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Functional anatomy of the masking level difference, an fMRI study

机译:功能磁共振成像研究掩盖水平差异的功能解剖

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摘要

Introduction: Masking level differences (MLDs) are differences in the hearing threshold for the detection of a signal presented in a noise background, where either the phase of the signal or noise is reversed between ears. We use N0/Nπ to denote noise presented in-phase/out-of-phase between ears and S0/Sπ to denote a 500 Hz sine wave signal as in/out-of-phase. Signal detection level for the noise/signal combinations N0Sπ and NπS0 is typically 10-20 dB better than for N0S0. All combinations have the same spectrum, level, and duration of both the signal and the noise. Methods: Ten participants (5 female), age: 22-43, with N0Sπ-N0S0 MLDs greater than 10 dB, were imaged using a sparse BOLD fMRI sequence, with a 9 second gap (1 second quiet preceding stimuli). Band-pass (400-600 Hz) noise and an enveloped signal (.25 second tone burst, 50% duty-cycle) were used to create the stimuli. Brain maps of statistically significant regions were formed from a second-level analysis using SPM5. Results: The contrast NπS0- N0Sπ had significant regions of activation in the right pulvinar, corpus callosum, and insula bilaterally. The left inferior frontal gyrus had significant activation for contrasts N0Sπ-N0S0 and NπS0-N0S0. The contrast N0S0-N0Sπ revealed a region in the right insula, and the contrast N0S0-NπS0 had a region of significance in the left insula. Conclusion: Our results extend the view that the thalamus acts as a gating mechanism to enable dichotic listening, and suggest that MLD processing is accomplished through thalamic communication with the insula, which communicate across the corpus callosum to either enhance or diminish the binaural signal (depending on the MLD condition). The audibility improvement of the signal with both MLD conditions is likely reflected by activation in the left inferior frontal gyrus, a late stage in the what/where model of auditory processing. © 2012 Wack et al.
机译:简介:掩蔽电平差(MLD)是听力阈值中的差异,用于检测在噪声背景中出现的信号,其中信号的相位或噪声在耳朵之间反转。我们使用N0 /Nπ表示耳朵之间同相/异相表示的噪声,使用S0 /Sπ将500 Hz正弦波信号表示为同相/异相。噪声/信号组合N0Sπ和NπS0的信号检测水平通常比N0S0好10-20 dB。所有组合的信号和噪声具有相同的频谱,电平和持续时间。方法:使用稀疏的BOLD fMRI序列对10名参与者(5名女性),年龄在22-43岁,N0Sπ-N0S0MLD大于10 dB进行成像,间隔为9秒(1秒安静的前刺激)。使用带通(400-600 Hz)噪声和包络信号(.25秒音频猝发,占空比为50%)来创建刺激。具有统计学意义的区域的大脑图谱是使用SPM5通过二级分析形成的。结果:造影剂NπS0-N0Sπ在右侧肺泡,。体和双侧岛岛均有明显的激活区域。左下额回具有明显的对比度N0Sπ-N0S0和NπS0-N0S0激活。造影剂N0S0-N0Sπ在右岛中有一个区域,而造影剂N0S0-NπS0在左岛中有重要的区域。结论:我们的结果扩展了丘脑作为门控机制以实现二叉听觉的观点,并表明MLD处理是通过丘脑与小岛的通信完成的,这些小岛通过call体进行通信以增强或减小双耳信号(取决于在MLD条件下)。在两种MLD条件下,信号的听觉改善都可能通过左下额回的激活来反映,这是听觉处理的“何/何”模型的后期。 ©2012 Wack等。

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