An acoustofluidic trap and transfer approach for organizing a high density single cell array.

dc.contributor.author

Ohiri, Korine A

dc.contributor.author

Kelly, Sean T

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Motschman, Jeffrey D

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Lin, Kevin H

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Wood, Kris C

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Yellen, Benjamin B

dc.date.accessioned

2018-07-02T13:02:46Z

dc.date.available

2018-07-02T13:02:46Z

dc.date.issued

2018-06-22

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2018-07-02T13:02:45Z

dc.description.abstract

We demonstrate a hybrid microfluidic system that combines fluidic trapping and acoustic switching to organize an array of single cells at high density. The fluidic trapping step is achieved by balancing the hydrodynamic resistances of three parallel channel segments forming a microfluidic trifurcation, the purpose of which was to capture single cells in a high-density array. Next, the cells were transferred into adjacent larger compartments by generating an array of streaming micro-vortices to move the cells to the desired streamlines in a massively parallel format. This approach can compartmentalize single cells with efficiencies of ≈67% in compartments that have diameters on the order of ∼100 um, which is an appropriate size for single cell proliferation studies and other single cell biochemical measurements.

dc.identifier.issn

1473-0197

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1473-0189

dc.identifier.uri

https://hdl.handle.net/10161/17203

dc.language

eng

dc.publisher

Royal Society of Chemistry (RSC)

dc.relation.ispartof

Lab on a chip

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10.1039/c8lc00196k

dc.title

An acoustofluidic trap and transfer approach for organizing a high density single cell array.

dc.type

Journal article

duke.contributor.orcid

Wood, Kris C|0000-0002-5887-2253

pubs.organisational-group

Pratt School of Engineering

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Duke

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Mechanical Engineering and Materials Science

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School of Medicine

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Biomedical Engineering

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Duke Cancer Institute

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Institutes and Centers

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Pharmacology & Cancer Biology

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Basic Science Departments

pubs.publication-status

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