High Frequency Synchrony in the Cerebellar Cortex during Goal Directed Movements
The cerebellum is involved in sensory-motor integration and cognitive functions. The origin and function of the field potential oscillations in the cerebellum, especially in the high frequencies, have not been explored sufficiently. The primary objective of this study was to investigate the spatio...
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doaj-802cea64268b4b69b007331b2b9f7e502020-11-25T02:19:06ZengFrontiers Media S.A.Frontiers in Systems Neuroscience1662-51372015-07-01910.3389/fnsys.2015.00098129048High Frequency Synchrony in the Cerebellar Cortex during Goal Directed MovementsJonathan David Groth0Mesut eSahin1New Jersey Institute of TechnologyNew Jersey Institute of TechnologyThe cerebellum is involved in sensory-motor integration and cognitive functions. The origin and function of the field potential oscillations in the cerebellum, especially in the high frequencies, have not been explored sufficiently. The primary objective of this study was to investigate the spatio-temporal characteristics of high frequency field potentials (150-350Hz) in the cerebellar cortex in a behavioral context. To this end, we recorded from the paramedian lobule in rats using micro electro-corticogram (µ-ECoG) electrode arrays while the animal performed a lever press task using the forelimb. The phase synchrony analysis shows that the high frequency oscillations recorded at multiple points across the paramedian cortex episodically synchronize immediately before and desynchronize during the lever press. The electrode contacts were grouped according to their temporal course of phase synchrony around the time of lever press. Contact groups presented patches with slightly stronger synchrony values in the medio-lateral direction, and did not appear to form parasagittal zones. The size and location of these patches on the cortical surface are in agreement with the sensory evoked granular layer patches originally reported by Welker’s lab (Shambes, 1978). Spatiotemporal synchrony of high frequency field potentials has not been reported at such large-scales previously in the cerebellar cortex.http://journal.frontiersin.org/Journal/10.3389/fnsys.2015.00098/fullCerebellumMulti-electrode arraysphase synchronycerebellar oscillationsparamedian lobule |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jonathan David Groth Mesut eSahin |
spellingShingle |
Jonathan David Groth Mesut eSahin High Frequency Synchrony in the Cerebellar Cortex during Goal Directed Movements Frontiers in Systems Neuroscience Cerebellum Multi-electrode arrays phase synchrony cerebellar oscillations paramedian lobule |
author_facet |
Jonathan David Groth Mesut eSahin |
author_sort |
Jonathan David Groth |
title |
High Frequency Synchrony in the Cerebellar Cortex during Goal Directed Movements |
title_short |
High Frequency Synchrony in the Cerebellar Cortex during Goal Directed Movements |
title_full |
High Frequency Synchrony in the Cerebellar Cortex during Goal Directed Movements |
title_fullStr |
High Frequency Synchrony in the Cerebellar Cortex during Goal Directed Movements |
title_full_unstemmed |
High Frequency Synchrony in the Cerebellar Cortex during Goal Directed Movements |
title_sort |
high frequency synchrony in the cerebellar cortex during goal directed movements |
publisher |
Frontiers Media S.A. |
series |
Frontiers in Systems Neuroscience |
issn |
1662-5137 |
publishDate |
2015-07-01 |
description |
The cerebellum is involved in sensory-motor integration and cognitive functions. The origin and function of the field potential oscillations in the cerebellum, especially in the high frequencies, have not been explored sufficiently. The primary objective of this study was to investigate the spatio-temporal characteristics of high frequency field potentials (150-350Hz) in the cerebellar cortex in a behavioral context. To this end, we recorded from the paramedian lobule in rats using micro electro-corticogram (µ-ECoG) electrode arrays while the animal performed a lever press task using the forelimb. The phase synchrony analysis shows that the high frequency oscillations recorded at multiple points across the paramedian cortex episodically synchronize immediately before and desynchronize during the lever press. The electrode contacts were grouped according to their temporal course of phase synchrony around the time of lever press. Contact groups presented patches with slightly stronger synchrony values in the medio-lateral direction, and did not appear to form parasagittal zones. The size and location of these patches on the cortical surface are in agreement with the sensory evoked granular layer patches originally reported by Welker’s lab (Shambes, 1978). Spatiotemporal synchrony of high frequency field potentials has not been reported at such large-scales previously in the cerebellar cortex. |
topic |
Cerebellum Multi-electrode arrays phase synchrony cerebellar oscillations paramedian lobule |
url |
http://journal.frontiersin.org/Journal/10.3389/fnsys.2015.00098/full |
work_keys_str_mv |
AT jonathandavidgroth highfrequencysynchronyinthecerebellarcortexduringgoaldirectedmovements AT mesutesahin highfrequencysynchronyinthecerebellarcortexduringgoaldirectedmovements |
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1724878498351284224 |