Barfi Mahsa, Deligiannis Theodoros, Schlattmann Brian, Newell Karl M, Mangalam Madhur
Department of Biomechanics, University of Nebraska at Omaha, Omaha, NE 68182, USA.
Department of Kinesiology, University of Georgia Athens, Athens, GA 30602, USA.
Sensors (Basel). 2025 Jul 17;25(14):4454. doi: 10.3390/s25144454.
This study investigated the interplay of bodily degrees of freedom (DoFs) governing the collective variable comprising the center of pressure (CoP) and center of mass (CoM) in postural control through the analytical lens of multiplicative interactions across scales. We employed a task combination involving a wobble board, introducing mechanical instability mainly along the mediolateral (ML) axis and the Trail Making Task (TMT), which imposes precise visual demands primarily along the anteroposterior (AP) axis. Using Multiscale Regression Analysis (MRA), a novel analytical method rooted in Detrended Fluctuation Analysis (DFA), we scrutinized CoP-to-CoM and CoM-to-CoP effects across multiple timescales ranging from 100ms to 10s. CoP was computed from ground reaction forces recorded via a force plate, and CoM was derived from full-body 3D motion capture using a biomechanical model. We found that the wobble board attenuated CoM-to-CoP effects across timescales ranging from 100to400ms. Further analysis revealed nuanced changes: while there was an overall reduction, this encompassed an accentuation of CoM-to-CoP effects along the AP axis and a decrease along the ML axis. Importantly, these alterations in CoP's responses to CoM movements outweighed any nonsignificant effects attributable to the TMT. CoM exhibited no sensitivity to CoP movements, regardless of the visual and mechanical task demands. In addition to identifying the characteristic timescales associated with bodily DoFs in facilitating upright posture, our findings underscore the critical significance of directionally challenging biomechanical constraints, particularly evident in the amplification of CoP-to-CoM effects along the AP axis in response to ML instability. These results underscore the potential of wobble board training to enhance the coordinative and compensatory responses of bodily DoFs to the shifting CoM by prompting appropriate adjustments in CoP, thereby suggesting their application for reinstating healthy CoM-CoP dynamics in clinical populations with postural deficits.
本研究通过跨尺度乘法相互作用的分析视角,调查了在姿势控制中,支配包含压力中心(CoP)和质心(CoM)的集体变量的身体自由度(DoFs)之间的相互作用。我们采用了一种任务组合,包括一个主要沿内外侧(ML)轴引入机械不稳定性的摇摆板,以及主要沿前后(AP)轴施加精确视觉要求的连线测验(TMT)。使用多尺度回归分析(MRA),一种源于去趋势波动分析(DFA)的新型分析方法,我们在从100毫秒到10秒的多个时间尺度上仔细研究了CoP到CoM和CoM到CoP的效应。CoP是根据通过测力板记录的地面反作用力计算得出的,CoM是使用生物力学模型从全身3D运动捕捉中推导出来的。我们发现,摇摆板在100至400毫秒的时间尺度上减弱了CoM到CoP的效应。进一步分析揭示了细微的变化:虽然总体上有所减少,但这包括沿AP轴的CoM到CoP效应的增强和沿ML轴的减少。重要的是,CoP对CoM运动反应的这些变化超过了TMT产生的任何不显著影响。无论视觉和机械任务要求如何,CoM对CoP运动均无敏感性。除了确定与身体自由度在促进直立姿势方面相关的特征时间尺度外,我们的研究结果强调了定向挑战性生物力学约束的关键重要性,特别是在响应ML不稳定性时沿AP轴的CoP到CoM效应放大中明显体现。这些结果强调了摇摆板训练通过促使CoP进行适当调整来增强身体自由度对CoM变化的协调和补偿反应的潜力,从而表明其可应用于恢复姿势缺陷临床人群中健康的CoM-CoP动态。