Related Experiment Video
Updated: Aug 11, 2026

Steady-state, Pre-steady-state, and Single-turnover Kinetic Measurement for DNA Glycosylase Activity
Published on: August 19, 2013
Eukaryotic topoisomerase II. Characterization of enzyme turnover
Abstract:
While the binding of adenyl-5'-yl imidodiphosphate (App(NH)p) to Drosophila melanogaster topoisomerase II induces a double-stranded DNA passage reaction, its nonhydrolyzable beta,gamma-imidodiphosphate bond prevents enzyme turnover (Osheroff, N., Shelton, E. R., and Brutlag, D. L. (1983) J. Biol. Chem. 258, 9536-9543). Therefore, this ATP analog was used to characterize the interactions between Drosophila topoisomerase II and DNA which occur after DNA strand passage but before enzyme turnover. In the presence of App(NH)p, a stable post-strand passage topoisomerase II-nucleic acid complex is formed when circular DNA substrates are employed. Although noncovalent in nature, these complexes are resistant to increases in ionic strength and show less than 5% dissociation under salt concentrations (greater than 500 mM) that disrupt 95% of the enzyme-DNA interactions formed in the absence of App(NH)p or under a variety of other conditions that do not support DNA strand passage. These results strongly suggest that the process of enzyme turnover not only regenerates the active conformation of topoisomerase II but also confers upon the enzyme the ability to disengage from its nucleic acid product. Experiments with linear DNA molecules indicate that after strand passage has taken place, topoisomerase II may be able to travel along its DNA substrate by a linear diffusion process that is independent of enzyme turnover. Further studies demonstrate that the regeneration of the enzyme's catalytic center does not require enzyme turnover, since topoisomerase II can cleave double-stranded DNA substrates after strand passage has taken place. Finally, while the 2'-OH and 3'-OH of ATP are important for its interaction with Drosophila topoisomerase II, neither are required for turnover.
Insights
Drosophila topoisomerase II forms stable complexes with DNA after strand passage, even without enzyme turnover. Enzyme turnover is crucial for releasing DNA, but not for regenerating the catalytic center.
Area of Science:
- Molecular Biology
- Enzymology
- Genetics
Background:
- Drosophila melanogaster topoisomerase II is essential for DNA replication and transcription.
- Enzyme turnover is a critical step in the catalytic cycle of topoisomerase II.
- Understanding enzyme-DNA interactions post-strand passage is key to elucidating enzyme function.
Purpose of the Study:
- To characterize the interactions between Drosophila topoisomerase II and DNA after DNA strand passage but before enzyme turnover.
- To investigate the role of enzyme turnover in the dissociation of topoisomerase II from DNA.
- To explore the mechanism of DNA cleavage and enzyme conformation regeneration.
Main Methods:
- Utilized the non-hydrolyzable ATP analog, adenyl-5'-yl imidodiphosphate (App(NH)p).
- Formed stable post-strand passage topoisomerase II-nucleic acid complexes with circular DNA substrates.
- Assessed complex stability under varying ionic strengths and salt concentrations.
- Investigated enzyme behavior with linear DNA molecules.
Main Results:
- App(NH)p stabilized a noncovalent complex between Drosophila topoisomerase II and DNA post-strand passage.
- These complexes resisted high salt concentrations that dissociated enzyme-DNA interactions without App(NH)p.
- Topoisomerase II can cleave DNA after strand passage, independent of turnover.
- Linear diffusion may facilitate enzyme movement along DNA post-strand passage.
Conclusions:
- Enzyme turnover is essential for Drosophila topoisomerase II to disengage from its DNA product.
- The catalytic center of topoisomerase II can regenerate without requiring enzyme turnover.
- The 2'-OH and 3'-OH groups of ATP are important for enzyme interaction but not for turnover.
Related Concept Videos
Replication in Eukaryotes
DNA Topoisomerases
Types and Mechanism of action
Topoisomerases are divided into two main types. Type I...
Eukaryotic RNA Polymerases
All three eukaryotic RNAPs require specific transcription factors, of which the...
Turnover Number and Catalytic Efficiency
Chymotrypsin is a pancreatic enzyme that breaks down proteins during digestion. The...
Replication in Eukaryotes
Many Proteins Orchestrate Replication at the Origin
Eukaryotic replication follows many of the same...
Inhibitors of Bacterial DNA Synthesis

