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Electro-Deformation of Fused Cells in a Microfluidic Array Device

We present a new method of analyzing the deformability of fused cells in a microfluidic array device. Electrical stresses—generated by applying voltages (4–20 V) across discrete co-planar microelectrodes along the side walls of a microfluidic channel—have been used to electro-deform fused and unfuse...

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Autores principales: Liu, Yan, Zhang, Xiaoling, Chen, Mengdi, Yin, Danfen, Yang, Zhong, Chen, Xi, Wang, Zhenyu, Xu, Jie, Li, Yuanyi, Qiu, Jun, Hu, Ning, Yang, Jun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6189768/
https://www.ncbi.nlm.nih.gov/pubmed/30404377
http://dx.doi.org/10.3390/mi7110204
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author Liu, Yan
Zhang, Xiaoling
Chen, Mengdi
Yin, Danfen
Yang, Zhong
Chen, Xi
Wang, Zhenyu
Xu, Jie
Li, Yuanyi
Qiu, Jun
Hu, Ning
Yang, Jun
author_facet Liu, Yan
Zhang, Xiaoling
Chen, Mengdi
Yin, Danfen
Yang, Zhong
Chen, Xi
Wang, Zhenyu
Xu, Jie
Li, Yuanyi
Qiu, Jun
Hu, Ning
Yang, Jun
author_sort Liu, Yan
collection PubMed
description We present a new method of analyzing the deformability of fused cells in a microfluidic array device. Electrical stresses—generated by applying voltages (4–20 V) across discrete co-planar microelectrodes along the side walls of a microfluidic channel—have been used to electro-deform fused and unfused stem cells. Under an electro-deformation force induced by applying an alternating current (AC) signal, we observed significant electro-deformation phenomena. The experimental results show that the fused stem cells were stiffer than the unfused stem cells at a relatively low voltage (<16 V). However, at a relatively high voltage, the fused stem cells were more easily deformed than were the unfused stem cells. In addition, the electro-deformation process is modeled based on the Maxwell stress tensor and structural mechanics of cells. The theoretical results show that a positive correlation is found between the deformation of the cell and the applied voltage, which is consistent with the experimental results. Combined with a numerical analysis and experimental study, the results showed that the significant difference of the deformation ratio of the fused and unfused cells is not due to their size difference. This demonstrates that some other properties of cell membranes (such as the membrane structure) were also changed in the electrofusion process, in addition to the size modification of that process.
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spelling pubmed-61897682018-11-01 Electro-Deformation of Fused Cells in a Microfluidic Array Device Liu, Yan Zhang, Xiaoling Chen, Mengdi Yin, Danfen Yang, Zhong Chen, Xi Wang, Zhenyu Xu, Jie Li, Yuanyi Qiu, Jun Hu, Ning Yang, Jun Micromachines (Basel) Article We present a new method of analyzing the deformability of fused cells in a microfluidic array device. Electrical stresses—generated by applying voltages (4–20 V) across discrete co-planar microelectrodes along the side walls of a microfluidic channel—have been used to electro-deform fused and unfused stem cells. Under an electro-deformation force induced by applying an alternating current (AC) signal, we observed significant electro-deformation phenomena. The experimental results show that the fused stem cells were stiffer than the unfused stem cells at a relatively low voltage (<16 V). However, at a relatively high voltage, the fused stem cells were more easily deformed than were the unfused stem cells. In addition, the electro-deformation process is modeled based on the Maxwell stress tensor and structural mechanics of cells. The theoretical results show that a positive correlation is found between the deformation of the cell and the applied voltage, which is consistent with the experimental results. Combined with a numerical analysis and experimental study, the results showed that the significant difference of the deformation ratio of the fused and unfused cells is not due to their size difference. This demonstrates that some other properties of cell membranes (such as the membrane structure) were also changed in the electrofusion process, in addition to the size modification of that process. MDPI 2016-11-09 /pmc/articles/PMC6189768/ /pubmed/30404377 http://dx.doi.org/10.3390/mi7110204 Text en © 2016 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC-BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Liu, Yan
Zhang, Xiaoling
Chen, Mengdi
Yin, Danfen
Yang, Zhong
Chen, Xi
Wang, Zhenyu
Xu, Jie
Li, Yuanyi
Qiu, Jun
Hu, Ning
Yang, Jun
Electro-Deformation of Fused Cells in a Microfluidic Array Device
title Electro-Deformation of Fused Cells in a Microfluidic Array Device
title_full Electro-Deformation of Fused Cells in a Microfluidic Array Device
title_fullStr Electro-Deformation of Fused Cells in a Microfluidic Array Device
title_full_unstemmed Electro-Deformation of Fused Cells in a Microfluidic Array Device
title_short Electro-Deformation of Fused Cells in a Microfluidic Array Device
title_sort electro-deformation of fused cells in a microfluidic array device
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6189768/
https://www.ncbi.nlm.nih.gov/pubmed/30404377
http://dx.doi.org/10.3390/mi7110204
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