Institute of Allied Health Sciences, College of Medicine, National Cheng Kung University, Tainan, Taiwan.
J Electromyogr Kinesiol. 2012 Aug;22(4):589-97. doi: 10.1016/j.jelekin.2012.03.002. Epub 2012 Apr 11.
The study investigated the destabilization effect on multi-segment physiological tremors and coordinative control for a postural-suprapostural task under different stance conditions. Twenty volunteers executed postural pointing from a level surface and a seesaw balance board; meanwhile, physiological tremors of the whole postural system and fluctuation movements of fingertip/stance surface were recorded. In reference to level stance, seesaw stance led to much fewer tremor increments of the upper limb and less fluctuation movement of the fingertip than tremor increment of the lower limb and rolling movement of the stance surface. Tremor coupling between the adjacent segments organized differentially with stance surface. In reference to level stance, seesaw stance reinforced tremor coupling of the upper limb but enfeebled the coupling in the arm-lumbar and calf-foot complexes. Stance-related differences in physiological tremors could be explained by characteristic changes in the primary and secondary principal components (PC1 and PC2), with relatively high communality with segment tremors of the lower and upper limbs, respectively. Seesaw stance introduced a prominent 4-8Hz spectral peak in PC1 and potentiated 1-4Hz and 8-12Hz spectral peaks of PC2. Structural reorganization of physiological tremors with stance configuration suggests that seesaw stance involves distinct suprapostural and postural synergies for regulating degree of freedom in joint space.
本研究探讨了多节段生理震颤的不稳定性效应以及在不同站立条件下的姿势-超姿势任务的协调控制。二十名志愿者在水平表面和跷跷板平衡板上执行姿势指向任务;同时,记录整个姿势系统的生理震颤和指尖/站立面的波动运动。与水平姿势相比,跷跷板姿势导致上肢震颤增量比下肢和站立面滚动运动少,指尖波动运动也比下肢和站立面滚动运动少。相邻节段之间的震颤耦合以不同的方式组织。与水平姿势相比,跷跷板姿势增强了上肢的震颤耦合,但削弱了手臂-腰椎和小腿-足部复合体的耦合。生理震颤的与站位相关的差异可以通过主要和次要主成分(PC1 和 PC2)的特征变化来解释,它们与下肢和上肢的节段震颤分别具有较高的共性。跷跷板姿势在 PC1 中引入了一个明显的 4-8Hz 谱峰,并增强了 PC2 中 1-4Hz 和 8-12Hz 的谱峰。与站位配置相关的生理震颤的结构重组表明,跷跷板姿势涉及调节关节空间自由度的独特超姿势和姿势协同作用。