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Structural and functional analysis of the MutS C-terminal tetramerization domain

The Escherichia coli DNA mismatch repair (MMR) protein MutS is essential for the correction of DNA replication errors. In vitro, MutS exists in a dimer/tetramer equilibrium that is converted into a monomer/dimer equilibrium upon deletion of the C-terminal 53 amino acids. In vivo and in vitro data ha...

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Autores principales: Manelyte, Laura, Urbanke, Claus, Giron-Monzon, Luis, Friedhoff, Peter
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2006
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1636413/
https://www.ncbi.nlm.nih.gov/pubmed/17012287
http://dx.doi.org/10.1093/nar/gkl489
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author Manelyte, Laura
Urbanke, Claus
Giron-Monzon, Luis
Friedhoff, Peter
author_facet Manelyte, Laura
Urbanke, Claus
Giron-Monzon, Luis
Friedhoff, Peter
author_sort Manelyte, Laura
collection PubMed
description The Escherichia coli DNA mismatch repair (MMR) protein MutS is essential for the correction of DNA replication errors. In vitro, MutS exists in a dimer/tetramer equilibrium that is converted into a monomer/dimer equilibrium upon deletion of the C-terminal 53 amino acids. In vivo and in vitro data have shown that this C-terminal domain (CTD, residues 801–853) is critical for tetramerization and the function of MutS in MMR and anti-recombination. We report the expression, purification and analysis of the E.coli MutS-CTD. Secondary structure prediction and circular dichroism suggest that the CTD is folded, with an α-helical content of 30%. Based on sedimentation equilibrium and velocity analyses, MutS-CTD forms a tetramer of asymmetric shape. A single point mutation (D835R) abolishes tetramerization but not dimerization of both MutS-CTD and full-length MutS. Interestingly, the in vivo and in vitro MMR activity of MutS(CF/D835R) is diminished to a similar extent as a truncated MutS variant (MutS800, residues 1–800), which lacks the CTD. Moreover, the dimer-forming MutS(CF/D835R) has comparable DNA binding affinity with the tetramer-forming MutS, but is impaired in mismatch-dependent activation of MutH. Our data support the hypothesis that tetramerization of MutS is important but not essential for MutS function in MMR.
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spelling pubmed-16364132006-11-29 Structural and functional analysis of the MutS C-terminal tetramerization domain Manelyte, Laura Urbanke, Claus Giron-Monzon, Luis Friedhoff, Peter Nucleic Acids Res Molecular Biology The Escherichia coli DNA mismatch repair (MMR) protein MutS is essential for the correction of DNA replication errors. In vitro, MutS exists in a dimer/tetramer equilibrium that is converted into a monomer/dimer equilibrium upon deletion of the C-terminal 53 amino acids. In vivo and in vitro data have shown that this C-terminal domain (CTD, residues 801–853) is critical for tetramerization and the function of MutS in MMR and anti-recombination. We report the expression, purification and analysis of the E.coli MutS-CTD. Secondary structure prediction and circular dichroism suggest that the CTD is folded, with an α-helical content of 30%. Based on sedimentation equilibrium and velocity analyses, MutS-CTD forms a tetramer of asymmetric shape. A single point mutation (D835R) abolishes tetramerization but not dimerization of both MutS-CTD and full-length MutS. Interestingly, the in vivo and in vitro MMR activity of MutS(CF/D835R) is diminished to a similar extent as a truncated MutS variant (MutS800, residues 1–800), which lacks the CTD. Moreover, the dimer-forming MutS(CF/D835R) has comparable DNA binding affinity with the tetramer-forming MutS, but is impaired in mismatch-dependent activation of MutH. Our data support the hypothesis that tetramerization of MutS is important but not essential for MutS function in MMR. Oxford University Press 2006-10 2006-09-29 /pmc/articles/PMC1636413/ /pubmed/17012287 http://dx.doi.org/10.1093/nar/gkl489 Text en © 2006 The Author(s)
spellingShingle Molecular Biology
Manelyte, Laura
Urbanke, Claus
Giron-Monzon, Luis
Friedhoff, Peter
Structural and functional analysis of the MutS C-terminal tetramerization domain
title Structural and functional analysis of the MutS C-terminal tetramerization domain
title_full Structural and functional analysis of the MutS C-terminal tetramerization domain
title_fullStr Structural and functional analysis of the MutS C-terminal tetramerization domain
title_full_unstemmed Structural and functional analysis of the MutS C-terminal tetramerization domain
title_short Structural and functional analysis of the MutS C-terminal tetramerization domain
title_sort structural and functional analysis of the muts c-terminal tetramerization domain
topic Molecular Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1636413/
https://www.ncbi.nlm.nih.gov/pubmed/17012287
http://dx.doi.org/10.1093/nar/gkl489
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