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research article

Characterization of a microfluidic dispensing system for localised stimulation of cellular networks

Kraus, T.
•
Verpoorte, E.
•
Linder, V.
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2006
Lab on a Chip

We present a 3-D microfluidic device designed for localized drug delivery to cellular networks. The device features a flow cell comprising a main channel for nutrient delivery as well as multiple channels for drug delivery. This device is one key component of a larger, fully integrated system now under development, based upon a microelectrode array (MEA) with on-chip CMOS circuitry for recording and stimulation of electrogenic cells (e.g. neurons, cardiomyocytes). As a critical system unit, the microfluidics must be carefully designed and characterized to ensure that candidate drugs are delivered to specific regions of the culture at known concentrations. Furthermore, microfluidic design and functionality is dictated by the size, geometry, and material/electrical characteristics of the CMOS MEA. Therefore, this paper reports on the design considerations and fabrication of the flow cell, including theoretical and experimental analysis of the mass transfer properties of the nutrient and drug flows, which are in good agreement with one another. To demonstrate proof of concept, the flow cell was mounted on a dummy CMOS chip, which had been plated with HL-1 cardiomyocytes. A test chemical compound was delivered to the cell culture in a spatially resolved manner. Envisioned applications of this stand-alone system include simultaneous toxicological testing of multiple compounds and chemical stimulation of natural neural networks for neuroscience investigations. © The Royal Society of Chemistry 2006.

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Type
research article
DOI
10.1039/b511768b
Author(s)
Kraus, T.
Verpoorte, E.
Linder, V.
Franks, W.
Hierlemann, A.
Heer, F.
Hafizovic, S.
Fujii, T.
de Rooij, N. F.  
Koster, S.
Date Issued

2006

Published in
Lab on a Chip
Volume

6

Start page

218

End page

229

Note

357

Editorial or Peer reviewed

REVIEWED

Written at

OTHER

EPFL units
SAMLAB  
Available on Infoscience
May 12, 2009
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/39502
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