Takahashi Kota Z, Krupenevich Rebecca L, Lenz Amy L, Kelly Luke A, Rainbow Michael J, Franz Jason R
Department of Health and Kinesiology, University of Utah, Salt Lake City, UT, USA.
Joint Department of Biomedical Engineering, University of North Carolina at Chapel Hill and North Carolina State University, Chapel Hill, NC, USA.
Biomechanics (Basel). 2022 Dec;2(4):494-499. doi: 10.3390/biomechanics2040038. Epub 2022 Sep 23.
Much of our current understanding of age-related declines in mobility has been aided by decades of investigations on the role of muscle-tendon units spanning major lower extremity joints (e.g., hip, knee and ankle) for powering locomotion. Yet, mechanical contributions from foot structures are often neglected. This is despite the emerging evidence for their critical importance in youthful locomotion. With rapid growth in the field of human foot biomechanics over the last decade, our theoretical knowledge of young asymptomatic feet has transformed, from long-held views of a stiff lever and a shock-absorber to a versatile system that can modulate mechanical power and energy output to accommodate various locomotor task demands. In this perspective review, we predict that the next set of impactful discoveries related to locomotion in older adults will emerge by integrating the novel tools and approaches that are currently transforming the field of human foot biomechanics. By illuminating the functions of feet in older adults, we envision that future investigations will refine our mechanistic understanding of mobility deficits affecting our aging population, which may ultimately inspire targeted interventions to rejuvenate the mechanics and energetics of locomotion.
在过去几十年里,对于跨越下肢主要关节(如髋、膝和踝关节)的肌肉-肌腱单元在推动运动中所起作用的研究,极大地增进了我们目前对与年龄相关的运动能力下降的理解。然而,足部结构的力学贡献常常被忽视。尽管有新证据表明它们在年轻人群的运动中至关重要,但情况依然如此。随着过去十年人类足部生物力学领域的迅速发展,我们对年轻无症状足部的理论认识已经发生了转变,从长期以来认为足部是一个僵硬杠杆和减震器的观点,转变为一个能够调节机械功率和能量输出以适应各种运动任务需求的多功能系统。在这篇观点综述中,我们预测,通过整合当前正在改变人类足部生物力学领域的新颖工具和方法,将出现与老年人运动相关的下一批有影响力的发现。通过阐明足部在老年人中的功能,我们设想未来的研究将完善我们对影响老年人群运动能力缺陷的机制理解,这最终可能激发有针对性的干预措施,以恢复运动的力学和能量学。