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Instantaneous Voltage as an Alternative to Power- and Phase-Based Interpretation of Oscillatory Brain Activity

机译:瞬时电压可替代基于功率和相位的振荡性大脑活动解释

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摘要

For decades, oscillatory brain activity has been characterized primarily by measurements of power and phase. While many studies have linked those measurements to cortical excitability, their relationship to each other and to the physiological underpinnings of excitability is unclear. The recently proposed Function-through-Biased-Oscillations (FBO) hypothesis [] addressed these issues by suggesting that the voltage potential at the cortical surface directly reflects the excitability of cortical populations, that this voltage is rhythmically driven away from a low resting potential (associated with depolarized cortical populations) towards positivity (associated with hyperpolarized cortical populations). This view explains how oscillatory power and phase together influence the instantaneous voltage potential that directly regulates cortical excitability. This implies that the alternative measurement of instantaneous voltage of oscillatory activity should better predict cortical excitability compared to either of the more traditional measurements of power or phase. Using electrocorticographic (ECoG) data from 28 human subjects, the results of our study confirm this prediction: compared to oscillatory power and phase, the instantaneous voltage explained 20% and 31% more of the variance in broadband gamma, respectively, and power and phase together did not produce better predictions than the instantaneous voltage. These results synthesize the previously separate power- and phase-based interpretations and associate oscillatory activity directly with a physiological interpretation of cortical excitability. This alternative view has implications for the interpretation of studies of oscillatory activity and for current theories of cortical information transmission.
机译:几十年来,振荡性大脑活动的主要特征是功率和相位的测量。尽管许多研究已将这些测量值与皮层兴奋性联系起来,但是它们之间的关系以及兴奋性的生理基础尚不清楚。最近提出的“通过偏置振荡功能”(FBO)假说解决了这些问题,表明皮质表面的电势直接反映了皮质种群的兴奋性,该电压有节奏地从低静息电位驱散(与去极化皮层种群相关)朝着阳性(与超极化皮层种群相关)。该视图说明了振荡功率和相位如何共同影响直接调节皮层兴奋性的瞬时电势。这意味着与更传统的功率或相位测量相比,对振荡活动瞬时电压的替代测量应更好地预测皮层兴奋性。使用来自28个人类受试者的脑电图(ECoG)数据,我们的研究结果证实了这一预测:与振荡功率和相位相比,瞬时电压分别解释了宽带伽马,功率和相位的20%和31%的方差两者并没有比瞬时电压产生更好的预测。这些结果综合了先前基于功率和相位的独立解释,并将振荡活动与皮层兴奋性的生理解释直接相关联。这种替代观点对振荡活动的研究解释和当前的皮层信息传输理论都具有启示意义。

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