Extended Broca’s Area in the Functional Connectome of Language in Adults: Combined Cortical and Subcortical Single-Subject Analysis Using fMRI and DTI Tractography
Traditional models of the human language circuitry encompass three cortical areas, Broca’s, Geschwind’s and Wernicke’s, and their connectivity through white matter fascicles. The neural connectivity deep to these cortical areas remains poorly understood, as does the macroscopic functional organizati...
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Published in | Brain topography Vol. 26; no. 3; pp. 428 - 441 |
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Main Authors | , , , , , , , , , , |
Format | Journal Article |
Language | English |
Published |
Boston
Springer US
01.07.2013
Springer Nature B.V |
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Online Access | Get full text |
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Abstract | Traditional models of the human language circuitry encompass three cortical areas, Broca’s, Geschwind’s and Wernicke’s, and their connectivity through white matter fascicles. The neural connectivity deep to these cortical areas remains poorly understood, as does the macroscopic functional organization of the cortico-subcortical language circuitry. In an effort to expand current knowledge, we combined functional MRI (fMRI) and diffusion tensor imaging to explore subject-specific structural and functional macroscopic connectivity, focusing on Broca’s area. Fascicles were studied using diffusion tensor imaging fiber tracking seeded from volumes placed manually within the white matter. White matter fascicles and fMRI-derived clusters (antonym-generation task) of positive and negative blood-oxygen-level-dependent (BOLD) signal were co-registered with 3-D renderings of the brain in 12 healthy subjects. Fascicles connecting BOLD-derived clusters were analyzed within specific cortical areas: Broca’s, with the pars triangularis, the pars opercularis, and the pars orbitaris; Geschwind’s and Wernicke’s; the premotor cortex, the dorsal supplementary motor area, the middle temporal gyrus, the dorsal prefrontal cortex and the frontopolar region. We found a functional connectome divisible into three systems—anterior, superior and inferior—around the insula, more complex than previously thought, particularly with respect to a new extended Broca’s area. The extended Broca’s area involves two new fascicles: the operculo-premotor fascicle comprised of well-organized U-shaped fibers that connect the pars opercularis with the premotor region; and (2) the triangulo-orbitaris system comprised of intermingled U-shaped fibers that connect the pars triangularis with the pars orbitaris. The findings enhance our understanding of language function. |
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AbstractList | Traditional models of the human language circuitry encompass three cortical areas, Broca's, Geschwind's and Wernicke's, and their connectivity through white matter fascicles. The neural connectivity deep to these cortical areas remains poorly understood, as does the macroscopic functional organization of the cortico-subcortical language circuitry. In an effort to expand current knowledge, we combined functional MRI (fMRI) and diffusion tensor imaging to explore subject-specific structural and functional macroscopic connectivity, focusing on Broca's area. Fascicles were studied using diffusion tensor imaging fiber tracking seeded from volumes placed manually within the white matter. White matter fascicles and fMRI-derived clusters (antonym-generation task) of positive and negative blood-oxygen-level-dependent (BOLD) signal were co-registered with 3-D renderings of the brain in 12 healthy subjects. Fascicles connecting BOLD-derived clusters were analyzed within specific cortical areas: Broca's, with the pars triangularis, the pars opercularis, and the pars orbitaris; Geschwind's and Wernicke's; the premotor cortex, the dorsal supplementary motor area, the middle temporal gyrus, the dorsal prefrontal cortex and the frontopolar region. We found a functional connectome divisible into three systems--anterior, superior and inferior--around the insula, more complex than previously thought, particularly with respect to a new extended Broca's area. The extended Broca's area involves two new fascicles: the operculo-premotor fascicle comprised of well-organized U-shaped fibers that connect the pars opercularis with the premotor region; and (2) the triangulo-orbitaris system comprised of intermingled U-shaped fibers that connect the pars triangularis with the pars orbitaris. The findings enhance our understanding of language function.[PUBLICATION ABSTRACT] Traditional models of the human language circuitry encompass three cortical areas, Broca's, Geschwind's and Wernicke's, and their connectivity through white matter fascicles. The neural connectivity deep to these cortical areas remains poorly understood, as does the macroscopic functional organization of the cortico-subcortical language circuitry. In an effort to expand current knowledge, we combined functional MRI (fMRI) and diffusion tensor imaging to explore subject-specific structural and functional macroscopic connectivity, focusing on Broca's area. Fascicles were studied using diffusion tensor imaging fiber tracking seeded from volumes placed manually within the white matter. White matter fascicles and fMRI-derived clusters (antonym-generation task) of positive and negative blood-oxygen-level-dependent (BOLD) signal were co-registered with 3-D renderings of