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Pulsed Electric Fields Can Create Pores in the Voltage Sensors of Voltage-Gated Ion Channels

Pulsed electric fields are increasingly used in medicine to transiently increase the cell membrane permeability via electroporation to deliver therapeutic molecules into the cell. One type of event that contributes to this increase in membrane permeability is the formation of pores in the membrane l...

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Autores principales: Rems, Lea, Kasimova, Marina A., Testa, Ilaria, Delemotte, Lucie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Biophysical Society 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7335976/
https://www.ncbi.nlm.nih.gov/pubmed/32559411
http://dx.doi.org/10.1016/j.bpj.2020.05.030
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author Rems, Lea
Kasimova, Marina A.
Testa, Ilaria
Delemotte, Lucie
author_facet Rems, Lea
Kasimova, Marina A.
Testa, Ilaria
Delemotte, Lucie
author_sort Rems, Lea
collection PubMed
description Pulsed electric fields are increasingly used in medicine to transiently increase the cell membrane permeability via electroporation to deliver therapeutic molecules into the cell. One type of event that contributes to this increase in membrane permeability is the formation of pores in the membrane lipid bilayer. However, electrophysiological measurements suggest that membrane proteins are affected as well, particularly voltage-gated ion channels (VGICs). The molecular mechanisms by which the electric field could affects these molecules remain unidentified. In this study, we used molecular dynamics simulations to unravel the molecular events that take place in different VGICs when exposing them to electric fields mimicking electroporation conditions. We show that electric fields can induce pores in the voltage-sensor domains (VSDs) of different VGICs and that these pores form more easily in some channels than in others. We demonstrate that poration is more likely in VSDs that are more hydrated and are electrostatically more favorable for the entry of ions. We further show that pores in VSDs can expand into so-called complex pores, which become stabilized by lipid headgroups. Our results suggest that such complex pores are considerably more stable than conventional lipid pores, and their formation can lead to severe unfolding of VSDs from the channel. We anticipate that such VSDs become dysfunctional and unable to respond to changes in transmembrane voltage, which is in agreement with previous electrophysiological measurements showing a decrease in the voltage-dependent transmembrane ionic currents after pulse treatment. Finally, we discuss the possibility of activation of VGICs by submicrosecond-duration pulses. Overall, our study reveals a new, to our knowledge, mechanism of electroporation through membranes containing VGICs.
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spelling pubmed-73359762020-10-10 Pulsed Electric Fields Can Create Pores in the Voltage Sensors of Voltage-Gated Ion Channels Rems, Lea Kasimova, Marina A. Testa, Ilaria Delemotte, Lucie Biophys J Articles Pulsed electric fields are increasingly used in medicine to transiently increase the cell membrane permeability via electroporation to deliver therapeutic molecules into the cell. One type of event that contributes to this increase in membrane permeability is the formation of pores in the membrane lipid bilayer. However, electrophysiological measurements suggest that membrane proteins are affected as well, particularly voltage-gated ion channels (VGICs). The molecular mechanisms by which the electric field could affects these molecules remain unidentified. In this study, we used molecular dynamics simulations to unravel the molecular events that take place in different VGICs when exposing them to electric fields mimicking electroporation conditions. We show that electric fields can induce pores in the voltage-sensor domains (VSDs) of different VGICs and that these pores form more easily in some channels than in others. We demonstrate that poration is more likely in VSDs that are more hydrated and are electrostatically more favorable for the entry of ions. We further show that pores in VSDs can expand into so-called complex pores, which become stabilized by lipid headgroups. Our results suggest that such complex pores are considerably more stable than conventional lipid pores, and their formation can lead to severe unfolding of VSDs from the channel. We anticipate that such VSDs become dysfunctional and unable to respond to changes in transmembrane voltage, which is in agreement with previous electrophysiological measurements showing a decrease in the voltage-dependent transmembrane ionic currents after pulse treatment. Finally, we discuss the possibility of activation of VGICs by submicrosecond-duration pulses. Overall, our study reveals a new, to our knowledge, mechanism of electroporation through membranes containing VGICs. The Biophysical Society 2020-07-07 2020-06-08 /pmc/articles/PMC7335976/ /pubmed/32559411 http://dx.doi.org/10.1016/j.bpj.2020.05.030 Text en © 2020 Biophysical Society. http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Articles
Rems, Lea
Kasimova, Marina A.
Testa, Ilaria
Delemotte, Lucie
Pulsed Electric Fields Can Create Pores in the Voltage Sensors of Voltage-Gated Ion Channels
title Pulsed Electric Fields Can Create Pores in the Voltage Sensors of Voltage-Gated Ion Channels
title_full Pulsed Electric Fields Can Create Pores in the Voltage Sensors of Voltage-Gated Ion Channels
title_fullStr Pulsed Electric Fields Can Create Pores in the Voltage Sensors of Voltage-Gated Ion Channels
title_full_unstemmed Pulsed Electric Fields Can Create Pores in the Voltage Sensors of Voltage-Gated Ion Channels
title_short Pulsed Electric Fields Can Create Pores in the Voltage Sensors of Voltage-Gated Ion Channels
title_sort pulsed electric fields can create pores in the voltage sensors of voltage-gated ion channels
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7335976/
https://www.ncbi.nlm.nih.gov/pubmed/32559411
http://dx.doi.org/10.1016/j.bpj.2020.05.030
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