English

Pulling a DNA molecule through a nanopore embedded in an anionic membrane: tension propagation coupled to electrostatics

Soft Condensed Matter 2020-07-07 v3

Abstract

We consider the influence of electrostatic forces on driven translocation dynamics of a flexible polyelectrolyte being pulled through a nanopore by an external force on the head monomer. To this end, we augment the iso-flux tension propagation (IFTP) theory with electrostatics for a negatively charged biopolymer pulled through a nanopore embedded in a similarly charged anionic membrane. We show that for the realistic case such as a single-stranded DNA, the translocation dynamics at low salt where screening is weak and at finite negative membrane charge is unexpectedly accelerated despite the large repulsive electrostatic interactions between the polymer coil on the {\it cis} side and the charged membrane. This is due to the rapid release of the electrostatic potential energy of the coil during translocation, leading to an effectively attractive force that assists end-driven translocation. The speedup results in non-monotonic polymer length and membrane charge dependence of the exponent α\alpha characterizing the translocation time τN0α\tau \propto N_0^\alpha of the polymer with length N0N_0. In the regime of long polymers N0500N_0\gtrsim500, the translocation exponent exceeds its upper limit α=2\alpha=2 previously observed for the same system without electrostatic interactions.

Keywords

Cite

@article{arxiv.1907.06976,
  title  = {Pulling a DNA molecule through a nanopore embedded in an anionic membrane: tension propagation coupled to electrostatics},
  author = {Jalal Sarabadani and Sahin Buyukdagli and Tapio Ala-Nissila},
  journal= {arXiv preprint arXiv:1907.06976},
  year   = {2020}
}

Comments

A technical error in the interpretation of the sign of the charge distribution of the membrane has been fixed in the second and third updated versions

R2 v1 2026-06-23T10:22:07.124Z