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  4. Studying RecBCD Helicase Translocation Along £q-DNA Using Tethered Particle Motion with a Stretching Force
 
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Studying RecBCD Helicase Translocation Along £q-DNA Using Tethered Particle Motion with a Stretching Force

Resource
Biophysical Journal 96 (5): 1875-1883
Journal
Biophysical Journal
Journal Volume
96
Journal Issue
5
Pages
1875-1883
Date Issued
2009
Date
2009
Author(s)
Fan, Hsiu-Fang
Li, Hung-Wen  
DOI
10.1016/j.bpj.2008.11.048
URI
http://ntur.lib.ntu.edu.tw//handle/246246/171480
http://ntur.lib.ntu.edu.tw/bitstream/246246/171480/1/04.pdf
Abstract
Escherichia coli RecBCD helicase unwinds blunt-end duplex DNA to repair damaged DNA molecules in the homologous recombination pathway. Previous single-molecule experiments showed that RecBCD recognizes an 8 nt DNA sequence, chi, and lowers its unwinding rate afterward under saturating ATP condition. We have developed a single-molecule force-tethered particle motion (FTPM) method, which is modified from the conventional TPM method, and applied it to study RecBCD motion in detail. In the FTPM experiment, a stretching force is applied to the DNA-bead complex that suppresses the bead's Brownian motion, resulting in an improved spatial resolution at long DNA substrates. Based on the equipartition theorem, the mean-square displacement of the bead's Brownian motion measured by FTPM correlates linearly to DNA extension length with a predicted slope, circumventing the difficulties of conventional TPM experiments, such as nonlinearity and low resolution of long DNA substrates. The FTPM method offers the best resolution in the presence of only a small stretching force (0.20 pN). We used the FTPM method to investigate RecBCD helicase motion along 4.1 kb long chi-containing duplex DNA molecules, and observed that the translocation rate of RecBCD changes after the chi sequence under limited ATP concentrations. This suggests that chi recognition by RecBCD does not require saturating ATP conditions, contrary to what was previously reported.
Type
journal article
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