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Enhanced crosslimb transfer of force-field learning for dynamics that are identical in extrinsic and joint-based coordinates for both limbs

机译:力场学习的增强的跨肢传递用于在两个肢体的外部和基于关节的坐标中均相同的动力学

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摘要

Humans are able to adapt their motor commands to make accurate movements in novel sensorimotor environments, such as when wielding tools that alter limb dynamics. However, it is unclear to what extent sensorimotor representations, obtained through experience with one limb, are available to the opposite, untrained limb and in which form they are available. Here, we compared crosslimb transfer of force-field compensation after participants adapted to a velocity-dependent curl field, oriented either in the sagittal or the transverse plane. Due to the mirror symmetry of the limbs, the force field had identical effects for both limbs in joint and extrinsic coordinates in the sagittal plane but conflicting joint-based effects in the transverse plane. The degree of force-field compensation exhibited by the opposite arm in probe trials immediately after initial learning was significantly greater after sagittal (26 ± 5%) than transverse plane adaptation (9 ± 4%; P < 0.001), irrespective of whether participants learned initially with the left or the right arm or via abrupt or gradual exposure to the force field. Thus transfer was impaired when the orientation of imposed dynamics conflicted in intrinsic coordinates for the two limbs. The data reveal that neural representations of novel dynamics are only partially available to the opposite limb, since transfer is incomplete even when force-field perturbation is spatially compatible for the two limbs, according to both intrinsic and extrinsic coordinates.
机译:人类能够适应他们的运动命令,以在新颖的感觉运动环境中做出准确的动作,例如使用改变肢体动力学的工具时。然而,尚不清楚通过对一只肢体的经验获得的感觉运动表现在多大程度上可用于相对的,未经训练的肢体,以及它们以哪种形式存在。在这里,我们比较了参与者适应于矢状或横断面的速度相关卷曲场后,力场补偿的跨肢传递。由于四肢的镜像对称性,力场在矢状平面中的关节和外部坐标中对两肢均具有相同的作用,但在横向平面中基于关节的作用相互冲突。初学者学习后立即在探查试验中,对侧手臂表现出的力场补偿程度明显高于矢状面适应性(9±4%; P <0.001),矢状后(26±5%),无论参与者是否学会最初使用左臂或右臂,或者通过突然或逐渐暴露于力场。因此,当施加动力的方向在两个肢体的固有坐标中发生冲突时,传递会受到阻碍。数据显示,根据内在和外在坐标,即使当力场摄动在空间上对两个肢体都兼容时,传递也不完整,因此相对动力学的肢体只能部分获得新动力学的神经表示。

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