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https://hdl.handle.net/1959.11/64381
Title: | Functional localization of the human color center by decreased water displacement using diffusion-weighted fMRI |
Contributor(s): | Williams, Rebecca J (author) ; Reutens, David C (author); Hocking, Julia (author) |
Publication Date: | 2015-11 |
Open Access: | Yes |
DOI: | 10.1002/brb3.408 |
Handle Link: | https://hdl.handle.net/1959.11/64381 |
Abstract: | | Introduction: Decreased water displacement following increased neural activity has been observed using diffusion-weighted functional MRI (DfMRI) at high b-values. The physiological mechanisms underlying the diffusion signal change may be unique from the standard blood oxygenation level-dependent (BOLD) contrast and closer to the source of neural activity. Whether DfMRI reflects neural activity more directly than BOLD outside the primary cerebral regions remains unclear. Methods: Colored and achromatic Mondrian visual stimuli were statistically contrasted to functionally localize the human color center Area V4 in neurologically intact adults. Spatial and temporal properties of DfMRI and BOLD activation were examined across regions of the visual cortex. Results: At the individual level, DfMRI activation patterns showed greater spatial specificity to V4 than BOLD. The BOLD activation patterns were more prominent in the primary visual cortex than DfMRI, where activation was localized to the ventral temporal lobe. Temporally, the diffusion signal change in V4 and V1 both preceded the corresponding hemodynamic response, however the early diffusion signal change was more evident in V1. Conclusions: DfMRI may be of use in imaging applications implementing cognitive subtraction paradigms, and where highly precise individual functional localization is required.
Publication Type: | Journal Article |
Source of Publication: | Brain and Behavior, 5(11), p. 1-12 |
Publisher: | John Wiley and Sons Ltd |
Place of Publication: | United Kingdom |
ISSN: | 2162-3279 |
Fields of Research (FoR) 2020: | 3205 Medical biochemistry and metabolomics |
Peer Reviewed: | Yes |
HERDC Category Description: | C1 Refereed Article in a Scholarly Journal |
Appears in Collections: | Journal Article School of Science and Technology
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