Complementary fMRI and EEG evidence for more efficient neural processing of rhythmic versus unpredictably timed sounds
The brain’s fascinating ability to adapt its internal neural dynamics to the temporal structure of the sensory environment is becoming increasingly clear. It is thought to be metabolically beneficial to align ongoing oscillatory activity to the relevant inputs in a predictable stream, so that they w...
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doaj-647170be63f74e7e8ae1334b16a2813d2020-11-24T23:31:27ZengFrontiers Media S.A.Frontiers in Psychology1664-10782015-10-01610.3389/fpsyg.2015.01663136605Complementary fMRI and EEG evidence for more efficient neural processing of rhythmic versus unpredictably timed soundsNienke eVan Atteveldt0Nienke eVan Atteveldt1Gabriella eMusacchia2Gabriella eMusacchia3Elana eZion-Golumbic4Pejman eSehatpour5Pejman eSehatpour6Daniel C Javitt7Daniel C Javitt8Charles eSchroeder9Charles eSchroeder10VU University AmsterdamMaastricht UniversityStanford UniversityRutgers UniversityBar Ilan UniversityNathan S. Kline InstituteColumbia UniversityNathan S. Kline InstituteColumbia UniversityNathan S. Kline InstituteColumbia UniversityThe brain’s fascinating ability to adapt its internal neural dynamics to the temporal structure of the sensory environment is becoming increasingly clear. It is thought to be metabolically beneficial to align ongoing oscillatory activity to the relevant inputs in a predictable stream, so that they will enter at optimal processing phases of the spontaneously occurring rhythmic excitability fluctuations. However, some contexts have a more predictable temporal structure than others. Here, we tested the hypothesis that the processing of rhythmic sounds is more efficient than the processing of irregularly timed sounds. To do this, we simultaneously measured functional magnetic resonance imaging (fMRI) and electro-encephalograms (EEG) while participants detected oddball target sounds in alternating blocks of rhythmic (e.g. with equal inter-stimulus intervals) or random (e.g. with randomly varied inter-stimulus intervals) tone sequences. Behaviorally, participants detected target sounds faster and more accurately when embedded in rhythmic streams. The fMRI response in the auditory cortex was stronger during random compared to random tone sequence processing. Simultaneously recorded N1 responses showed larger peak amplitudes and shorter latencies for tones in the random (vs. the rhythmic) streams. These results reveal complementary evidence for more efficient neural and perceptual processing during temporally predictable sensory contexts.http://journal.frontiersin.org/Journal/10.3389/fpsyg.2015.01663/fullAuditory CortexEEGfMRIRhythmsound processingtemporal context |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Nienke eVan Atteveldt Nienke eVan Atteveldt Gabriella eMusacchia Gabriella eMusacchia Elana eZion-Golumbic Pejman eSehatpour Pejman eSehatpour Daniel C Javitt Daniel C Javitt Charles eSchroeder Charles eSchroeder |
spellingShingle |
Nienke eVan Atteveldt Nienke eVan Atteveldt Gabriella eMusacchia Gabriella eMusacchia Elana eZion-Golumbic Pejman eSehatpour Pejman eSehatpour Daniel C Javitt Daniel C Javitt Charles eSchroeder Charles eSchroeder Complementary fMRI and EEG evidence for more efficient neural processing of rhythmic versus unpredictably timed sounds Frontiers in Psychology Auditory Cortex EEG fMRI Rhythm sound processing temporal context |
author_facet |
Nienke eVan Atteveldt Nienke eVan Atteveldt Gabriella eMusacchia Gabriella eMusacchia Elana eZion-Golumbic Pejman eSehatpour Pejman eSehatpour Daniel C Javitt Daniel C Javitt Charles eSchroeder Charles eSchroeder |
author_sort |
Nienke eVan Atteveldt |
title |
Complementary fMRI and EEG evidence for more efficient neural processing of rhythmic versus unpredictably timed sounds |
title_short |
Complementary fMRI and EEG evidence for more efficient neural processing of rhythmic versus unpredictably timed sounds |
title_full |
Complementary fMRI and EEG evidence for more efficient neural processing of rhythmic versus unpredictably timed sounds |
title_fullStr |
Complementary fMRI and EEG evidence for more efficient neural processing of rhythmic versus unpredictably timed sounds |
title_full_unstemmed |
Complementary fMRI and EEG evidence for more efficient neural processing of rhythmic versus unpredictably timed sounds |
title_sort |
complementary fmri and eeg evidence for more efficient neural processing of rhythmic versus unpredictably timed sounds |
publisher |
Frontiers Media S.A. |
series |
Frontiers in Psychology |
issn |
1664-1078 |
publishDate |
2015-10-01 |
description |
The brain’s fascinating ability to adapt its internal neural dynamics to the temporal structure of the sensory environment is becoming increasingly clear. It is thought to be metabolically beneficial to align ongoing oscillatory activity to the relevant inputs in a predictable stream, so that they will enter at optimal processing phases of the spontaneously occurring rhythmic excitability fluctuations. However, some contexts have a more predictable temporal structure than others. Here, we tested the hypothesis that the processing of rhythmic sounds is more efficient than the processing of irregularly timed sounds. To do this, we simultaneously measured functional magnetic resonance imaging (fMRI) and electro-encephalograms (EEG) while participants detected oddball target sounds in alternating blocks of rhythmic (e.g. with equal inter-stimulus intervals) or random (e.g. with randomly varied inter-stimulus intervals) tone sequences. Behaviorally, participants detected target sounds faster and more accurately when embedded in rhythmic streams. The fMRI response in the auditory cortex was stronger during random compared to random tone sequence processing. Simultaneously recorded N1 responses showed larger peak amplitudes and shorter latencies for tones in the random (vs. the rhythmic) streams. These results reveal complementary evidence for more efficient neural and perceptual processing during temporally predictable sensory contexts. |
topic |
Auditory Cortex EEG fMRI Rhythm sound processing temporal context |
url |
http://journal.frontiersin.org/Journal/10.3389/fpsyg.2015.01663/full |
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