Coarse-grained modelling of strong DNA bending II: Cyclization
arXiv:1506.09008 · doi:10.1021/acs.jctc.9b00112
Abstract
DNA cyclization is a powerful technique to gain insight into the nature of DNA bending. The worm-like chain model provides a good description of small to moderate bending fluctuations, but some experiments on strongly-bent shorter molecules suggest enhanced flexibility over and above that expected from the worm-like chain. Here, we use a coarse-grained model of DNA to investigate the thermodynamics of DNA cyclization for molecules with less than 210 base pairs. As the molecules get shorter we find increasing deviations between our computed equilibrium j-factor and the worm-like chain predictions of Shimada and Yamakawa. These deviations are due to sharp kinking, first at nicks, and only subsequently in the body of the duplex. At the shortest lengths, substantial fraying at the ends of duplex domains is the dominant method of relaxation. We also estimate the dynamic j-factor measured in recent FRET experiments. We find that the dynamic j-factor is systematically larger than its equilibrium counterpart, with the deviation larger for shorter molecules, because not all the stress present in the fully cyclized state is present in the transition state. These observations are important for the interpretation of recent experiments, as only kinking within the body of the duplex is genuinely indicative of non-worm-like chain behaviour.
References in corpus (12)
- Introducing Improved Structural Properties and Salt Dependence into a Coarse-Grained Model of DNA
- Sequence-dependent thermodynamics of a coarse-grained DNA model
- Force-induced rupture of a DNA duplex
- Plectoneme tip bubbles: Coupled denaturation and writhing in supercoiled DNA
- Probing the elastic limit of DNA bending
- Supercoiling DNA locates mismatches
- Modulation of DNA loop lifetimes by the free energy of loop formation
- Revisiting the anomalous bending elasticity of sharply bent DNA
- J-factors of short DNA molecules
- Extreme bendability of DNA double helix due to bending asymmetry
- Self-avoiding worm-like chain model for dsDNA loop formation
- Kinky DNA in solution: Small angle scattering study of a nucleosome positioning sequence
Cited by in corpus (5)
- A primer on the oxDNA model of DNA: When to use it, how to simulate it and how to interpret the results
- Revisiting the anomalous bending elasticity of sharply bent DNA
- Strongly bent double-stranded DNA: reconciling theory and experiment
- Characterizing the free-energy landscapes of DNA origamis
- Free-energy landscapes of DNA and its assemblies: Perspectives from coarse-grained modelling