Literature DB >> 35778106

How capture affects polymer translocation in a solitary nanopore.

Swarnadeep Seth1, Aniket Bhattacharya1.   

Abstract

DNA capture with high fidelity is an essential part of nanopore translocation. We report several important aspects of the capture process and subsequent translocation of a model DNA polymer through a solid-state nanopore in the presence of an extended electric field using the Brownian dynamics simulation that enables us to record statistics of the conformations at every stage of the translocation process. By releasing the equilibrated DNAs from different equipotentials, we observe that the capture time distribution depends on the initial starting point and follows a Poisson process. The field gradient elongates the DNA on its way toward the nanopore and favors a successful translocation even after multiple failed threading attempts. Even in the limit of an extremely narrow pore, a fully flexible chain has a finite probability of hairpin-loop capture, while this probability decreases for a stiffer chain and promotes single file translocation. Our in silico studies identify and differentiate characteristic distributions of the mean first passage time due to single file translocation from those due to translocation of different types of folds and provide direct evidence of the interpretation of the experimentally observed folds [M. Gershow and J. A. Golovchenko, Nat. Nanotechnol. 2, 775 (2007) and Mihovilovic et al., Phys. Rev. Lett. 110, 028102 (2013)] in a solitary nanopore. Finally, we show a new finding-that a charged tag attached at the 5' end of the DNA enhances both the multi-scan rate and the uni-directional translocation (5' → 3') probability that would benefit the genomic barcoding and sequencing experiments.

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Year:  2022        PMID: 35778106      PMCID: PMC9225749          DOI: 10.1063/5.0094221

Source DB:  PubMed          Journal:  J Chem Phys        ISSN: 0021-9606            Impact factor:   4.304


  40 in total

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2.  DNA capture into a nanopore: interplay of diffusion and electrohydrodynamics.

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Journal:  J Chem Phys       Date:  2010-10-28       Impact factor: 3.488

3.  Promoting single-file DNA translocations through nanopores using electro-osmotic flow.

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Journal:  J Chem Phys       Date:  2018-10-28       Impact factor: 3.488

4.  Voltage-driven translocation: Defining a capture radius.

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Journal:  J Chem Phys       Date:  2019-12-28       Impact factor: 3.488

5.  Capture of rod-like molecules by a nanopore: Defining an "orientational capture radius".

Authors:  Le Qiao; Gary W Slater
Journal:  J Chem Phys       Date:  2020-04-14       Impact factor: 3.488

6.  Flossing DNA in a Dual Nanopore Device.

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7.  Electrostatic focusing of unlabelled DNA into nanoscale pores using a salt gradient.

Authors:  Meni Wanunu; Will Morrison; Yitzhak Rabin; Alexander Y Grosberg; Amit Meller
Journal:  Nat Nanotechnol       Date:  2009-12-20       Impact factor: 39.213

8.  Water-Compression Gating of Nanopore Transport.

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Journal:  Phys Rev Lett       Date:  2018-06-29       Impact factor: 9.161

9.  Molecular Dynamics Simulation of DNA Capture and Transport in Heated Nanopores.

Authors:  Maxim Belkin; Aleksei Aksimentiev
Journal:  ACS Appl Mater Interfaces       Date:  2016-03-21       Impact factor: 9.229

10.  High-throughput optical sensing of nucleic acids in a nanopore array.

Authors:  Shuo Huang; Mercedes Romero-Ruiz; Oliver K Castell; Hagan Bayley; Mark I Wallace
Journal:  Nat Nanotechnol       Date:  2015-08-31       Impact factor: 39.213

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