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Functional hemispheric asymmetries during the planning and manual control of virtual avatar movements

机译:虚拟化身运动的计划和手动控制过程中的功能性半球不对称

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摘要

Both hemispheres contribute to motor control beyond the innervation of the contralateral alpha motoneurons. The left hemisphere has been associated with higher-order aspects of motor control like sequencing and temporal processing, the right hemisphere with the transformation of visual information to guide movements in space. In the visuomotor context, empirical evidence regarding the latter has been limited though the right hemisphere’s specialization for visuospatial processing is well-documented in perceptual tasks. This study operationalized temporal and spatial processing demands during visuomotor processing and investigated hemispheric asymmetries in neural activation during the unimanual control of a visual cursor by grip force. Functional asymmetries were investigated separately for visuomotor planning and online control during functional magnetic resonance imaging in 19 young, healthy, right-handed participants. The expected cursor movement was coded with different visual trajectories. During planning when spatial processing demands predominated, activity was right-lateralized in a hand-independent manner in the inferior temporal lobe, occipito-parietal border, and ventral premotor cortex. When temporal processing demands overweighed spatial demands, BOLD responses during planning were left-lateralized in the temporo-parietal junction. During online control of the cursor, right lateralization was not observed. Instead, left lateralization occurred in the intraparietal sulcus. Our results identify movement phase and spatiotemporal demands as important determinants of dynamic hemispheric asymmetries during visuomotor processing. We suggest that, within a bilateral visuomotor network, the right hemisphere exhibits a processing preference for planning global spatial movement features whereas the left hemisphere preferentially times local features of visual movement trajectories and adjusts movement online.
机译:除了对侧α运动神经元的神经支配之外,两个半球都有助于运动控制。左半球与诸如顺序和时间处理之类的运动控制的高级方面相关联,右半球与视觉信息的转换相关联以指导空间运动。在视觉运动环境中,尽管右半球视觉空间处理的专业知识在知觉任务中有充分记载,但关于后者的经验证据有限。这项研究实现了视觉运动过程中对时间和空间处理的需求,并研究了通过握力单手控制视觉光标过程中神经激活的半球不对称性。在19位年轻,健康,惯用右手的参与者中,对功能不对称性进行了单独研究,以进行视觉运动计划和在线控制,以进行功能磁共振成像。预期的光标移动使用不同的视觉轨迹进行编码。在规划中,当空间处理需求占主导时,活动以独立于手的方式在颞下叶,枕顶缘和腹侧前运动皮层中右旋。当时间处理需求超过空间需求时,在计划过程中,BOLD响应在颞顶交界处被左偏。在线控制光标期间,未观察到右侧偏斜。相反,左外侧化发生在顶内沟中。我们的研究结果表明运动阶段和时空需求是视觉运动过程中动态半球不对称性的重要决定因素。我们建议,在双边视觉运动网络中,右半球表现出对计划全局空间运动特征的处理偏好,而左半球优先对视觉运动轨迹的局部特征进行计时并在线调整运动。

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