International audienceAn essential mechanism for repairing DNA double-strand breaks is homologous recombination (HR). One of its core catalysts is human RAD51 (hRAD51), which assembles as a helical nucleoprotein filament on single-stranded DNA, promoting DNA-strand exchange. Here, we study the interaction of hRAD51 with single-stranded DNA using a single-molecule approach. We show that ATP-bound hRAD51 filaments can exist in two different states with different contour lengths and with a free-energy difference of~4 k B T per hRAD51 monomer. Upon ATP hydrolysis, the filaments convert into a disassembly-competent ADP-bound configuration. In agreement with the single-molecule analysis, we demonstrate the presence of two distinct protomer interf...
The central catalyst in eukaryotic ATP-dependent homologous recombination consists of RAD51 proteins...
SummaryThe DNA strand-exchange reactions defining homologous recombination involve transient, nonuni...
To get mechanistic insight into the DNA strand-exchange reaction of homologous recombination, we sol...
International audienceAn essential mechanism for repairing DNA double-strand breaks is homologous re...
An essential mechanism for repairing DNA double-strand breaks is homologous recombination (HR). One ...
An essential mechanism for repairing DNA double-strand breaks is homologous recombination (HR). One ...
International audienceIn eukaryotes, Rad51 protein is responsible for the recombinational repair of ...
Recombinase proteins assembled into helical filaments on DNA are believed to be the catalytic core o...
Background: Human Rad51 protein (HsRad51) is a homologue of Escherichia coli RecA protein, and invol...
The DNA strand-exchange reactions defining homologous recombination involve transient, nonuniform al...
textabstractRecombinase proteins assembled into helical filaments on DNA are believed to be the cata...
Homologous recombination is essential for repair of DNA double-strand breaks. Central to this proces...
In eukaryotes, Rad51 protein is responsible for the recombinational repair of double-strand DNA brea...
International audienceHuman Rad51 (HsRad51) catalyzes the strand exchange reaction, a crucial step i...
Rad51 is the central catalyst of homologous recombination in eukaryotes and is thus critical for mai...
The central catalyst in eukaryotic ATP-dependent homologous recombination consists of RAD51 proteins...
SummaryThe DNA strand-exchange reactions defining homologous recombination involve transient, nonuni...
To get mechanistic insight into the DNA strand-exchange reaction of homologous recombination, we sol...
International audienceAn essential mechanism for repairing DNA double-strand breaks is homologous re...
An essential mechanism for repairing DNA double-strand breaks is homologous recombination (HR). One ...
An essential mechanism for repairing DNA double-strand breaks is homologous recombination (HR). One ...
International audienceIn eukaryotes, Rad51 protein is responsible for the recombinational repair of ...
Recombinase proteins assembled into helical filaments on DNA are believed to be the catalytic core o...
Background: Human Rad51 protein (HsRad51) is a homologue of Escherichia coli RecA protein, and invol...
The DNA strand-exchange reactions defining homologous recombination involve transient, nonuniform al...
textabstractRecombinase proteins assembled into helical filaments on DNA are believed to be the cata...
Homologous recombination is essential for repair of DNA double-strand breaks. Central to this proces...
In eukaryotes, Rad51 protein is responsible for the recombinational repair of double-strand DNA brea...
International audienceHuman Rad51 (HsRad51) catalyzes the strand exchange reaction, a crucial step i...
Rad51 is the central catalyst of homologous recombination in eukaryotes and is thus critical for mai...
The central catalyst in eukaryotic ATP-dependent homologous recombination consists of RAD51 proteins...
SummaryThe DNA strand-exchange reactions defining homologous recombination involve transient, nonuni...
To get mechanistic insight into the DNA strand-exchange reaction of homologous recombination, we sol...