Literature DB >> 33763161

Isolation of target DNA using synergistic magnetic bead transport and electrokinetic flow.

Lindsay Schneider1, Francis Cui1, Anubhav Tripathi1.   

Abstract

The advent and dissemination of next-generation sequencing (NGS) technologies such as Illumina's sequencing platforms has brought forth vast reductions in the cost, time, and technical difficulties associated with DNA and RNA sequencing. Despite this trend, the workflow required to generate nucleic acid libraries for sequencing remains time-consuming and laborious. The following research proposes a method for simplifying and streamlining this process by replacing the manual washing steps of the common magnetic bead-based cleanup with a novel microfluidic method by integrating magnetic separation and electrokinetic purification (MSEP). Requiring no pumps, pipette mixing, vortexing, or centrifugation, MSEP relies on selective adsorption of target DNA onto the magnetic beads with subsequent transport of beads through a microchannel undergoing an antiparallel electroosmotic flow. The synergetic flow conditions were optimized using a simple electrohydrodynamic flow model. This work demonstrates that MSEP is as effective in eliminating adapter-dimers from the post-ligation library mix as the manual method while also greatly reducing the hands-on time and amount of pipetting required. Although MSEP has been applied specifically toward NGS library preparation at this time, it has the potential to be adapted and employed for any bead-based separation scheme, namely, solid phase extraction, sequence-specific hybridization, and immunoprecipitation on a microscale.
© 2021 Author(s).

Entities:  

Year:  2021        PMID: 33763161      PMCID: PMC7972524          DOI: 10.1063/5.0045307

Source DB:  PubMed          Journal:  Biomicrofluidics        ISSN: 1932-1058            Impact factor:   2.800


  31 in total

1.  Adsorption and isolation of nucleic acids on cellulose magnetic beads using a three-dimensional printed microfluidic chip.

Authors:  Lei Zhang; Rachel N Deraney; Anubhav Tripathi
Journal:  Biomicrofluidics       Date:  2015-12-23       Impact factor: 2.800

2.  Size-dependent DNA mobility in cytoplasm and nucleus.

Authors:  G L Lukacs; P Haggie; O Seksek; D Lechardeur; N Freedman; A S Verkman
Journal:  J Biol Chem       Date:  2000-01-21       Impact factor: 5.157

3.  Comparison of surfactants for dynamic surface modification of poly(dimethylsiloxane) microchips.

Authors:  Carlos D García; Brian M Dressen; Amber Henderson; Charles S Henry
Journal:  Electrophoresis       Date:  2005-02       Impact factor: 3.535

4.  Magnetic-bead-based microfluidic system for ribonucleic acid extraction and reverse transcription processes.

Authors:  Chien-Ju Liu; Kang-Yi Lien; Ching-Yi Weng; Jyh-Wei Shin; Tsuey-Yu Chang; Gwo-Bin Lee
Journal:  Biomed Microdevices       Date:  2009-04       Impact factor: 2.838

5.  Subtyping clinical specimens of influenza A virus by use of a simple method to amplify RNA targets.

Authors:  Jingjing Wang; Warren Tai; Stephanie L Angione; Amrita R John; Steven M Opal; Andrew W Artenstein; Anubhav Tripathi
Journal:  J Clin Microbiol       Date:  2013-07-31       Impact factor: 5.948

6.  A Microfluidics Workflow for Sample Preparation for Next-Generation DNA Sequencing.

Authors:  Adam Snider; Michael Nilsson; Mark Dupal; Masoud Toloue; Anubhav Tripathi
Journal:  SLAS Technol       Date:  2018-08-24       Impact factor: 3.047

7.  Effect of PVP on the electroosmotic mobility of wet-etched glass microchannels.

Authors:  Denitsa Milanova; Robert D Chambers; Supreet S Bahga; Juan G Santiago
Journal:  Electrophoresis       Date:  2012-10-12       Impact factor: 3.535

Review 8.  Library construction for next-generation sequencing: overviews and challenges.

Authors:  Steven R Head; H Kiyomi Komori; Sarah A LaMere; Thomas Whisenant; Filip Van Nieuwerburgh; Daniel R Salomon; Phillip Ordoukhanian
Journal:  Biotechniques       Date:  2014-02-01       Impact factor: 1.993

9.  Microfluidic Platform for Next-Generation Sequencing Library Preparation with Low-Input Samples.

Authors:  Travis W Murphy; Yuan-Pang Hsieh; Bohan Zhu; Lynette B Naler; Chang Lu
Journal:  Anal Chem       Date:  2020-01-14       Impact factor: 6.986

10.  Vortex- and Centrifugation-Free Extraction of HIV-1 RNA.

Authors:  Rachel N Deraney; Derek Troiano; Richard Joseph; Soya S Sam; Angela M Caliendo; Anubhav Tripathi
Journal:  Mol Diagn Ther       Date:  2019-06       Impact factor: 4.476

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  1 in total

1.  An investigation into simplifying total RNA extraction with minimal equipment using a low volume, electrokinetically driven microfluidic protocol.

Authors:  Kiara Lee; Anubhav Tripathi
Journal:  Biomicrofluidics       Date:  2022-08-16       Impact factor: 3.258

  1 in total

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