Publication:
Quantized biopolymer translocation through nanopores: Departure from simple scaling

No Thumbnail Available

Date

2009

Journal Title

Journal ISSN

Volume Title

Publisher

American Physical Society
The Harvard community has made this article openly available. Please share how this access benefits you.

Research Projects

Organizational Units

Journal Issue

Citation

Melchionna, Simone, Massimo Bernaschi, Maria Fyta, Efthimios Kaxiras, and Sauro Succi. 2009. “Quantized Biopolymer Translocation through Nanopores: Departure from Simple Scaling.” Physical Review E 79 (3). https://doi.org/10.1103/physreve.79.030901.

Research Data

Abstract

We discuss multiscale simulations of long biopolymer translocation through wide nanopores that can accommodate multiple polymer strands. The simulations provide clear evidence of folding quantization, namely the translocation proceeds through multifolded configurations characterized by a well-defined integer number of folds. As a consequence, the translocation time acquires a dependence on the average folding number, which results in a deviation from the single-exponent power law characterizing single-file translocation through narrow pores. The mechanism of folding quantization allows polymers above a threshold length (approximately 1000 persistence lengths for double-stranded DNA) to exhibit cooperative behavior, and as a result to translocate noticeably faster.

Description

Other Available Sources

Keywords

Terms of Use

This article is made available under the terms and conditions applicable to Open Access Policy Articles (OAP), as set forth at Terms of Service

Endorsement

Review

Supplemented By

Referenced By

Related Stories