Literature DB >> 22042512

Transcallosal sensorimotor fiber tract structure-function relationships.

Brett W Fling1, Bryan L Benson, Rachael D Seidler.   

Abstract

Recent studies have demonstrated neuroanatomically selective relationships among white matter tract microstructure, physiological function, and task performance. Such findings suggest that the microstructure of transcallosal motor fibers may reflect the capacity for interhemispheric inhibition between the primary motor cortices, although full characterization of the transcallosal inhibitory sensorimotor network is lacking. Thus, the goal of this study was to provide a comprehensive description of transcallosal fibers connecting homologous sensorimotor cortical regions and to identify the relationship(s) between fiber tract microstructure and interhemispheric inhibition during voluntary cortical activity. To this end, we assessed microstructure of fiber tracts connecting homologous sensorimotor regions of the cortex with diffusion tensor imaging. We also assessed interhemispheric inhibition by eliciting the ipsilateral silent period (iSP) within the same participants. We mapped mutually exclusive transcallosal connections between homologous sensorimotor regions and computed quantitative metrics of each fiber tract. Paralleling work in non-human primates, we found the densest interhemispheric sensorimotor connections to be between the medial motor areas. Additionally, we provide a midsagittal callosal atlas in normalized Montreal Neurological Institute (MNI) space for future studies to use when investigating callosal fiber tracts connecting primary and secondary sensorimotor cortices. Finally, we report a strong, positive relationship (r = 0.76) between strength of interhemispheric inhibition (iSP) and microstructure of interhemispheric fibers that is specific to tracts connecting the primary motor cortices. Thus, increased fiber microstructure in young adults predicts interhemispheric inhibitory capacity.
Copyright © 2011 Wiley Periodicals, Inc.

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Year:  2011        PMID: 22042512      PMCID: PMC3271163          DOI: 10.1002/hbm.21437

Source DB:  PubMed          Journal:  Hum Brain Mapp        ISSN: 1065-9471            Impact factor:   5.038


  62 in total

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5.  Anisotropy of callosal motor fibers in combination with transcranial magnetic stimulation in the course of motor development.

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  39 in total

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7.  Brain-Machine Interface Induced Morpho-Functional Remodeling of the Neural Motor System in Severe Chronic Stroke.

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10.  Reduced striato-cortical and inhibitory transcallosal connectivity in the motor circuit of Huntington's disease patients.

Authors:  Clara Garcia-Gorro; Ruth de Diego-Balaguer; Saul Martínez-Horta; Jesus Pérez-Pérez; Jaime Kulisevsky; Nadia Rodríguez-Dechicha; Irene Vaquer; Susana Subira; Matilde Calopa; Esteban Muñoz; Pilar Santacruz; Jesús Ruiz-Idiago; Celia Mareca; Nuria Caballol; Estela Camara
Journal:  Hum Brain Mapp       Date:  2017-10-08       Impact factor: 5.038

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