Suppr超能文献

人类弹道运动中对重力的预期

The Anticipation of Gravity in Human Ballistic Movement.

作者信息

Waldvogel Janice, Ritzmann Ramona, Freyler Kathrin, Helm Michael, Monti Elena, Albracht Kirsten, Stäudle Benjamin, Gollhofer Albert, Narici Marco

机构信息

Department of Sport and Science, University of Freiburg, Freiburg, Germany.

Department of Biomechanics, Rennbahnklinik, Muttenz, Switzerland.

出版信息

Front Physiol. 2021 Mar 17;12:614060. doi: 10.3389/fphys.2021.614060. eCollection 2021.

Abstract

Stretch-shortening type actions are characterized by lengthening of the pre-activated muscle-tendon unit (MTU) in the eccentric phase immediately followed by muscle shortening. Under 1 g, pre-activity before and muscle activity after ground contact, scale muscle stiffness, which is crucial for the recoil properties of the MTU in the subsequent push-off. This study aimed to examine the neuro-mechanical coupling of the stretch-shortening cycle in response to gravity levels ranging from 0.1 to 2 g. During parabolic flights, 17 subjects performed drop jumps while electromyography (EMG) of the lower limb muscles was combined with ultrasound images of the gastrocnemius medialis, 2D kinematics and kinetics to depict changes in energy management and performance. Neuro-mechanical coupling in 1 g was characterized by high magnitudes of pre-activity and eccentric muscle activity allowing an isometric muscle behavior during ground contact. EMG during pre-activity and the concentric phase systematically increased from 0.1 to 1 g. Below 1 g the EMG in the eccentric phase was diminished, leading to muscle lengthening and reduced MTU stretches. Kinetic energy at take-off and performance were decreased compared to 1 g. Above 1 g, reduced EMG in the eccentric phase was accompanied by large MTU and muscle stretch, increased joint flexion amplitudes, energy loss and reduced performance. The energy outcome function established by linear mixed model reveals that the central nervous system regulates the extensor muscles phase- and load-specifically. In conclusion, neuro-mechanical coupling appears to be optimized in 1 g. Below 1 g, the energy outcome is compromised by reduced muscle stiffness. Above 1 g, loading progressively induces muscle lengthening, thus facilitating energy dissipation.

摘要

拉长-缩短型动作的特点是,预先激活的肌肉-肌腱单元(MTU)在离心阶段被拉长,紧接着是肌肉缩短。在1g重力环境下,地面接触前的预激活和接触后的肌肉活动会调节肌肉刚度,这对于MTU在随后蹬地阶段的回弹特性至关重要。本研究旨在探究在0.1至2g重力水平下,拉长-缩短周期的神经-机械耦合情况。在抛物线飞行期间,17名受试者进行了纵跳,同时将下肢肌肉的肌电图(EMG)与腓肠肌内侧头的超声图像、二维运动学和动力学相结合,以描述能量管理和运动表现的变化。1g重力环境下的神经-机械耦合表现为较高幅度的预激活和离心肌肉活动,使得在地面接触期间呈现等长肌肉行为。预激活和向心阶段的EMG从0.1g到1g系统性增加。低于1g时,离心阶段的EMG减弱,导致肌肉拉长和MTU拉伸减少。与1g相比,起跳时的动能和运动表现降低。高于1g时,离心阶段EMG的降低伴随着较大的MTU和肌肉拉伸、关节屈曲幅度增加、能量损失以及运动表现下降。通过线性混合模型建立的能量输出函数表明,中枢神经系统对伸肌进行特定阶段和负荷的调节。总之,神经-机械耦合似乎在1g时达到最佳状态。低于1g时,能量输出因肌肉刚度降低而受损。高于1g时,负荷逐渐导致肌肉拉长,从而促进能量耗散。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b276/8010298/d1157e9dde25/fphys-12-614060-g0001.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验