Laboratory of Neuromotor Physiology, Santa Lucia Foundation, Rome, Italy.
Hum Mov Sci. 2013 Feb;32(1):79-90. doi: 10.1016/j.humov.2012.08.001. Epub 2012 Nov 22.
The present study examined upper and lower limb coordination during lower limb asymmetry in a split-belt walking paradigm. Eleven healthy individuals walked on a split-belt treadmill with 4 different speed ratios (2:2, 2:4, 2:6 and 2:8 km/h) and the left belt fixed at 2 km/h. Spatial (upper and lower limb movement amplitudes) and temporal (correlations between trajectories) aspects of limb movement were analyzed. Results showed that while amplitudes of the right lower limb increased and left lower limb decreased with increasing asymmetry, both upper limb amplitudes increased. Correlations between diagonal upper/lower limb trajectories increased as right belt speed became faster, suggesting increasing cross-body matching regardless of side. As the treadmill asymmetry increased, ipsilateral lower/upper limbs became more out of phase suggesting a more precise gait pattern to regulate timing between limbs. The upper limbs reached maximum horizontal displacement before the lower limbs except between the right upper limb/left lower limb for asymmetrical belt speeds. From these results, it appears the faster moving lower limb drives the motion of both upper limbs. These changes are most likely due to neural mechanisms in which upper and lower limb CPGs regulate full body movement and maintain the rhythmic locomotor pattern.
本研究在分带步行范式中检查了下肢不对称时上下肢的协调情况。11 名健康个体在分带跑步机上以 4 种不同的速度比(2:2、2:4、2:6 和 2:8km/h)行走,左带固定在 2km/h。分析了肢体运动的空间(上下肢运动幅度)和时间(轨迹之间的相关性)方面。结果表明,随着不对称性的增加,右下肢的幅度增加,左下肢的幅度减小,而两个上肢的幅度都增加。随着右侧皮带速度的增加,对角线上下肢轨迹之间的相关性增加,表明无论哪一侧,跨身体匹配的增加。随着跑步机不对称性的增加,同侧的下肢/上肢变得更加不同步,表明更精确的步态模式来调节肢体之间的时间。除了不对称带速的右上肢/左下肢外,上肢在下肢之前达到最大水平位移。从这些结果来看,似乎移动较快的下肢驱动着两个上肢的运动。这些变化很可能是由于上下肢 CPG 调节全身运动并维持节律性运动模式的神经机制所致。