Mechanisms of pathogenicity in human MSH2 missense mutants

Saara Ollila1, Denis Dermadi Bebek, Josef Jiricny

  • 1Department of Biological and Environmental Sciences, Genetics, University of Helsinki, Helsinki, Finland.

Human Mutation
|October 28, 2008
PubMed

Insights

Pathogenic MSH2 gene mutations in hereditary nonpolyposis colorectal cancer (HNPCC) can impair DNA repair by affecting protein stability or mismatch binding/release, with distinct domain clustering observed. This impacts immunohistochemical analysis of tumors.

Area of Science:

  • Genetics
  • Molecular Biology
  • Cancer Research

Background:

  • The MSH2 gene is crucial for DNA mismatch repair (MMR) and is frequently mutated in hereditary nonpolyposis colorectal cancer (HNPCC).
  • Missense mutations constitute a significant portion of MSH2 alterations, necessitating studies on their pathogenicity.
  • Previous work indicated pathogenic MSH2 missense mutations often impair protein repair activity.

Purpose of the Study:

  • To correlate the location of 18 nontruncating MSH2 mutations with their effects on mismatch binding and ATP-catalyzed mismatch release activities.
  • To investigate the impact of MSH2 missense mutations on protein stability and expression in tumors.

Main Methods:

  • Utilized the crystal structure of MSH2 to analyze mutation locations.
  • Assessed mismatch binding and ATP-catalyzed mismatch release activities of mutant MSH2 proteins.
  • Performed immunohistochemical (IHC) analyses on tumor samples to evaluate MSH2 protein expression.

Main Results:

  • MMR-deficient mutations in the amino-terminal domains affected MSH2 protein stability.
  • Mutations in the ATPase domain primarily impaired mismatch binding or release.
  • MMR-proficient variants showed minor reductions in binding/release efficiencies or no defects.
  • Mutations affecting stability correlated with protein absence in IHC, while a mutation abrogating MMR but not stability showed good expression.

Conclusions:

  • Pathogenic MSH2 missense mutations disrupt DNA repair through domain-specific mechanisms affecting protein stability or function.
  • Understanding these domain-specific effects is critical for interpreting IHC data in HNPCC diagnostics.

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