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Tactile Modulation of Whisking via the Brainstem Loop: Statechart Modeling and Experimental Validation

Rats repeatedly sweep their facial whiskers back and forth in order to explore their environment. Such explorative whisking appears to be driven by central pattern generators (CPGs) that operate independently of direct sensory feedback. Nevertheless, whisking can be modulated by sensory feedback, an...

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Autores principales: Sherman, Dana, Oram, Tess, Deutsch, Dudi, Gordon, Goren, Ahissar, Ehud, Harel, David
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3842298/
https://www.ncbi.nlm.nih.gov/pubmed/24312186
http://dx.doi.org/10.1371/journal.pone.0079831
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author Sherman, Dana
Oram, Tess
Deutsch, Dudi
Gordon, Goren
Ahissar, Ehud
Harel, David
author_facet Sherman, Dana
Oram, Tess
Deutsch, Dudi
Gordon, Goren
Ahissar, Ehud
Harel, David
author_sort Sherman, Dana
collection PubMed
description Rats repeatedly sweep their facial whiskers back and forth in order to explore their environment. Such explorative whisking appears to be driven by central pattern generators (CPGs) that operate independently of direct sensory feedback. Nevertheless, whisking can be modulated by sensory feedback, and it has been hypothesized that some of this modulation already occurs within the brainstem. However, the interaction between sensory feedback and CPG activity is poorly understood. Using the visual language of statecharts, a dynamic, bottom-up computerized model of the brainstem loop of the whisking system was built in order to investigate the interaction between sensory feedback and CPG activity during whisking behavior. As a benchmark, we used a previously quantified closed-loop phenomenon of the whisking system, touched-induced pump (TIP), which is thought to be mediated by the brainstem loop. First, we showed that TIPs depend on sensory feedback, by comparing TIP occurrence in intact rats with that in rats whose sensory nerve was experimentally cut. We then inspected several possible feedback mechanisms of TIPs using our model. The model ruled out all hypothesized mechanisms but one, which adequately simulated the corresponding motion observed in the rat. Results of the simulations suggest that TIPs are generated via sensory feedback that activates extrinsic retractor muscles in the mystacial pad. The model further predicted that in addition to the touching whisker, all whiskers found on the same side of the snout should exhibit a TIP. We present experimental results that confirm the predicted movements in behaving rats, establishing the validity of the hypothesized interaction between sensory feedback and CPG activity we suggest here for the generation of TIPs in the whisking system.
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spelling pubmed-38422982013-12-05 Tactile Modulation of Whisking via the Brainstem Loop: Statechart Modeling and Experimental Validation Sherman, Dana Oram, Tess Deutsch, Dudi Gordon, Goren Ahissar, Ehud Harel, David PLoS One Research Article Rats repeatedly sweep their facial whiskers back and forth in order to explore their environment. Such explorative whisking appears to be driven by central pattern generators (CPGs) that operate independently of direct sensory feedback. Nevertheless, whisking can be modulated by sensory feedback, and it has been hypothesized that some of this modulation already occurs within the brainstem. However, the interaction between sensory feedback and CPG activity is poorly understood. Using the visual language of statecharts, a dynamic, bottom-up computerized model of the brainstem loop of the whisking system was built in order to investigate the interaction between sensory feedback and CPG activity during whisking behavior. As a benchmark, we used a previously quantified closed-loop phenomenon of the whisking system, touched-induced pump (TIP), which is thought to be mediated by the brainstem loop. First, we showed that TIPs depend on sensory feedback, by comparing TIP occurrence in intact rats with that in rats whose sensory nerve was experimentally cut. We then inspected several possible feedback mechanisms of TIPs using our model. The model ruled out all hypothesized mechanisms but one, which adequately simulated the corresponding motion observed in the rat. Results of the simulations suggest that TIPs are generated via sensory feedback that activates extrinsic retractor muscles in the mystacial pad. The model further predicted that in addition to the touching whisker, all whiskers found on the same side of the snout should exhibit a TIP. We present experimental results that confirm the predicted movements in behaving rats, establishing the validity of the hypothesized interaction between sensory feedback and CPG activity we suggest here for the generation of TIPs in the whisking system. Public Library of Science 2013-11-27 /pmc/articles/PMC3842298/ /pubmed/24312186 http://dx.doi.org/10.1371/journal.pone.0079831 Text en © 2013 Sherman et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Sherman, Dana
Oram, Tess
Deutsch, Dudi
Gordon, Goren
Ahissar, Ehud
Harel, David
Tactile Modulation of Whisking via the Brainstem Loop: Statechart Modeling and Experimental Validation
title Tactile Modulation of Whisking via the Brainstem Loop: Statechart Modeling and Experimental Validation
title_full Tactile Modulation of Whisking via the Brainstem Loop: Statechart Modeling and Experimental Validation
title_fullStr Tactile Modulation of Whisking via the Brainstem Loop: Statechart Modeling and Experimental Validation
title_full_unstemmed Tactile Modulation of Whisking via the Brainstem Loop: Statechart Modeling and Experimental Validation
title_short Tactile Modulation of Whisking via the Brainstem Loop: Statechart Modeling and Experimental Validation
title_sort tactile modulation of whisking via the brainstem loop: statechart modeling and experimental validation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3842298/
https://www.ncbi.nlm.nih.gov/pubmed/24312186
http://dx.doi.org/10.1371/journal.pone.0079831
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