English

The long reach of DNA sequence heterogeneity in diffusive processes

Biomolecules 2007-05-23 v2 Disordered Systems and Neural Networks Soft Condensed Matter Biological Physics

Abstract

Many biological processes involve one dimensional diffusion over a correlated inhomogeneous energy landscape with a correlation length ξc\xi_c. Typical examples are specific protein target location on DNA, nucleosome repositioning, or DNA translocation through a nanopore, in all cases with ξc\xi_c\approx 10 nm. We investigate such transport processes by the mean first passage time (MFPT) formalism, and find diffusion times which exhibit strong sample to sample fluctuations. For a a displacement NN, the average MFPT is diffusive, while its standard deviation over the ensemble of energy profiles scales as N3/2N^{3/2} with a large prefactor. Fluctuations are thus dominant for displacements smaller than a characteristic NcξcN_c \gg \xi_c: typical values are much less than the mean, and governed by an anomalous diffusion rule. Potential biological consequences of such random walks, composed of rapid scans in the vicinity of favorable energy valleys and occasional jumps to further valleys, is discussed.

Keywords

Cite

@article{arxiv.q-bio/0310008,
  title  = {The long reach of DNA sequence heterogeneity in diffusive processes},
  author = {Michael Slutsky and Mehran Kardar and Leonid A. Mirny},
  journal= {arXiv preprint arXiv:q-bio/0310008},
  year   = {2007}
}