Literature DB >> 29725948

Neuromagnetic Cerebellar Activity Entrains to the Kinematics of Executed Finger Movements.

Brice Marty1, V Wens2,3, M Bourguignon2,4, G Naeije2, S Goldman2,3, V Jousmäki5, X De Tiège2,3.   

Abstract

This magnetoencephalography (MEG) study aims at characterizing the coupling between cerebellar activity and the kinematics of repetitive self-paced finger movements. Neuromagnetic signals were recorded in 11 right-handed healthy adults while they performed repetitive flexion-extensions of right-hand fingers at three different movement rates: slow (~ 1 Hz), medium (~ 2 Hz), and fast (~ 3 Hz). Right index finger acceleration was monitored with an accelerometer. Coherence analysis was used to index the coupling between right index finger acceleration and neuromagnetic signals. Dynamic imaging of coherent sources was used to locate coherent sources. Coupling directionality between primary sensorimotor (SM1), cerebellar, and accelerometer signals was assessed with renormalized partial directed coherence. Permutation-based statistics coupled with maximum statistic over the entire brain volume or restricted to the cerebellum were used. At all movement rates, maximum coherence peaked at SM1 cortex contralateral to finger movements at movement frequency (F0) and its first harmonic (F1). Significant (statistics restricted to the cerebellum) coherence consistently peaked at the right posterior lobe of the cerebellum at F0 with no influence of movement rate. Coupling between Acc and cerebellar signals was significantly stronger in the afferent than in the efferent direction with no effective contribution of cortico-cerebellar or cerebello-cortical pathways. This study demonstrates the existence of significant coupling between finger movement kinematics and neuromagnetic activity at the posterior cerebellar lobe ipsilateral to finger movement at F0. This coupling is mainly driven by spinocerebellar, presumably proprioceptive, afferences.

Entities:  

Keywords:  Cerebellum; Kinematics; Magnetoencephalography; Movements; Primary motor cortex

Mesh:

Year:  2018        PMID: 29725948     DOI: 10.1007/s12311-018-0943-4

Source DB:  PubMed          Journal:  Cerebellum        ISSN: 1473-4222            Impact factor:   3.847


  45 in total

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5.  Corticokinematic coherence during active and passive finger movements.

Authors:  H Piitulainen; M Bourguignon; X De Tiège; R Hari; V Jousmäki
Journal:  Neuroscience       Date:  2013-02-10       Impact factor: 3.590

6.  Dynamic imaging of coherent sources: Studying neural interactions in the human brain.

Authors:  J Gross; J Kujala; M Hamalainen; L Timmermann; A Schnitzler; R Salmelin
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8.  Comprehensive functional mapping scheme for non-invasive primary sensorimotor cortex mapping.

Authors:  Mathieu Bourguignon; Veikko Jousmäki; Brice Marty; Vincent Wens; Marc Op de Beeck; Patrick Van Bogaert; Mustapha Nouali; Thierry Metens; Boris Lubicz; Florence Lefranc; Michael Bruneau; Olivier De Witte; Serge Goldman; Xavier De Tiège
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9.  MNE software for processing MEG and EEG data.

Authors:  Alexandre Gramfort; Martin Luessi; Eric Larson; Denis A Engemann; Daniel Strohmeier; Christian Brodbeck; Lauri Parkkonen; Matti S Hämäläinen
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10.  Corticokinematic coherence mainly reflects movement-induced proprioceptive feedback.

Authors:  Mathieu Bourguignon; Harri Piitulainen; Xavier De Tiège; Veikko Jousmäki; Riitta Hari
Journal:  Neuroimage       Date:  2014-11-21       Impact factor: 6.556

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3.  Gating Patterns to Proprioceptive Stimulation in Various Cortical Areas: An MEG Study in Children and Adults using Spatial ICA.

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4.  Detectability of cerebellar activity with magnetoencephalography and electroencephalography.

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