Literature DB >> 28837133

Construction of an aerolysin nanopore in a lipid bilayer for single-oligonucleotide analysis.

Chan Cao1, Dong-Fang Liao1, Jie Yu1, He Tian1, Yi-Tao Long1.   

Abstract

Nanopore techniques offer the possibility to study biomolecules at the single-molecule level in a low-cost, label-free and high-throughput manner. By analyzing the level, duration and frequency of ionic current blockades, information regarding the structural conformation, mass, length and concentration of single molecules can be obtained in physiological conditions. Aerolysin monomers assemble into small pores that provide a confined space for effective electrochemical control of a single molecule interacting with the pore, which significantly improves the temporal resolution of this technique. In comparison with other reported protein nanopores, aerolysin maintains its functional stability in a wide range of pH conditions, which allows for the direct discrimination of oligonucleotides between 2 and 10 nt in length and the monitoring of the stepwise cleavage of oligonucleotides by exonuclease I (Exo I) in real time. This protocol describes the process of activating proaerolysin using immobilized trypsin to obtain the aerolysin monomer, the construction of a lipid membrane and the insertion of an individual aerolysin nanopore into this membrane. A step-by-step description is provided of how to perform single-oligonucleotide analyses and how to process the acquired data. The total time required for this protocol is ∼3 d.

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Year:  2017        PMID: 28837133     DOI: 10.1038/nprot.2017.077

Source DB:  PubMed          Journal:  Nat Protoc        ISSN: 1750-2799            Impact factor:   13.491


  78 in total

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Journal:  Nat Methods       Date:  2007-03-04       Impact factor: 28.547

Review 5.  Nanopore analysis of nucleic acids bound to exonucleases and polymerases.

Authors:  David Deamer
Journal:  Annu Rev Biophys       Date:  2010       Impact factor: 12.981

6.  Kinetics of T3-DNA Ligase-Catalyzed Phosphodiester Bond Formation Measured Using the α-Hemolysin Nanopore.

Authors:  Cherie S Tan; Jan Riedl; Aaron M Fleming; Cynthia J Burrows; Henry S White
Journal:  ACS Nano       Date:  2016-12-02       Impact factor: 15.881

7.  Single molecule detection of glycosaminoglycan hyaluronic acid oligosaccharides and depolymerization enzyme activity using a protein nanopore.

Authors:  Aziz Fennouri; Cédric Przybylski; Manuela Pastoriza-Gallego; Laurent Bacri; Loïc Auvray; Régis Daniel
Journal:  ACS Nano       Date:  2012-10-17       Impact factor: 15.881

8.  Driven Translocation of Polynucleotides Through an Aerolysin Nanopore.

Authors:  Chan Cao; Jie Yu; Ya-Qian Wang; Yi-Lun Ying; Yi-Tao Long
Journal:  Anal Chem       Date:  2016-04-29       Impact factor: 6.986

9.  The aerolysin membrane channel is formed by heptamerization of the monomer.

Authors:  H U Wilmsen; K R Leonard; W Tichelaar; J T Buckley; F Pattus
Journal:  EMBO J       Date:  1992-07       Impact factor: 11.598

10.  Nanopore sensing of botulinum toxin type B by discriminating an enzymatically cleaved Peptide from a synaptic protein synaptobrevin 2 derivative.

Authors:  Yong Wang; Vedrana Montana; Vladimir Grubišić; Randy F Stout; Vladimir Parpura; Li-Qun Gu
Journal:  ACS Appl Mater Interfaces       Date:  2014-12-29       Impact factor: 9.229

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  7 in total

Review 1.  Critical Review: digital resolution biomolecular sensing for diagnostics and life science research.

Authors:  Qinglan Huang; Nantao Li; Hanyuan Zhang; Congnyu Che; Fu Sun; Yanyu Xiong; Taylor D Canady; Brian T Cunningham
Journal:  Lab Chip       Date:  2020-07-23       Impact factor: 6.799

2.  Comparative biosensing of glycosaminoglycan hyaluronic acid oligo- and polysaccharides using aerolysin and [Formula: see text]-hemolysin nanopores.

Authors:  Aziz Fennouri; Joana Ramiandrisoa; Laurent Bacri; Jérôme Mathé; Régis Daniel
Journal:  Eur Phys J E Soft Matter       Date:  2018-10-23       Impact factor: 1.890

Review 3.  The aerolysin nanopore: from peptidomic to genomic applications.

Authors:  Yong Wang; Li-Qun Gu; Kai Tian
Journal:  Nanoscale       Date:  2018-07-12       Impact factor: 7.790

4.  Nanopore label-free detection of single-nucleotide deletion in Baxα/BaxΔ2.

Authors:  Xiaohan Chen; Liang Wang; Golbarg M Roozbahani; Youwen Zhang; Jialing Xiang; Xiyun Guan
Journal:  Electrophoresis       Date:  2018-08-02       Impact factor: 3.535

5.  Mapping the sensing spots of aerolysin for single oligonucleotides analysis.

Authors:  Chan Cao; Meng-Yin Li; Nuria Cirauqui; Ya-Qian Wang; Matteo Dal Peraro; He Tian; Yi-Tao Long
Journal:  Nat Commun       Date:  2018-07-19       Impact factor: 14.919

6.  Active DNA unwinding and transport by a membrane-adapted helicase nanopore.

Authors:  Ke Sun; Changjian Zhao; Xiaojun Zeng; Yuejia Chen; Xin Jiang; Xianting Ding; Lu Gou; Haiyang Xie; Xinqiong Li; Xialin Zhang; Sheng Lin; Linqin Dou; Long Wei; Haofu Niu; Ming Zhang; Ruocen Tian; Erica Sawyer; Qingyue Yuan; Yuqin Huang; Piaopiao Chen; Chengjian Zhao; Cuisong Zhou; Binwu Ying; Bingyang Shi; Xiawei Wei; Ruotian Jiang; Lei Zhang; Guangwen Lu; Jia Geng
Journal:  Nat Commun       Date:  2019-11-08       Impact factor: 14.919

7.  Unbiased Data Analysis for the Parameterization of Fast Translocation Events through Nanopores.

Authors:  Florian L R Lucas; Kherim Willems; Matthijs J Tadema; Katarzyna M Tych; Giovanni Maglia; Carsten Wloka
Journal:  ACS Omega       Date:  2022-07-19
  7 in total

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