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Updated: Jul 17, 2026

Quantitative Detection of DNA-Protein Crosslinks and Their Post-Translational Modifications
Published on: April 21, 2023
Alterations in linker flexibility suppress DNA topoisomerase I mutant-induced cell lethality
Carmen Losasso1, Erica Cretaio1, Komaraiah Palle2
1Department of Biology, University of Padua, Padua 35131, Italy.
Abstract:
Eukaryotic DNA topoisomerase I (Top1p) catalyzes changes in DNA topology via the formation of a covalent enzyme-DNA intermediate, which is reversibly stabilized by the anticancer agent camptothecin (CPT). Crystallographic studies of the 70-kDa C terminus of human Top1p bound to duplex DNA describe a monomeric protein clamp circumscribing the DNA helix. The structures, which lack the N-terminal domain, comprise the conserved clamp, an extended linker domain, and the conserved C-terminal active site Tyr domain. CPT bound to the covalent Top1p-DNA complex limits linker flexibility, allowing structural determination of this domain. We previously reported that mutation of Ala(653) to Pro in the linker increases the rate of enzyme-catalyzed DNA religation, thereby rendering Top1A653Pp resistant to CPT (Fiorani, P., Bruselles, A., Falconi, M., Chillemi, G., Desideri, A., and Benedetti P. (2003) J. Biol. Chem. 278, 43268-43275). Molecular dynamics studies suggested mutation-induced increases in linker flexibility alter Top1p catalyzed DNA religation. To address the functional consequences of linker flexibility on enzyme catalysis and drug sensitivity, we investigated the interactions of the A653P linker mutation with a self-poisoning T718A mutation within the active site of Top1p. The A653P mutation suppressed the lethal phenotype of Top1T718Ap in yeast, yet did not restore enzyme sensitivity to CPT. However, the specific activity of the double mutant was decreased in vivo and in vitro, consistent with a decrease in DNA binding. These findings support a model where changes in the flexibility or orientation of the linker alter the geometry of the active site and thereby the kinetics of DNA cleavage/religation catalyzed by Top1p.
Insights
Investigating DNA topoisomerase I (Top1p) linker mutations reveals altered enzyme activity and drug resistance. Changes in linker flexibility impact DNA binding and catalysis, affecting Top1p
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Eukaryotic DNA topoisomerase I (Top1p) is crucial for managing DNA topology, forming a covalent intermediate stabilized by camptothecin (CPT) anticancer drugs.
- Crystallographic studies reveal Top1p as a clamp around DNA, with its activity influenced by linker flexibility and active site interactions.
- Previous work showed a specific linker mutation (A653P) confers CPT resistance by increasing DNA religation rates.
Purpose of the Study:
- To investigate the functional consequences of linker flexibility on Top1p catalysis and drug sensitivity.
- To examine the combined effects of the A653P linker mutation and a self-poisoning active site mutation (T718A) on Top1p function.
- To elucidate how linker flexibility influences the enzyme's active site geometry and DNA cleavage/religation kinetics.
Main Methods:
- Genetic analysis in yeast to assess the viability of double mutants (A653P and T718A).
- In vitro and in vivo assays to measure Top1p specific activity and DNA binding.
- Analysis of enzyme sensitivity to camptothecin (CPT).
Main Results:
- The A653P mutation suppressed the lethal phenotype of the Top1T718A mutant in yeast.
- The double mutant (A653P/T718A) did not regain sensitivity to CPT.
- Specific activity of the double mutant was reduced both in vivo and in vitro, indicating decreased DNA binding.
Conclusions:
- Changes in the flexibility or orientation of the Top1p linker domain significantly impact enzyme catalysis.
- Altered linker dynamics affect the active site geometry, influencing DNA cleavage and religation rates.
- These findings support a model where linker flexibility is a key determinant of Top1p activity and CPT sensitivity.
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