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Cell-specific STORM superresolution imaging reveals nanoscale organization of cannabinoid signaling

A major challenge in neuroscience is to determine the nanoscale position and quantity of signaling molecules in a cell-type-, and subcellular compartment-specific manner. We therefore developed a novel approach combining cell-specific physiological and anatomical characterization with superresolutio...

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Autores principales: Dudok, Barna, Barna, László, Ledri, Marco, Szabó, Szilárd I., Szabadits, Eszter, Pintér, Balázs, Woodhams, Stephen G., Henstridge, Christopher M., Balla, Gyula Y., Nyilas, Rita, Varga, Csaba, Lee, Sang-Hun, Matolcsi, Máté, Cervenak, Judit, Kacskovics, Imre, Watanabe, Masahiko, Sagheddu, Claudia, Melis, Miriam, Pistis, Marco, Soltesz, Ivan, Katona, István
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4281300/
https://www.ncbi.nlm.nih.gov/pubmed/25485758
http://dx.doi.org/10.1038/nn.3892
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author Dudok, Barna
Barna, László
Ledri, Marco
Szabó, Szilárd I.
Szabadits, Eszter
Pintér, Balázs
Woodhams, Stephen G.
Henstridge, Christopher M.
Balla, Gyula Y.
Nyilas, Rita
Varga, Csaba
Lee, Sang-Hun
Matolcsi, Máté
Cervenak, Judit
Kacskovics, Imre
Watanabe, Masahiko
Sagheddu, Claudia
Melis, Miriam
Pistis, Marco
Soltesz, Ivan
Katona, István
author_facet Dudok, Barna
Barna, László
Ledri, Marco
Szabó, Szilárd I.
Szabadits, Eszter
Pintér, Balázs
Woodhams, Stephen G.
Henstridge, Christopher M.
Balla, Gyula Y.
Nyilas, Rita
Varga, Csaba
Lee, Sang-Hun
Matolcsi, Máté
Cervenak, Judit
Kacskovics, Imre
Watanabe, Masahiko
Sagheddu, Claudia
Melis, Miriam
Pistis, Marco
Soltesz, Ivan
Katona, István
author_sort Dudok, Barna
collection PubMed
description A major challenge in neuroscience is to determine the nanoscale position and quantity of signaling molecules in a cell-type-, and subcellular compartment-specific manner. We therefore developed a novel approach combining cell-specific physiological and anatomical characterization with superresolution imaging, and studied the molecular and structural parameters shaping the physiological properties of synaptic endocannabinoid signaling in the mouse hippocampus. We found that axon terminals of perisomatically-projecting GABAergic interneurons possess increased CB(1) receptor number, active-zone complexity, and receptor/effector ratio compared to dendritically-projecting interneurons, in agreement with higher efficiency of cannabinoid signaling at somatic versus dendritic synapses. Furthermore, chronic Δ(9)-tetrahydrocannabinol administration, which reduces cannabinoid efficacy on GABA release, evoked dramatic CB(1)-downregulation in a dose-dependent manner. Full receptor recovery required several weeks after cessation of Δ(9)-tetrahydrocannabinol treatment. These findings demonstrate that cell-type-specific nanoscale analysis of endogenous protein distribution is possible in brain circuits, and identify novel molecular properties controlling endocannabinoid signaling and cannabis-induced cognitive dysfunction.
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spelling pubmed-42813002015-07-01 Cell-specific STORM superresolution imaging reveals nanoscale organization of cannabinoid signaling Dudok, Barna Barna, László Ledri, Marco Szabó, Szilárd I. Szabadits, Eszter Pintér, Balázs Woodhams, Stephen G. Henstridge, Christopher M. Balla, Gyula Y. Nyilas, Rita Varga, Csaba Lee, Sang-Hun Matolcsi, Máté Cervenak, Judit Kacskovics, Imre Watanabe, Masahiko Sagheddu, Claudia Melis, Miriam Pistis, Marco Soltesz, Ivan Katona, István Nat Neurosci Article A major challenge in neuroscience is to determine the nanoscale position and quantity of signaling molecules in a cell-type-, and subcellular compartment-specific manner. We therefore developed a novel approach combining cell-specific physiological and anatomical characterization with superresolution imaging, and studied the molecular and structural parameters shaping the physiological properties of synaptic endocannabinoid signaling in the mouse hippocampus. We found that axon terminals of perisomatically-projecting GABAergic interneurons possess increased CB(1) receptor number, active-zone complexity, and receptor/effector ratio compared to dendritically-projecting interneurons, in agreement with higher efficiency of cannabinoid signaling at somatic versus dendritic synapses. Furthermore, chronic Δ(9)-tetrahydrocannabinol administration, which reduces cannabinoid efficacy on GABA release, evoked dramatic CB(1)-downregulation in a dose-dependent manner. Full receptor recovery required several weeks after cessation of Δ(9)-tetrahydrocannabinol treatment. These findings demonstrate that cell-type-specific nanoscale analysis of endogenous protein distribution is possible in brain circuits, and identify novel molecular properties controlling endocannabinoid signaling and cannabis-induced cognitive dysfunction. 2014-12-08 2015-01 /pmc/articles/PMC4281300/ /pubmed/25485758 http://dx.doi.org/10.1038/nn.3892 Text en http://www.nature.com/authors/editorial_policies/license.html#terms Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Dudok, Barna
Barna, László
Ledri, Marco
Szabó, Szilárd I.
Szabadits, Eszter
Pintér, Balázs
Woodhams, Stephen G.
Henstridge, Christopher M.
Balla, Gyula Y.
Nyilas, Rita
Varga, Csaba
Lee, Sang-Hun
Matolcsi, Máté
Cervenak, Judit
Kacskovics, Imre
Watanabe, Masahiko
Sagheddu, Claudia
Melis, Miriam
Pistis, Marco
Soltesz, Ivan
Katona, István
Cell-specific STORM superresolution imaging reveals nanoscale organization of cannabinoid signaling
title Cell-specific STORM superresolution imaging reveals nanoscale organization of cannabinoid signaling
title_full Cell-specific STORM superresolution imaging reveals nanoscale organization of cannabinoid signaling
title_fullStr Cell-specific STORM superresolution imaging reveals nanoscale organization of cannabinoid signaling
title_full_unstemmed Cell-specific STORM superresolution imaging reveals nanoscale organization of cannabinoid signaling
title_short Cell-specific STORM superresolution imaging reveals nanoscale organization of cannabinoid signaling
title_sort cell-specific storm superresolution imaging reveals nanoscale organization of cannabinoid signaling
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4281300/
https://www.ncbi.nlm.nih.gov/pubmed/25485758
http://dx.doi.org/10.1038/nn.3892
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