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Dimitri E. Kamashev

Publications and source records attributed to Dimitri E. Kamashev.

2 recordsLinked to original sources

Relaxation of DNA curvature by single stranded breaks: Simulations and experiments

The recently proposed compressed backbone theory suggested that the intrinsic curvature in DNA can result from a geometric mismatch between the specific backbone length and optimal base stacking orientations. It predicted that the curvature in A-tract repeats can be relaxed by introducing single stranded breaks (nicks). This effect has not been tested earlier and it would not be accounted for by alternative models of DNA bending. Here the curvature in a specifically designed series of nicked DNA fragments is tested experimentally by gel mobility assays and, simultaneously, by free molecular dynamics simulations. Single stranded breaks produce virtually no effect upon the gel mobility of the random sequence DNA. In contrast, nicked A-tract fragments reveal a regular modulation of curvature depending upon the position of the strand break with respect to the overall bend. Maximal relaxation is observed when nicks occur inside A-tracts. The results are partially reproduced in simulations. Analysis of computed curved DNA conformations reveals a group of sugar atoms that exhibit reduced backbone length within A-tracts, which can correspond to the compression hypothesis.

q-bio.BM

Simulated and Experimental Bending Dynamics in DNA with and without A-Tracts

The macroscopic curvature of double helical DNA induced by regularly repeated adenine tracts is well-known but still puzzling. Its physical origin remains controversial even though it is perhaps the best-documented sequence modulation of DNA structure. We report here the results of comparative theoretical and experimental studies of bending dynamics in 35-mer DNA fragments. This length appears large enough for the curvature to be distinguished by gel electrophoresis. Two DNA fragments, with identical base pair composition, but different sequences are compared. In the first one, a single A-tract motif was four times repeated in phase with the helical screw whereas the second sequence was "random". Both calculations and experiments indicate that the A-tract DNA is distinguished by the large static curvature and characteristic bending dynamics, suggesting that the computed effect corresponds to the experimental phenomenon. The results poorly agree with earlier views that attributed a decisive role in DNA bending to sequence specific base pair stacking or binding of solvent counterions, but lend additional support to the hypothesis of a compressed frustrated state of the backbone as the principal physical cause of the static curvature. We discuss the possible ways of experimental verification of this hypothesis.

physics.bio-ph