English

A three-state model with loop entropy for the over-stretching transition of DNA

Biological Physics 2015-05-18 v2 Soft Condensed Matter Statistical Mechanics

Abstract

We introduce a three-state model for a single DNA chain under tension that distinguishes between B-DNA, S-DNA and M (molten or denatured) segments and at the same time correctly accounts for the entropy of molten loops, characterized by the exponent c in the asymptotic expression S ~ - c ln n for the entropy of a loop of length n. Force extension curves are derived exactly employing a generalized Poland-Scheraga approach and compared to experimental data. Simultaneous fitting to force-extension data at room temperature and to the denaturation phase transition at zero force is possible and allows to establish a global phase diagram in the force-temperature plane. Under a stretching force, the effects of the stacking energy, entering as a domain-wall energy between paired and unpaired bases, and the loop entropy are separated. Therefore we can estimate the loop exponent c independently from the precise value of the stacking energy. The fitted value for c is small, suggesting that nicks dominate the experimental force extension traces of natural DNA.

Keywords

Cite

@article{arxiv.1002.3485,
  title  = {A three-state model with loop entropy for the over-stretching transition of DNA},
  author = {Thomas R. Einert and Douglas B. Staple and Hans-Juergen Kreuzer and Roland R. Netz},
  journal= {arXiv preprint arXiv:1002.3485},
  year   = {2015}
}

Comments

12 pages, 5 figures + Supplementary information