English

Nanoconfined circular and linear DNA - equilibrium conformations and unfolding kinetics

Biomolecules 2016-05-04 v1 Soft Condensed Matter Biological Physics

Abstract

Studies of circular DNA confined to nanofluidic channels are relevant both from a fundamental polymer-physics perspective and due to the importance of circular DNA molecules in vivo. We here observe the unfolding of DNA from the circular to linear configuration as a light-induced double strand break occurs, characterize the dynamics, and compare the equilibrium conformational statistics of linear and circular configurations. This is important because it allows us to determine to which extent existing statistical theories describe the extension of confined circular DNA. We find that the ratio of the extensions of confined linear and circular DNA configurations increases as the buffer concentration decreases. The experimental results fall between theoretical predictions for the extended de Gennes regime at weaker confinement and the Odijk regime at stronger confinement. We show that it is possible to directly distinguish between circular and linear DNA molecules by measuring the emission intensity from the DNA. Finally, we determine the rate of unfolding and show that this rate is larger for more confined DNA, possibly reflecting the corresponding larger difference in entropy between the circular and linear configurations.

Keywords

Cite

@article{arxiv.1605.00886,
  title  = {Nanoconfined circular and linear DNA - equilibrium conformations and unfolding kinetics},
  author = {M. Alizadehheidari and E. Werner and C. Noble and M. Reiter-Schad and L. K. Nyberg and J. Fritzsche and B. Mehlig and J. O. Tegenfeldt and T. Ambjörnsson and F. Persson and F. Westerlund},
  journal= {arXiv preprint arXiv:1605.00886},
  year   = {2016}
}

Comments

21 pages, 7 figures, 1 table