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视觉运动适应视觉旋转是依赖于重力的。

Visuomotor adaptation to a visual rotation is gravity dependent.

作者信息

Toma Simone, Sciutti Alessandra, Papaxanthis Charalambos, Pozzo Thierry

机构信息

Centre of Space Bio-medicine, University of Rome Tor Vergata, Rome, Italy; Laboratory of Neuromotor Physiology, IRCCS Santa Lucia Foundation, Rome, Italy;

Department of Robotics, Brain and Cognitive Sciences, Fondazione Istituto Italiano di Tecnologia, Genoa, Italy;

出版信息

J Neurophysiol. 2015 Mar 15;113(6):1885-95. doi: 10.1152/jn.00369.2014. Epub 2014 Dec 10.

Abstract

Humans perform vertical and horizontal arm motions with different temporal patterns. The specific velocity profiles are chosen by the central nervous system by integrating the gravitational force field to minimize energy expenditure. However, what happens when a visuomotor rotation is applied, so that a motion performed in the horizontal plane is perceived as vertical? We investigated the dynamic of the adaptation of the spatial and temporal properties of a pointing motion during prolonged exposure to a 90° visuomotor rotation, where a horizontal movement was associated with a vertical visual feedback. We found that participants immediately adapted the spatial parameters of motion to the conflicting visual scene in order to keep their arm trajectory straight. In contrast, the initial symmetric velocity profiles specific for a horizontal motion were progressively modified during the conflict exposure, becoming more asymmetric and similar to those appropriate for a vertical motion. Importantly, this visual effect that increased with repetitions was not followed by a consistent aftereffect when the conflicting visual feedback was absent (catch and washout trials). In a control experiment we demonstrated that an intrinsic representation of the temporal structure of perceived vertical motions could provide the error signal allowing for this progressive adaptation of motion timing. These findings suggest that gravity strongly constrains motor learning and the reweighting process between visual and proprioceptive sensory inputs, leading to the selection of a motor plan that is suboptimal in terms of energy expenditure.

摘要

人类进行垂直和水平手臂运动时具有不同的时间模式。中枢神经系统通过整合重力场来选择特定的速度曲线,以尽量减少能量消耗。然而,当施加视觉运动旋转时会发生什么呢?也就是说,在水平面上执行的运动被感知为垂直运动。我们研究了在长时间暴露于90°视觉运动旋转(其中水平运动与垂直视觉反馈相关联)期间,指向运动的空间和时间特性的适应动态。我们发现,参与者会立即将运动的空间参数调整为与冲突的视觉场景相适应,以保持手臂轨迹直线。相比之下,水平运动特有的初始对称速度曲线在冲突暴露期间逐渐被修改,变得更加不对称,并且与适合垂直运动的速度曲线相似。重要的是,这种随着重复而增加的视觉效应在没有冲突视觉反馈时(捕捉和消退试验)并没有伴随着一致的后效。在一个对照实验中,我们证明了对感知到的垂直运动的时间结构的内在表征可以提供误差信号,从而允许对运动时间进行这种渐进的适应。这些发现表明,重力强烈地限制了运动学习以及视觉和本体感觉输入之间的重新加权过程,导致选择了一个在能量消耗方面并非最优的运动计划。

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