English

Dependence of DNA persistence length on ionic strength and ion type

Biological Physics 2019-01-23 v1 Soft Condensed Matter Biomolecules

Abstract

Even though the persistence length LPL_P of double-stranded DNA plays a pivotal role in cell biology and nanotechnologies, its dependence on ionic strength II lacks a consensual description. Using a high-throughput single-molecule technique and statistical physics modeling, we measure LPL_P in presence of monovalent (Li+^+, Na+^+, K+^+) and divalent (Mg2+^{2+}, Ca2+^{2+}) metallic and alkyl ammonium ions, over a large range 0.5 mM I5\leq I\leq 5 M. We show that linear Debye-H\"uckel-type theories do not describe even part of these data. By contrast, the Netz-Orland and Trizac-Shen formulas, two approximate theories including non-linear electrostatic effects and the finite DNA radius, fit our data with divalent and monovalent ions, respectively, over the whole II range. Furthermore the metallic ion type does not influence LP(I)L_P(I), in contrast to alkyl ammonium monovalent ions at high II.

Keywords

Cite

@article{arxiv.1810.01611,
  title  = {Dependence of DNA persistence length on ionic strength and ion type},
  author = {Sébastien Guilbaud and Laurence Salomé and Nicolas Destainville and Manoel Manghi and Catherine Tardin},
  journal= {arXiv preprint arXiv:1810.01611},
  year   = {2019}
}

Comments

5 pages, 3 figures + 7 pages of supplemental information