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Updated: Jun 11, 2026

Quantitative Detection of DNA-Protein Crosslinks and Their Post-Translational Modifications
Published on: April 21, 2023
Structural basis of gate-DNA breakage and resealing by type II topoisomerases
Ivan Laponogov1, Xiao-Su Pan, Dennis A Veselkov
1Randall Division of Cell and Molecular Biophysics, King's College London, London, United Kingdom.
Abstract:
Type II DNA topoisomerases are ubiquitous enzymes with essential functions in DNA replication, recombination and transcription. They change DNA topology by forming a transient covalent cleavage complex with a gate-DNA duplex that allows transport of a second duplex though the gate. Despite its biological importance and targeting by anticancer and antibacterial drugs, cleavage complex formation and reversal is not understood for any type II enzyme. To address the mechanism, we have used X-ray crystallography to study sequential states in the formation and reversal of a DNA cleavage complex by topoisomerase IV from Streptococcus pneumoniae, the bacterial type II enzyme involved in chromosome segregation. A high resolution structure of the complex captured by a novel antibacterial dione reveals two drug molecules intercalated at a cleaved B-form DNA gate and anchored by drug-specific protein contacts. Dione release generated drug-free cleaved and resealed DNA complexes in which the DNA gate instead adopts an unusual A/B-form helical conformation with a Mg(2+) ion repositioned to coordinate each scissile phosphodiester group and promote reversible cleavage by active-site tyrosines. These structures, the first for putative reaction intermediates of a type II topoisomerase, suggest how a type II enzyme reseals DNA during its normal reaction cycle and illuminate aspects of drug arrest important for the development of new topoisomerase-targeting therapeutics.
Insights
Type II DNA topoisomerases are crucial enzymes. New structures reveal how these enzymes cleave and reseal DNA, offering insights into antibacterial drug mechanisms.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Type II DNA topoisomerases regulate DNA topology for essential cellular processes.
- Their mechanism, particularly cleavage complex formation and reversal, remains poorly understood.
- These enzymes are targets for antibacterial and anticancer drugs.
Purpose of the Study:
- To elucidate the mechanism of DNA cleavage complex formation and reversal by a type II topoisomerase.
- To investigate the structural basis of drug interactions with topoisomerase-DNA complexes.
Main Methods:
- X-ray crystallography was employed to determine high-resolution structures.
- Sequential states of DNA cleavage complex formation and reversal were studied.
- A novel antibacterial dione was used to capture intermediate states.
Main Results:
- Structures revealed drug molecules intercalated in a cleaved DNA gate, stabilized by protein contacts.
- Drug release led to DNA resealing, with the DNA adopting an unusual A/B-form conformation.
- A repositioned Mg(2+) ion was observed coordinating scissile phosphodiester groups.
Conclusions:
- The study provides the first structural insights into reaction intermediates of type II topoisomerases.
- Findings suggest mechanisms for DNA resealing during the enzyme's normal function.
- The results illuminate drug-induced arrest mechanisms, aiding the development of new therapeutics.
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