English

Disorder and fluctuations in nonlinear excitations in DNA

Biomolecules 2009-11-10 v2 Disordered Systems and Neural Networks Mathematical Physics math.MP Pattern Formation and Solitons Genomics

Abstract

We study the effects of the sequence on the propagation of nonlinear excitations in simple models of DNA, and how those effects are modified by noise. Starting from previous results on soliton dynamics on lattices defined by aperiodic potentials, [F. Dom\'\i nguez-Adame {\em et al.}, Phys. Rev. E {\bf 52}, 2183 (1995)], we analyze the behavior of lattices built from real DNA sequences obtained from human genome data. We confirm the existence of threshold forces, already found in Fibonacci sequences, and of stop positions highly dependent on the specific sequence. Another relevant conclusion is that the effective potential, a collective coordinate formalism introduced by Salerno and Kivshar [Phys. Lett. A {\bf 193}, 263 (1994)] is a useful tool to identify key regions that control the behaviour of a larger sequence. We then study how the fluctuations can assist the propagation process by helping the excitations to escape the stop positions. Our conclusions point out to improvements of the model which look promising to describe mechanical denaturation of DNA. Finally, we also consider how randomly distributed energy focus on the chain as a function of the sequence.

Keywords

Cite

@article{arxiv.q-bio/0403003,
  title  = {Disorder and fluctuations in nonlinear excitations in DNA},
  author = {Sara Cuenda and Angel Sanchez},
  journal= {arXiv preprint arXiv:q-bio/0403003},
  year   = {2009}
}

Comments

14 pages, final version, accepted in Fluctuation and Noise Letters, scheduled to apper in vol. 4, issue 3 (2004)