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头部旋转轴的视觉感知。

Visual perception of axes of head rotation.

作者信息

Arnoldussen D M, Goossens J, van den Berg A V

机构信息

Department of Cognitive Neuroscience, Section Biophysics, Radboud University Nijmegen Medical Centre, Donders Institute for Brain, Cognition, and Behavior Nijmegen, Netherlands.

出版信息

Front Behav Neurosci. 2013 Feb 15;7:11. doi: 10.3389/fnbeh.2013.00011. eCollection 2013.

Abstract

Registration of ego-motion is important to accurately navigate through space. Movements of the head and eye relative to space are registered through the vestibular system and optical flow, respectively. Here, we address three questions concerning the visual registration of self-rotation. (1) Eye-in-head movements provide a link between the motion signals received by sensors in the moving eye and sensors in the moving head. How are these signals combined into an ego-rotation percept? We combined optic flow of simulated forward and rotational motion of the eye with different levels of eye-in-head rotation for a stationary head. We dissociated simulated gaze rotation and head rotation by different levels of eye-in-head pursuit. We found that perceived rotation matches simulated head- not gaze-rotation. This rejects a model for perceived self-rotation that relies on the rotation of the gaze line. Rather, eye-in-head signals serve to transform the optic flow's rotation information, that specifies rotation of the scene relative to the eye, into a rotation relative to the head. This suggests that transformed visual self-rotation signals may combine with vestibular signals. (2) Do transformed visual self-rotation signals reflect the arrangement of the semi-circular canals (SCC)? Previously, we found sub-regions within MST and V6(+) that respond to the speed of the simulated head rotation. Here, we re-analyzed those Blood oxygenated level-dependent (BOLD) signals for the presence of a spatial dissociation related to the axes of visually simulated head rotation, such as have been found in sub-cortical regions of various animals. Contrary, we found a rather uniform BOLD response to simulated rotation along the three SCC axes. (3) We investigated if subject's sensitivity to the direction of the head rotation axis shows SCC axes specifcity. We found that sensitivity to head rotation is rather uniformly distributed, suggesting that in human cortex, visuo-vestibular integration is not arranged into the SCC frame.

摘要

自我运动的登记对于在空间中准确导航很重要。头部和眼睛相对于空间的运动分别通过前庭系统和光流进行登记。在这里,我们探讨了关于自我旋转视觉登记的三个问题。(1)眼在头中的运动在移动的眼睛中的传感器和移动的头部中的传感器接收到的运动信号之间提供了联系。这些信号是如何组合成自我旋转感知的?我们将眼睛模拟向前和旋转运动的光流与静止头部不同水平的眼在头旋转相结合。我们通过不同水平的眼在头追踪来分离模拟的注视旋转和头部旋转。我们发现感知到的旋转与模拟的头部旋转而非注视旋转相匹配。这否定了一种依赖于注视线旋转的自我旋转感知模型。相反,眼在头信号用于将光流的旋转信息(该信息指定场景相对于眼睛的旋转)转换为相对于头部的旋转。这表明转换后的视觉自我旋转信号可能与前庭信号相结合。(2)转换后的视觉自我旋转信号是否反映了半规管(SCC)的排列?此前,我们在中颞叶(MST)和V6(+)内发现了对模拟头部旋转速度有反应的子区域。在这里,我们重新分析了那些血氧水平依赖(BOLD)信号,以寻找与视觉模拟头部旋转轴相关的空间分离,就像在各种动物的皮层下区域中发现的那样。相反,我们发现沿着三个SCC轴对模拟旋转的BOLD反应相当均匀。(3)我们研究了受试者对头部旋转轴方向的敏感度是否显示出SCC轴特异性。我们发现对头部旋转的敏感度分布相当均匀,这表明在人类皮层中,视觉 - 前庭整合并非按照SCC框架进行排列。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/82c0/3573326/e4e6f23b3c5d/fnbeh-07-00011-g0001.jpg

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