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Self-Rotation of Cells in an Irrotational AC E-Field in an Opto-Electrokinetics Chip

The use of optical dielectrophoresis (ODEP) to manipulate microparticles and biological cells has become increasingly popular due to its tremendous flexibility in providing reconfigurable electrode patterns and flow channels. ODEP enables the parallel and free manipulation of small particles on a ph...

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Autores principales: Chau, Long-Ho, Liang, Wenfeng, Cheung, Florence Wing Ki, Liu, Wing Keung, Li, Wen Jung, Chen, Shih-Chi, Lee, Gwo-Bin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3540069/
https://www.ncbi.nlm.nih.gov/pubmed/23320067
http://dx.doi.org/10.1371/journal.pone.0051577
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author Chau, Long-Ho
Liang, Wenfeng
Cheung, Florence Wing Ki
Liu, Wing Keung
Li, Wen Jung
Chen, Shih-Chi
Lee, Gwo-Bin
author_facet Chau, Long-Ho
Liang, Wenfeng
Cheung, Florence Wing Ki
Liu, Wing Keung
Li, Wen Jung
Chen, Shih-Chi
Lee, Gwo-Bin
author_sort Chau, Long-Ho
collection PubMed
description The use of optical dielectrophoresis (ODEP) to manipulate microparticles and biological cells has become increasingly popular due to its tremendous flexibility in providing reconfigurable electrode patterns and flow channels. ODEP enables the parallel and free manipulation of small particles on a photoconductive surface on which light is projected, thus eliminating the need for complex electrode design and fabrication processes. In this paper, we demonstrate that mouse cells comprising melan-a cells, RAW 267.4 macrophage cells, peripheral white blood cells and lymphocytes, can be manipulated in an opto-electrokinetics (OEK) device with appropriate DEP parameters. Our OEK device generates a non-rotating electric field and exerts a localized DEP force on optical electrodes. Hitherto, we are the first group to report that among all the cells investigated, melan-a cells, lymphocytes and white blood cells were found to undergo self-rotation in the device in the presence of a DEP force. The rotational speed of the cells depended on the voltage and frequency applied and the cells' distance from the optical center. We discuss a possible mechanism for explaining this new observation of induced self-rotation based on the physical properties of cells. We believe that this rotation phenomenon can be used to identify cell type and to elucidate the dielectric and physical properties of cells.
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spelling pubmed-35400692013-01-14 Self-Rotation of Cells in an Irrotational AC E-Field in an Opto-Electrokinetics Chip Chau, Long-Ho Liang, Wenfeng Cheung, Florence Wing Ki Liu, Wing Keung Li, Wen Jung Chen, Shih-Chi Lee, Gwo-Bin PLoS One Research Article The use of optical dielectrophoresis (ODEP) to manipulate microparticles and biological cells has become increasingly popular due to its tremendous flexibility in providing reconfigurable electrode patterns and flow channels. ODEP enables the parallel and free manipulation of small particles on a photoconductive surface on which light is projected, thus eliminating the need for complex electrode design and fabrication processes. In this paper, we demonstrate that mouse cells comprising melan-a cells, RAW 267.4 macrophage cells, peripheral white blood cells and lymphocytes, can be manipulated in an opto-electrokinetics (OEK) device with appropriate DEP parameters. Our OEK device generates a non-rotating electric field and exerts a localized DEP force on optical electrodes. Hitherto, we are the first group to report that among all the cells investigated, melan-a cells, lymphocytes and white blood cells were found to undergo self-rotation in the device in the presence of a DEP force. The rotational speed of the cells depended on the voltage and frequency applied and the cells' distance from the optical center. We discuss a possible mechanism for explaining this new observation of induced self-rotation based on the physical properties of cells. We believe that this rotation phenomenon can be used to identify cell type and to elucidate the dielectric and physical properties of cells. Public Library of Science 2013-01-08 /pmc/articles/PMC3540069/ /pubmed/23320067 http://dx.doi.org/10.1371/journal.pone.0051577 Text en © 2013 Chau et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Chau, Long-Ho
Liang, Wenfeng
Cheung, Florence Wing Ki
Liu, Wing Keung
Li, Wen Jung
Chen, Shih-Chi
Lee, Gwo-Bin
Self-Rotation of Cells in an Irrotational AC E-Field in an Opto-Electrokinetics Chip
title Self-Rotation of Cells in an Irrotational AC E-Field in an Opto-Electrokinetics Chip
title_full Self-Rotation of Cells in an Irrotational AC E-Field in an Opto-Electrokinetics Chip
title_fullStr Self-Rotation of Cells in an Irrotational AC E-Field in an Opto-Electrokinetics Chip
title_full_unstemmed Self-Rotation of Cells in an Irrotational AC E-Field in an Opto-Electrokinetics Chip
title_short Self-Rotation of Cells in an Irrotational AC E-Field in an Opto-Electrokinetics Chip
title_sort self-rotation of cells in an irrotational ac e-field in an opto-electrokinetics chip
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3540069/
https://www.ncbi.nlm.nih.gov/pubmed/23320067
http://dx.doi.org/10.1371/journal.pone.0051577
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