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Neural Dynamics of Phonological Processing in the Dorsal Auditory Stream

机译:背听流中语音处理的神经动力学

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摘要

Neuroanatomical models hypothesize a role for the dorsal auditory pathway in phonological processing as a feedforward efferent system (; ; ). But the functional organization of the pathway, in terms of time course of interactions between auditory, somatosensory, and motor regions, and the hemispheric lateralization pattern is largely unknown. Here, ambiguous duplex syllables, with elements presented dichotically at varying interaural asynchronies, were used to parametrically modulate phonological processing and associated neural activity in the human dorsal auditory stream. Subjects performed syllable and chirp identification tasks, while event-related potentials and functional magnetic resonance images were concurrently collected. Joint independent component analysis was applied to fuse the neuroimaging data and study the neural dynamics of brain regions involved in phonological processing with high spatiotemporal resolution. Results revealed a highly interactive neural network associated with phonological processing, composed of functional fields in posterior temporal gyrus (pSTG), inferior parietal lobule (IPL), and ventral central sulcus (vCS) that were engaged early and almost simultaneously (at 80–100 ms), consistent with a direct influence of articulatory somatomotor areas on phonemic perception. Left hemispheric lateralization was observed 250 ms earlier in IPL and vCS than pSTG, suggesting that functional specialization of somatomotor (and not auditory) areas determined lateralization in the dorsal auditory pathway. The temporal dynamics of the dorsal auditory pathway described here offer a new understanding of its functional organization and demonstrate that temporal information is essential to resolve neural circuits underlying complex behaviors.
机译:神经解剖模型假设背侧听觉通路在语音处理中作为前馈传出系统的作用(;;)。但是,就听觉,体感和运动区域之间相互作用的时间过程以及半球偏侧模式而言,该途径的功能组织尚不清楚。在这里,模棱两可的双音节,在不同的听觉间不同步中以二分法表示,被用于参量调节人类背听流中的语音处理和相关的神经活动。受试者执行音节和chi识别任务,同时收集与事件相关的电位和功能性磁共振图像。应用联合独立分量分析来融合神经影像数据,并以高时空分辨率研究参与语音处理的大脑区域的神经动力学。结果显示,与语音处理相关的高度互动的神经网络由后颞回(pSTG),顶下小叶(IPL)和腹中央沟(vCS)的功能区域组成,这些区域早期并几乎同时参与(80–100)毫秒),这与发音动体运动区域对音素感知的直接影响一致。在IPL和vCS中比pSTG提前250 ms观察到左半球偏侧化,表明躯体运动(而非听觉)区域的功能特化决定了背侧听觉通路的偏侧化。此处描述的背侧听觉通路的时空动力学为其功能组织提供了新的认识,并证明了时空信息对于解决复杂行为下的神经回路至关重要。

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