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Active Dendrites and Local Field Potentials: Biophysical Mechanisms and Computational Explorations

Neurons and glial cells are endowed with membranes that express a rich repertoire of ion channels, transporters, and receptors. The constant flux of ions across the neuronal and glial membranes results in voltage fluctuations that can be recorded from the extracellular matrix. The high frequency com...

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Autores principales: Sinha, Manisha, Narayanan, Rishikesh
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7612676/
https://www.ncbi.nlm.nih.gov/pubmed/34506834
http://dx.doi.org/10.1016/j.neuroscience.2021.08.035
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author Sinha, Manisha
Narayanan, Rishikesh
author_facet Sinha, Manisha
Narayanan, Rishikesh
author_sort Sinha, Manisha
collection PubMed
description Neurons and glial cells are endowed with membranes that express a rich repertoire of ion channels, transporters, and receptors. The constant flux of ions across the neuronal and glial membranes results in voltage fluctuations that can be recorded from the extracellular matrix. The high frequency components of this voltage signal contain information about the spiking activity, reflecting the output from the neurons surrounding the recording location. The low frequency components of the signal, referred to as the local field potential (LFP), have been traditionally thought to provide information about the synaptic inputs that impinge on the large dendritic trees of various neurons. In this review, we discuss recent computational and experimental studies pointing to a critical role of several active dendritic mechanisms that can influence the genesis and the location-dependent spectro-temporal dynamics of LFPs, spanning different brain regions. We strongly emphasize the need to account for the several fast and slow dendritic events and associated active mechanisms — including gradients in their expression profiles, inter- and intra-cellular spatio-temporal interactions spanning neurons and glia, heterogeneities and degeneracy across scales, neuromodulatory influences, and activitydependent plasticity — towards gaining important insights about the origins of LFP under different behavioral states in health and disease. We provide simple but essential guidelines on how to model LFPs taking into account these dendritic mechanisms, with detailed methodology on how to account for various heterogeneities and electro-physiological properties of neurons and synapses while studying LFPs.
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spelling pubmed-76126762022-05-01 Active Dendrites and Local Field Potentials: Biophysical Mechanisms and Computational Explorations Sinha, Manisha Narayanan, Rishikesh Neuroscience Article Neurons and glial cells are endowed with membranes that express a rich repertoire of ion channels, transporters, and receptors. The constant flux of ions across the neuronal and glial membranes results in voltage fluctuations that can be recorded from the extracellular matrix. The high frequency components of this voltage signal contain information about the spiking activity, reflecting the output from the neurons surrounding the recording location. The low frequency components of the signal, referred to as the local field potential (LFP), have been traditionally thought to provide information about the synaptic inputs that impinge on the large dendritic trees of various neurons. In this review, we discuss recent computational and experimental studies pointing to a critical role of several active dendritic mechanisms that can influence the genesis and the location-dependent spectro-temporal dynamics of LFPs, spanning different brain regions. We strongly emphasize the need to account for the several fast and slow dendritic events and associated active mechanisms — including gradients in their expression profiles, inter- and intra-cellular spatio-temporal interactions spanning neurons and glia, heterogeneities and degeneracy across scales, neuromodulatory influences, and activitydependent plasticity — towards gaining important insights about the origins of LFP under different behavioral states in health and disease. We provide simple but essential guidelines on how to model LFPs taking into account these dendritic mechanisms, with detailed methodology on how to account for various heterogeneities and electro-physiological properties of neurons and synapses while studying LFPs. 2022-05-01 2021-09-08 /pmc/articles/PMC7612676/ /pubmed/34506834 http://dx.doi.org/10.1016/j.neuroscience.2021.08.035 Text en https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Sinha, Manisha
Narayanan, Rishikesh
Active Dendrites and Local Field Potentials: Biophysical Mechanisms and Computational Explorations
title Active Dendrites and Local Field Potentials: Biophysical Mechanisms and Computational Explorations
title_full Active Dendrites and Local Field Potentials: Biophysical Mechanisms and Computational Explorations
title_fullStr Active Dendrites and Local Field Potentials: Biophysical Mechanisms and Computational Explorations
title_full_unstemmed Active Dendrites and Local Field Potentials: Biophysical Mechanisms and Computational Explorations
title_short Active Dendrites and Local Field Potentials: Biophysical Mechanisms and Computational Explorations
title_sort active dendrites and local field potentials: biophysical mechanisms and computational explorations
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7612676/
https://www.ncbi.nlm.nih.gov/pubmed/34506834
http://dx.doi.org/10.1016/j.neuroscience.2021.08.035
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