期刊
NEURON
卷 100, 期 4, 页码 953-+出版社
CELL PRESS
DOI: 10.1016/j.neuron.2018.09.019
关键词
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资金
- DFG [SPP 1665, FOR 1847, FR2557/5-1-CORNET, FR2557/6-1-NeuroTMR]
- EU [HEALTH-F2-2008-200728-BrainSynch, FP7-604102-HBP, FP7-600730-Magnetrodes]
- European Young Investigator Award
- NIH [1U54MH091657-WU-Minn-Consortium-HCP]
- LOEWE (NeFF)
- NATIONAL INSTITUTE OF MENTAL HEALTH [U54MH091657] Funding Source: NIH RePORTER
Behavior is often driven by visual stimuli, relying on feedforward communication from lower to higher visual areas. Effective communication depends on enhanced interareal coherence, but it remains unclear whether this coherence occurs at an optimal phase relation that actually improves stimulus transmission to behavioral report. We recorded local field potentials from V1 and V4 of macaques performing an attention task during which they reported changes in the attended stimulus. V1-V4 gamma synchronization immediately preceding the stimulus change partly predicted subsequent reaction times (RTs). RTs slowed systematically as trial-by-trial interareal gamma phase relations deviated from the phase relation at which V1 and V4 synchronized on average. V1-V4 gamma phase relations accounted for RT differences of 13-31 ms. Effects were specific to the attended stimulus and not explained by local power or phase. Thus, interareal gamma synchronization occurs at the optimal phase relation for transmission of sensory inputs to motor responses.
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