Department of Psychology and Neuroscience, Duke University, Durham, NC 27708.
Department of Neurobiology, Duke University, Durham, NC 27710.
Proc Natl Acad Sci U S A. 2023 Nov 28;120(48):e2303562120. doi: 10.1073/pnas.2303562120. Epub 2023 Nov 21.
Eye movements alter the relationship between the visual and auditory spatial scenes. Signals related to eye movements affect neural pathways from the ear through auditory cortex and beyond, but how these signals contribute to computing the locations of sounds with respect to the visual scene is poorly understood. Here, we evaluated the information contained in eye movement-related eardrum oscillations (EMREOs), pressure changes recorded in the ear canal that occur in conjunction with simultaneous eye movements. We show that EMREOs contain parametric information about horizontal and vertical eye displacement as well as initial/final eye position with respect to the head. The parametric information in the horizontal and vertical directions can be modeled as combining linearly, allowing accurate prediction of the EMREOs associated with oblique (diagonal) eye movements. Target location can also be inferred from the EMREO signals recorded during eye movements to those targets. We hypothesize that the (currently unknown) mechanism underlying EMREOs could impose a two-dimensional eye-movement-related transfer function on any incoming sound, permitting subsequent processing stages to compute the positions of sounds in relation to the visual scene.
眼球运动改变了视觉和听觉空间场景之间的关系。与眼球运动相关的信号会影响从耳朵经过听觉皮层的神经通路,但其如何有助于计算相对于视觉场景的声音位置还知之甚少。在这里,我们评估了与眼球运动相关的鼓膜振动(EMREO)中包含的信息,这是与同时发生的眼球运动相伴产生的耳道内的压力变化。我们发现,EMREO 包含了水平和垂直眼球位移以及相对于头部的初始/最终眼球位置的参数信息。水平和垂直方向的参数信息可以线性组合,从而可以准确预测与斜(对角)眼球运动相关的 EMREO。还可以从眼球运动期间记录的 EMREO 信号中推断出目标位置。我们假设,EMREO 背后的(目前未知的)机制可以对任何传入的声音施加二维眼球运动相关的传递函数,从而允许后续的处理阶段计算相对于视觉场景的声音位置。