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A feedforward inhibitory premotor circuit for auditory–vocal interactions in zebra finches

During vocal exchanges, hearing specific auditory signals can provoke vocal responses or suppress vocalizations to avoid interference. These abilities result in the widespread phenomenon of vocal turn taking, yet little is known about the neural circuitry that regulates the input-dependent timing of...

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Autores principales: Norton, Philipp, Benichov, Jonathan I., Pexirra, Margarida, Schreiber, Susanne, Vallentin, Daniela
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9191632/
https://www.ncbi.nlm.nih.gov/pubmed/35658073
http://dx.doi.org/10.1073/pnas.2118448119
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author Norton, Philipp
Benichov, Jonathan I.
Pexirra, Margarida
Schreiber, Susanne
Vallentin, Daniela
author_facet Norton, Philipp
Benichov, Jonathan I.
Pexirra, Margarida
Schreiber, Susanne
Vallentin, Daniela
author_sort Norton, Philipp
collection PubMed
description During vocal exchanges, hearing specific auditory signals can provoke vocal responses or suppress vocalizations to avoid interference. These abilities result in the widespread phenomenon of vocal turn taking, yet little is known about the neural circuitry that regulates the input-dependent timing of vocal replies. Previous work in vocally interacting zebra finches has highlighted the importance of premotor inhibition for precisely timed vocal output. By developing physiologically constrained mathematical models, we derived circuit mechanisms based on feedforward inhibition that enable both the temporal modulation of vocal premotor drive as well as auditory suppression of vocalization during listening. Extracellular recordings in HVC during the listening phase confirmed the presence of auditory-evoked response patterns in putative inhibitory interneurons, along with corresponding signatures of auditory-evoked activity suppression. Further, intracellular recordings of identified neurons projecting to HVC from the upstream sensorimotor nucleus, nucleus interfacialis (NIf), shed light on the timing of auditory inputs to this network. The analysis of incrementally time-lagged interactions between auditory and premotor activity in the model resulted in the prediction of a window of auditory suppression, which could be, in turn, verified in behavioral data. A phasic feedforward inhibition model consistently explained the experimental results. This mechanism highlights a parsimonious and generalizable principle for how different driving inputs (vocal and auditory related) can be integrated in a single sensorimotor circuit to regulate two opposing vocal behavioral outcomes: the controlled timing of vocal output or the suppression of overlapping vocalizations.
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spelling pubmed-91916322022-06-14 A feedforward inhibitory premotor circuit for auditory–vocal interactions in zebra finches Norton, Philipp Benichov, Jonathan I. Pexirra, Margarida Schreiber, Susanne Vallentin, Daniela Proc Natl Acad Sci U S A Biological Sciences During vocal exchanges, hearing specific auditory signals can provoke vocal responses or suppress vocalizations to avoid interference. These abilities result in the widespread phenomenon of vocal turn taking, yet little is known about the neural circuitry that regulates the input-dependent timing of vocal replies. Previous work in vocally interacting zebra finches has highlighted the importance of premotor inhibition for precisely timed vocal output. By developing physiologically constrained mathematical models, we derived circuit mechanisms based on feedforward inhibition that enable both the temporal modulation of vocal premotor drive as well as auditory suppression of vocalization during listening. Extracellular recordings in HVC during the listening phase confirmed the presence of auditory-evoked response patterns in putative inhibitory interneurons, along with corresponding signatures of auditory-evoked activity suppression. Further, intracellular recordings of identified neurons projecting to HVC from the upstream sensorimotor nucleus, nucleus interfacialis (NIf), shed light on the timing of auditory inputs to this network. The analysis of incrementally time-lagged interactions between auditory and premotor activity in the model resulted in the prediction of a window of auditory suppression, which could be, in turn, verified in behavioral data. A phasic feedforward inhibition model consistently explained the experimental results. This mechanism highlights a parsimonious and generalizable principle for how different driving inputs (vocal and auditory related) can be integrated in a single sensorimotor circuit to regulate two opposing vocal behavioral outcomes: the controlled timing of vocal output or the suppression of overlapping vocalizations. National Academy of Sciences 2022-06-03 2022-06-07 /pmc/articles/PMC9191632/ /pubmed/35658073 http://dx.doi.org/10.1073/pnas.2118448119 Text en Copyright © 2022 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by/4.0/This open access article is distributed under Creative Commons Attribution License 4.0 (CC BY) (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Biological Sciences
Norton, Philipp
Benichov, Jonathan I.
Pexirra, Margarida
Schreiber, Susanne
Vallentin, Daniela
A feedforward inhibitory premotor circuit for auditory–vocal interactions in zebra finches
title A feedforward inhibitory premotor circuit for auditory–vocal interactions in zebra finches
title_full A feedforward inhibitory premotor circuit for auditory–vocal interactions in zebra finches
title_fullStr A feedforward inhibitory premotor circuit for auditory–vocal interactions in zebra finches
title_full_unstemmed A feedforward inhibitory premotor circuit for auditory–vocal interactions in zebra finches
title_short A feedforward inhibitory premotor circuit for auditory–vocal interactions in zebra finches
title_sort feedforward inhibitory premotor circuit for auditory–vocal interactions in zebra finches
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9191632/
https://www.ncbi.nlm.nih.gov/pubmed/35658073
http://dx.doi.org/10.1073/pnas.2118448119
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