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The rapid developmental rise of somatic inhibition disengages hippocampal dynamics from self-motion

Early electrophysiological brain oscillations recorded in preterm babies and newborn rodents are initially mostly driven by bottom-up sensorimotor activity and only later can detach from external inputs. This is a hallmark of most developing brain areas, including the hippocampus, which, in the adul...

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Autores principales: Dard, Robin F, Leprince, Erwan, Denis, Julien, Rao Balappa, Shrisha, Suchkov, Dmitrii, Boyce, Richard, Lopez, Catherine, Giorgi-Kurz, Marie, Szwagier, Tom, Dumont, Théo, Rouault, Hervé, Minlebaev, Marat, Baude, Agnès, Cossart, Rosa, Picardo, Michel A
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9363116/
https://www.ncbi.nlm.nih.gov/pubmed/35856497
http://dx.doi.org/10.7554/eLife.78116
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author Dard, Robin F
Leprince, Erwan
Denis, Julien
Rao Balappa, Shrisha
Suchkov, Dmitrii
Boyce, Richard
Lopez, Catherine
Giorgi-Kurz, Marie
Szwagier, Tom
Dumont, Théo
Rouault, Hervé
Minlebaev, Marat
Baude, Agnès
Cossart, Rosa
Picardo, Michel A
author_facet Dard, Robin F
Leprince, Erwan
Denis, Julien
Rao Balappa, Shrisha
Suchkov, Dmitrii
Boyce, Richard
Lopez, Catherine
Giorgi-Kurz, Marie
Szwagier, Tom
Dumont, Théo
Rouault, Hervé
Minlebaev, Marat
Baude, Agnès
Cossart, Rosa
Picardo, Michel A
author_sort Dard, Robin F
collection PubMed
description Early electrophysiological brain oscillations recorded in preterm babies and newborn rodents are initially mostly driven by bottom-up sensorimotor activity and only later can detach from external inputs. This is a hallmark of most developing brain areas, including the hippocampus, which, in the adult brain, functions in integrating external inputs onto internal dynamics. Such developmental disengagement from external inputs is likely a fundamental step for the proper development of cognitive internal models. Despite its importance, the developmental timeline and circuit basis for this disengagement remain unknown. To address this issue, we have investigated the daily evolution of CA1 dynamics and underlying circuits during the first two postnatal weeks of mouse development using two-photon calcium imaging in non-anesthetized pups. We show that the first postnatal week ends with an abrupt shift in the representation of self-motion in CA1. Indeed, most CA1 pyramidal cells switch from activated to inhibited by self-generated movements at the end of the first postnatal week, whereas the majority of GABAergic neurons remain positively modulated throughout this period. This rapid switch occurs within 2 days and follows the rapid anatomical and functional surge of local somatic GABAergic innervation. The observed change in dynamics is consistent with a two-population model undergoing a strengthening of inhibition. We propose that this abrupt developmental transition inaugurates the emergence of internal hippocampal dynamics.
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spelling pubmed-93631162022-08-10 The rapid developmental rise of somatic inhibition disengages hippocampal dynamics from self-motion Dard, Robin F Leprince, Erwan Denis, Julien Rao Balappa, Shrisha Suchkov, Dmitrii Boyce, Richard Lopez, Catherine Giorgi-Kurz, Marie Szwagier, Tom Dumont, Théo Rouault, Hervé Minlebaev, Marat Baude, Agnès Cossart, Rosa Picardo, Michel A eLife Neuroscience Early electrophysiological brain oscillations recorded in preterm babies and newborn rodents are initially mostly driven by bottom-up sensorimotor activity and only later can detach from external inputs. This is a hallmark of most developing brain areas, including the hippocampus, which, in the adult brain, functions in integrating external inputs onto internal dynamics. Such developmental disengagement from external inputs is likely a fundamental step for the proper development of cognitive internal models. Despite its importance, the developmental timeline and circuit basis for this disengagement remain unknown. To address this issue, we have investigated the daily evolution of CA1 dynamics and underlying circuits during the first two postnatal weeks of mouse development using two-photon calcium imaging in non-anesthetized pups. We show that the first postnatal week ends with an abrupt shift in the representation of self-motion in CA1. Indeed, most CA1 pyramidal cells switch from activated to inhibited by self-generated movements at the end of the first postnatal week, whereas the majority of GABAergic neurons remain positively modulated throughout this period. This rapid switch occurs within 2 days and follows the rapid anatomical and functional surge of local somatic GABAergic innervation. The observed change in dynamics is consistent with a two-population model undergoing a strengthening of inhibition. We propose that this abrupt developmental transition inaugurates the emergence of internal hippocampal dynamics. eLife Sciences Publications, Ltd 2022-07-20 /pmc/articles/PMC9363116/ /pubmed/35856497 http://dx.doi.org/10.7554/eLife.78116 Text en © 2022, Dard et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Neuroscience
Dard, Robin F
Leprince, Erwan
Denis, Julien
Rao Balappa, Shrisha
Suchkov, Dmitrii
Boyce, Richard
Lopez, Catherine
Giorgi-Kurz, Marie
Szwagier, Tom
Dumont, Théo
Rouault, Hervé
Minlebaev, Marat
Baude, Agnès
Cossart, Rosa
Picardo, Michel A
The rapid developmental rise of somatic inhibition disengages hippocampal dynamics from self-motion
title The rapid developmental rise of somatic inhibition disengages hippocampal dynamics from self-motion
title_full The rapid developmental rise of somatic inhibition disengages hippocampal dynamics from self-motion
title_fullStr The rapid developmental rise of somatic inhibition disengages hippocampal dynamics from self-motion
title_full_unstemmed The rapid developmental rise of somatic inhibition disengages hippocampal dynamics from self-motion
title_short The rapid developmental rise of somatic inhibition disengages hippocampal dynamics from self-motion
title_sort rapid developmental rise of somatic inhibition disengages hippocampal dynamics from self-motion
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9363116/
https://www.ncbi.nlm.nih.gov/pubmed/35856497
http://dx.doi.org/10.7554/eLife.78116
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