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Cortical waves mediate the cellular response to electric fields

Electrotaxis, the directional migration of cells in a constant electric field, is important in regeneration, development, and wound healing. Electrotaxis has a slower response and a smaller dynamic range than guidance by other cues, suggesting that the mechanism of electrotaxis shares both similarit...

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Autores principales: Yang, Qixin, Miao, Yuchuan, Campanello, Leonard J, Hourwitz, Matt J, Abubaker-Sharif, Bedri, Bull, Abby L, Devreotes, Peter N, Fourkas, John T, Losert, Wolfgang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8942472/
https://www.ncbi.nlm.nih.gov/pubmed/35318938
http://dx.doi.org/10.7554/eLife.73198
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author Yang, Qixin
Miao, Yuchuan
Campanello, Leonard J
Hourwitz, Matt J
Abubaker-Sharif, Bedri
Bull, Abby L
Devreotes, Peter N
Fourkas, John T
Losert, Wolfgang
author_facet Yang, Qixin
Miao, Yuchuan
Campanello, Leonard J
Hourwitz, Matt J
Abubaker-Sharif, Bedri
Bull, Abby L
Devreotes, Peter N
Fourkas, John T
Losert, Wolfgang
author_sort Yang, Qixin
collection PubMed
description Electrotaxis, the directional migration of cells in a constant electric field, is important in regeneration, development, and wound healing. Electrotaxis has a slower response and a smaller dynamic range than guidance by other cues, suggesting that the mechanism of electrotaxis shares both similarities and differences with chemical-gradient-sensing pathways. We examine a mechanism centered on the excitable system consisting of cortical waves of biochemical signals coupled to cytoskeletal reorganization, which has been implicated in random cell motility. We use electro-fused giant Dictyostelium discoideum cells to decouple waves from cell motion and employ nanotopographic surfaces to limit wave dimensions and lifetimes. We demonstrate that wave propagation in these cells is guided by electric fields. The wave area and lifetime gradually increase in the first 10 min after an electric field is turned on, leading to more abundant and wider protrusions in the cell region nearest the cathode. The wave directions display ‘U-turn’ behavior upon field reversal, and this switch occurs more quickly on nanotopography. Our results suggest that electric fields guide cells by controlling waves of signal transduction and cytoskeletal activity, which underlie cellular protrusions. Whereas surface receptor occupancy triggers both rapid activation and slower polarization of signaling pathways, electric fields appear to act primarily on polarization, explaining why cells respond to electric fields more slowly than to other guidance cues.
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spelling pubmed-89424722022-03-24 Cortical waves mediate the cellular response to electric fields Yang, Qixin Miao, Yuchuan Campanello, Leonard J Hourwitz, Matt J Abubaker-Sharif, Bedri Bull, Abby L Devreotes, Peter N Fourkas, John T Losert, Wolfgang eLife Cell Biology Electrotaxis, the directional migration of cells in a constant electric field, is important in regeneration, development, and wound healing. Electrotaxis has a slower response and a smaller dynamic range than guidance by other cues, suggesting that the mechanism of electrotaxis shares both similarities and differences with chemical-gradient-sensing pathways. We examine a mechanism centered on the excitable system consisting of cortical waves of biochemical signals coupled to cytoskeletal reorganization, which has been implicated in random cell motility. We use electro-fused giant Dictyostelium discoideum cells to decouple waves from cell motion and employ nanotopographic surfaces to limit wave dimensions and lifetimes. We demonstrate that wave propagation in these cells is guided by electric fields. The wave area and lifetime gradually increase in the first 10 min after an electric field is turned on, leading to more abundant and wider protrusions in the cell region nearest the cathode. The wave directions display ‘U-turn’ behavior upon field reversal, and this switch occurs more quickly on nanotopography. Our results suggest that electric fields guide cells by controlling waves of signal transduction and cytoskeletal activity, which underlie cellular protrusions. Whereas surface receptor occupancy triggers both rapid activation and slower polarization of signaling pathways, electric fields appear to act primarily on polarization, explaining why cells respond to electric fields more slowly than to other guidance cues. eLife Sciences Publications, Ltd 2022-03-23 /pmc/articles/PMC8942472/ /pubmed/35318938 http://dx.doi.org/10.7554/eLife.73198 Text en © 2022, Yang et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Cell Biology
Yang, Qixin
Miao, Yuchuan
Campanello, Leonard J
Hourwitz, Matt J
Abubaker-Sharif, Bedri
Bull, Abby L
Devreotes, Peter N
Fourkas, John T
Losert, Wolfgang
Cortical waves mediate the cellular response to electric fields
title Cortical waves mediate the cellular response to electric fields
title_full Cortical waves mediate the cellular response to electric fields
title_fullStr Cortical waves mediate the cellular response to electric fields
title_full_unstemmed Cortical waves mediate the cellular response to electric fields
title_short Cortical waves mediate the cellular response to electric fields
title_sort cortical waves mediate the cellular response to electric fields
topic Cell Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8942472/
https://www.ncbi.nlm.nih.gov/pubmed/35318938
http://dx.doi.org/10.7554/eLife.73198
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