Literature DB >> 15516136

Microfluidic separation and gateable fraction collection for mass-limited samples.

Joseph J Tulock1, Mark A Shannon, Paul W Bohn, Jonathan V Sweedler.   

Abstract

Integrating multiple analytical processes into microfluidic devices is an important research area required for a variety of microchip-based analyses. A microfluidic system is described that achieves preparative separations by intelligent fraction collection of attomole quantities of sample. The device consists of a main microfluidic channel used to perform electrophoresis, which is interconnected at 90 degrees to two vertically displaced channels via a nanocapillary array membrane. The membrane interconnect contains nanometer-diameter pores that provide fluidic communication between the channels. Sample injection and analyte collection are controlled by application of an electrical bias between the microfluidic channels across the nanocapillary array. After the separation, the automated transfer of the FITC-labeled Arg, Gln, and Gly bands occurs; a fluorescence detector located at the separation/collection channel interconnect is used to generate a triggering signal that initiates suitable voltages to allow near-quantitative transfer of analyte from the separation channel to the second fluidic layer. The ability to achieve such sample manipulations from mass-limited samples enables a variety of postseparation processing events.

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Year:  2004        PMID: 15516136     DOI: 10.1021/ac049601p

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


  9 in total

1.  Leakage-free bonding of porous membranes into layered microfluidic array systems.

Authors:  Bor-han Chueh; Dongeun Huh; Christina R Kyrtsos; Timothée Houssin; Nobuyuki Futai; Shuichi Takayama
Journal:  Anal Chem       Date:  2007-03-28       Impact factor: 6.986

2.  Integrated membrane filters for minimizing hydrodynamic flow and filtering in microfluidic devices.

Authors:  Scott D Noblitt; James R Kraly; Jaimie M VanBuren; Susanne V Hering; Jeffrey L Collett; Charles S Henry
Journal:  Anal Chem       Date:  2007-07-18       Impact factor: 6.986

3.  Single nanopore transport of synthetic and biological polyelectrolytes in three-dimensional hybrid microfluidicnanofluidic devices.

Authors:  Travis L King; Enid N Gatimu; Paul W Bohn
Journal:  Biomicrofluidics       Date:  2009-01-02       Impact factor: 2.800

4.  Three-dimensional integrated microfluidic architectures enabled through electrically switchable nanocapillary array membranes.

Authors:  E N Gatimu; T L King; J V Sweedler; P W Bohn
Journal:  Biomicrofluidics       Date:  2007-05-10       Impact factor: 2.800

5.  Size selective DNA transport through a nanoporous membrane in a PDMS microfluidic device.

Authors:  Yixiao Sheng; Michael T Bowser
Journal:  Analyst       Date:  2012-01-20       Impact factor: 4.616

6.  A continuous-flow, microfluidic fraction collection device.

Authors:  Christopher A Baker; Michael G Roper
Journal:  J Chromatogr A       Date:  2010-07-09       Impact factor: 4.759

7.  Fully 3D printed integrated reactor array for point-of-care molecular diagnostics.

Authors:  Karteek Kadimisetty; Jinzhao Song; Aoife M Doto; Young Hwang; Jing Peng; Michael G Mauk; Frederic D Bushman; Robert Gross; Joseph N Jarvis; Changchun Liu
Journal:  Biosens Bioelectron       Date:  2018-03-10       Impact factor: 10.618

8.  Multidimensional separation of chiral amino acid mixtures in a multilayered three-dimensional hybrid microfluidic/nanofluidic device.

Authors:  Bo Young Kim; Jing Yang; Maojun Gong; Bruce R Flachsbart; Mark A Shannon; Paul W Bohn; Jonathan V Sweedler
Journal:  Anal Chem       Date:  2009-04-01       Impact factor: 6.986

9.  Collecting peptide release from the brain using porous polymer monolith-based solid phase extraction capillaries.

Authors:  Jamie M Iannacone; Shifang Ren; Nathan G Hatcher; Jonathan V Sweedler
Journal:  Anal Chem       Date:  2009-07-01       Impact factor: 6.986

  9 in total

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