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Published on: June 26, 2020
Genetic interactions of DNA repair pathways in the pathogen Neisseria meningitidis
Tonje Davidsen1, Hanne K Tuven, Magnar Bjørås
1Centre for Molecular Biology and Neuroscience and Institute of Microbiology, University of Oslo, Oslo, Norway.
Abstract:
The current increase in the incidence and severity of infectious diseases mandates improved understanding of the basic biology and DNA repair profiles of virulent microbes. In our studies of the major pathogen and model organism Neisseria meningitidis, we constructed a panel of mutants inactivating genes involved in base excision repair, mismatch repair, nucleotide excision repair (NER), translesion synthesis, and recombinational repair pathways. The highest spontaneous mutation frequency among the N. meningitidis single mutants was found in the MutY-deficient strain as opposed to mutS mutants in Escherichia coli, indicating a role for meningococcal MutY in antibiotic resistance development. Recombinational repair was recognized as a major pathway counteracting methyl methanesulfonate-induced alkylation damage in the N. meningitidis. In contrast to what has been shown in other species, meningococcal NER did not contribute significantly to repair of alkylation-induced DNA damage, and meningococcal recombinational repair may thus be one of the main pathways for removal of abasic (apurinic/apyrimidinic) sites and strand breaks in DNA. Conversely, NER was identified as the main meningococcal defense pathway against UV-induced DNA damage. N. meningitidis RecA single mutants exhibited only a moderate decrease in survival after UV exposure as opposed to E. coli recA strains, which are extremely UV sensitive, possibly reflecting the lack of a meningococcal SOS response. In conclusion, distinct differences between N. meningitidis and established DNA repair characteristics in E. coli and other species were identified.
Insights
Neisseria meningitidis DNA repair pathways differ significantly from other bacteria. Meningococcal MutY plays a key role in antibiotic resistance, while nucleotide excision repair is crucial for UV damage, unlike in E. coli.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Increasing infectious disease incidence necessitates understanding microbial DNA repair.
- Neisseria meningitidis is a major pathogen and model organism for studying microbial DNA repair.
Purpose of the Study:
- To investigate and compare DNA repair profiles in Neisseria meningitidis.
- To identify key DNA repair pathways involved in microbial virulence and antibiotic resistance.
Main Methods:
- Construction of Neisseria meningitidis mutants for base excision repair, mismatch repair, nucleotide excision repair (NER), translesion synthesis, and recombinational repair.
- Analysis of spontaneous mutation frequencies and survival rates after exposure to DNA-damaging agents (e.g., methyl methanesulfonate, UV radiation).
Main Results:
- MutY-deficient Neisseria meningitidis exhibited the highest spontaneous mutation frequency, suggesting a role in antibiotic resistance.
- Recombinational repair is a major pathway for repairing alkylation damage, while NER is less significant for this type of damage.
- NER is the primary defense against UV-induced DNA damage, and Neisseria meningitidis RecA mutants show moderate UV sensitivity, unlike highly sensitive E. coli RecA strains, possibly due to the absence of an SOS response.
Conclusions:
- Neisseria meningitidis possesses distinct DNA repair mechanisms compared to established models like E. coli.
- Understanding these unique repair pathways is crucial for developing novel therapeutic strategies against Neisseria meningitidis infections.
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