Quantitative genomic analysis of RecA protein binding during DNA double-strand break repair reveals RecBCD action in vivo.
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ABSTRACT: Understanding molecular mechanisms in the context of living cells requires the development of new methods of in vivo biochemical analysis to complement established in vitro biochemistry. A critically important molecular mechanism is genetic recombination, required for the beneficial reassortment of genetic information and for DNA double-strand break repair (DSBR). Central to recombination is the RecA (Rad51) protein that assembles into a spiral filament on DNA and mediates genetic exchange. Here we have developed a method that combines chromatin immunoprecipitation with next-generation sequencing (ChIP-Seq) and mathematical modeling to quantify RecA protein binding during the active repair of a single DSB in the chromosome of Escherichia coli. We have used quantitative genomic analysis to
SUBMITTER: Cockram CA
PROVIDER: S-EPMC4553759 | biostudies-literature | 2015 Aug
REPOSITORIES: biostudies-literature
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