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Synchronous Infra-Slow Oscillations Organize Ensembles of Accessory Olfactory Bulb Projection Neurons into Distinct Microcircuits

The accessory olfactory system controls social and sexual behavior. In the mouse accessory olfactory bulb, the first central stage of information processing along the accessory olfactory pathway, projection neurons (mitral cells) display infra-slow oscillatory discharge with remarkable periodicity....

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Autores principales: Tsitoura, Chryssanthi, Malinowski, Sebastian T., Mohrhardt, Julia, Degen, Rudolf, DiBenedictis, Brett T., Gao, Yuan, Watznauer, Katja, Gerhold, Kira, Nagel, Maximilian, Weber, Monika, Rothermel, Markus, Hanganu-Opatz, Ileana L., Ben-Shaul, Yoram, Davison, Ian G., Spehr, Marc
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Society for Neuroscience 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7244196/
https://www.ncbi.nlm.nih.gov/pubmed/32312886
http://dx.doi.org/10.1523/JNEUROSCI.2925-19.2020
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author Tsitoura, Chryssanthi
Malinowski, Sebastian T.
Mohrhardt, Julia
Degen, Rudolf
DiBenedictis, Brett T.
Gao, Yuan
Watznauer, Katja
Gerhold, Kira
Nagel, Maximilian
Weber, Monika
Rothermel, Markus
Hanganu-Opatz, Ileana L.
Ben-Shaul, Yoram
Davison, Ian G.
Spehr, Marc
author_facet Tsitoura, Chryssanthi
Malinowski, Sebastian T.
Mohrhardt, Julia
Degen, Rudolf
DiBenedictis, Brett T.
Gao, Yuan
Watznauer, Katja
Gerhold, Kira
Nagel, Maximilian
Weber, Monika
Rothermel, Markus
Hanganu-Opatz, Ileana L.
Ben-Shaul, Yoram
Davison, Ian G.
Spehr, Marc
author_sort Tsitoura, Chryssanthi
collection PubMed
description The accessory olfactory system controls social and sexual behavior. In the mouse accessory olfactory bulb, the first central stage of information processing along the accessory olfactory pathway, projection neurons (mitral cells) display infra-slow oscillatory discharge with remarkable periodicity. The physiological mechanisms that underlie this default output state, however, remain controversial. Moreover, whether such rhythmic infra-slow activity patterns exist in awake behaving mice and whether such activity reflects the functional organization of the accessory olfactory bulb circuitry remain unclear. Here, we hypothesize that mitral cell ensembles form synchronized microcircuits that subdivide the accessory olfactory bulb into segregated functional clusters. We use a miniature microscope to image the Ca(2+) dynamics within the apical dendritic compartments of large mitral cell ensembles in vivo. We show that infra-slow periodic patterns of concerted neural activity, indeed, reflect the idle state of accessory olfactory bulb output in awake male and female mice. Ca(2+) activity profiles are distinct and glomerulus-specific. Confocal time-lapse imaging in acute slices reveals that groups of mitral cells assemble into microcircuits that exhibit correlated Ca(2+) signals. Moreover, electrophysiological profiling of synaptic connectivity indicates functional coupling between mitral cells. Our results suggest that both intrinsically rhythmogenic neurons and neurons entrained by fast synaptic drive are key elements in organizing the accessory olfactory bulb into functional microcircuits, each characterized by a distinct default pattern of infra-slow rhythmicity. SIGNIFICANCE STATEMENT Information processing in the accessory olfactory bulb (AOB) plays a central role in conspecific chemosensory communication. Surprisingly, many basic physiological principles that underlie neuronal signaling in the AOB remain elusive. Here, we show that AOB projection neurons (mitral cells) form parallel synchronized ensembles both in vitro and in vivo. Infra-slow synchronous oscillatory activity within AOB microcircuits thus adds a new dimension to chemosensory coding along the accessory olfactory pathway.
