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Diversity of dynamic voltage patterns in neuronal dendrites revealed by nanopipette electrophysiology

Dendrites and dendritic spines are the essential cellular compartments in neuronal communication, conveying information through transient voltage signals. Our understanding of these compartmentalized voltage dynamics in fine, distal neuronal dendrites remains poor due to the difficulties inherent to...

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Autores principales: Mc Hugh, Jeffrey, Makarchuk, Stanislaw, Mozheiko, Daria, Fernandez-Villegas, Ana, Kaminski Schierle, Gabriele S., Kaminski, Clemens F., Keyser, Ulrich F., Holcman, David, Rouach, Nathalie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10373629/
https://www.ncbi.nlm.nih.gov/pubmed/37455621
http://dx.doi.org/10.1039/d2nr03475a
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author Mc Hugh, Jeffrey
Makarchuk, Stanislaw
Mozheiko, Daria
Fernandez-Villegas, Ana
Kaminski Schierle, Gabriele S.
Kaminski, Clemens F.
Keyser, Ulrich F.
Holcman, David
Rouach, Nathalie
author_facet Mc Hugh, Jeffrey
Makarchuk, Stanislaw
Mozheiko, Daria
Fernandez-Villegas, Ana
Kaminski Schierle, Gabriele S.
Kaminski, Clemens F.
Keyser, Ulrich F.
Holcman, David
Rouach, Nathalie
author_sort Mc Hugh, Jeffrey
collection PubMed
description Dendrites and dendritic spines are the essential cellular compartments in neuronal communication, conveying information through transient voltage signals. Our understanding of these compartmentalized voltage dynamics in fine, distal neuronal dendrites remains poor due to the difficulties inherent to accessing and stably recording from such small, nanoscale cellular compartments for a sustained time. To overcome these challenges, we use nanopipettes that permit long and stable recordings directly from fine neuronal dendrites. We reveal a diversity of voltage dynamics present locally in dendrites, such as spontaneous voltage transients, bursting events and oscillating periods of silence and firing activity, all of which we characterized using segmentation analysis. Remarkably, we find that neuronal dendrites can display spontaneous hyperpolarisation events, and sustain transient hyperpolarised states. The voltage patterns were activity-dependent, with a stronger dependency on synaptic activity than on action potentials. Long-time recordings of fine dendritic protrusions show complex voltage dynamics that may represent a previously unexplored contribution to dendritic computations.
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spelling pubmed-103736292023-07-28 Diversity of dynamic voltage patterns in neuronal dendrites revealed by nanopipette electrophysiology Mc Hugh, Jeffrey Makarchuk, Stanislaw Mozheiko, Daria Fernandez-Villegas, Ana Kaminski Schierle, Gabriele S. Kaminski, Clemens F. Keyser, Ulrich F. Holcman, David Rouach, Nathalie Nanoscale Chemistry Dendrites and dendritic spines are the essential cellular compartments in neuronal communication, conveying information through transient voltage signals. Our understanding of these compartmentalized voltage dynamics in fine, distal neuronal dendrites remains poor due to the difficulties inherent to accessing and stably recording from such small, nanoscale cellular compartments for a sustained time. To overcome these challenges, we use nanopipettes that permit long and stable recordings directly from fine neuronal dendrites. We reveal a diversity of voltage dynamics present locally in dendrites, such as spontaneous voltage transients, bursting events and oscillating periods of silence and firing activity, all of which we characterized using segmentation analysis. Remarkably, we find that neuronal dendrites can display spontaneous hyperpolarisation events, and sustain transient hyperpolarised states. The voltage patterns were activity-dependent, with a stronger dependency on synaptic activity than on action potentials. Long-time recordings of fine dendritic protrusions show complex voltage dynamics that may represent a previously unexplored contribution to dendritic computations. The Royal Society of Chemistry 2023-05-11 /pmc/articles/PMC10373629/ /pubmed/37455621 http://dx.doi.org/10.1039/d2nr03475a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Mc Hugh, Jeffrey
Makarchuk, Stanislaw
Mozheiko, Daria
Fernandez-Villegas, Ana
Kaminski Schierle, Gabriele S.
Kaminski, Clemens F.
Keyser, Ulrich F.
Holcman, David
Rouach, Nathalie
Diversity of dynamic voltage patterns in neuronal dendrites revealed by nanopipette electrophysiology
title Diversity of dynamic voltage patterns in neuronal dendrites revealed by nanopipette electrophysiology
title_full Diversity of dynamic voltage patterns in neuronal dendrites revealed by nanopipette electrophysiology
title_fullStr Diversity of dynamic voltage patterns in neuronal dendrites revealed by nanopipette electrophysiology
title_full_unstemmed Diversity of dynamic voltage patterns in neuronal dendrites revealed by nanopipette electrophysiology
title_short Diversity of dynamic voltage patterns in neuronal dendrites revealed by nanopipette electrophysiology
title_sort diversity of dynamic voltage patterns in neuronal dendrites revealed by nanopipette electrophysiology
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10373629/
https://www.ncbi.nlm.nih.gov/pubmed/37455621
http://dx.doi.org/10.1039/d2nr03475a
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