A Computational Framework for Mechanical Response of Macromolecules: Application to the Salt Concentration Dependence of DNA Bendability

TitleA Computational Framework for Mechanical Response of Macromolecules: Application to the Salt Concentration Dependence of DNA Bendability
Publication TypeJournal Article
Year of Publication2009
AuthorsMa, L, Yethiraj, A, Chen, X, Cui, Q
JournalBiophysical Journal
Volume96
Pagination3543-3554
Date PublishedMay
Accession NumberISI:000266397700008
Keywordsbent dna, Biophysics, continuum, Electrostatic persistence length, gating mechanisms, large-conductance, mechanosensitive channels, models, molecules, muscle-contraction, nucleic-acids
Abstract

A computational framework is presented for studying the mechanical response of macromolecules. The method combines a continuum mechanics (CM) model for the mechanical properties of the macromolecule with a continuum electrostatic (CE) treatment of solvation. The molecules are represented by their shape and key physicochemical characteristics such as the distribution of materials properties and charge. As a test case, we apply the model to the effect of added salt on the bending of DNA. With a simple representation of DNA, the CM/CE framework using a Debye-Huckel model leads to results that are in good agreement with both analytical theories and recent experiments, including a modified Odijk-Skolnick-Fixman theory that takes the finite length of DNA into consideration. Calculations using a more sophisticated CE model (Poisson-Boltzmann), however, suffer from convergence problems, highlighting the importance of balancing numerical accuracy in the CM and CE models when dealing with very large systems, particularly those with a high degree of symmetry.

Short TitleBiophys. J.