Microfluidic Impedimetric Cell Regeneration Assay to Monitor the Enhanced Cytotoxic Effect of Nanomaterial Perfusion

In the last decade, the application of nanomaterials (NMs) in technical products and biomedicine has become a rapidly increasing market trend. As the safety and efficacy of NMs are of utmost importance, new methods are needed to study the dynamic interactions of NMs at the nano-biointerface. However...

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Main Authors: Mario Rothbauer, Irene Praisler, Dominic Docter, Roland H. Stauber, Peter Ertl
Format: Article
Language:English
Published: MDPI AG 2015-11-01
Series:Biosensors
Subjects:
Online Access:http://www.mdpi.com/2079-6374/5/4/736
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spelling doaj-7af5773061714123b095f4bfa4f0d0082020-11-24T20:42:57ZengMDPI AGBiosensors2079-63742015-11-015473674910.3390/bios5040736bios5040736Microfluidic Impedimetric Cell Regeneration Assay to Monitor the Enhanced Cytotoxic Effect of Nanomaterial PerfusionMario Rothbauer0Irene Praisler1Dominic Docter2Roland H. Stauber3Peter Ertl4BioSensor Technologies, AIT Austrian Institute of Technology GmbH, 1190 Vienna, AustriaBioSensor Technologies, AIT Austrian Institute of Technology GmbH, 1190 Vienna, AustriaMolecular and Cellular Oncology, ENT/University Medical Center Mainz, 55116 Mainz, GermanyMolecular and Cellular Oncology, ENT/University Medical Center Mainz, 55116 Mainz, GermanyBioSensor Technologies, AIT Austrian Institute of Technology GmbH, 1190 Vienna, AustriaIn the last decade, the application of nanomaterials (NMs) in technical products and biomedicine has become a rapidly increasing market trend. As the safety and efficacy of NMs are of utmost importance, new methods are needed to study the dynamic interactions of NMs at the nano-biointerface. However, evaluation of NMs based on standard and static cell culture end-point detection methods does not provide information on the dynamics of living biological systems, which is crucial for the understanding of physiological responses. To bridge this technological gap, we here present a microfluidic cell culture system containing embedded impedance microsensors to continuously and non-invasively monitor the effects of NMs on adherent cells under varying flow conditions. As a model, the impact of silica NMs on the vitality and regenerative capacity of human lung cells after acute and chronic exposure scenarios was studied over an 18-h period following a four-hour NM treatment. Results of the study demonstrated that the developed system is applicable to reliably analyze the consequences of dynamic NM exposure to physiological cell barriers in both nanotoxicology and nanomedicine.http://www.mdpi.com/2079-6374/5/4/736lab-on-a-chipcell chipimpedancebiosensornanoparticlelung cancernanotoxicology
collection DOAJ
language English
format Article
sources DOAJ
author Mario Rothbauer
Irene Praisler
Dominic Docter
Roland H. Stauber
Peter Ertl
spellingShingle Mario Rothbauer
Irene Praisler
Dominic Docter
Roland H. Stauber
Peter Ertl
Microfluidic Impedimetric Cell Regeneration Assay to Monitor the Enhanced Cytotoxic Effect of Nanomaterial Perfusion
Biosensors
lab-on-a-chip
cell chip
impedance
biosensor
nanoparticle
lung cancer
nanotoxicology
author_facet Mario Rothbauer
Irene Praisler
Dominic Docter
Roland H. Stauber
Peter Ertl
author_sort Mario Rothbauer
title Microfluidic Impedimetric Cell Regeneration Assay to Monitor the Enhanced Cytotoxic Effect of Nanomaterial Perfusion
title_short Microfluidic Impedimetric Cell Regeneration Assay to Monitor the Enhanced Cytotoxic Effect of Nanomaterial Perfusion
title_full Microfluidic Impedimetric Cell Regeneration Assay to Monitor the Enhanced Cytotoxic Effect of Nanomaterial Perfusion
title_fullStr Microfluidic Impedimetric Cell Regeneration Assay to Monitor the Enhanced Cytotoxic Effect of Nanomaterial Perfusion
title_full_unstemmed Microfluidic Impedimetric Cell Regeneration Assay to Monitor the Enhanced Cytotoxic Effect of Nanomaterial Perfusion
title_sort microfluidic impedimetric cell regeneration assay to monitor the enhanced cytotoxic effect of nanomaterial perfusion
publisher MDPI AG
series Biosensors
issn 2079-6374
publishDate 2015-11-01
description In the last decade, the application of nanomaterials (NMs) in technical products and biomedicine has become a rapidly increasing market trend. As the safety and efficacy of NMs are of utmost importance, new methods are needed to study the dynamic interactions of NMs at the nano-biointerface. However, evaluation of NMs based on standard and static cell culture end-point detection methods does not provide information on the dynamics of living biological systems, which is crucial for the understanding of physiological responses. To bridge this technological gap, we here present a microfluidic cell culture system containing embedded impedance microsensors to continuously and non-invasively monitor the effects of NMs on adherent cells under varying flow conditions. As a model, the impact of silica NMs on the vitality and regenerative capacity of human lung cells after acute and chronic exposure scenarios was studied over an 18-h period following a four-hour NM treatment. Results of the study demonstrated that the developed system is applicable to reliably analyze the consequences of dynamic NM exposure to physiological cell barriers in both nanotoxicology and nanomedicine.
topic lab-on-a-chip
cell chip
impedance
biosensor
nanoparticle
lung cancer
nanotoxicology
url http://www.mdpi.com/2079-6374/5/4/736
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