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胫骨前肌肌束动力学反映全身步行经济性。

Fascicle dynamics of the tibialis anterior muscle reflect whole-body walking economy.

机构信息

School of Biological Sciences, Georgia Institute of Technology, Atlanta, GA, USA.

出版信息

Sci Rep. 2023 Mar 22;13(1):4660. doi: 10.1038/s41598-023-31501-2.

Abstract

Humans can inherently adapt their gait pattern in a way that minimizes the metabolic cost of transport, or walking economy, within a few steps, which is faster than any known direct physiological sensor of metabolic energy. Instead, walking economy may be indirectly sensed through mechanoreceptors that correlate with the metabolic cost per step to make such gait adaptations. We tested whether velocity feedback from tibialis anterior (TA) muscle fascicles during the early stance phase of walking could potentially act to indirectly sense walking economy. As participants walked within a range of steady-state speeds and step frequencies, we observed that TA fascicles lengthen on almost every step. Moreover, the average peak fascicle velocity experienced during lengthening reflected the metabolic cost of transport of the given walking condition. We observed that the peak TA muscle activation occurred earlier than could be explained by a short latency reflex response. The activation of the TA muscle just prior to heel strike may serve as a prediction of the magnitude of the ground collision and the associated energy exchange. In this scenario, any unexpected length change experienced by the TA fascicle would serve as an error signal to the nervous system and provide additional information about energy lost per step. Our work helps provide a biomechanical framework to understand the possible neural mechanisms underlying the rapid optimization of walking economy.

摘要

人类可以在几步之内内在地调整他们的步态模式,以最小化代谢成本,或者说行走经济性,这比任何已知的代谢能量的直接生理传感器都要快。相反,行走经济性可能通过与每步代谢成本相关的机械感受器来间接感知,从而进行这种步态适应。我们测试了在前胫骨肌(TA)肌纤维在行走早期支撑阶段的速度反馈是否可以潜在地起到间接感知行走经济性的作用。当参与者在稳定的速度和步频范围内行走时,我们观察到 TA 纤维在几乎每一步都在延长。此外,在延长过程中经历的平均峰值纤维速度反映了给定行走条件下的代谢成本。我们观察到 TA 肌肉的激活发生得比短潜伏期反射反应所能解释的更早。TA 肌肉在脚跟撞击前的激活可能是对地面碰撞幅度和相关能量交换的预测。在这种情况下,TA 纤维经历的任何意外长度变化都将作为神经信号中的错误,并提供有关每步损失能量的额外信息。我们的工作有助于提供一个生物力学框架,以了解快速优化行走经济性的潜在神经机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5120/10033896/8db56b8d21ff/41598_2023_31501_Fig1_HTML.jpg

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