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Updated: Jun 4, 2026

Profiling of Methyltransferases and Other S-adenosyl-L-homocysteine-binding Proteins by Capture Compound Mass Spectrometry (CCMS)
Published on: December 20, 2010
Modeling of the DNA-binding site of yeast Pms1 by mass spectrometry
Allison N Schorzman1, Lalith Perera, Jenny M Cutalo-Patterson
1Laboratory of Structural Biology, National Institute of Environmental Health Sciences, National Institutes of Health, Research Triangle Park, NC 27709, United States. schorzmana@niehs.nih.gov
Abstract:
Mismatch repair (MMR) corrects replication errors that would otherwise lead to mutations and, potentially, various forms of cancer. Among several proteins required for eukaryotic MMR, MutLα is a heterodimer comprised of Mlh1 and Pms1. The two proteins dimerize along their C-terminal domains (CTDs), and the CTD of Pms1 houses a latent endonuclease that is required for MMR. The highly conserved N-terminal domains (NTDs) independently bind DNA and possess ATPase active sites. Here we use two protein footprinting techniques, limited proteolysis and oxidative surface mapping, coupled with mass spectrometry to identify amino acids involved along the DNA-binding surface of the Pms1-NTD. Limited proteolysis experiments elucidated several basic residues that were protected in the presence of DNA, while oxidative surface mapping revealed one residue that is uniquely protected from oxidation. Furthermore, additional amino acids distributed throughout the Pms1-NTD were protected from oxidation either in the presence of a non-hydrolyzable analog of ATP or DNA, indicating that each ligand stabilizes the protein in a similar conformation. Based on the recently published X-ray crystal structure of yeast Pms1-NTD, a model of the Pms1-NTD/DNA complex was generated using the mass spectrometric data as constraints. The proposed model defines the DNA-binding interface along a positively charged groove of the Pms1-NTD and complements prior mutagenesis studies of Escherichia coli and eukaryotic MutL.
Insights
Mismatch repair (MMR) corrects DNA replication errors. This study identifies key amino acids on the Pms1 protein
Area of Science:
- Molecular Biology
- Biochemistry
- Genetics
Background:
- Mismatch repair (MMR) is crucial for correcting DNA replication errors, preventing mutations and cancer.
- The MutLα heterodimer (Mlh1-Pms1) is essential for eukaryotic MMR.
- Pms1's N-terminal domain (NTD) binds DNA and has ATPase activity.
Purpose of the Study:
- To identify the DNA-binding interface of the Pms1-NTD.
- To understand how DNA and ATP binding affect Pms1-NTD conformation.
Main Methods:
- Limited proteolysis and oxidative surface mapping coupled with mass spectrometry.
- Generation of a Pms1-NTD/DNA complex model using mass spectrometry data and X-ray crystallography.
Main Results:
- Identified specific basic residues protected by DNA binding on the Pms1-NTD.
- Discovered an amino acid uniquely protected from oxidation.
- Observed similar protein conformations upon binding DNA or an ATP analog.
Conclusions:
- The Pms1-NTD DNA-binding interface is located in a positively charged groove.
- This model complements existing mutagenesis data for MutL proteins.

