White matter connectivity between occipital and temporal regions involved in face and voice processing in hearing and early deaf individuals
Neuroplasticity following sensory deprivation has long inspired neuroscience research in the quest of understanding how sensory experience and genetics interact in developing the brain functional and structural architecture. Many studies have shown that sensory deprivation can lead to cross-modal fu...
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Published in | NeuroImage (Orlando, Fla.) Vol. 179; pp. 263 - 274 |
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Main Authors | , , , , , |
Format | Journal Article |
Language | English |
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United States
Elsevier Inc
01.10.2018
Elsevier Limited |
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ISSN | 1053-8119 1095-9572 1095-9572 |
DOI | 10.1016/j.neuroimage.2018.06.044 |
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Abstract | Neuroplasticity following sensory deprivation has long inspired neuroscience research in the quest of understanding how sensory experience and genetics interact in developing the brain functional and structural architecture. Many studies have shown that sensory deprivation can lead to cross-modal functional recruitment of sensory deprived cortices. Little is known however about how structural reorganization may support these functional changes. In this study, we examined early deaf, hearing signer and hearing non-signer individuals using diffusion MRI to evaluate the potential structural connectivity linked to the functional recruitment of the temporal voice area by face stimuli in deaf individuals. More specifically, we characterized the structural connectivity between occipital, fusiform and temporal regions typically supporting voice- and face-selective processing. Despite the extensive functional reorganization for face processing in the temporal cortex of the deaf, macroscopic properties of these connections did not differ across groups. However, both occipito- and fusiform-temporal connections showed significant microstructural changes between groups (fractional anisotropy reduction, radial diffusivity increase). We propose that the reorganization of temporal regions after early auditory deprivation builds on intrinsic and mainly preserved anatomical connectivity between functionally specific temporal and occipital regions.
•Macrostructural connectivity of the face-voice system is preserved in early deafness.•Early deafness impacts on the microstructural connectivity of the face-voice system.•Both genetics and experience shape structural connections in the face-voice system.•Innate anatomical networks might constrain the expression of cross-modal plasticity. |
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AbstractList | Neuroplasticity following sensory deprivation has long inspired neuroscience research in the quest of understanding how sensory experience and genetics interact in developing the brain functional and structural architecture. Many studies have shown that sensory deprivation can lead to cross-modal functional recruitment of sensory deprived cortices. Little is known however about how structural reorganization may support these functional changes. In this study, we examined early deaf, hearing signer and hearing non-signer individuals using diffusion MRI to evaluate the potential structural connectivity linked to the functional recruitment of the temporal voice area by face stimuli in deaf individuals. More specifically, we characterized the structural connectivity between occipital, fusiform and temporal regions typically supporting voice- and face-selective processing. Despite the extensive functional reorganization for face processing in the temporal cortex of the deaf, macroscopic properties of these connections did not differ across groups. However, both occipito- and fusiform-temporal connections showed significant microstructural changes between groups (fractional anisotropy reduction, radial diffusivity increase). We propose that the reorganization of temporal regions after early auditory deprivation builds on intrinsic and mainly preserved anatomical connectivity between functionally specific temporal and occipital regions.Neuroplasticity following sensory deprivation has long inspired neuroscience research in the quest of understanding how sensory experience and genetics interact in developing the brain functional and structural architecture. Many studies have shown that sensory deprivation can lead to cross-modal functional recruitment of sensory deprived cortices. Little is known however about how structural reorganization may support these functional changes. In this study, we examined early deaf, hearing signer and hearing non-signer individuals using diffusion MRI to evaluate the potential structural connectivity linked to the functional recruitment of the temporal voice area by face stimuli in deaf individuals. More specifically, we characterized the structural connectivity between occipital, fusiform and temporal regions typically supporting voice- and face-selective processing. Despite the extensive functional reorganization for face processing in the temporal cortex of the deaf, macroscopic properties of these connections did not differ across groups. However, both occipito- and fusiform-temporal connections showed significant microstructural changes between groups (fractional anisotropy reduction, radial diffusivity increase). We propose that the reorganization of temporal regions after early auditory deprivation builds on intrinsic and mainly preserved anatomical connectivity between functionally specific temporal and occipital regions. Neuroplasticity following sensory deprivation has long inspired neuroscience research in the quest of understanding how sensory experience and genetics interact