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Published on: December 2, 2022
Type II topoisomerases--inhibitors, repair mechanisms and mutations
1Pharmaceutical Biology and Microbiology, Department of Chemistry, University of Hamburg, Bundesstrasse 45, 20146 Hamburg, Germany. heisig@chemie.uni-hamburg.de
Abstract:
Type II topoisomerases are ubiquitous enzymes that play an essential role in the control of replicative DNA synthesis and share structural and functional homology among different prokaryotic and eukaryotic organisms. Antibacterial fluoroquinolones target prokaryotic topoisomerases at concentrations 100- to 1000-fold lower than mammalian enzymes, the preferred targets of anticancer drugs such as etoposide. The mechanisms of action of both of these types of inhibitors involve the fixation of an intermediate reaction step, where the enzyme is covalently bound to an enzyme-mediated DNA double-strand break (DSB). The resulting ternary drug-enzyme-DNA complexes can then be converted to cleavage complexes that block further movement of the DNA replication fork, subsequently inducing stress responses. In haploid prokaryotic cells, stress responses include error-free and error-prone DNA damage repair pathways, such as homologous recombination and translesion synthesis, respectively. The latter can result in the acquisition of point mutations. Diploid mammalian cells are assumed to preferentially use recombination mechanisms for the repair of DSBs, an example of which, non-homologous end joining, is a major error-prone repair mechanism associated with an increased frequency of detectable small deletions, insertions and translocations. However, results obtained from safety testing of novel fluoroquinolones at high concentrations indicate that point mutations may also occur in mammalian cells. Recent data provide evidence for translesion synthesis catalysed by error-prone repair polymerases as a damage-tolerance repair mechanism of DSBs in eukaryotic cells. This paper discusses possible roles of different mechanisms for the repair of DSBs operating in both eukaryotic and prokaryotic cells that result in recombinational rearrangements, deletions/insertions as well as point mutations.
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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