Bending and twisting dynamics of short linear DNAs. Analysis of the triplet anisotropy decay of a 209 base pair fragment by Brownian simulation
- 1 April 1989
- journal article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 90 (7) , 3843-3854
- https://doi.org/10.1063/1.455790
Abstract
Brownian dynamics is used to simulate the decay anisotropy of short linear DNA fragments modeled as a string of beads. The model is sufficiently general to allow for static bends, anisotropic bending, and elastic constants for bending and twisting which can vary along the chain. In limiting cases, simulations are found to be in excellent agreement with analytic theory down to a correlation length of at least 500 Å. This model is then used to analyze the 0–2.5 μs triplet depletion anisotropy decay of a 209 base pair sea urchin DNA fragment. It is concluded that the conventional worm-like chain model, in which bending is isotropic and/or there are no static bends along the chain, is unable to account for the experimental results unless a correlation length of 1000 Å is assumed. A worm-like chain with anisotropic bending requires a similar but slightly larger correlation length.Keywords
This publication has 39 references indexed in Scilit:
- Implicit algorithm for Brownian dynamics of polymersMacromolecules, 1986
- Conformational changes in a replication origin induced by an initiator proteinCell, 1985
- Effect of anisotropic bending rigidity and finite twisting rigidity on statistical properties of DNA model filamentsBiopolymers, 1985
- Torsional dynamics and rigidity of fractionated poly(dGdC)Biopolymers, 1985
- Torsional rigidity of DNA and length dependence of the free energy of DNA supercoilingJournal of Molecular Biology, 1984
- Energetics of DNA twistingJournal of Molecular Biology, 1983
- Dependence of DNA helix flexibility on base compositionNature, 1983
- Approximate methods for calculating hydrodynamic properties of macromolecules in dilute solution. Theory and application to rigid structuresMacromolecules, 1983
- Torsion dynamics in linear macromolecules: exact inclusion of hydrodynamic interactionMacromolecules, 1983
- Theory of twisting and bending of chain macromolecules; analysis of the fluorescence depolarization of DNAThe Journal of Chemical Physics, 1979