Binaural interaction in human auditory brainstem and middle-latency responses affected by sound frequency band, lateralization predictability, and attended modality

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS ACS Applied Bio Materials Pub Date : 2024-07-17 DOI:10.1016/j.heares.2024.109089
Kazunari Ikeda , Tom A. Campbell
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Abstract

The binaural interaction component (BIC) of the auditory evoked potential is the difference between the waveforms of the binaural response and the sum of left and right monaural responses. This investigation examined BICs of the auditory brainstem (ABR) and middle-latency (MLR) responses concerning three objectives: 1) the level of the auditory system at which low-frequency dominance in BIC amplitudes begins when the binaural temporal fine structure is more influential with lower- than higher-frequency content; 2) how BICs vary as a function of frequency and lateralization predictability, as could relate to the improved lateralization of high-frequency sounds; 3) how attention affects BICs. Sixteen right-handed participants were presented with either low-passed (< 1000 Hz) or high-passed (> 2000 Hz) clicks at 30 dB SL with a 38 dB (A) masking noise, at a stimulus onset asynchrony of 180 ms. Further, this repeated-measures design manipulated stimulus presentation (binaural, left monaural, right monaural), lateralization predictability (unpredictable, predictable), and attended modality (either auditory or visual). For the objectives, respectively, the results were: 1) whereas low-frequency dominance in BIC amplitudes began during, and continued after, the Na-BIC, binaural (center) as well as summed monaural (left and right) amplitudes revealed low-frequency dominance only after the Na wave; 2) with a predictable position that was fixed, no BIC exhibited equivalent amplitudes between low- and high-passed clicks; 3) whether clicks were low- or high-passed, selective attention affected the ABR-BIC yet not MLR-BICs. These findings indicate that low-frequency dominance in lateralization begins at the Na latency, being independent of the efferent cortico-collicular pathway's influence.

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人类听觉脑干和中耳反应中的双耳交互作用受声音频段、侧向可预测性和听觉模式的影响
听觉诱发电位的双耳交互成分(BIC)是双耳反应波形与左右单耳反应波形之和的差值。本研究就三个目标对听觉脑干(ABR)和中频段(MLR)反应的双耳交互分量进行了研究:1)当双耳时间精细结构对低频内容的影响大于高频内容时,BIC 振幅中的低频优势开始于听觉系统的哪个层次;2)BIC 如何随频率和侧化可预测性的变化而变化,这可能与高频声音的侧化改善有关;3)注意力如何影响 BIC。研究人员向 16 名右撇子参与者展示了低通(1000 Hz)或高通(2000 Hz)的咔嗒声,频率为 30 dB SL,并伴有 38 dB (A) 的掩蔽噪声,刺激开始时的异步时间为 180 ms。此外,这种重复测量设计还操纵了刺激呈现(双耳、左单耳、右单耳)、侧向可预测性(不可预测、可预测)和被试模式(听觉或视觉)。结果分别为1)虽然 BIC 振幅中的低频优势开始于 Na-BIC 期间,并持续于 Na-BIC 之后,但双耳(中央)以及单耳(左侧和右侧)振幅总和仅在 Na 波之后才显示出低频优势;2)在可预测位置固定的情况下,低通和高通点击之间没有任何 BIC 显示出相同的振幅;3)无论点击是低通还是高通,选择性注意都会影响 ABR-BIC,但不会影响 MLR-BIC。这些发现表明,侧化中的低频优势始于 Na 潜伏期,与传出皮质-脑室通路的影响无关。
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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