collisions between replication forks and topoisomerase-drug-DNA ternary complexes result in the inhibition of DNA replication and the conversion of the normally reversible ternary complex to a nonreversible form. Ultimately, this can lead to the double strand break formation and subsequent cell death. To understand the molecular mechanisms of replication fork arrest by the ternary complexes, we have investigated molecular events during collisions between DNA helicases and topoisomerase-DNA complexes. A strand displacement assay was employed to assess the effect of topoisomerase IV (Topo IV)-norfloxacin-DNA ternary complexes on the DnaB, T7 gene 4 protein, SV40 T-antigen, and UvrD DNA helicases. The ternary complexes inhibited the strand displacement activities of these DNA helicases. Unlike replication fork arrest, however, this general inhibition of DNA helicases by Topo IV-norfloxacin-DNA ternary complexes did not require the cleavage and reunion activity of Topo IV. We also examined the reversibility of the ternary complexes after collisions with these DNA helicases. UvrD converted the ternary complex to a nonreversible form, whereas DnaB, T7 gene 4 protein, and SV40 T-antigen did not. These results suggest that the inhibition of DnaB translocation may be sufficient to arrest the replication fork progression but it is not sufficient to generate cytotoxic DNA lesion.
Insights
DNA replication forks collide with topoisomerase-drug complexes, halting DNA replication. While some helicases are inhibited, only UvrD converts the complex to a non-reversible form, impacting DNA repair and cell survival.
Area of Science:
- Molecular biology
- Biochemistry
- Genetics
Background:
- Replication forks and topoisomerase-drug-DNA ternary complexes interact, inhibiting DNA replication.
- This interaction can lead to double-strand breaks and cell death.
Purpose of the Study:
- Investigate molecular mechanisms of replication fork arrest by ternary complexes.
- Assess DNA helicase inhibition and ternary complex reversibility after collision.
Main Methods:
- Used a strand displacement assay to test Topoisomerase IV (Topo IV)-norfloxacin-DNA ternary complexes against DnaB, T7 gene 4 protein, SV40 T-antigen, and UvrD DNA helicases.
- Examined the effect of these complexes on DNA helicase activity and ternary complex reversibility.
Main Results:
- Topo IV-norfloxacin-DNA ternary complexes inhibited the strand displacement activity of all tested DNA helicases.
- Inhibition did not require Topo IV's cleavage and reunion activity.
- UvrD, but not DnaB, T7 gene 4 protein, or SV40 T-antigen, converted the ternary complex to a non-reversible form after collision.
Conclusions:
- Inhibition of DnaB translocation may arrest replication fork progression.
- Arrest alone is insufficient to generate cytotoxic DNA lesions.
- Differential helicase interactions with ternary complexes influence DNA replication outcomes.