Keyword search (4,163 papers available)

"Penhune V" Authored Publications:

Title Authors PubMed ID
1 Cross-modal synchrony between music and visual motion modulates vection, urge to move, and comfort in VR Van Kerrebroeck B; Spiech C; Penhune V; Wanderley MM; 41867666
PSYCHOLOGY
2 Continuous Theta Burst to Supplementary Motor Area Modulates Groove Spiech C; Martínez MG; Lazzari G; Penhune V; 41511416
PSYCHOLOGY
3 4/4 and more, rhythmic complexity more strongly predicts groove in common meters Spiech C; Câmara GS; Fuhrer J; Penhune V; 41402552
PSYCHOLOGY
4 Imagining the beat: causal evidence for dorsal premotor cortex (dPMC) role in beat imagery via transcranial magnetic stimulation (TMS) Lazzari G; Ferreri L; Cattaneo L; Penhune V; Lega C; 41248776
PSYCHOLOGY
5 Body maps of the sensation of musical groove Witek MAG; Matthews TE; Bechtold TA; Penhune V; 41064243
PSYCHOLOGY
6 Topography of Functional Organization of Beat Perception in Human Premotor Cortex: Causal Evidence From a Transcranial Magnetic Stimulation (TMS) Study Lazzari G; Costantini G; La Rocca S; Massironi A; Cattaneo L; Penhune V; Lega C; 40344601
PSYCHOLOGY
7 Human Auditory-Motor Networks Show Frequency-Specific Phase-Based Coupling in Resting-State MEG Bedford O; Noly-Gandon A; Ara A; Wiesman AI; Albouy P; Baillet S; Penhune V; Zatorre RJ; 39757971
PSYCHOLOGY
8 Attention, working memory, and inhibitory control in aging: Comparing amateur singers, instrumentalists, and active controls Joyal M; Sicard A; Penhune V; Jackson PL; Tremblay P; 39367878
PSYCHOLOGY
9 Dopamine dysregulation in Parkinson's disease flattens the pleasurable urge to move to musical rhythms Pando-Naude V; Matthews TE; Højlund A; Jakobsen S; Østergaard K; Johnsen E; Garza-Villarreal EA; Witek MAG; Penhune V; Vuust P; 37724707
PSYCHOLOGY
10 Musicians and non-musicians show different preference profiles for single chords of varying harmonic complexity Witek MAG; Matthews T; Bodak R; Blausz MW; Penhune V; Vuust P; 36730271
PSYCHOLOGY
11 Neurophysiological Changes Induced by Music-Supported Therapy for Recovering Upper Extremity Function after Stroke: A Case Series Ghai S; Maso FD; Ogourtsova T; Porxas AX; Villeneuve M; Penhune V; Boudrias MH; Baillet S; Lamontagne A; 34065395
PSYCHOLOGY
12 Arcuate fasciculus architecture is associated with individual differences in pre-attentive detection of unpredicted music changes Vaquero L; Ramos-Escobar N; Cucurell D; François C; Putkinen V; Segura E; Huotilainen M; Penhune V; Rodríguez-Fornells A; 33454403
MLNP
13 What you learn & when you learn it: Impact of early bilingual & music experience on the structural characteristics of auditory-motor pathways Vaquero L; Rousseau PN; Vozian D; Klein D; Penhune V; 32119984
PSYCHOLOGY
14 Partially Overlapping Brain Networks for Singing and Cello Playing. Segado M, Hollinger A, Thibodeau J, Penhune V, Zatorre RJ 29892211
PSYCHOLOGY
15 The effect of early musical training on adult motor performance: evidence for a sensitive period in motor learning Penhune V; Watanabe D; Savion-Lemieux T; 16597774
MLNP
16 Time for new thinking about sensitive periods Penhune V; de Villers-Sidani E; 24782723
MLNP
17 ERP evidence of adaptive changes in error processing and attentional control during rhythm synchronization learning Padrão G; Penhune V; de Diego-Balaguer R; Marco-Pallares J; Rodriguez-Fornells A; 24956067
PSYCHOLOGY
18 A piano training program to improve manual dexterity and upper extremity function in chronic stroke survivors Villeneuve M; Penhune V; Lamontagne A; 25202258
PSYCHOLOGY
19 Rhythm and Melody Tasks for School-Aged Children With and Without Musical Training: Age-Equivalent Scores and Reliability Ireland K; Parker A; Foster N; Penhune V; 29674984
PSYCHOLOGY
20 Neural network retuning and neural predictors of learning success associated with cello training Wollman I; Penhune V; Segado M; Carpentier T; Zatorre RJ; 29891670
PSYCHOLOGY
21 White-matter structural connectivity predicts short-term melody and rhythm learning in non-musicians Vaquero L; Ramos-Escobar N; François C; Penhune V; Rodríguez-Fornells A; 29929006
MLNP

