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首页> 外文期刊>The European Journal of Neuroscience >Areas V1 and V2 show microsaccade-related 3-4-Hz covariation in gamma power and frequency
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Areas V1 and V2 show microsaccade-related 3-4-Hz covariation in gamma power and frequency

机译:区域V1和V2在伽马功率和频率上显示了与微扫视相关的3-4-Hz协变

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摘要

Neuronal gamma-band synchronization (25-80 Hz) in visual cortex appears sustained and stable during prolonged visual stimulation when investigated with conventional averages across trials. However, recent studies in macaque visual cortex have used single-trial analyses to show that both power and frequency of gamma oscillations exhibit substantial moment-by-moment variation. This has raised the question of whether these apparently random variations might limit the functional role of gamma-band synchronization for neural processing. Here, we studied the moment-by-moment variation in gamma oscillation power and frequency, as well as inter-areal gamma synchronization, by simultaneously recording local field potentials in V1 and V2 of two macaque monkeys. We additionally analyzed electrocorticographic V1 data from a third monkey. Our analyses confirm that gamma-band synchronization is not stationary and sustained but undergoes moment-by-moment variations in power and frequency. However, those variations are neither random and nor a possible obstacle to neural communication. Instead, the gamma power and frequency variations are highly structured, shared between areas and shaped by a microsaccade-related 3-4-Hz theta rhythm. Our findings provide experimental support for the suggestion that cross-frequency coupling might structure and facilitate the information flow between brain regions.
机译:当在整个试验中使用常规平均值进行调查时,在长时间的视觉刺激过程中,视觉皮层中的神经元伽马带同步(25-80 Hz)似乎持续且稳定。但是,最近对猕猴视觉皮层的研究已使用单次试验分析来显示,伽马振荡的功率和频率均表现出明显的瞬时变化。这就提出了一个问题,即这些表面上随机的变化是否可能会限制伽玛波段同步在神经处理中的功能作用。在这里,我们通过同时记录两只猕猴的V1和V2的局部场电势,研究了伽玛振荡功率和频率的瞬时变化以及区域间伽玛同步。我们还分析了来自第三只猴子的脑电图V1数据。我们的分析证实,伽马波段同步不是平稳的和持续的,而是在功率和频率上经历了瞬间的变化。但是,这些变化既不是随机的,也不是神经沟通的可能障碍。取而代之的是,伽马功率和频率变化是高度结构化的,在区域之间共享,并由与微扫视相关的3-4-Hz theta节奏来成形。我们的发现为跨频耦合可能构造并促进大脑区域之间的信息流动的建议提供了实验支持。

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