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Gaydar, V.

Publications and source records attributed to Gaydar, V..

2 recordsLinked to original sources

Auxiliary ATP binding sites power rapid unwinding by RecBCD

RecBCD, responsible for the initiation of double stranded break repair in bacteria, is a processive DNA helicase with an unwinding rate approaching [~]1,600 bp{middle dot}s-1. The mechanism enabling RecBCD to achieve such fast unwinding rate is not known. We employed a combination of equilibrium and time-resolved binding experiments, and ensemble and single molecule activity assays to uncover the molecular mechanism underlying RecBCDs rapid catalysis. We report the existence of auxiliary binding sites, where ATP binds with lower affinity and with distinct chemical interactions as compared to the known catalytic sites. The catalytic rate of RecBCD is reduced both by preventing and by strengthening ATP binding to these sites, suggesting that the dynamics of ATP at these sites modulates the enzymes rate. We propose a model by which RecBCD achieves its fast unwinding rate by utilizing the weaker binding sites to increase the flux of ATP to its catalytic sites.

biophysics

RecBCD possesses strong coupling between DNA and nucleotides binding that may propel stepping mechanism during translocation

Double-strand DNA breaks are the severest type of genomic damage, requiring rapid response to ensure survival. RecBCD helicase in prokaryotes initiates processive and rapid DNA unzipping essential for break repair. Yet, the energetics of RecBCD during translocation along the DNA track needs to be quantitatively clarified. Specifically, its essential to understand how RecBCD switches between its binding states to enable its translocation. Here we determine, by systematic affinity measurements, the degree of coupling between DNA and nucleotide binding to RecBCD. We show that, in the presence of ADP, RecBCD binds weakly to DNA that harbors a double overhang mimicking an unwinding intermediate. Consistently, RecBCD binds weakly to ADP in the presence of the same DNA. We did not observe coupling between DNA and nucleotide binding for DNA molecules having only a single overhang, suggesting that RecBCD subunits must both bind DNA to "sense" the nucleotide state. Excitingly, we observed weak coupling for AMPpNp as RecBCD remains strongly bound to DNA in its presence. Detailed thermodynamic analysis of RecBCD reaction mechanism suggests an energetic compensation between RecB and RecD, which may be essential for rapid unwinding. Our findings provide the basis for a stepping mechanism during the processive translocation of RecBCD.

biochemistry