Type II topoisomerases--inhibitors, repair mechanisms and mutations

Peter Heisig1

  • 1Pharmaceutical Biology and Microbiology, Department of Chemistry, University of Hamburg, Bundesstrasse 45, 20146 Hamburg, Germany. heisig@chemie.uni-hamburg.de

Mutagenesis
|September 19, 2009
PubMed

Insights

Type II topoisomerases are crucial for DNA replication. Inhibitors like fluoroquinolones cause DNA double-strand breaks (DSBs), triggering diverse repair pathways including error-prone translesion synthesis in both prokaryotes and eukaryotes.

Area of Science:

  • Molecular Biology
  • Genetics
  • Biochemistry

Background:

  • Type II topoisomerases are essential enzymes regulating DNA replication across prokaryotes and eukaryotes.
  • Antibacterial fluoroquinolones and anticancer drugs like etoposide target these enzymes, forming drug-enzyme-DNA cleavage complexes.
  • These complexes induce DNA double-strand breaks (DSBs), halting DNA replication and initiating cellular stress responses.

Purpose of the Study:

  • To explore the distinct mechanisms of DNA double-strand break (DSB) repair in prokaryotic and eukaryotic cells.
  • To compare the roles of homologous recombination, non-homologous end joining, and translesion synthesis in repairing drug-induced DSBs.
  • To investigate the potential for point mutations in mammalian cells resulting from high-concentration fluoroquinolone exposure.

Main Methods:

  • Comparative analysis of DNA repair pathways in prokaryotic and eukaryotic systems.
  • Review of existing literature on topoisomerase inhibitors and their effects on DNA.
  • Examination of data from safety testing of novel fluoroquinolones.

Main Results:

  • Prokaryotic cells utilize error-free (homologous recombination) and error-prone (translesion synthesis) pathways for DSB repair, with the latter potentially causing point mutations.
  • Eukaryotic cells primarily employ recombination, including error-prone non-homologous end joining, for DSB repair, leading to rearrangements and indels.
  • Emerging evidence suggests translesion synthesis by error-prone polymerases is also a significant DSB repair mechanism in eukaryotes.

Conclusions:

  • Both prokaryotic and eukaryotic cells employ a range of DSB repair mechanisms, including error-prone pathways.
  • These repair mechanisms can lead to genetic alterations such as point mutations, deletions, insertions, and translocations.
  • Understanding these pathways is critical for evaluating the genotoxic potential of topoisomerase-targeting drugs.

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