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内源性德尔塔/θ 脑相位同步加速听觉流的形成。

Endogenous Delta/Theta Sound-Brain Phase Entrainment Accelerates the Buildup of Auditory Streaming.

机构信息

Department of Cognitive Neuroscience, Faculty of Psychology and Neuroscience, Maastricht University, 6229 Maastricht, the Netherlands.

Department of Cognitive Neuroscience, Faculty of Psychology and Neuroscience, Maastricht University, 6229 Maastricht, the Netherlands.

出版信息

Curr Biol. 2015 Dec 21;25(24):3196-201. doi: 10.1016/j.cub.2015.10.045. Epub 2015 Nov 25.

Abstract

In many natural listening situations, meaningful sounds (e.g., speech) fluctuate in slow rhythms among other sounds. When a slow rhythmic auditory stream is selectively attended, endogenous delta (1‒4 Hz) oscillations in auditory cortex may shift their timing so that higher-excitability neuronal phases become aligned with salient events in that stream [1, 2]. As a consequence of this stream-brain phase entrainment [3], these events are processed and perceived more readily than temporally non-overlapping events [4-11], essentially enhancing the neural segregation between the attended stream and temporally noncoherent streams [12]. Stream-brain phase entrainment is robust to acoustic interference [13-20] provided that target stream-evoked rhythmic activity can be segregated from noncoherent activity evoked by other sounds [21], a process that usually builds up over time [22-27]. However, it has remained unclear whether stream-brain phase entrainment functionally contributes to this buildup of rhythmic streams or whether it is merely an epiphenomenon of it. Here, we addressed this issue directly by experimentally manipulating endogenous stream-brain phase entrainment in human auditory cortex with non-invasive transcranial alternating current stimulation (TACS) [28-30]. We assessed the consequences of these manipulations on the perceptual buildup of the target stream (the time required to recognize its presence in a noisy background), using behavioral measures in 20 healthy listeners performing a naturalistic listening task. Experimentally induced cyclic 4-Hz variations in stream-brain phase entrainment reliably caused a cyclic 4-Hz pattern in perceptual buildup time. Our findings demonstrate that strong endogenous delta/theta stream-brain phase entrainment accelerates the perceptual emergence of task-relevant rhythmic streams in noisy environments.

摘要

在许多自然聆听情境中,有意义的声音(例如语音)会在其他声音中以缓慢的节奏波动。当有节奏的听觉流被选择性地注意到时,听觉皮层中的内源性 delta(1-4 Hz)振荡可能会改变其时间,使得兴奋性更高的神经元相位与该流中的显著事件对齐[1,2]。由于这种流-脑相位同步[3],这些事件比时间上不重叠的事件更容易被处理和感知[4-11],本质上增强了被注意流与时间上非相干流之间的神经分离[12]。流-脑相位同步对声学干扰具有鲁棒性[13-20],前提是目标流诱发的节律活动可以与其他声音诱发的非相干活动区分开来[21],这个过程通常随着时间的推移而建立[22-27]。然而,目前仍不清楚流-脑相位同步是否对这种节律流的建立过程有功能贡献,或者它是否只是其伴随现象。在这里,我们通过使用非侵入性经颅交流电刺激(TACS)[28-30]来直接操纵人类听觉皮层中的内源性流-脑相位同步,从而解决了这个问题。我们使用 20 名健康听众在执行自然聆听任务时的行为测量来评估这些操纵对目标流的感知建立(识别其在嘈杂背景中存在所需的时间)的影响。实验诱导的流-脑相位同步的 4-Hz 周期性变化可靠地导致了感知建立时间的 4-Hz 周期性模式。我们的研究结果表明,强的内源性 delta/theta 流-脑相位同步加速了在嘈杂环境中任务相关的节律流的感知出现。

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