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Author Spotlight: Visualizing Single-Stranded DNA During DNA Repair for Therapeutic Insights
Published on: December 22, 2023
The helicase DinG responds to stress due to DNA double strand breaks
Stephan A Frye1, Getachew Tesfaye Beyene2, Amine Namouchi1
1Department of Microbiology, Oslo University Hospital, Oslo, Norway.
Abstract:
Neisseria meningitidis (Nm) is a Gram-negative nasopharyngeal commensal that can cause septicaemia and meningitis. The neisserial DNA damage-inducible protein DinG is a helicase related to the mammalian helicases XPD and FANCJ. These helicases belong to superfamily 2, are ATP dependent and exert 5' → 3' directionality. To better understand the role of DinG in neisserial genome maintenance, the Nm DinG (DinGNm) enzymatic activities were assessed in vitro and phenotypical characterization of a dinG null mutant (NmΔdinG) was performed. Like its homologues, DinGNm possesses 5' → 3' directionality and prefers DNA substrates containing a 5'-overhang. ATPase activity of DinGNm is strictly DNA-dependent and DNA unwinding activity requires nucleoside triphosphate and divalent metal cations. DinGNm directly binds SSBNm with a Kd of 313 nM. Genotoxic stress analysis demonstrated that NmΔdinG was more sensitive to double-strand DNA breaks (DSB) induced by mitomycin C (MMC) than the Nm wildtype, defining the role of neisserial DinG in DSB repair. Notably, when NmΔdinG cells grown under MMC stress assessed by quantitative mass spectrometry, 134 proteins were shown to be differentially abundant (DA) compared to unstressed NmΔdinG cells. Among the DNA replication, repair and recombination proteins affected, polymerase III subunits and recombinational repair proteins RuvA, RuvB, RecB and RecD were significantly down regulated while TopA and SSB were upregulated under stress condition. Most of the other DA proteins detected are involved in metabolic functions. The present study shows that the helicase DinG is probably involved in regulating metabolic pathways as well as in genome maintenance.
Insights
Neisseria meningitidis DinG helicase is crucial for repairing double-strand DNA breaks and maintaining genome stability. Its absence increases sensitivity to genotoxic stress and alters protein levels, impacting metabolic pathways.
Area of Science:
- Microbiology
- Molecular Biology
- Genetics
Background:
- Neisseria meningitidis (Nm) is a bacterium causing serious infections.
- The DNA damage-inducible protein DinG is a helicase homologous to human proteins involved in genome maintenance.
- Understanding DinG's function in Nm is vital for comprehending bacterial DNA repair mechanisms.
Purpose of the Study:
- To investigate the enzymatic activities of Neisseria meningitidis DinG (DinGNm) in vitro.
- To characterize the phenotypic effects of a dinG null mutant (NmΔdinG) under genotoxic stress.
- To identify proteins affected by the absence of DinG during DNA damage.
Main Methods:
- In vitro biochemical assays to assess DinGNm helicase and ATPase activities.
- Phenotypic characterization of NmΔdinG mutant sensitivity to mitomycin C (MMC).
- Quantitative mass spectrometry to analyze differential protein abundance in stressed NmΔdinG cells.
Main Results:
- DinGNm exhibits 5' → 3' DNA unwinding activity dependent on ATP and metal cations.
- The NmΔdinG mutant showed increased sensitivity to double-strand DNA breaks induced by MMC.
- Quantitative mass spectrometry revealed 134 differentially abundant proteins, including down-regulation of DNA repair proteins and up-regulation of TopA and SSB under stress.
Conclusions:
- Neisserial DinG plays a significant role in double-strand DNA break repair and genome maintenance.
- Loss of DinG impacts the regulation of DNA replication, repair, and recombination pathways.
- DinG may also be involved in regulating metabolic functions within Neisseria meningitidis.
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Homologous Recombination
Fixing Double-strand Breaks
Fixing Double-strand Breaks
Single-Strand DNA Binding Proteins
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