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spelling pubmed-72441962020-05-26 Synchronous Infra-Slow Oscillations Organize Ensembles of Accessory Olfactory Bulb Projection Neurons into Distinct Microcircuits Tsitoura, Chryssanthi Malinowski, Sebastian T. Mohrhardt, Julia Degen, Rudolf DiBenedictis, Brett T. Gao, Yuan Watznauer, Katja Gerhold, Kira Nagel, Maximilian Weber, Monika Rothermel, Markus Hanganu-Opatz, Ileana L. Ben-Shaul, Yoram Davison, Ian G. Spehr, Marc J Neurosci Research Articles The accessory olfactory system controls social and sexual behavior. In the mouse accessory olfactory bulb, the first central stage of information processing along the accessory olfactory pathway, projection neurons (mitral cells) display infra-slow oscillatory discharge with remarkable periodicity. The physiological mechanisms that underlie this default output state, however, remain controversial. Moreover, whether such rhythmic infra-slow activity patterns exist in awake behaving mice and whether such activity reflects the functional organization of the accessory olfactory bulb circuitry remain unclear. Here, we hypothesize that mitral cell ensembles form synchronized microcircuits that subdivide the accessory olfactory bulb into segregated functional clusters. We use a miniature microscope to image the Ca(2+) dynamics within the apical dendritic compartments of large mitral cell ensembles in vivo. We show that infra-slow periodic patterns of concerted neural activity, indeed, reflect the idle state of accessory olfactory bulb output in awake male and female mice. Ca(2+) activity profiles are distinct and glomerulus-specific. Confocal time-lapse imaging in acute slices reveals that groups of mitral cells assemble into microcircuits that exhibit correlated Ca(2+) signals. Moreover, electrophysiological profiling of synaptic connectivity indicates functional coupling between mitral cells. Our results suggest that both intrinsically rhythmogenic neurons and neurons entrained by fast synaptic drive are key elements in organizing the accessory olfactory bulb into functional microcircuits, each characterized by a distinct default pattern of infra-slow rhythmicity. SIGNIFICANCE STATEMENT Information processing in the accessory olfactory bulb (AOB) plays a central role in conspecific chemosensory communication. Surprisingly, many basic physiological principles that underlie neuronal signaling in the AOB remain elusive. Here, we show that AOB projection neurons (mitral cells) form parallel synchronized ensembles both in vitro and in vivo. Infra-slow synchronous oscillatory activity within AOB microcircuits thus adds a new dimension to chemosensory coding along the accessory olfactory pathway. Society for Neuroscience 2020-05-20 /pmc/articles/PMC7244196/ /pubmed/32312886 http://dx.doi.org/10.1523/JNEUROSCI.2925-19.2020 Text en Copyright © 2020 Tsitoura et al. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License Creative Commons Attribution 4.0 International (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle Research Articles
Tsitoura, Chryssanthi
Malinowski, Sebastian T.
Mohrhardt, Julia
Degen, Rudolf
DiBenedictis, Brett T.
Gao, Yuan
Watznauer, Katja
Gerhold, Kira
Nagel, Maximilian
Weber, Monika
Rothermel, Markus
Hanganu-Opatz, Ileana L.
Ben-Shaul, Yoram
Davison, Ian G.
Spehr, Marc
Synchronous Infra-Slow Oscillations Organize Ensembles of Accessory Olfactory Bulb Projection Neurons into Distinct Microcircuits
title Synchronous Infra-Slow Oscillations Organize Ensembles of Accessory Olfactory Bulb Projection Neurons into Distinct Microcircuits
title_full Synchronous Infra-Slow Oscillations Organize Ensembles of Accessory Olfactory Bulb Projection Neurons into Distinct Microcircuits
title_fullStr Synchronous Infra-Slow Oscillations Organize Ensembles of Accessory Olfactory Bulb Projection Neurons into Distinct Microcircuits
title_full_unstemmed Synchronous Infra-Slow Oscillations Organize Ensembles of Accessory Olfactory Bulb Projection Neurons into Distinct Microcircuits
title_short Synchronous Infra-Slow Oscillations Organize Ensembles of Accessory Olfactory Bulb Projection Neurons into Distinct Microcircuits
title_sort synchronous infra-slow oscillations organize ensembles of accessory olfactory bulb projection neurons into distinct microcircuits
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7244196/
https://www.ncbi.nlm.nih.gov/pubmed/32312886
http://dx.doi.org/10.1523/JNEUROSCI.2925-19.2020
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