Structural and functional insights into the T-even type bacteriophage topoisomerase II.

Nat Commun

National Laboratory of Biomacromolecules, Institute of Biophysics, Chinese Academy of Sciences, Beijing, China.

Published: October 2024

AI Article Synopsis

  • T-even type bacteriophages are important model organisms used to study biological processes like DNA topology regulation during replication, which is influenced by type IIA DNA topoisomerases.
  • This study reveals the cryo-EM structures of topoisomerase II from T4 and T6 phages, showcasing both apo and DNA-binding states, providing new insights into their mechanisms.
  • The research highlights unique interactions and functions of phage topoisomerase II, enhancing our understanding compared to prokaryotic and eukaryotic counterparts and featuring potential applications for developing inhibitors.

Article Abstract

T-even type bacteriophages are virulent phages commonly used as model organisms, playing a crucial role in understanding various biological processes. One such process involves the regulation of DNA topology during phage replication upon host infection, governed by type IIA DNA topoisomerases. In spite of various studies on prokaryotic and eukaryotic counterparts, viral topoisomerase II remains insufficiently understood, especially the unique domain composition of T4 phage. In this study, we determine the cryo-EM structures of topoisomerase II from T4 and T6 phages, including full-length structures of both apo and DNA-binding states which have never been determined before. Together with other conformational states, these structures provide an explicit blueprint of mechanisms of phage topoisomerase II. Particularly, the asymmetric dimeric interactions observed in cryo-EM structures of T6 phage topoisomerase II ATPase domain and central domain bound with DNA shed light on the asynchronous ATP usage and asynchronous cleavage of the G-segment DNA, respectively. The elucidation of phage topoisomerase II's structures and functions not only enhances our understanding of mechanisms and evolutionary parallels with prokaryotic and eukaryotic homologs but also highlights its potential as a model for developing type IIA topoisomerase inhibitors.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11461880PMC
http://dx.doi.org/10.1038/s41467-024-53037-3DOI Listing

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