Graduate School of Human and Environmental Studies, Kyoto University, Kyoto, Japan.
Faculty of Arts and Sciences, Kyoto Institute of Technology, Kyoto, Japan.
PLoS One. 2023 Aug 25;18(8):e0290745. doi: 10.1371/journal.pone.0290745. eCollection 2023.
Efficient body movement is required in our daily lives, as it facilitates responding to the external environment and producing movements in various directions and distances. While numerous studies have reported on goal-directed movements in the frontal direction during gait initiation, there is limited research on the efficient movement of the lower limbs in multiple directions and distances. Therefore, we aimed to examine changes in the kinematics of lower-limb reaching movements to determine skilled motor ability in terms of direction and distance. Sixteen adults (10 male participants) were requested to reach targets projected on the floor in seven directions and at three distances for a total of 21 points. The reaching time slowed down for the contralateral side (right foot to left-sided target) and was caused by a slower start of the toe movement. To identify the cause of this delay, we analyzed the onset of movement at each joint and found that movement to the contralateral side starts from the hip, followed by the knee, and subsequently the toe. The time-to-peak velocity was also calculated, and the motion required to reach the target in the shortest time varied depending on direction and distance. These results suggested that movement kinematics vary with direction and distance, resulting in a slower reaching time on the contralateral side. The results of our study hold promise for potential applications in sports and rehabilitation.
日常生活中需要高效的身体运动,因为这有助于对外部环境做出反应,并产生各种方向和距离的运动。虽然有大量研究报告了在步态起始时,目标导向的正面运动,但对于多方向和远距离的下肢高效运动的研究却有限。因此,我们旨在研究下肢伸展运动的运动学变化,以确定在方向和距离方面的熟练运动能力。我们要求 16 名成年人(10 名男性参与者)在七个方向和三个距离上到达投射在地板上的目标,总共 21 个点。对侧(右脚到左侧目标)的伸展时间变慢,这是由于脚趾运动的起始较慢所致。为了确定这种延迟的原因,我们分析了每个关节的运动起始,并发现对侧运动始于臀部,然后是膝盖,最后是脚趾。我们还计算了达到最大速度的时间,到达目标所需的最短时间取决于方向和距离。这些结果表明,运动学随着方向和距离而变化,导致对侧的伸展时间变慢。我们的研究结果有望在运动和康复领域得到应用。