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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.
Abstract:
The human mismatch repair (MMR) gene MSH2 is the second most frequently mutated hereditary nonpolyposis colorectal cancer (HNPCC) susceptibility locus. Given that missense mutations account for 17% of all identified alterations in this gene, the study of their pathogenicity is of increasing importance. Previously, we showed that pathogenic MSH2 missense mutations typically impaired the repair activity of the protein. In this study, we took advantage of its crystal structure and attempted to correlate the mismatch binding and ATP-catalyzed mismatch release activities with the location of 18 nontruncating MSH2 mutations. We observed that the MMR-deficient mutations situated in the amino-terminal connector and lever domains of MSH2 (V161D, G162R, G164R, L173P, L187P, C333Y, and D603N) affected protein stability, whereas mutations in the ATPase domain (A636P, G674A, C697F, I745_I746del, and E749 K) mainly caused defects in mismatch binding or release. Of the MMR-proficient variants, four (T33P, A272 V, G322D, and V923E) showed slightly reduced mismatch binding and/or release efficiencies compared to wild-type (WT) protein, while two variants (N127S and A834 T) showed no defects in the assays. Similar to our biochemical data, the mutations that affected protein stability were associated with an absence of the protein in tumors in immunohistochemical (IHC) analyses. In contrast, the protein with the mutation E749 K, which abrogates MMR but not protein stability, is well expressed in tumors. In conclusion, pathogenic missense mutations in MSH2 may interfere with different mechanisms that tend to cluster in separate protein domains with varying effects on protein stability, which could be taken into account when interpreting IHC data.
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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