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Functional Connectivity in Frequency-Tagged Cortical Networks During Active Harm Avoidance

机译:主动避障过程中带有频率标签的皮层网络中的功能连接

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摘要

Many behavioral and cognitive processes are grounded in widespread and dynamic communication between brain regions. Thus, the quantification of functional connectivity with high temporal resolution is highly desirable for capturing in vivo brain function. However, many of the commonly used measures of functional connectivity capture only linear signal dependence and are based entirely on relatively simple quantitative measures such as mean and variance. In this study, the authors used a recently developed algorithm, the generalized measure of association (GMA), to quantify dynamic changes in cortical connectivity using steady-state visual evoked potentials (ssVEPs) measured in the context of a conditioned behavioral avoidance task. GMA uses a nonparametric estimator of statistical dependence based on ranks that are efficient and capable of providing temporal precision roughly corresponding to the timing of cognitive acts (∼100–200 msec). Participants viewed simple gratings predicting the presence/absence of an aversive loud noise, co-occurring with peripheral cues indicating whether the loud noise could be avoided by means of a key press (active) or not (passive). For active compared with passive trials, heightened connectivity between visual and central areas was observed in time segments preceding and surrounding the avoidance cue. Viewing of the threat stimuli also led to greater initial connectivity between occipital and central regions, followed by heightened local coupling among visual regions surrounding the motor response. Local neural coupling within extended visual regions was sustained throughout major parts of the viewing epoch. These findings are discussed in a framework of flexible synchronization between cortical networks as a function of experience and active sensorimotor coupling.
机译:许多行为和认知过程都基于大脑区域之间广泛而动态的交流。因此,非常需要量化具有高时间分辨率的功能连通性以捕获体内脑功能。但是,许多常用的功能连接性度量仅捕获线性信号依赖性,并且完全基于相对简单的定量度量,例如均值和方差。在这项研究中,作者使用一种最新开发的算法,即广义关联度(GMA),通过在有条件的行为回避任务的背景下测得的稳态视觉诱发电位(ssVEP)来量化皮质连通性的动态变化。 GMA使用基于等级的统计依赖性的非参数估计量,该等级有效且能够提供大致对应于认知行为的时间(〜100–200µmsec)的时间精度。参加者查看了简单的光栅,这些光栅可预测是否存在厌恶的喧闹声,并与外围提示同时出现,这些提示指示是否可以通过按键(主动)避免(主动)避免喧闹声。对于主动试验与被动试验相比,在避开线索之前和周围的时间段观察到视觉和中心区域之间的连通性增强。观察威胁刺激还导致枕骨和中央区域之间的初始连通性增强,随后在运动反应周围的视觉区域之间局部耦合增强。在整个视觉时代的主要部分,视觉区域内的局部神经耦合一直持续。这些发现在皮质网络之间的灵活同步框架中进行了讨论,该框架是经验和主动感觉运动耦合的函数。

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