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Directional patterns of cross frequency phase and amplitude coupling within the resting state mimic patterns of fMRI functional connectivity

机译:fMRI功能连接的静止状态模拟模式内交叉频率相位和幅度耦合的方向图

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摘要

Functional imaging investigations into the brain's resting state interactions have yielded a wealth of insight into the intrinsic and dynamic neural architecture supporting cognition and behavior. Electrophysiological studies however have highlighted the fact that synchrony across large-scale cortical systems is composed of spontaneous interactions occurring at timescales beyond the traditional resolution of fMRI, a feature that limits the capacity of fMRI to draw inference on the true directional relationship between network nodes. To approach the question of directionality in resting state signals, we recorded resting state functional MRI (rsfMRI) and electrocorticography (ECoG) from four human subjects undergoing invasive epilepsy monitoring. Using a seed-point based approach, we employed phase-amplitude coupling (PAC) and biPhase Locking Values (bPLV), two measures of cross-frequency coupling (CFC) to explore both outgoing and incoming connections between the seed and all non-seed, site electrodes. We observed robust PAC between a wide range of low-frequency phase and high frequency amplitude estimates. However, significant bPLV, a CFC measure of phase-phase synchrony, was only observed at specific narrow low and high frequency bandwidths. Furthermore, the spatial patterns of outgoing PAC connectivity were most closely associated with the rsfMRI connectivity maps. Our results support the hypothesis that PAC is relatively ubiquitous phenomenon serving as a mechanism for coordinating high-frequency amplitudes across distant neuronal assemblies even in absence of overt task structure. Additionally, we demonstrate that the spatial distribution of a seed-point rsfMRI sensorimotor network is strikingly similar to specific patterns of directional PAC. Specifically, the high frequency activities of distal patches of cortex owning membership in a rsfMRI sensorimotor network were most likely to be entrained to the phase of a low frequency rhythm engendered from the neural populations at the seed-point, suggestive of greater directional coupling from the seed out to the site electrodes.
机译:对大脑静止状态相互作用的功能成像研究已经获得了对支持认知和行为的内在和动态神经体系结构的丰富见解。然而,电生理学研究强调了一个事实,即跨大型皮质系统的同步是由自发的相互作用组成的,这些自发的相互作用发生在超出传统功能磁共振成像分辨率的时间范围内,该功能限制了功能磁共振成像对网络节点之间真实方向关系进行推断的能力。为了解决静息状态信号的方向性问题,我们记录了来自四名接受有创性癫痫监测的人类受试者的静息状态功能MRI(rsfMRI)和脑电图(ECoG)。使用基于种子点的方法,我们采用了相幅耦合(PAC)和双相锁定值(bPLV)(交叉频率耦合(CFC)的两种测量方法)来探索种子与所有非种子之间的传出和传入连接,现场电极。我们观察到了广泛的低频相位和高频幅度估计之间的鲁棒PAC。但是,仅在特定的窄低频和高频带宽下才能观察到明显的bPLV,即CFC测量的相间同步。此外,输出PAC连接的空间模式与rsfMRI连接图最紧密相关。我们的研究结果支持以下假设:PAC是一种相对普遍的现象,即使在没有明显的任务结构的情况下,它也可以作为协调跨遥远的神经元组件的高频振幅的机制。此外,我们证明了种子点rsfMRI感觉运动网络的空间分布惊人地类似于定向PAC的特定模式。具体而言,在rsfMRI感觉运动网络中拥有隶属关系的皮质远端斑块的高频活动最有可能被诱捕到种子点处神经种群引起的低频节律的相位,这提示来自神经网络的方向性耦合更大。播种到部位电极。

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