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Use of Single-Cysteine Variants for Trapping Transient States in DNA Mismatch Repair.

Peter Friedhoff ,
Laura Manelyte ,
Luis Giron-Monzon ,
Ines Winkler ,
Flora S Groothuizen ,
Titia K Sixma

Abstract

DNA mismatch repair (MMR) is necessary to prevent incorporation of polymerase errors into the newly synthesized DNA strand, as they would be mutagenic. In humans, errors in MMR cause a predisposition to cancer, called Lynch syndrome. The MMR process is performed by a set of ATPases that transmit, validate, and couple information to identify which DNA strand requires repair. To understand the individual steps in the repair process, it is useful to be able to study these large molecular machines structurally and functionally. However, the steps and states are highly transient; therefore, the methods to capture and enrich them are essential. Here, we describe how single-cysteine variants can be used for specific cross-linking and labeling approaches that allow trapping of relevant transient states. Analysis of these defined states in functional and structural studies is instrumental to elucidate the molecular mechanism of this important DNA MMR process.

More about this publication

Methods in enzymology

Volume 592
Pages 77-101
Publication date 03-07-2017

Full text links

Publisher website (DOI) 10.1016/bs.mie.2017.03.025
Europe PubMed Central 28668131
Pubmed 28668131

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