Revelation of Different Nanoparticle-Uptake Behavior in Two Standard Cell Lines NIH/3T3 and A549 by Flow Cytometry and Time-Lapse Imaging
The uptake of nanomaterials into different cell types is a central pharmacological issue for the determination of nanotoxicity as well as for the development of drug delivery strategies. Most responses of the cells depend on their intracellular interactions with nanoparticles (NPs). Uptake behavior...
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doaj-954f5dee5bcd4b9c99a3206f96664b7b2020-11-24T21:34:42ZengMDPI AGToxics2305-63042017-07-01531510.3390/toxics5030015toxics5030015Revelation of Different Nanoparticle-Uptake Behavior in Two Standard Cell Lines NIH/3T3 and A549 by Flow Cytometry and Time-Lapse ImagingAndré Jochums0Elsa Friehs1Franziska Sambale2Antonina Lavrentieva3Detlef Bahnemann4Thomas Scheper5Institute of Technical Chemistry, Gottfried Wilhelm Leibniz Universität Hannover, 30167 Hannover, GermanyInstitute of Technical Chemistry, Gottfried Wilhelm Leibniz Universität Hannover, 30167 Hannover, GermanyInstitute of Technical Chemistry, Gottfried Wilhelm Leibniz Universität Hannover, 30167 Hannover, GermanyInstitute of Technical Chemistry, Gottfried Wilhelm Leibniz Universität Hannover, 30167 Hannover, GermanyInstitute of Technical Chemistry, Gottfried Wilhelm Leibniz Universität Hannover, 30167 Hannover, GermanyInstitute of Technical Chemistry, Gottfried Wilhelm Leibniz Universität Hannover, 30167 Hannover, GermanyThe uptake of nanomaterials into different cell types is a central pharmacological issue for the determination of nanotoxicity as well as for the development of drug delivery strategies. Most responses of the cells depend on their intracellular interactions with nanoparticles (NPs). Uptake behavior can be precisely investigated in vitro, with sensitive high throughput methods such as flow cytometry. In this study, we investigated two different standard cell lines, human lung carcinoma (A549) and mouse fibroblast (NIH/3T3) cells, regarding their uptake behavior of titanium dioxide NPs. Cells were incubated with different concentrations of TiO2 NPs and samples were taken at certain time points to compare the uptake kinetics of both cell lines. Samples were analyzed with the help of flow cytometry by studying changes in the side and forward scattering signal. To additionally enable a detection via fluorescence, NPs were labeled with the fluorescent dye fluorescein isothiocyanate (FITC) and propidium iodide (PI). We found that NIH/3T3 cells take up the studied NPs more efficiently than A549 cells. These findings were supported by time-lapse microscopic imaging of the cells incubated with TiO2 NPs. Our results confirm that the uptake behavior of individual cell types has to be considered before interpreting any results of nanomaterial studies.https://www.mdpi.com/2305-6304/5/3/15nanoparticle-uptaketitanium dioxideflow cytometrylight scatterfluorescence labelingtime lapse imaging |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
André Jochums Elsa Friehs Franziska Sambale Antonina Lavrentieva Detlef Bahnemann Thomas Scheper |
spellingShingle |
André Jochums Elsa Friehs Franziska Sambale Antonina Lavrentieva Detlef Bahnemann Thomas Scheper Revelation of Different Nanoparticle-Uptake Behavior in Two Standard Cell Lines NIH/3T3 and A549 by Flow Cytometry and Time-Lapse Imaging Toxics nanoparticle-uptake titanium dioxide flow cytometry light scatter fluorescence labeling time lapse imaging |
author_facet |
André Jochums Elsa Friehs Franziska Sambale Antonina Lavrentieva Detlef Bahnemann Thomas Scheper |
author_sort |
André Jochums |
title |
Revelation of Different Nanoparticle-Uptake Behavior in Two Standard Cell Lines NIH/3T3 and A549 by Flow Cytometry and Time-Lapse Imaging |
title_short |
Revelation of Different Nanoparticle-Uptake Behavior in Two Standard Cell Lines NIH/3T3 and A549 by Flow Cytometry and Time-Lapse Imaging |
title_full |
Revelation of Different Nanoparticle-Uptake Behavior in Two Standard Cell Lines NIH/3T3 and A549 by Flow Cytometry and Time-Lapse Imaging |
title_fullStr |
Revelation of Different Nanoparticle-Uptake Behavior in Two Standard Cell Lines NIH/3T3 and A549 by Flow Cytometry and Time-Lapse Imaging |
title_full_unstemmed |
Revelation of Different Nanoparticle-Uptake Behavior in Two Standard Cell Lines NIH/3T3 and A549 by Flow Cytometry and Time-Lapse Imaging |
title_sort |
revelation of different nanoparticle-uptake behavior in two standard cell lines nih/3t3 and a549 by flow cytometry and time-lapse imaging |
publisher |
MDPI AG |
series |
Toxics |
issn |
2305-6304 |
publishDate |
2017-07-01 |
description |
The uptake of nanomaterials into different cell types is a central pharmacological issue for the determination of nanotoxicity as well as for the development of drug delivery strategies. Most responses of the cells depend on their intracellular interactions with nanoparticles (NPs). Uptake behavior can be precisely investigated in vitro, with sensitive high throughput methods such as flow cytometry. In this study, we investigated two different standard cell lines, human lung carcinoma (A549) and mouse fibroblast (NIH/3T3) cells, regarding their uptake behavior of titanium dioxide NPs. Cells were incubated with different concentrations of TiO2 NPs and samples were taken at certain time points to compare the uptake kinetics of both cell lines. Samples were analyzed with the help of flow cytometry by studying changes in the side and forward scattering signal. To additionally enable a detection via fluorescence, NPs were labeled with the fluorescent dye fluorescein isothiocyanate (FITC) and propidium iodide (PI). We found that NIH/3T3 cells take up the studied NPs more efficiently than A549 cells. These findings were supported by time-lapse microscopic imaging of the cells incubated with TiO2 NPs. Our results confirm that the uptake behavior of individual cell types has to be considered before interpreting any results of nanomaterial studies. |
topic |
nanoparticle-uptake titanium dioxide flow cytometry light scatter fluorescence labeling time lapse imaging |
url |
https://www.mdpi.com/2305-6304/5/3/15 |
work_keys_str_mv |
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