 

Title:Human Auditory-Motor Networks Show Frequency-Specific Phase-Based Coupling in Resting-State MEG
Authors:Bedford ONoly-Gandon AAra AWiesman AIAlbouy PBaillet SPenhune VZatorre RJ
Link:https://pubmed.ncbi.nlm.nih.gov/39757971/
DOI:10.1002/hbm.70045
Publication:Human brain mapping
Keywords:auditory-motor functional connectivityauditory-motor integrationintrinsic connectivityphase couplingresting state MEG
PMID:39757971 Category: Date Added:2025-01-06
Dept Affiliation: PSYCHOLOGY
1 Montreal Neurological Institute, McGill University, Montréal, Quebec, Canada.
2 International Laboratory for Brain, Music and Sound Research (BRAMS), Montréal, Quebec, Canada.
3 Centre for Research on Brain, Language and Music (CRBLM), McGill University, Montréal, Quebec, Canada.
4 CERVO Brain Research Centre, School of Psychology, Université Laval, Québec City, Quebec, Canada.
5 Department of Psychology, Concordia University, Montréal, Quebec, Canada.

Description:

Perception and production of music and speech rely on auditory-motor coupling, a mechanism which has been linked to temporally precise oscillatory coupling between auditory and motor regions of the human brain, particularly in the beta frequency band. Recently, brain imaging studies using magnetoencephalography (MEG) have also shown that accurate auditory temporal predictions specifically depend on phase coherence between auditory and motor cortical regions. However, it is not yet clear whether this tight oscillatory phase coupling is an intrinsic feature of the auditory-motor loop, or whether it is only elicited by task demands. Further, we do not know if phase synchrony is uniquely enhanced in the auditory-motor system compared to other sensorimotor modalities, or to which degree it is amplified by musical training. In order to resolve these questions, we measured the degree of phase locking between motor regions and auditory or visual areas in musicians and non-musicians using resting-state MEG. We derived phase locking values (PLVs) and phase transfer entropy (PTE) values from 90 healthy young participants. We observed significantly higher PLVs across all auditory-motor pairings compared to all visuomotor pairings in all frequency bands. The pairing with the highest degree of phase synchrony was right primary auditory cortex with right ventral premotor cortex, a connection which has been highlighted in previous literature on auditory-motor coupling. Additionally, we observed that auditory-motor and visuomotor PLVs were significantly higher across all structures in the right hemisphere, and we found the highest differences between auditory and visual PLVs in the theta, alpha, and beta frequency bands. Last, we found that the theta and beta bands exhibited a preference for a motor-to-auditory PTE direction and that the alpha and gamma bands exhibited the opposite preference for an auditory-to-motor PTE direction. Taken together, these findings confirm our hypotheses that motor phase synchrony is significantly enhanced in auditory compared to visual cortical regions at rest, that these differences are highest across the theta-beta spectrum of frequencies, and that there exist alternating information flow loops across auditory-motor structures as a function of frequency. In our view, this supports the existence of an intrinsic, time-based coupling for low-latency integration of sounds and movements which involves synchronized phasic activity between primary auditory cortex with motor and premotor cortical areas.





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