in developing the brain functional and structural architecture. Many studies have shown that sensory deprivation can lead to cross-modal functional recruitment of sensory deprived cortices. Little is known however about how structural reorganization may support these functional changes. In this study, we examined early deaf, hearing signer and hearing non-signer individuals using diffusion MRI to evaluate the potential structural connectivity linked to the functional recruitment of the temporal voice area by face stimuli in deaf individuals. More specifically, we characterized the structural connectivity between occipital, fusiform and temporal regions typically supporting voice- and face-selective processing. Despite the extensive functional reorganization for face processing in the temporal cortex of the deaf, macroscopic properties of these connections did not differ across groups. However, both occipito- and fusiform-temporal connections showed significant microstructural changes between groups (fractional anisotropy reduction, radial diffusivity increase). We propose that the reorganization of temporal regions after early auditory deprivation builds on intrinsic and mainly preserved anatomical connectivity between functionally specific temporal and occipital regions. Neuroplasticity following sensory deprivation has long inspired neuroscience research in the quest of understanding how sensory experience and genetics interact in developing the brain functional and structural architecture. Many studies have shown that sensory deprivation can lead to cross-modal functional recruitment of sensory deprived cortices. Little is known however about how structural reorganization may support these functional changes. In this study, we examined early deaf, hearing signer and hearing non-signer individuals using diffusion MRI to evaluate the potential structural connectivity linked to the functional recruitment of the temporal voice area by face stimuli in deaf individuals. More specifically, we characterized the structural connectivity between occipital, fusiform and temporal regions typically supporting voice- and face-selective processing. Despite the extensive functional reorganization for face processing in the temporal cortex of the deaf, macroscopic properties of these connections did not differ across groups. However, both occipito- and fusiform-temporal connections showed significant microstructural changes between groups (fractional anisotropy reduction, radial diffusivity increase). We propose that the reorganization of temporal regions after early auditory deprivation builds on intrinsic and mainly preserved anatomical connectivity between functionally specific temporal and occipital regions. •Macrostructural connectivity of the face-voice system is preserved in early deafness.•Early deafness impacts on the microstructural connectivity of the face-voice system.•Both genetics and experience shape structural connections in the face-voice system.•Innate anatomical networks might constrain the expression of cross-modal plasticity. |
Author | Rabini, Giuseppe Novello, Lisa Jovicich, Jorge Benetti, Stefania Collignon, Olivier Maffei, Chiara |
Author_xml | – sequence: 1 givenname: Stefania orcidid: 0000-0003-3280-2860 surname: Benetti fullname: Benetti, Stefania email: stefania.benetti@unitn.it organization: Center for Mind/Brain Studies, University of Trento, 38123, Trento, Italy – sequence: 2 givenname: Lisa surname: Novello fullname: Novello, Lisa organization: Center for Mind/Brain Studies, University of Trento, 38123, Trento, Italy – sequence: 3 givenname: Chiara surname: Maffei fullname: Maffei, Chiara organization: Athinoula A. Martinos Center, Massachusetts General Hospital, Charlestown, MA, 01129, USA – sequence: 4 givenname: Giuseppe surname: Rabini fullname: Rabini, Giuseppe organization: Center for Mind/Brain Studies, University of Trento, 38123, Trento, Italy – sequence: 5 givenname: Jorge surname: Jovicich fullname: Jovicich, Jorge organization: Center for Mind/Brain Studies, University of Trento, 38123, Trento, Italy – sequence: 6 givenname: Olivier orcidid: 0000-0003-1882-3550 surname: Collignon fullname: Collignon, Olivier email: olivier.collignon@uclouvain.be organization: Center for Mind/Brain Studies, University of Trento, 38123, Trento, Italy |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/29908936$$D View this record in MEDLINE/PubMed |
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Keywords | FFA Deafness Cross-modal plasticity Diffusion-based tractography STS pSTS STG V2/3 Temporal voice area TVA Anatomical-functional connectivity |
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SubjectTerms | Adult Age Anatomical-functional connectivity Anisotropy Auditory deprivation Auditory Perception - physiology Auditory plasticity Brain architecture Brain Mapping Brain research Cross-modal Cross-modal plasticity Deafness Deafness - physiopathology Diffusion Magnetic Resonance Imaging Diffusion-based tractography Ethics Experiments Face Facial Recognition - physiology Female Functional plasticity Hearing Human subjects Humans Image Interpretation, Computer-Assisted Information processing Male Males Medical research Nervous system Neural networks Neural Pathways - physiopathology Neuronal Plasticity - physiology Neuroplasticity Occipital Lobe - physiopathology Pattern recognition Preferences Sensorimotor integration Sensory deprivation Sensory integration Sign language Somatosensory cortex Structure-function relationships Substantia alba Temporal lobe Temporal Lobe - physiopathology Temporal voice area White Matter - physiopathology |
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Title | White matter connectivity between occipital and temporal regions involved in face and voice processing in hearing and early deaf individuals |
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