Clusters of cooperative ion channels enable a membrane-potential-based mechanism for short-term memory
Across biological systems, cooperativity between proteins enables fast actions, supra-linear responses, and long-lasting molecular switches. In the nervous system, however, the function of cooperative interactions between voltage-dependent ionic channels remains largely unknown. Based on mathematica...
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doaj-494f24ef2ada417994b0909ee5adffc12021-05-05T20:48:20ZengeLife Sciences Publications LtdeLife2050-084X2020-02-01910.7554/eLife.49974Clusters of cooperative ion channels enable a membrane-potential-based mechanism for short-term memoryPaul Pfeiffer0https://orcid.org/0000-0001-5324-5886Alexei V Egorov1https://orcid.org/0000-0003-4899-8407Franziska Lorenz2Jan-Hendrik Schleimer3Andreas Draguhn4Susanne Schreiber5https://orcid.org/0000-0003-3913-5650Institute for Theoretical Biology, Humboldt-Universität zu Berlin, Berlin, Germany; Bernstein Center for Computational Neuroscience, Humboldt-Universität zu Berlin, Berlin, GermanyInstitute of Physiology and Pathophysiology, Heidelberg University, Heidelberg, GermanyInstitute of Physiology and Pathophysiology, Heidelberg University, Heidelberg, GermanyInstitute for Theoretical Biology, Humboldt-Universität zu Berlin, Berlin, Germany; Bernstein Center for Computational Neuroscience, Humboldt-Universität zu Berlin, Berlin, GermanyInstitute of Physiology and Pathophysiology, Heidelberg University, Heidelberg, GermanyInstitute for Theoretical Biology, Humboldt-Universität zu Berlin, Berlin, Germany; Bernstein Center for Computational Neuroscience, Humboldt-Universität zu Berlin, Berlin, GermanyAcross biological systems, cooperativity between proteins enables fast actions, supra-linear responses, and long-lasting molecular switches. In the nervous system, however, the function of cooperative interactions between voltage-dependent ionic channels remains largely unknown. Based on mathematical modeling, we here demonstrate that clusters of strongly cooperative ion channels can plausibly form bistable conductances. Consequently, clusters are permanently switched on by neuronal spiking, switched off by strong hyperpolarization, and remain in their state for seconds after stimulation. The resulting short-term memory of the membrane potential allows to generate persistent firing when clusters of cooperative channels are present together with non-cooperative spike-generating conductances. Dynamic clamp experiments in rodent cortical neurons confirm that channel cooperativity can robustly induce graded persistent activity – a single-cell based, multistable mnemonic firing mode experimentally observed in several brain regions. We therefore propose that ion channel cooperativity constitutes an efficient cell-intrinsic implementation for short-term memories at the voltage level.https://elifesciences.org/articles/49974cooperative ion channelsdynamic clampcellular memory |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Paul Pfeiffer Alexei V Egorov Franziska Lorenz Jan-Hendrik Schleimer Andreas Draguhn Susanne Schreiber |
spellingShingle |
Paul Pfeiffer Alexei V Egorov Franziska Lorenz Jan-Hendrik Schleimer Andreas Draguhn Susanne Schreiber Clusters of cooperative ion channels enable a membrane-potential-based mechanism for short-term memory eLife cooperative ion channels dynamic clamp cellular memory |
author_facet |
Paul Pfeiffer Alexei V Egorov Franziska Lorenz Jan-Hendrik Schleimer Andreas Draguhn Susanne Schreiber |
author_sort |
Paul Pfeiffer |
title |
Clusters of cooperative ion channels enable a membrane-potential-based mechanism for short-term memory |
title_short |
Clusters of cooperative ion channels enable a membrane-potential-based mechanism for short-term memory |
title_full |
Clusters of cooperative ion channels enable a membrane-potential-based mechanism for short-term memory |
title_fullStr |
Clusters of cooperative ion channels enable a membrane-potential-based mechanism for short-term memory |
title_full_unstemmed |
Clusters of cooperative ion channels enable a membrane-potential-based mechanism for short-term memory |
title_sort |
clusters of cooperative ion channels enable a membrane-potential-based mechanism for short-term memory |
publisher |
eLife Sciences Publications Ltd |
series |
eLife |
issn |
2050-084X |
publishDate |
2020-02-01 |
description |
Across biological systems, cooperativity between proteins enables fast actions, supra-linear responses, and long-lasting molecular switches. In the nervous system, however, the function of cooperative interactions between voltage-dependent ionic channels remains largely unknown. Based on mathematical modeling, we here demonstrate that clusters of strongly cooperative ion channels can plausibly form bistable conductances. Consequently, clusters are permanently switched on by neuronal spiking, switched off by strong hyperpolarization, and remain in their state for seconds after stimulation. The resulting short-term memory of the membrane potential allows to generate persistent firing when clusters of cooperative channels are present together with non-cooperative spike-generating conductances. Dynamic clamp experiments in rodent cortical neurons confirm that channel cooperativity can robustly induce graded persistent activity – a single-cell based, multistable mnemonic firing mode experimentally observed in several brain regions. We therefore propose that ion channel cooperativity constitutes an efficient cell-intrinsic implementation for short-term memories at the voltage level. |
topic |
cooperative ion channels dynamic clamp cellular memory |
url |
https://elifesciences.org/articles/49974 |
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