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Citation
Tags
HERO ID
2522476
Reference Type
Journal Article
Title
A lab-on-chip cell-based biosensor for label-free sensing of water toxicants
Author(s)
Liu, F; Nordin, AN; Li, F; Voiculescu, I
Year
2014
Is Peer Reviewed?
1
Journal
Lab on a Chip
ISSN:
1473-0197
EISSN:
1473-0189
Volume
14
Issue
7
Page Numbers
1270-1280
PMID
24463940
DOI
10.1039/c3lc51085a
Web of Science Id
WOS:000332454600004
Abstract
This paper presents a lab-on-chip biosensor containing an enclosed fluidic cell culturing well seeded with live cells for rapid screening of toxicants in drinking water. The sensor is based on the innovative placement of the working electrode for the electrical cell-substrate impedance sensing (ECIS) technique as the top electrode of a quartz crystal microbalance (QCM) resonator. Cell damage induced by toxic water will cause a decrease in impedance, as well as an increase in the resonant frequency. For water toxicity tests, the biosensor's unique capabilities of performing two complementary measurements simultaneously (impedance and mass-sensing) will increase the accuracy of detection while decreasing the false-positive rate. Bovine aortic endothelial cells (BAECs) were used as toxicity sensing cells. The effects of the toxicants, ammonia, nicotine and aldicarb, on cells were monitored with both the QCM and the ECIS technique. The lab-on-chip was demonstrated to be sensitive to low concentrations of toxicants. The responses of BAECs to toxic samples occurred during the initial 5 to 20 minutes depending on the type of chemical and concentrations. Testing the multiparameter biosensor with aldicarb also demonstrated the hypothesis that using two different sensors to monitor the same cell monolayer provides cross validation and increases the accuracy of detection. For low concentrations of aldicarb, the variations in impedance measurements are insignificant in comparison with the shifts of resonant frequency monitored using the QCM resonator. A highly linear correlation between signal shifts and chemical concentrations was demonstrated for each toxicant.
Tags
IRIS
•
Ammonia
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