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The Role of Ongoing Dendritic Oscillations in Single-Neuron Dynamics

The dendritic tree contributes significantly to the elementary computations a neuron performs while converting its synaptic inputs into action potential output. Traditionally, these computations have been characterized as both temporally and spatially localized. Under this localist account, neurons...

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Autores principales: Remme, Michiel W. H., Lengyel, Máté, Gutkin, Boris S.
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2725317/
https://www.ncbi.nlm.nih.gov/pubmed/19730677
http://dx.doi.org/10.1371/journal.pcbi.1000493
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author Remme, Michiel W. H.
Lengyel, Máté
Gutkin, Boris S.
author_facet Remme, Michiel W. H.
Lengyel, Máté
Gutkin, Boris S.
author_sort Remme, Michiel W. H.
collection PubMed
description The dendritic tree contributes significantly to the elementary computations a neuron performs while converting its synaptic inputs into action potential output. Traditionally, these computations have been characterized as both temporally and spatially localized. Under this localist account, neurons compute near-instantaneous mappings from their current input to their current output, brought about by somatic summation of dendritic contributions that are generated in functionally segregated compartments. However, recent evidence about the presence of oscillations in dendrites suggests a qualitatively different mode of operation: the instantaneous phase of such oscillations can depend on a long history of inputs, and under appropriate conditions, even dendritic oscillators that are remote may interact through synchronization. Here, we develop a mathematical framework to analyze the interactions of local dendritic oscillations and the way these interactions influence single cell computations. Combining weakly coupled oscillator methods with cable theoretic arguments, we derive phase-locking states for multiple oscillating dendritic compartments. We characterize how the phase-locking properties depend on key parameters of the oscillating dendrite: the electrotonic properties of the (active) dendritic segment, and the intrinsic properties of the dendritic oscillators. As a direct consequence, we show how input to the dendrites can modulate phase-locking behavior and hence global dendritic coherence. In turn, dendritic coherence is able to gate the integration and propagation of synaptic signals to the soma, ultimately leading to an effective control of somatic spike generation. Our results suggest that dendritic oscillations enable the dendritic tree to operate on more global temporal and spatial scales than previously thought; notably that local dendritic activity may be a mechanism for generating on-going whole-cell voltage oscillations.
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spelling pubmed-27253172009-09-04 The Role of Ongoing Dendritic Oscillations in Single-Neuron Dynamics Remme, Michiel W. H. Lengyel, Máté Gutkin, Boris S. PLoS Comput Biol Research Article The dendritic tree contributes significantly to the elementary computations a neuron performs while converting its synaptic inputs into action potential output. Traditionally, these computations have been characterized as both temporally and spatially localized. Under this localist account, neurons compute near-instantaneous mappings from their current input to their current output, brought about by somatic summation of dendritic contributions that are generated in functionally segregated compartments. However, recent evidence about the presence of oscillations in dendrites suggests a qualitatively different mode of operation: the instantaneous phase of such oscillations can depend on a long history of inputs, and under appropriate conditions, even dendritic oscillators that are remote may interact through synchronization. Here, we develop a mathematical framework to analyze the interactions of local dendritic oscillations and the way these interactions influence single cell computations. Combining weakly coupled oscillator methods with cable theoretic arguments, we derive phase-locking states for multiple oscillating dendritic compartments. We characterize how the phase-locking properties depend on key parameters of the oscillating dendrite: the electrotonic properties of the (active) dendritic segment, and the intrinsic properties of the dendritic oscillators. As a direct consequence, we show how input to the dendrites can modulate phase-locking behavior and hence global dendritic coherence. In turn, dendritic coherence is able to gate the integration and propagation of synaptic signals to the soma, ultimately leading to an effective control of somatic spike generation. Our results suggest that dendritic oscillations enable the dendritic tree to operate on more global temporal and spatial scales than previously thought; notably that local dendritic activity may be a mechanism for generating on-going whole-cell voltage oscillations. Public Library of Science 2009-09-04 /pmc/articles/PMC2725317/ /pubmed/19730677 http://dx.doi.org/10.1371/journal.pcbi.1000493 Text en Remme et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Remme, Michiel W. H.
Lengyel, Máté
Gutkin, Boris S.
The Role of Ongoing Dendritic Oscillations in Single-Neuron Dynamics
title The Role of Ongoing Dendritic Oscillations in Single-Neuron Dynamics
title_full The Role of Ongoing Dendritic Oscillations in Single-Neuron Dynamics
title_fullStr The Role of Ongoing Dendritic Oscillations in Single-Neuron Dynamics
title_full_unstemmed The Role of Ongoing Dendritic Oscillations in Single-Neuron Dynamics
title_short The Role of Ongoing Dendritic Oscillations in Single-Neuron Dynamics
title_sort role of ongoing dendritic oscillations in single-neuron dynamics
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2725317/
https://www.ncbi.nlm.nih.gov/pubmed/19730677
http://dx.doi.org/10.1371/journal.pcbi.1000493
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