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Light Stimulation of Neurons on Organic Photocapacitors Induces Action Potentials with Millisecond Precision

Nongenetic optical control of neurons is a powerful technique to study and manipulate the function of the nervous system. This research has benchmarked the performance of organic electrolytic photocapacitor (OEPC) optoelectronic stimulators at the level of single mammalian cells: human embryonic kid...

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Autores principales: Schmidt, Tony, Jakešová, Marie, Đerek, Vedran, Kornmueller, Karin, Tiapko, Oleksandra, Bischof, Helmut, Burgstaller, Sandra, Waldherr, Linda, Nowakowska, Marta, Baumgartner, Christian, Üçal, Muammer, Leitinger, Gerd, Scheruebel, Susanne, Patz, Silke, Malli, Roland, Głowacki, Eric Daniel, Rienmüller, Theresa, Schindl, Rainer
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10097427/
https://www.ncbi.nlm.nih.gov/pubmed/37064760
http://dx.doi.org/10.1002/admt.202101159
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author Schmidt, Tony
Jakešová, Marie
Đerek, Vedran
Kornmueller, Karin
Tiapko, Oleksandra
Bischof, Helmut
Burgstaller, Sandra
Waldherr, Linda
Nowakowska, Marta
Baumgartner, Christian
Üçal, Muammer
Leitinger, Gerd
Scheruebel, Susanne
Patz, Silke
Malli, Roland
Głowacki, Eric Daniel
Rienmüller, Theresa
Schindl, Rainer
author_facet Schmidt, Tony
Jakešová, Marie
Đerek, Vedran
Kornmueller, Karin
Tiapko, Oleksandra
Bischof, Helmut
Burgstaller, Sandra
Waldherr, Linda
Nowakowska, Marta
Baumgartner, Christian
Üçal, Muammer
Leitinger, Gerd
Scheruebel, Susanne
Patz, Silke
Malli, Roland
Głowacki, Eric Daniel
Rienmüller, Theresa
Schindl, Rainer
author_sort Schmidt, Tony
collection PubMed
description Nongenetic optical control of neurons is a powerful technique to study and manipulate the function of the nervous system. This research has benchmarked the performance of organic electrolytic photocapacitor (OEPC) optoelectronic stimulators at the level of single mammalian cells: human embryonic kidney (HEK) cells with heterologously expressed voltage‐gated K(+) channels and hippocampal primary neurons. OEPCs act as extracellular stimulation electrodes driven by deep red light. The electrophysiological recordings show that millisecond light stimulation of OEPC shifts conductance‐voltage plots of voltage‐gated K(+) channels by ≈30 mV. Models are described both for understanding the experimental findings at the level of K(+) channel kinetics in HEK cells, as well as elucidating interpretation of membrane electrophysiology obtained during stimulation with an electrically floating extracellular photoelectrode. A time‐dependent increase in voltage‐gated channel conductivity in response to OEPC stimulation is demonstrated. These findings are then carried on to cultured primary hippocampal neurons. It is found that millisecond time‐scale optical stimuli trigger repetitive action potentials in these neurons. The findings demonstrate that OEPC devices enable the manipulation of neuronal signaling activities with millisecond precision. OEPCs can therefore be integrated into novel in vitro electrophysiology protocols, and the findings can inspire in vivo applications.
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spelling pubmed-100974272023-04-13 Light Stimulation of Neurons on Organic Photocapacitors Induces Action Potentials with Millisecond Precision Schmidt, Tony Jakešová, Marie Đerek, Vedran Kornmueller, Karin Tiapko, Oleksandra Bischof, Helmut Burgstaller, Sandra Waldherr, Linda Nowakowska, Marta Baumgartner, Christian Üçal, Muammer Leitinger, Gerd Scheruebel, Susanne Patz, Silke Malli, Roland Głowacki, Eric Daniel Rienmüller, Theresa Schindl, Rainer Adv Mater Technol Research Articles Nongenetic optical control of neurons is a powerful technique to study and manipulate the function of the nervous system. This research has benchmarked the performance of organic electrolytic photocapacitor (OEPC) optoelectronic stimulators at the level of single mammalian cells: human embryonic kidney (HEK) cells with heterologously expressed voltage‐gated K(+) channels and hippocampal primary neurons. OEPCs act as extracellular stimulation electrodes driven by deep red light. The electrophysiological recordings show that millisecond light stimulation of OEPC shifts conductance‐voltage plots of voltage‐gated K(+) channels by ≈30 mV. Models are described both for understanding the experimental findings at the level of K(+) channel kinetics in HEK cells, as well as elucidating interpretation of membrane electrophysiology obtained during stimulation with an electrically floating extracellular photoelectrode. A time‐dependent increase in voltage‐gated channel conductivity in response to OEPC stimulation is demonstrated. These findings are then carried on to cultured primary hippocampal neurons. It is found that millisecond time‐scale optical stimuli trigger repetitive action potentials in these neurons. The findings demonstrate that OEPC devices enable the manipulation of neuronal signaling activities with millisecond precision. OEPCs can therefore be integrated into novel in vitro electrophysiology protocols, and the findings can inspire in vivo applications. John Wiley and Sons Inc. 2022-03-18 2022-09 /pmc/articles/PMC10097427/ /pubmed/37064760 http://dx.doi.org/10.1002/admt.202101159 Text en © 2022 The Authors. Advanced Materials Technologies published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Schmidt, Tony
Jakešová, Marie
Đerek, Vedran
Kornmueller, Karin
Tiapko, Oleksandra
Bischof, Helmut
Burgstaller, Sandra
Waldherr, Linda
Nowakowska, Marta
Baumgartner, Christian
Üçal, Muammer
Leitinger, Gerd
Scheruebel, Susanne
Patz, Silke
Malli, Roland
Głowacki, Eric Daniel
Rienmüller, Theresa
Schindl, Rainer
Light Stimulation of Neurons on Organic Photocapacitors Induces Action Potentials with Millisecond Precision
title Light Stimulation of Neurons on Organic Photocapacitors Induces Action Potentials with Millisecond Precision
title_full Light Stimulation of Neurons on Organic Photocapacitors Induces Action Potentials with Millisecond Precision
title_fullStr Light Stimulation of Neurons on Organic Photocapacitors Induces Action Potentials with Millisecond Precision
title_full_unstemmed Light Stimulation of Neurons on Organic Photocapacitors Induces Action Potentials with Millisecond Precision
title_short Light Stimulation of Neurons on Organic Photocapacitors Induces Action Potentials with Millisecond Precision
title_sort light stimulation of neurons on organic photocapacitors induces action potentials with millisecond precision
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10097427/
https://www.ncbi.nlm.nih.gov/pubmed/37064760
http://dx.doi.org/10.1002/admt.202101159
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