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The selection process of licensing a DNA mismatch for repair.

Rafael Fernandez-Leiro ,
Doreth Bhairosing-Kok ,
Vladislav Kunetsky ,
Charlie Laffeber ,
Herrie H Winterwerp ,
Flora Groothuizen ,
Alexander Fish ,
Joyce H G Lebbink ,
Peter Friedhoff ,
Titia K Sixma ,
Meindert H Lamers

Abstract

DNA mismatch repair detects and removes mismatches from DNA by a conserved mechanism, reducing the error rate of DNA replication by 100- to 1,000-fold. In this process, MutS homologs scan DNA, recognize mismatches and initiate repair. How the MutS homologs selectively license repair of a mismatch among millions of matched base pairs is not understood. Here we present four cryo-EM structures of Escherichia coli MutS that provide snapshots, from scanning homoduplex DNA to mismatch binding and MutL activation via an intermediate state. During scanning, the homoduplex DNA forms a steric block that prevents MutS from transitioning into the MutL-bound clamp state, which can only be overcome through kinking of the DNA at a mismatch. Structural asymmetry in all four structures indicates a division of labor between the two MutS monomers. Together, these structures reveal how a small conformational change from the homoduplex- to heteroduplex-bound MutS acts as a licensing step that triggers a dramatic conformational change that enables MutL binding and initiation of the repair cascade.

More about this publication

Nature structural & molecular biology

Volume 28
Issue nr. 4
Pages 373-381
Publication date 01-04-2021

Full text links

Publisher website (DOI) 10.1038/s41594-021-00577-7
Europe PubMed Central 33820992
Pubmed 33820992

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