Distinct effects of attention on the neural responses to form and motion processing: a SSVEP source-imaging study.

Distinct effects of attention on the neural responses to form and motion processing: a SSVEP source-imaging study.
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注意力对形式和运动处理的神经反应的独特影响:SSVEP 源成像研究。

DOI:
10.1167/12.10.15
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发表时间:
2012
期刊:
影响因子:
1.8
通讯作者:
Norcia,AnthonyM
Norcia,AnthonyM
中科院分区:
医学4区
文献类型:
--
作者:
Palomares,Melanie;Ales,JustinM;Wade,AlexR;Cottereau,BenoitR;Norcia,AnthonyM

文献摘要

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Abstract:Abstract We measured neural responses to local and global aspects of form and motion stimuli using frequency-tagged, steady-state visual evoked potentials (SSVEPs) combined with magnetic resonance imaging (MRI) data. Random dot stimuli were used to portray either dynamic Glass patterns (Glass, 1969) or coherent motion displays. SSVEPs were used to estimate neural activity in a set of fMRI-defined visual areas in each subject. To compare activity associated with local versus global processing, we analyzed two frequency components of the SSVEP in each visual area: the high temporal frequency at which the local dots were updated (30 Hz) and the much lower frequency corresponding to updates in the global structure (0.83 Hz). Local and global responses were evaluated in the context of two different behavioral tasks—subjects had to either direct their attention toward or away from the global coherence of the stimuli. The data show that the effect of attention on global and local responses is both stimulus and visual area dependent. When attention was directed away from stimulus coherence, both local and global responses were higher in the coherent motion than Glass pattern condition. Directing attention to coherence in Glass patterns enhanced global activity in areas LOC, hMT+, V4, V3a, and V1, while attention to global motion modulated responses by a smaller amount in a smaller set of areas: V4, hMT+, and LOC. In contrast, directing attention towards stimulus coherence weakly increased local responses to both coherent motion and Glass patterns. These results suggest that visual attention differentially modulates the activity of early visual areas at both local and global levels of structural encoding.