Auditory-driven phase reset in visual cortex: Human electrocorticography reveals mechanisms of early multisensory integration

Findings in animal models demonstrate that activity within hierarchically early sensory cortical regions can be modulated by cross-sensory inputs through resetting of the phase of ongoing intrinsic neural oscillations. Here, subdural recordings evaluated whether phase resetting by auditory inputs wo...

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Published in:NeuroImage (Orlando, Fla.) Vol. 79; pp. 19 - 29
Main Authors: Mercier, Manuel R., Foxe, John J., Fiebelkorn, Ian C., Butler, John S., Schwartz, Theodore H., Molholm, Sophie
Format: Journal Article
Language:English
Published: Amsterdam Elsevier Inc 01-10-2013
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Abstract Findings in animal models demonstrate that activity within hierarchically early sensory cortical regions can be modulated by cross-sensory inputs through resetting of the phase of ongoing intrinsic neural oscillations. Here, subdural recordings evaluated whether phase resetting by auditory inputs would impact multisensory integration processes in human visual cortex. Results clearly showed auditory-driven phase reset in visual cortices and, in some cases, frank auditory event-related potentials (ERP) were also observed over these regions. Further, when audiovisual bisensory stimuli were presented, this led to robust multisensory integration effects which were observed in both the ERP and in measures of phase concentration. These results extend findings from animal models to human visual cortices, and highlight the impact of cross-sensory phase resetting by a non-primary stimulus on multisensory integration in ostensibly unisensory cortices. •Auditory driven phase reset occurs over visual cortices.•This can lead to an auditory evoked potential.•Multisensory interactions occur extensively in visual cortices.•In visual regions, auditory phase resetting interacts with evoked visual activity.
AbstractList Findings in animal models demonstrate that activity within hierarchically early sensory cortical regions can be modulated by cross-sensory inputs through resetting of the phase of ongoing intrinsic neural oscillations. Here, subdural recordings evaluated whether phase resetting by auditory inputs would impact multisensory integration processes in human visual cortex. Results clearly showed auditory-driven phase reset in visual cortices and, in some cases, frank auditory event-related potentials (ERP) were also observed over these regions. Further, when audiovisual bisensory stimuli were presented, this led to robust multisensory integration effects which were observed in both the ERP and in measures of phase concentration. These results extend findings from animal models to human visual cortices, and highlight the impact of cross-sensory phase resetting by a non-primary stimulus on multisensory integration in ostensibly unisensory cortices.
Findings in animal models demonstrate that activity within hierarchically early sensory cortical regions can be modulated by cross-sensory inputs through resetting of the phase of ongoing intrinsic neural oscillations. Here, subdural recordings evaluated whether phase resetting by auditory inputs would impact multisensory integration processes in human visual cortex. Results clearly showed auditory-driven phase reset in visual cortices and, in some cases, frank auditory event-related potentials (ERP) were also observed over these regions. Further, when audiovisual bisensory stimuli were presented, this led to robust multisensory integration effects which were observed in both the ERP and in measures of phase concentration. These results extend findings from animal models to human visual cortices, and highlight the impact of cross-sensory phase resetting by a non-primary stimulus on multisensory integration in ostensibly unisensory cortices. •Auditory driven phase reset occurs over visual cortices.•This can lead to an auditory evoked potential.•Multisensory interactions occur extensively in visual cortices.•In visual regions, auditory phase resetting interacts with evoked visual activity.
Author Schwartz, Theodore H.
Mercier, Manuel R.
Foxe, John J.
Butler, John S.
Fiebelkorn, Ian C.
Molholm, Sophie
AuthorAffiliation 1 The Sheryl and Daniel R. Tishman Cognitive Neurophysiology Laboratory, Children’s Evaluation and Rehabilitation Center, Departments of Pediatrics and Neuroscience, Albert Einstein College of Medicine, Bronx, New York 10461, USA
2 The Cognitive Neurophysiology Laboratory, Nathan S. Kline Institute for Psychiatric Research, 140 Old Orangeburg Road, Orangeburg, New York 10962, USA
3 Department of Neurological Surgery, Weill Cornell Medical College, New York Presbyterian Hospital, New York, New York 10021, USA
AuthorAffiliation_xml – name: 1 The Sheryl and Daniel R. Tishman Cognitive Neurophysiology Laboratory, Children’s Evaluation and Rehabilitation Center, Departments of Pediatrics and Neuroscience, Albert Einstein College of Medicine, Bronx, New York 10461, USA
– name: 3 Department of Neurological Surgery, Weill Cornell Medical College, New York Presbyterian Hospital, New York, New York 10021, USA
– name: 2 The Cognitive Neurophysiology Laboratory, Nathan S. Kline Institute for Psychiatric Research, 140 Old Orangeburg Road, Orangeburg, New York 10962, USA
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  givenname: Manuel R.
