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刺激前阿尔法功率、相位和同步对生物物理吸引子网络模型中刺激检测率的影响。

Effect of prestimulus alpha power, phase, and synchronization on stimulus detection rates in a biophysical attractor network model.

机构信息

Department of Computational Biology, Royal Institute of Technology-KTH and Stockholm University, 11421 Stockholm, Sweden.

出版信息

J Neurosci. 2013 Jul 17;33(29):11817-24. doi: 10.1523/JNEUROSCI.5155-12.2013.

Abstract

Spontaneous oscillations measured by local field potentials, electroencephalograms and magnetoencephalograms exhibit a pronounced peak in the alpha band (8-12 Hz) in humans and primates. Both instantaneous power and phase of these ongoing oscillations have commonly been observed to correlate with psychophysical performance in stimulus detection tasks. We use a novel model-based approach to study the effect of prestimulus oscillations on detection rate. A previously developed biophysically detailed attractor network exhibits spontaneous oscillations in the alpha range before a stimulus is presented and transiently switches to gamma-like oscillations on successful detection. We demonstrate that both phase and power of the ongoing alpha oscillations modulate the probability of such state transitions. The power can either positively or negatively correlate with the detection rate, in agreement with experimental findings, depending on the underlying neural mechanism modulating the oscillatory power. Furthermore, the spatially distributed alpha oscillators of the network can be synchronized by global nonspecific weak excitatory signals. These synchronization events lead to transient increases in alpha-band power and render the network sensitive to the exact timing of target stimuli, making the alpha cycle function as a temporal mask in line with recent experimental observations. Our results are relevant to several studies that attribute a modulatory role to prestimulus alpha dynamics.

摘要

自发振荡通过局部场电位、脑电图和脑磁图测量,在人类和灵长类动物中表现出明显的 alpha 波段峰值(8-12 Hz)。这些持续振荡的瞬时功率和相位通常与刺激检测任务中的心理物理性能相关。我们使用一种新的基于模型的方法来研究刺激前振荡对检测率的影响。一个以前开发的具有详细生物物理特性的吸引子网络在呈现刺激之前表现出 alpha 范围内的自发振荡,并在成功检测时短暂切换到类似伽马的振荡。我们证明,正在进行的 alpha 振荡的相位和功率都会调节这种状态转变的概率。根据调节振荡功率的潜在神经机制,功率可以与检测率呈正相关或负相关,这与实验结果一致。此外,网络的空间分布的 alpha 振荡器可以通过全局非特异性弱兴奋性信号进行同步。这些同步事件导致 alpha 频带功率的短暂增加,并使网络对目标刺激的精确时间敏感,使 alpha 周期作为时间掩蔽,与最近的实验观察一致。我们的结果与几项研究相关,这些研究认为刺激前 alpha 动力学具有调节作用。

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