Tretriluxana Jarugool, Gordon James, Winstein Carolee J
Division of Biokinesiology and Physical Therapy, University of Southern California, 1540 East Alcazar Street CHP155, Los Angeles, CA 90033, USA.
Exp Brain Res. 2008 Jun;188(2):305-15. doi: 10.1007/s00221-008-1364-2. Epub 2008 Apr 25.
Few studies have directly compared the visuo-motor transformation of grasp pre-shaping or transport-grasp coordination of reach-to-grasp movements between the two hands. Our objective was to determine if there are manual asymmetries in right-handed adults as a foundation to investigate hemispheric specialization in individuals post-stroke. Twelve non-disabled right-handed adults performed rapid reach-to-grasp movements to cylinders of three sizes as vision of the arm and hand was partially occluded. We reasoned that the hand system (left or right) that is superior in anticipatory planning of aperture scaling and movement preparation would be more likely to exhibit early grasp pre-shaping under this experimental manipulation. Movement time, hand path, transport velocity, and aperture were derived from 3D electromagnetic sensor data. The visuo-motor transformation of object sizes into an action of aperture pre-shaping was quantified using the correlations between initial aperture velocity and object diameter, and peak aperture and object diameter. Coordination between hand transport and aperture grasping was quantified using the cross-correlation between transport velocity and aperture size. Peak aperture and object diameter were strongly correlated for both hands. However, early aperture velocity and object diameter were correlated only for left-hand movements. Cross-correlation analyses revealed a strong association between transport velocity and aperture only for right-hand movements. Together, these results suggest earlier anticipatory control for the left hand in the visuo-motor transformation of grasp pre-shaping and a stronger transport-grasp linkage for the right hand. Further, initial aperture velocity was a more sensitive measure of these manual asymmetries than peak aperture. Our findings compliment the specialization previously observed for pointing movements of the dominant and non-dominant hemispheric/limb system and the coordinated control of complex movements and visuo-spatial components, respectively.
很少有研究直接比较双手之间抓握预塑形的视觉运动转换或伸手抓握动作的运输-抓握协调。我们的目的是确定右利手成年人是否存在手动不对称,以此作为研究中风后个体半球特化的基础。12名非残疾右利手成年人在手臂和手部视觉部分被遮挡的情况下,对三种尺寸的圆柱体进行快速伸手抓握动作。我们推断,在这种实验操作下,在孔径缩放和运动准备的预期规划方面更具优势的手系统(左手或右手)更有可能表现出早期抓握预塑形。运动时间、手部路径、运输速度和孔径是从三维电磁传感器数据中得出的。使用初始孔径速度与物体直径之间以及峰值孔径与物体直径之间的相关性,对物体尺寸到孔径预塑形动作的视觉运动转换进行量化。使用运输速度与孔径大小之间的互相关性,对手部运输与孔径抓握之间的协调性进行量化。双手的峰值孔径与物体直径都有很强的相关性。然而,仅左手运动的早期孔径速度与物体直径相关。互相关性分析表明,仅右手运动的运输速度与孔径之间有很强的关联。总之,这些结果表明,在抓握预塑形的视觉运动转换中,左手有更早的预期控制;而右手有更强的运输-抓握联系。此外,初始孔径速度比峰值孔径更能敏感地衡量这些手动不对称性。我们的研究结果补充了先前观察到的优势半球/肢体系统指向动作以及复杂运动和视觉空间成分协调控制的特化情况。