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Application of Stopped-flow Kinetics Methods to Investigate the Mechanism of Action of a DNA Repair Protein
Published on: March 31, 2010
The Saccharomyces cerevisiae Msh2 and Msh6 proteins form a complex that specifically binds to duplex oligonucleotides
1Section of Genetics and Development, Cornell University, Ithaca, New York 14853-2703, USA. eea3@cornell.edu
Abstract:
The yeast Saccharomyces cerevisiae encodes six proteins, Msh1p to Msh6p, that show strong amino acid sequence similarity to MutS, a central component of the bacterial mutHLS mismatch repair system. Recent studies with humans and S. cerevisiae suggest that in eukaryotes, specific MutS homolog complexes that display unique DNA mismatch specificities exist. In this study, the S. cerevisiae 109-kDa Msh2 and 140-kDa Msh6 proteins were cooverexpressed in S. cerevisiae and shown to interact in an immunoprecipitation assay and by conventional chromatography. Deletion analysis of MSH2 indicated that the carboxy-terminal 114 amino acids of Msh2p are important for Msh6p interaction. Purified Msh2p-Msh6p selectively bound to duplex oligonucleotide substrates containing a G/T mismatch and a +1 insertion mismatch but did not show specific binding to +2 and +4 insertion mismatches. The mismatch binding specificity of the Msh2p-Msh6p complex, as measured by on-rate and off-rate binding studies, was abolished by ATP. Interestingly, palindromic substrates that are poorly repaired in vivo were specifically recognized by Msh2p-Msh6p; however, the binding of Msh2p-Msh6p to these substrates was not modulated by ATP. Taken together, these studies suggest that the repair of a base pair mismatch by the Msh2p-Msh6p complex is dependent on the ability of the Msh2p-Msh6p-DNA mismatch complex to use ATP hydrolysis to activate downstream events in mismatch repair.
Insights
The Msh2p-Msh6p complex in yeast specifically binds to certain DNA mismatches, with ATP influencing this interaction for efficient repair.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Eukaryotes possess specific MutS homolog complexes involved in DNA mismatch repair.
- The yeast Saccharomyces cerevisiae has six MutS homolog proteins (Msh1p-Msh6p).
Purpose of the Study:
- To investigate the interaction and DNA mismatch binding specificity of the Msh2p-Msh6p complex in S. cerevisiae.
- To determine the role of ATP in the Msh2p-Msh6p complex's DNA mismatch recognition.
Main Methods:
- Coexpression and purification of Msh2p-Msh6p complex.
- Immunoprecipitation and chromatography to confirm protein interaction.
- Oligonucleotide binding assays with various DNA mismatches (G/T, +1, +2, +4 insertions, palindromic) in the presence and absence of ATP.
Main Results:
- Msh2p and Msh6p interact, with the C-terminal 114 amino acids of Msh2p being crucial for this interaction.
- The Msh2p-Msh6p complex selectively binds to G/T and +1 insertion mismatches.
- ATP abolished mismatch binding specificity for standard mismatches but not for palindromic substrates.
- Palindromic substrates, poorly repaired in vivo, were specifically recognized by Msh2p-Msh6p.
Conclusions:
- The Msh2p-Msh6p complex plays a role in recognizing specific DNA mismatches in yeast.
- ATP hydrolysis is likely essential for activating downstream DNA mismatch repair events mediated by the Msh2p-Msh6p complex.
- The differential ATP modulation suggests distinct mechanisms for repairing different types of DNA mismatches.
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