the brain in 12 healthy subjects. Fascicles connecting BOLD-derived clusters were analyzed within specific cortical areas: Broca's, with the pars triangularis, the pars opercularis, and the pars orbitaris; Geschwind's and Wernicke's; the premotor cortex, the dorsal supplementary motor area, the middle temporal gyrus, the dorsal prefrontal cortex and the frontopolar region. We found a functional connectome divisible into three systems-anterior, superior and inferior-around the insula, more complex than previously thought, particularly with respect to a new extended Broca's area. The extended Broca's area involves two new fascicles: the operculo-premotor fascicle comprised of well-organized U-shaped fibers that connect the pars opercularis with the premotor region; and (2) the triangulo-orbitaris system comprised of intermingled U-shaped fibers that connect the pars triangularis with the pars orbitaris. The findings enhance our understanding of language function. Traditional models of the human language circuitry encompass three cortical areas, Broca's, Geschwind's and Wernicke's, and their connectivity through white matter fascicles. The neural connectivity deep to these cortical areas remains poorly understood, as does the macroscopic functional organization of the cortico-subcortical language circuitry. In an effort to expand current knowledge, we combined functional MRI (fMRI) and diffusion tensor imaging to explore subject-specific structural and functional macroscopic connectivity, focusing on Broca's area. Fascicles were studied using diffusion tensor imaging fiber tracking seeded from volumes placed manually within the white matter. White matter fascicles and fMRI-derived clusters (antonym-generation task) of positive and negative blood-oxygen-level-dependent (BOLD) signal were co-registered with 3-D renderings of the brain in 12 healthy subjects. Fascicles connecting BOLD-derived clusters were analyzed within specific cortical areas: Broca's, with the pars triangularis, the pars opercularis, and the pars orbitaris; Geschwind's and Wernicke's; the premotor cortex, the dorsal supplementary motor area, the middle temporal gyrus, the dorsal prefrontal cortex and the frontopolar region. We found a functional connectome divisible into three systems-anterior, superior and inferior-around the insula, more complex than previously thought, particularly with respect to a new extended Broca's area. The extended Broca's area involves two new fascicles: the operculo-premotor fascicle comprised of well-organized U-shaped fibers that connect the pars opercularis with the premotor region; and (2) the triangulo-orbitaris system comprised of intermingled U-shaped fibers that connect the pars triangularis with the pars orbitaris. The findings enhance our understanding of language function. Adapted from the source document |
Author | Golby, Alexandra Tie, Yanmei Westin, Carl-Fredrik Pujol, Sonia Kikinis, Ron Rigolo, Laura Yarmarkovich, Alexander Jolesz, Ferenc Wells, William M. Lemaire, Jean-Jacques Pieper, Steve |
Author_xml | – sequence: 1 givenname: Jean-Jacques surname: Lemaire fullname: Lemaire, Jean-Jacques email: jjlemaire@chu-clermontferrand.fr organization: Surgical Planning Laboratory, Harvard Medical School, Image-Guided Clinical Neuroscience and Connectomics, EA 7282, UFR Médecine, Univ Clermont 1, Universite d’Auvergne, Service de Neurochirurgie A, Hôpital Gabriel Montpied – sequence: 2 givenname: Alexandra surname: Golby fullname: Golby, Alexandra organization: Surgical Planning Laboratory, Harvard Medical School – sequence: 3 givenname: William M. surname: Wells fullname: Wells, William M. organization: Surgical Planning Laboratory, Harvard Medical School – sequence: 4 givenname: Sonia surname: Pujol fullname: Pujol, Sonia organization: Surgical Planning Laboratory, Harvard Medical School – sequence: 5 givenname: Yanmei surname: Tie fullname: Tie, Yanmei organization: Surgical Planning Laboratory, Harvard Medical School – sequence: 6 givenname: Laura surname: Rigolo fullname: Rigolo, Laura organization: Surgical Planning Laboratory, Harvard Medical School – sequence: 7 givenname: Alexander surname: Yarmarkovich fullname: Yarmarkovich, Alexander organization: Surgical Planning Laboratory, Harvard Medical School – sequence: 8 givenname: Steve surname: Pieper fullname: Pieper, Steve organization: Surgical Planning Laboratory, Harvard Medical School – sequence: 9 givenname: Carl-Fredrik surname: Westin fullname: Westin, Carl-Fredrik organization: Surgical Planning Laboratory, Harvard Medical School – sequence: 10 givenname: Ferenc surname: Jolesz fullname: Jolesz, Ferenc organization: Surgical Planning Laboratory, Harvard Medical School – sequence: 11 givenname: Ron surname: Kikinis fullname: Kikinis, Ron organization: Surgical Planning Laboratory, Harvard Medical School |
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SubjectTerms | Adult Anisotropy Biomedical and Life Sciences Biomedicine Connectome Diffusion Tensor Imaging Female Frontal Lobe - blood supply Frontal Lobe - physiology Humans Image Processing, Computer-Assisted Language Magnetic Resonance Imaging Male Nerve Fibers, Myelinated Neural Pathways - blood supply Neural Pathways - physiology Neurology Neurosciences Original Paper Oxygen - blood Psychiatry Young Adult |
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Title | Extended Broca’s Area in the Functional Connectome of Language in Adults: Combined Cortical and Subcortical Single-Subject Analysis Using fMRI and DTI Tractography |
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