Abstract
Even though the persistence length LP of double-stranded DNA plays a pivotal role in cell biology and nanotechnologies, its dependence on ionic strength I lacks a consensual description. Using a high-throughput single-molecule technique and statistical physics modeling, we measure LP in the presence of monovalent (Li+, Na+, K+) and divalent (Mg2+, Ca2+) metallic and alkyl ammonium ions, over a large range 0.5 mM≤I≤5 M. We show that linear Debye-Hückel-type theories do not describe even part of these data. By contrast, the Netz-Orland and Trizac-Shen formulas, two approximate theories including nonlinear electrostatic effects and the finite DNA radius, fit our data with divalent and monovalent ions, respectively, over the whole I range. Furthermore, the metallic ion type does not influence LP(I), in contrast to alkyl ammonium monovalent ions at high I.
Cite
CITATION STYLE
Guilbaud, S., Salomé, L., Destainville, N., Manghi, M., & Tardin, C. (2019). Dependence of DNA Persistence Length on Ionic Strength and Ion Type. Physical Review Letters, 122(2). https://doi.org/10.1103/PhysRevLett.122.028102
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