Literature DB >> 20179819

Microfluidic stochastic confinement enhances analysis of rare cells by isolating cells and creating high density environments for control of diffusible signals.

Meghan E Vincent1, Weishan Liu, Elizabeth B Haney, Rustem F Ismagilov.   

Abstract

Rare cells can be difficult to analyze because they either occur in low numbers or coexist with a more abundant cell type, yet their detection is crucial for diagnosing disease and maintaining human health. In this tutorial review, we introduce the concept of microfluidic stochastic confinement for use in detection and analysis of rare cells. Stochastic confinement provides two advantages: (1) it separates rare single cells from the bulk mixture and (2) it allows signals to locally accumulate to a higher concentration around a single cell than in the bulk mixture. Microfluidics is an attractive method for implementing stochastic confinement because it provides simple handling of small volumes. We present technologies for microfluidic stochastic confinement that utilize both wells and droplets for the detection and analysis of single cells. We address how these microfluidic technologies have been used to observe new behavior, increase speed of detection, and enhance cultivation of rare cells. We discuss potential applications of microfluidic stochastic confinement to fields such as human diagnostics and environmental testing.

Entities:  

Mesh:

Year:  2010        PMID: 20179819      PMCID: PMC2829723          DOI: 10.1039/b917851a

Source DB:  PubMed          Journal:  Chem Soc Rev        ISSN: 0306-0012            Impact factor:   54.564


  51 in total

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4.  Microfluidic confinement of single cells of bacteria in small volumes initiates high-density behavior of quorum sensing and growth and reveals its variability.

Authors:  James Q Boedicker; Meghan E Vincent; Rustem F Ismagilov
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5.  Solubilization of bacterial cells in organic solvents via reverse micelles.

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6.  Controlling nonspecific protein adsorption in a plug-based microfluidic system by controlling interfacial chemistry using fluorous-phase surfactants.

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8.  Optical imaging fiber-based single live cell arrays: a high-density cell assay platform.

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9.  Laterally mobile, functionalized self-assembled monolayers at the fluorous-aqueous interface in a plug-based microfluidic system: characterization and testing with membrane protein crystallization.

Authors:  Jason E Kreutz; Liang Li; L Spencer Roach; Takuji Hatakeyama; Rustem F Ismagilov
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10.  Spatial localization of bacteria controls coagulation of human blood by 'quorum acting'.

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  27 in total

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Journal:  ACS Nano       Date:  2010-10-26       Impact factor: 15.881

2.  Detection of single enzymatic events in rare or single cells using microfluidics.

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4.  Theoretical design and analysis of multivolume digital assays with wide dynamic range validated experimentally with microfluidic digital PCR.

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Review 6.  The role of physiological heterogeneity in microbial population behavior.

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7.  Size-based hydrodynamic rare tumor cell separation in curved microfluidic channels.

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8.  Individually addressable arrays of replica microbial cultures enabled by splitting SlipChips.

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Review 9.  Rare cell isolation and analysis in microfluidics.

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10.  Single-cell assays.

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