A Mesoscale Model of DNA and Its Renaturation

TitleA Mesoscale Model of DNA and Its Renaturation
Publication TypeJournal Article
Year of Publication2009
AuthorsSambriski, EJ, Schwartz, DC, de Pablo, JJ
JournalBiophysical Journal
Volume96
Pagination1675-1690
Date PublishedMar
Accession NumberISI:000266376500003
Keywordsb-dna, Biophysics, Brownian dynamics simulations, changes, diffusion, double helices, heat-capacity, molecular-dynamics, monte-carlo-simulation, nucleic-acids, shear-flow, supercoiled dna, translational
Abstract

A mesoscale model of DNA is presented (3SPN.1), extending the scheme previously developed by our group. Each nucleotide is mapped onto three interaction sites. Solvent is accounted for implicitly through a medium-effective dielectric constant and electrostatic interactions are treated at the level of Debye-Huckel theory. The force field includes a weak, solvent-induced attraction, which helps mediate the renaturation of DNA. Model parameterization is accomplished through replica exchange molecular dynamics simulations of short oligonucleotide sequences over a range of composition and chain length. The model describes the melting temperature of DNA as a function of composition as well as ionic strength, and is consistent with heat capacity profiles from experiments. The dependence of persistence length on ionic strength is also captured by the force field. The proposed model is used to examine the renaturation of DNA. It is found that a typical renaturation event occurs through a nucleation step, whereby an interplay between repulsive electrostatic interactions and colloidal-like attractions allows the system to undergo a series of rearrangements before complete molecular reassociation occurs.

Short TitleBiophys. J.