Msh2 separation of function mutations confer defects in the initiation steps of mismatch repair

Amanda Wraith Kijas1, Barbara Studamire, Eric Alani

  • 1Department of Molecular Biology and Genetics, Cornell University, 459 Biotech Building, Ithaca, NY 14853-2703, USA.

Insights

This study analyzes msh2 mutants to understand DNA mismatch repair (MMR). Specific mutations reveal distinct steps in MMR, including mismatch binding, protein recruitment, and component recycling.

Area of Science:

  • Molecular Biology
  • Genetics
  • Biochemistry

Background:

  • Eukaryotic mismatch repair (MMR) initiates with MSH2-MSH3 and MSH2-MSH6 heterodimers recognizing DNA mismatches.
  • The MLH1-PMS1 heterodimer acts as a mediator, recruiting downstream repair proteins to the mismatch site.

Purpose of the Study:

  • To investigate the early steps of MMR by characterizing msh2 separation-of-function alleles.
  • To elucidate the roles of specific domains within the MSH2 protein in MMR processes.

Main Methods:

  • Analysis of five msh2 mutants exhibiting distinct repair functions.
  • Gel mobility shift and DNase I footprinting assays to assess protein-DNA interactions.
  • ATP hydrolysis, ATP binding, and MLH1-PMS1 interaction assays to evaluate protein complex dynamics.

Main Results:

  • Three msh2 mutations (msh2-S561P, msh2-K564E, msh2-G566D) impaired MSH2-MSH6 mismatch binding.
  • The msh2-S656P mutation disrupted ATP-dependent dissociation and MLH1-PMS1 interaction.
  • The msh2-R730W mutation affected MSH2-MSH6 ATPase activity but not ATP binding or MLH1-PMS1 interaction.

Conclusions:

  • MMR can be divided into discrete steps: stable mismatch binding, MLH1-PMS1 recruitment, and MMR component recycling.
  • Specific msh2 mutations provide insights into the functional domains critical for MMR initiation and progression.

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