  surname: Mercier
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  organization: The Sheryl and Daniel R. Tishman Cognitive Neurophysiology Laboratory, Children's Evaluation and Rehabilitation Center, Department of Pediatrics, Albert Einstein College of Medicine, Bronx, NY 10461, USA
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  givenname: John J.
  surname: Foxe
  fullname: Foxe, John J.
  organization: The Sheryl and Daniel R. Tishman Cognitive Neurophysiology Laboratory, Children's Evaluation and Rehabilitation Center, Department of Pediatrics, Albert Einstein College of Medicine, Bronx, NY 10461, USA
– sequence: 3
  givenname: Ian C.
  surname: Fiebelkorn
  fullname: Fiebelkorn, Ian C.
  organization: The Sheryl and Daniel R. Tishman Cognitive Neurophysiology Laboratory, Children's Evaluation and Rehabilitation Center, Department of Pediatrics, Albert Einstein College of Medicine, Bronx, NY 10461, USA
– sequence: 4
  givenname: John S.
  surname: Butler
  fullname: Butler, John S.
  organization: The Sheryl and Daniel R. Tishman Cognitive Neurophysiology Laboratory, Children's Evaluation and Rehabilitation Center, Department of Pediatrics, Albert Einstein College of Medicine, Bronx, NY 10461, USA
– sequence: 5
  givenname: Theodore H.
  surname: Schwartz
  fullname: Schwartz, Theodore H.
  organization: Department of Neurological Surgery, Weill Cornell Medical College, New York Presbyterian Hospital, New York, NY 10021, USA
– sequence: 6
  givenname: Sophie
  surname: Molholm
  fullname: Molholm, Sophie
  email: sophie.r.molholm@gmail.com
  organization: The Sheryl and Daniel R. Tishman Cognitive Neurophysiology Laboratory, Children's Evaluation and Rehabilitation Center, Department of Pediatrics, Albert Einstein College of Medicine, Bronx, NY 10461, USA
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Copyright 2013 Elsevier Inc.
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Fri Feb 23 02:36:03 EST 2024
IsDoiOpenAccess false
IsOpenAccess true
IsPeerReviewed true
IsScholarly true
Keywords Oscillations
Human visual cortex
Electro-corticography (ECoG)
Intracranial
Multimodal interaction
Human
Visual cortex
Central nervous system
Electrophysiology
Multisensory integration
Encephalon
Visual pathway
Oscillation
Early
Electrocorticography
Language English
License CC BY 4.0
Copyright © 2013 Elsevier Inc. All rights reserved.
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OpenAccessLink https://europepmc.org/articles/pmc3677511?pdf=render
PMID 23624493
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Snippet Findings in animal models demonstrate that activity within hierarchically early sensory cortical regions can be modulated by cross-sensory inputs through...
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SubjectTerms Acoustic Stimulation - methods
Animal models
Auditory Perception - physiology
Biological and medical sciences
Biological Clocks - physiology
Brain
Brain Mapping - methods
Cues
Electro-corticography (ECoG)
Electrodes
Electroencephalography - methods
Evoked Potentials, Auditory - physiology
Evoked Potentials, Visual - physiology
Eye and associated structures. Visual pathways and centers. Vision
Fundamental and applied biological sciences. Psychology
Human visual cortex
Humans
Intracranial
Multimodal interaction
NMR
Nuclear magnetic resonance
Oscillations
Sensory perception
Studies
Vertebrates: nervous system and sense organs
Visual Cortex - physiology
Title Auditory-driven phase reset in visual cortex: Human electrocorticography reveals mechanisms of early multisensory integration
URI https://dx.doi.org/10.1016/j.neuroimage.2013.04.060
https://www.ncbi.nlm.nih.gov/pubmed/23624493
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https://search.proquest.com/docview/1365991368
https://search.proquest.com/docview/1500762068
https://pubmed.ncbi.nlm.nih.gov/PMC3677511
Volume 79
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