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Dissociating Visual and Motor Directional Selectivity Using Visuomotor Adaptation

机译:使用视觉运动适应分离视觉和运动方向选择性

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摘要

Directional selectivity during visually guided hand movements is a fundamental characteristic of neural populations in multiple motor areas of the primate brain. In the current study, we assessed how directional selectivity changes when reaching movements are dissociated from their visual feedback by rotating the visual field. We recorded simultaneous movement kinematics and fMRI activity while human subjects performed out-and-back movements to four peripheral targets before and after adaptation to a 45° visuomotor rotation. A classification algorithm was trained to identify movement direction according to voxel-by-voxel fMRI patterns in each of several brain areas. The direction of movements was successfully decoded with above-chance accuracy in multiple motor and visual areas when training and testing the classifier on trials within each condition, thereby demonstrating the existence of directionally selective fMRI patterns within each stage of the experiment. Most importantly, when training the classifier on baseline trials and decoding rotated trials, motor brain areas exhibited above-chance decoding according to the original movement direction and visual brain areas exhibited above-chance decoding according to the rotated visual target location, while posterior parietal cortex (PPC) exhibited chance-level decoding according to both. These results reveal that directionally selective fMRI patterns in motor system areas faithfully represent movement direction regardless of visual feedback, while fMRI patterns in visual system areas faithfully represent target location regardless of movement direction. Directionally selective fMRI patterns in PPC, however, were altered following adaptation learning, thereby suggesting that the novel visuomotor mapping, which was learned during visuomotor adaptation, is stored in PPC.
机译:在视觉引导的手部运动过程中的方向选择性是灵长类动物大脑多个运动区域中神经种群的基本特征。在当前的研究中,我们通过旋转视野来评估到达运动时方向选择性如何从其视觉反馈中分离出来。我们记录了同时运动的运动学和fMRI活动,而人类受试者在适应45°视动旋转前后进行了向四个外围目标的来回运动。训练了一个分类算法,以根据几个大脑区域中每个区域的逐个体素fMRI模式识别运动方向。在每个条件下的试验中训练和测试分类器时,运动方向已成功地在多个运动和视觉区域中以较高的机会被解码,从而证明了在实验的每个阶段中都存在定向选择性fMRI模式。最重要的是,当在基线试验上训练分类器并对旋转试验进行解码时,运动脑区域根据原始运动方向表现出较高的机会解码,而视觉脑区域根据旋转的视觉目标位置表现出较高的机会解码,而顶叶后皮质(PPC)根据这两者展示了机会级解码。这些结果表明,运动系统区域中的方向选择性fMRI模式忠实地表示运动方向,而与视觉反馈无关,而视觉系统区域中的fMRI模式忠实地表示目标位置,而与运动方向无关。然而,在适应性学习之后,PPC中的定向选择性功能性核磁共振成像模式发生了变化,从而表明在视觉运动适应过程中学习到的新型视觉运动映射已存储在PPC中。

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