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Sensorimotor Reorganizations of Arm Kinematics and Postural Strategy for Functional Whole-Body Reaching Movements in Microgravity

机译:手臂运动的感觉运动重组和微重力功能性全身运动的姿势策略

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摘要

Understanding the impact of weightlessness on human behavior during the forthcoming long-term space missions is of critical importance, especially when considering the efficiency of goal-directed movements in these unusual environments. Several studies provided a large set of evidence that gravity is taken into account during the planning stage of arm reaching movements to optimally anticipate its consequence upon the moving limbs. However, less is known about sensorimotor changes required to face weightless environments when individuals have to perform fast and accurate goal-directed actions with whole-body displacement. We thus aimed at characterizing kinematic features of whole-body reaching movements in microgravity, involving high spatiotemporal constraints of execution, to question whether and how humans are able to maintain the performance of a functional behavior in the standards of normogravity execution. Seven participants were asked to reach as fast and as accurately as possible visual targets while standing during microgravity episodes in parabolic flight. Small and large targets were presented either close or far from the participants (requiring, in the latter case, additional whole-body displacement). Results reported that participants successfully performed the reaching task with general temporal features of movement (e.g., movement speed) close to land observations. However, our analyses also demonstrated substantial kinematic changes related to the temporal structure of focal movement and the postural strategy to successfully perform -constrained- whole-body reaching movements in microgravity. These immediate reorganizations are likely achieved by rapidly taking into account the absence of gravity in motor preparation and execution (presumably from cues about body limbs unweighting). Specifically, when compared to normogravity, the arm deceleration phase substantially increased. Furthermore, greater whole-body forward displacements due to smaller trunk flexions occurred when reaching far targets in microgravity. Remarkably, these changes of focal kinematics and postural strategy appear close to those previously reported when participants performed the same task underwater with neutral buoyancy applied to body limbs. Overall, these novel findings reveal that humans are able to maintain the performance of functional goal-directed whole-body actions in weightlessness by successfully managing spatiotemporal constraints of execution in this unusual environment.
机译:了解即将进行的长期太空飞行任务期间失重对人类行为的影响至关重要,尤其是考虑到在这些异常环境中目标定向运动的效率时。多项研究提供了大量证据,表明在计划手臂伸展运动的阶段要考虑重力,以最佳地预测其对运动肢体的影响。然而,当个体必须通过全身位移执行快速而准确的目标定向动作时,面对失重环境所需的感觉运动变化知之甚少。因此,我们旨在表征涉及重力的高度时空约束的全身微重力运动的运动学特征,以质疑人类是否以及如何能够按照标准重力执行标准来维持功能行为的表现。七名参与者被要求站在抛物线飞行中的微重力事件中,尽可能快,尽可能准确地达到视觉目标。提出的目标大小与参与者接近或相距遥远(在后者的情况下,需要额外的全身位移)。结果报告说,参与者成功地完成了具有接近地面观测的一般运动时间特征(例如运动速度)的到达任务。但是,我们的分析还表明,运动与运动的时空结构和姿势策略有关,可以成功地进行受约束的全身微重力运动。这些迅速的重组很可能是通过在运动准备和执行过程中迅速考虑重力的缺乏来实现的(大概是由于肢体失重的提示)。具体地,当与正常重力相比时,臂减速阶段显着增加。此外,当到达微重力远的目标时,由于较小的躯干屈曲而导致更大的全身向前位移。值得注意的是,焦点运动学和姿势策略的这些变化与参与者先前在水下执行相同任务并在肢体上施加中性浮力时执行的任务相近。总体而言,这些新颖的发现表明,通过在这种不寻常的环境中成功管理时空约束,人类能够在失重状态下维持目标功能性全身动作的性能。

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