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Anatomical Pathways Involved in Generating and Sensing Rhythmic Whisker Movements

The rodent whisker system is widely used as a model system for investigating sensorimotor integration, neural mechanisms of complex cognitive tasks, neural development, and robotics. The whisker pathways to the barrel cortex have received considerable attention. However, many subcortical structures...

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Autores principales: Bosman, Laurens W. J., Houweling, Arthur R., Owens, Cullen B., Tanke, Nouk, Shevchouk, Olesya T., Rahmati, Negah, Teunissen, Wouter H. T., Ju, Chiheng, Gong, Wei, Koekkoek, Sebastiaan K. E., De Zeeuw, Chris I.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Research Foundation 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3207327/
https://www.ncbi.nlm.nih.gov/pubmed/22065951
http://dx.doi.org/10.3389/fnint.2011.00053
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author Bosman, Laurens W. J.
Houweling, Arthur R.
Owens, Cullen B.
Tanke, Nouk
Shevchouk, Olesya T.
Rahmati, Negah
Teunissen, Wouter H. T.
Ju, Chiheng
Gong, Wei
Koekkoek, Sebastiaan K. E.
De Zeeuw, Chris I.
author_facet Bosman, Laurens W. J.
Houweling, Arthur R.
Owens, Cullen B.
Tanke, Nouk
Shevchouk, Olesya T.
Rahmati, Negah
Teunissen, Wouter H. T.
Ju, Chiheng
Gong, Wei
Koekkoek, Sebastiaan K. E.
De Zeeuw, Chris I.
author_sort Bosman, Laurens W. J.
collection PubMed
description The rodent whisker system is widely used as a model system for investigating sensorimotor integration, neural mechanisms of complex cognitive tasks, neural development, and robotics. The whisker pathways to the barrel cortex have received considerable attention. However, many subcortical structures are paramount to the whisker system. They contribute to important processes, like filtering out salient features, integration with other senses, and adaptation of the whisker system to the general behavioral state of the animal. We present here an overview of the brain regions and their connections involved in the whisker system. We do not only describe the anatomy and functional roles of the cerebral cortex, but also those of subcortical structures like the striatum, superior colliculus, cerebellum, pontomedullary reticular formation, zona incerta, and anterior pretectal nucleus as well as those of level setting systems like the cholinergic, histaminergic, serotonergic, and noradrenergic pathways. We conclude by discussing how these brain regions may affect each other and how they together may control the precise timing of whisker movements and coordinate whisker perception.
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spelling pubmed-32073272011-11-07 Anatomical Pathways Involved in Generating and Sensing Rhythmic Whisker Movements Bosman, Laurens W. J. Houweling, Arthur R. Owens, Cullen B. Tanke, Nouk Shevchouk, Olesya T. Rahmati, Negah Teunissen, Wouter H. T. Ju, Chiheng Gong, Wei Koekkoek, Sebastiaan K. E. De Zeeuw, Chris I. Front Integr Neurosci Neuroscience The rodent whisker system is widely used as a model system for investigating sensorimotor integration, neural mechanisms of complex cognitive tasks, neural development, and robotics. The whisker pathways to the barrel cortex have received considerable attention. However, many subcortical structures are paramount to the whisker system. They contribute to important processes, like filtering out salient features, integration with other senses, and adaptation of the whisker system to the general behavioral state of the animal. We present here an overview of the brain regions and their connections involved in the whisker system. We do not only describe the anatomy and functional roles of the cerebral cortex, but also those of subcortical structures like the striatum, superior colliculus, cerebellum, pontomedullary reticular formation, zona incerta, and anterior pretectal nucleus as well as those of level setting systems like the cholinergic, histaminergic, serotonergic, and noradrenergic pathways. We conclude by discussing how these brain regions may affect each other and how they together may control the precise timing of whisker movements and coordinate whisker perception. Frontiers Research Foundation 2011-10-03 /pmc/articles/PMC3207327/ /pubmed/22065951 http://dx.doi.org/10.3389/fnint.2011.00053 Text en Copyright © 2011 Bosman, Houweling, Owens, Tanke, Shevchouk, Rahmati, Teunissen, Ju, Gong, Koekkoek and De Zeeuw. http://www.frontiersin.org/licenseagreement This is an open-access article subject to a non-exclusive license between the authors and Frontiers Media SA, which permits use, distribution and reproduction in other forums, provided the original authors and source are credited and other Frontiers conditions are complied with.
spellingShingle Neuroscience
Bosman, Laurens W. J.
Houweling, Arthur R.
Owens, Cullen B.
Tanke, Nouk
Shevchouk, Olesya T.
Rahmati, Negah
Teunissen, Wouter H. T.
Ju, Chiheng
Gong, Wei
Koekkoek, Sebastiaan K. E.
De Zeeuw, Chris I.
Anatomical Pathways Involved in Generating and Sensing Rhythmic Whisker Movements
title Anatomical Pathways Involved in Generating and Sensing Rhythmic Whisker Movements
title_full Anatomical Pathways Involved in Generating and Sensing Rhythmic Whisker Movements
title_fullStr Anatomical Pathways Involved in Generating and Sensing Rhythmic Whisker Movements
title_full_unstemmed Anatomical Pathways Involved in Generating and Sensing Rhythmic Whisker Movements
title_short Anatomical Pathways Involved in Generating and Sensing Rhythmic Whisker Movements
title_sort anatomical pathways involved in generating and sensing rhythmic whisker movements
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3207327/
https://www.ncbi.nlm.nih.gov/pubmed/22065951
http://dx.doi.org/10.3389/fnint.2011.00053
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