Keyword search (4,163 papers available)

"Zatorre RJ" Authored Publications:

Title Authors PubMed ID
1 Auditory working memory mechanisms mediating the relationship between musicianship and auditory stream segregation Liu M; Arseneau-Bruneau I; Farrés Franch M; Latorre ME; Samuels J; Issa E; Payumo A; Rahman N; Loureiro N; Leung TCM; Nave KM; von Handorf KM; Hoddinott JD; Coffey EBJ; Grahn J; Zatorre RJ; 40226491
PSYCHOLOGY
2 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
3 Cortical-subcortical interactions underlie processing of auditory predictions measured with 7T fMRI Ara A; Provias V; Sitek K; Coffey EBJ; Zatorre RJ; 39087881
PSYCHOLOGY
4 Using cortico-cerebellar structural patterns to classify early- and late-trained musicians Shenker JJ; Steele CJ; Zatorre RJ; Penhune VB; 37326147
PSYCHOLOGY
5 Early musical training shapes cortico-cerebellar structural covariation Shenker JJ; Steele CJ; Chakravarty MM; Zatorre RJ; Penhune VB; 34657166
PSYCHOLOGY
6 Effector-independent brain network for auditory-motor integration: fMRI evidence from singing and cello playing Segado M; Zatorre RJ; Penhune VB; 33989814
PSYCHOLOGY
7 Evolving perspectives on the sources of the frequency-following response. Coffey EBJ, Nicol T, White-Schwoch T, Chandrasekaran B, Krizman J, Skoe E, Zatorre RJ, Kraus N 31695046
PSYCHOLOGY
8 Partially Overlapping Brain Networks for Singing and Cello Playing. Segado M, Hollinger A, Thibodeau J, Penhune V, Zatorre RJ 29892211
PSYCHOLOGY
9 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
10 Rhythm and time in the premotor cortex. Penhune VB, Zatorre RJ 31158227
PSYCHOLOGY
11 Practice makes plasticity. Steele CJ, Zatorre RJ 30482944
PSYCHOLOGY
12 The Music-In-Noise Task (MINT): A Tool for Dissecting Complex Auditory Perception. Coffey EBJ, Arseneau-Bruneau I, Zhang X, Zatorre RJ 30930734
PSYCHOLOGY

 

Title:Partially Overlapping Brain Networks for Singing and Cello Playing.
Authors:Segado MHollinger AThibodeau JPenhune VZatorre RJ
Link:https://www.ncbi.nlm.nih.gov/pubmed/29892211?dopt=Abstract
DOI:10.3389/fnins.2018.00351
Publication:Frontiers in neuroscience
Keywords:auditory-motor integrationauditory-vocal integrationcello playingfMRIlarynx motor representationsinging
PMID:29892211 Category:Front Neurosci Date Added:2019-06-20
Dept Affiliation: PSYCHOLOGY
1 Montreal Neurological Institute, Montreal, QC, Canada.
2 BRAMS International Laboratory for Brain, Music, and Sound Research, Montreal, QC, Canada.
3 Centre for Interdisciplinary Research in Music Media and Technology, Montreal, QC, Canada.
4 Department of Psychology, Concordia University, Montreal, QC, Canada.

Description:

Partially Overlapping Brain Networks for Singing and Cello Playing.

Front Neurosci. 2018;12:351

Authors: Segado M, Hollinger A, Thibodeau J, Penhune V, Zatorre RJ

Abstract

This research uses an MR-Compatible cello to compare functional brain activation during singing and cello playing within the same individuals to determine the extent to which arbitrary auditory-motor associations, like those required to play the cello, co-opt functional brain networks that evolved for singing. Musical instrument playing and singing both require highly specific associations between sounds and movements. Because these are both used to produce musical sounds, it is often assumed in the literature that their neural underpinnings are highly similar. However, singing is an evolutionarily old human trait, and the auditory-motor associations used for singing are also used for speech and non-speech vocalizations. This sets it apart from the arbitrary auditory-motor associations required to play musical instruments. The pitch range of the cello is similar to that of the human voice, but cello playing is completely independent of the vocal apparatus, and can therefore be used to dissociate the auditory-vocal network from that of the auditory-motor network. While in the MR-Scanner, 11 expert cellists listened to and subsequently produced individual tones either by singing or cello playing. All participants were able to sing and play the target tones in tune (<50C deviation from target). We found that brain activity during cello playing directly overlaps with brain activity during singing in many areas within the auditory-vocal network. These include primary motor, dorsal pre-motor, and supplementary motor cortices (M1, dPMC, SMA),the primary and periprimary auditory cortices within the superior temporal gyrus (STG) including Heschl's gyrus, anterior insula (aINS), anterior cingulate cortex (ACC), and intraparietal sulcus (IPS), and Cerebellum but, notably, exclude the periaqueductal gray (PAG) and basal ganglia (Putamen). Second, we found that activity within the overlapping areas is positively correlated with, and therefore likely contributing to, both singing and playing in tune determined with performance measures. Third, we found that activity in auditory areas is functionally connected with activity in dorsal motor and pre-motor areas, and that the connectivity between them is positively correlated with good performance on this task. This functional connectivity suggests that the brain areas are working together to contribute to task performance and not just coincidently active. Last, our findings showed that cello playing may directly co-opt vocal areas (including larynx area of motor cortex), especially if musical training begins before age 7.

PMID: 29892211 [PubMed]





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