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经颅随机噪声刺激(tRNS)塑造快速变化听觉信息的处理过程。

Transcranial Random Noise Stimulation (tRNS) Shapes the Processing of Rapidly Changing Auditory Information.

作者信息

Rufener Katharina S, Ruhnau Philipp, Heinze Hans-Jochen, Zaehle Tino

机构信息

Department of Neurology, Otto-von-Guericke UniversityMagdeburg, Germany.

出版信息

Front Cell Neurosci. 2017 Jun 8;11:162. doi: 10.3389/fncel.2017.00162. eCollection 2017.

Abstract

Neural oscillations in the gamma range are the dominant rhythmic activation pattern in the human auditory cortex. These gamma oscillations are functionally relevant for the processing of rapidly changing acoustic information in both speech and non-speech sounds. Accordingly, there is a tight link between the temporal resolution ability of the auditory system and inherent neural gamma oscillations. Transcranial random noise stimulation (tRNS) has been demonstrated to specifically increase gamma oscillation in the human auditory cortex. However, neither the physiological mechanisms of tRNS nor the behavioral consequences of this intervention are completely understood. In the present study we stimulated the human auditory cortex bilaterally with tRNS while EEG was continuously measured. Modulations in the participants' temporal and spectral resolution ability were investigated by means of a gap detection task and a pitch discrimination task. Compared to sham, auditory tRNS increased the detection rate for near-threshold stimuli in the temporal domain only, while no such effect was present for the discrimination of spectral features. Behavioral findings were paralleled by reduced peak latencies of the P50 and N1 component of the auditory event-related potentials (ERP) indicating an impact on early sensory processing. The facilitating effect of tRNS was limited to the processing of near-threshold stimuli while stimuli clearly below and above the individual perception threshold were not affected by tRNS. This non-linear relationship between the signal-to-noise level of the presented stimuli and the effect of stimulation further qualifies stochastic resonance (SR) as the underlying mechanism of tRNS on auditory processing. Our results demonstrate a tRNS related improvement in acoustic perception of time critical auditory information and, thus, provide further indices that auditory tRNS can amplify the resonance frequency of the auditory system.

摘要

伽马波段的神经振荡是人类听觉皮层中主要的节律性激活模式。这些伽马振荡在语音和非语音声音中快速变化的声学信息处理方面具有功能相关性。因此,听觉系统的时间分辨率能力与固有的神经伽马振荡之间存在紧密联系。经颅随机噪声刺激(tRNS)已被证明能特异性增加人类听觉皮层中的伽马振荡。然而,tRNS的生理机制以及这种干预的行为后果尚未完全明确。在本研究中,我们在持续测量脑电图(EEG)的同时,用tRNS双侧刺激人类听觉皮层。通过间隙检测任务和音高辨别任务研究了参与者时间和频谱分辨率能力的调制情况。与假刺激相比,听觉tRNS仅增加了时域中近阈值刺激的检测率,而在频谱特征辨别方面没有这种效果。听觉事件相关电位(ERP)的P50和N1成分的峰值潜伏期缩短与行为学结果平行,表明对早期感觉处理有影响。tRNS的促进作用仅限于近阈值刺激的处理,而明显低于和高于个体感知阈值的刺激不受tRNS影响。所呈现刺激的信噪比与刺激效果之间的这种非线性关系进一步证明随机共振(SR)是tRNS对听觉处理的潜在机制。我们的结果表明tRNS能改善对时间关键听觉信息的声学感知,从而进一步表明听觉tRNS可以放大听觉系统的共振频率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e868/5463504/302cb5e21f03/fncel-11-00162-g0001.jpg

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