Literature DB >> 23386180

Node-pore sensing: a robust, high-dynamic range method for detecting biological species.

Karthik R Balakrishnan1, George Anwar, Matthew R Chapman, Trongtuong Nguyen, Anand Kesavaraju, Lydia L Sohn.   

Abstract

Resistive-pulse sensing (RPS), which is based on measuring the current pulse produced when a single particle transits a pore or channel, is an extremely versatile technique used to determine the size and concentration of cells and viruses and to detect single molecules. A major challenge to RPS is dynamic range: smaller particles in a heterogeneous sample can go undetected because of low signal-to-noise ratios (SNRs) and the fact that the pore size must be commensurate with that of the largest particles. Here, we describe a fundamentally different pore that provides an unprecedented dynamic detection range, from tens of nanometers to several microns in size, without the need for pre-sorting or filtration. Because of its unique geometry--nodes inserted along the channel--our pore produces distinct electronic signatures that overcome low SNRs. We demonstrate the power of our device by directly detecting and enumerating human immunodeficiency virus (HIV) in human plasma.

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Year:  2013        PMID: 23386180     DOI: 10.1039/c3lc41286e

Source DB:  PubMed          Journal:  Lab Chip        ISSN: 1473-0189            Impact factor:   6.799


  19 in total

1.  Characterization of Virus Capsids and Their Assembly Intermediates by Multicycle Resistive-Pulse Sensing with Four Pores in Series.

Authors:  Jinsheng Zhou; Panagiotis Kondylis; Daniel G Haywood; Zachary D Harms; Lye Siang Lee; Adam Zlotnick; Stephen C Jacobson
Journal:  Anal Chem       Date:  2018-05-29       Impact factor: 6.986

2.  Microfluidic Platform with Multiplexed Electronic Detection for Spatial Tracking of Particles.

Authors:  Ningquan Wang; Ruxiu Liu; A Fatih Sarioglu
Journal:  J Vis Exp       Date:  2017-03-13       Impact factor: 1.355

Review 3.  Lab-on-a-chip electrical multiplexing techniques for cellular and molecular biomarker detection.

Authors:  Fan Liu; Liwei Ni; Jiang Zhe
Journal:  Biomicrofluidics       Date:  2018-04-10       Impact factor: 2.800

Review 4.  Developments in label-free microfluidic methods for single-cell analysis and sorting.

Authors:  Thomas R Carey; Kristen L Cotner; Brian Li; Lydia L Sohn
Journal:  Wiley Interdiscip Rev Nanomed Nanobiotechnol       Date:  2018-04-24

5.  Nanofluidic Devices with 8 Pores in Series for Real-Time, Resistive-Pulse Analysis of Hepatitis B Virus Capsid Assembly.

Authors:  Panagiotis Kondylis; Jinsheng Zhou; Zachary D Harms; Andrew R Kneller; Lye Siang Lee; Adam Zlotnick; Stephen C Jacobson
Journal:  Anal Chem       Date:  2017-04-17       Impact factor: 6.986

Review 6.  Conductivity-based detection techniques in nanofluidic devices.

Authors:  Zachary D Harms; Daniel G Haywood; Andrew R Kneller; Stephen C Jacobson
Journal:  Analyst       Date:  2015-05-19       Impact factor: 4.616

7.  Multiplexed DNA-Directed Patterning of Antibodies for Applications in Cell Subpopulation Analysis.

Authors:  Molly Kozminsky; Olivia J Scheideler; Brian Li; Nathaniel K Liu; Lydia L Sohn
Journal:  ACS Appl Mater Interfaces       Date:  2021-09-21       Impact factor: 9.229

8.  Label-Free Identification of Single Mononucleotides by Nanoscale Electrophoresis.

Authors:  Junseo Choi; Zheng Jia; Ramin Riahipour; Collin J McKinney; Charuni A Amarasekara; Kumuditha M Weerakoon-Ratnayake; Steven A Soper; Sunggook Park
Journal:  Small       Date:  2021-09-23       Impact factor: 15.153

9.  Monitoring Assembly of Virus Capsids with Nanofluidic Devices.

Authors:  Zachary D Harms; Lisa Selzer; Adam Zlotnick; Stephen C Jacobson
Journal:  ACS Nano       Date:  2015-08-26       Impact factor: 15.881

10.  BARKER-CODED NODE-PORE RESISTIVE PULSE SENSING WITH BUILT-IN COINCIDENCE CORRECTION.

Authors:  Michael Kellman; Francois Rivest; Alina Pechacek; Lydia Sohn; Michael Lustig
Journal:  Proc IEEE Int Conf Acoust Speech Signal Process       Date:  2017-06-19
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