Literature DB >> 28222260

K-Channel: A Multifunctional Architecture for Dynamically Reconfigurable Sample Processing in Droplet Microfluidics.

Steven R Doonan1,2, Ryan C Bailey1,2.   

Abstract

By rapidly creating libraries of thousands of unique, miniaturized reactors, droplet microfluidics provides a powerful method for automating high-throughput chemical analysis. In order to engineer in-droplet assays, microfluidic devices must add reagents into droplets, remove fluid from droplets, and perform other necessary operations, each typically provided by a unique, specialized geometry. Unfortunately, modifying device performance or changing operations usually requires re-engineering the device among these specialized geometries, a time-consuming and costly process when optimizing in-droplet assays. To address this challenge in implementing droplet chemistry, we have developed the "K-channel," which couples a cross-channel flow to the segmented droplet flow to enable a range of operations on passing droplets. K-channels perform reagent injection (0-100% of droplet volume), fluid extraction (0-50% of droplet volume), and droplet splitting (1:1-1:5 daughter droplet ratio). Instead of modifying device dimensions or channel configuration, adjusting external conditions, such as applied pressure and electric field, selects the K-channel process and tunes its magnitude. Finally, interfacing a device-embedded magnet allows selective capture of 96% of droplet-encapsulated superparamagnetic beads during 1:1 droplet splitting events at ∼400 Hz. Addition of a second K-channel for injection (after the droplet splitting K-channel) enables integrated washing of magnetic beads within rapidly moving droplets. Ultimately, the K-channel provides an exciting opportunity to perform many useful droplet operations across a range of magnitudes without requiring architectural modifications. Therefore, we envision the K-channel as a versatile, easy to use microfluidic component enabling diverse, in-droplet (bio)chemical manipulations.

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Year:  2017        PMID: 28222260      PMCID: PMC5812353          DOI: 10.1021/acs.analchem.6b05041

Source DB:  PubMed          Journal:  Anal Chem        ISSN: 0003-2700            Impact factor:   6.986


  41 in total

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2.  A microfluidic system for controlling reaction networks in time.

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Review 3.  Immunoassays in microfluidic systems.

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4.  High-throughput injection with microfluidics using picoinjectors.

Authors:  Adam R Abate; Tony Hung; Pascaline Mary; Jeremy J Agresti; David A Weitz
Journal:  Proc Natl Acad Sci U S A       Date:  2010-10-20       Impact factor: 11.205

5.  Droplet breakup in microfluidic junctions of arbitrary angles.

Authors:  Laure Ménétrier-Deremble; Patrick Tabeling
Journal:  Phys Rev E Stat Nonlin Soft Matter Phys       Date:  2006-09-14

6.  The chemistrode: a droplet-based microfluidic device for stimulation and recording with high temporal, spatial, and chemical resolution.

Authors:  Delai Chen; Wenbin Du; Ying Liu; Weishan Liu; Andrey Kuznetsov; Felipe E Mendez; Louis H Philipson; Rustem F Ismagilov
Journal:  Proc Natl Acad Sci U S A       Date:  2008-10-30       Impact factor: 11.205

7.  High-throughput, quantitative enzyme kinetic analysis in microdroplets using stroboscopic epifluorescence imaging.

Authors:  David Hess; Anandkumar Rane; Andrew J deMello; Stavros Stavrakis
Journal:  Anal Chem       Date:  2015-04-16       Impact factor: 6.986

8.  On demand nanoliter-scale microfluidic droplet generation, injection, and mixing using a passive microfluidic device.

Authors:  Uwe Tangen; Abhishek Sharma; Patrick Wagler; John S McCaskill
Journal:  Biomicrofluidics       Date:  2015-02-12       Impact factor: 2.800

9.  Chemically induced coalescence in droplet-based microfluidics.

Authors:  Ilke Akartuna; Donald M Aubrecht; Thomas E Kodger; David A Weitz
Journal:  Lab Chip       Date:  2015-02-21       Impact factor: 6.799

10.  Rapid and continuous magnetic separation in droplet microfluidic devices.

Authors:  Eric Brouzes; Travis Kruse; Robert Kimmerling; Helmut H Strey
Journal:  Lab Chip       Date:  2015-02-07       Impact factor: 6.799

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  6 in total

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Authors:  Steven R Doonan; Melissa Lin; Ryan C Bailey
Journal:  Lab Chip       Date:  2019-04-23       Impact factor: 6.799

2.  What is the future of electrical impedance spectroscopy in flow cytometry?

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Journal:  Biomicrofluidics       Date:  2021-12-06       Impact factor: 2.800

3.  A droplet microfluidic platform for efficient enzymatic chromatin digestion enables robust determination of nucleosome positioning.

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Journal:  Lab Chip       Date:  2018-08-21       Impact factor: 6.799

4.  Plug-in tubes allow tunable oil removal, droplet packing, and reaction incubation for time-controlled droplet-based assays.

Authors:  Meng Sun; Gembu Maryu; Shiyuan Wang; Qiong Yang; Ryan C Bailey
Journal:  Biomicrofluidics       Date:  2021-04-05       Impact factor: 2.800

Review 5.  Active Flow Control and Dynamic Analysis in Droplet Microfluidics.

Authors:  Nan Shi; Md Mohibullah; Christopher J Easley
Journal:  Annu Rev Anal Chem (Palo Alto Calif)       Date:  2021-07-27       Impact factor: 12.400

6.  Pico-washing: simultaneous liquid addition and removal for continuous-flow washing of microdroplets.

Authors:  Michael J Siedlik; David Issadore
Journal:  Microsyst Nanoeng       Date:  2022-04-29       Impact factor: 8.006

  6 in total

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