[MutL Protein from the Neisseria gonorrhoeae Mismatch Repair System: Interaction with ATP and DNA]

M V Monakhova1,2, M A Milakina3, V Yu Savitskaia3

  • 1Belozersky Institute of Physico-Chemical Biology, Moscow State University, Moscow, 119991 Russia.

Insights

The study characterized the MutL protein from Neisseria gonorrhoeae (NgoMutL), detailing its DNA binding and ATP hydrolysis. Findings reveal NgoMutL

Area of Science:

  • Molecular Biology
  • Genetics
  • Biochemistry

Background:

  • The mismatch repair system (MMR) is crucial for maintaining genetic stability during DNA replication.
  • MutL proteins, in complex with MutS, initiate MMR by recognizing DNA mismatches and activating repair pathways.
  • While MutL's endonuclease activity is known, its detailed biochemical functions remain largely uncharacterized.

Purpose of the Study:

  • To investigate the ATPase and DNA-binding properties of the MutL protein from Neisseria gonorrhoeae (NgoMutL).
  • To elucidate the role of conserved cysteine residues in NgoMutL's DNA interaction and potential metal ion coordination.

Main Methods:

  • Determination of kinetic parameters for ATP hydrolysis by full-length NgoMutL.
  • Analysis of NgoMutL interactions with single- and double-stranded DNA fragments of varying lengths.
  • Site-specific modification of NgoMutL using reactive DNA probes to map cysteine residue proximity to DNA.

Main Results:

  • The kinetic parameters of ATP hydrolysis for NgoMutL were determined for the first time.
  • NgoMutL efficiently binds to double-stranded DNA fragments exceeding 40 nucleotides.
  • Conjugation studies revealed NgoMutL's cysteine residues are approximately 18-50 Å from the DNA duplex, with binding influenced by ATP and ZnCl2.

Conclusions:

  • Conserved cysteine residues in NgoMutL's C-terminal domain are likely involved in DNA interaction and metal ion binding.
  • Understanding NgoMutL function provides insights into MMR mechanisms in prokaryotes distinct from γ-proteobacteria.
  • This research may identify new therapeutic targets against Neisseria gonorrhoeae.

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