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在两个高度进行双腿落地动作时拮抗肌的共同收缩。

Antagonist muscle co-contraction during a double-leg landing maneuver at two heights.

作者信息

Mokhtarzadeh Hossein, Yeow Chen Hua, Goh James Cho Hong, Oetomo Denny, Ewing Katie, Lee Peter Vee Sin

机构信息

a Department of Mechanical Engineering , University of Melbourne , Victoria , Australia.

b Department of Orthopedic Surgery, Center for Advanced Orthopaedic Studies , Beth Israel Deaconess Medical Center, Harvard Medical School , Boston , MA , USA.

出版信息

Comput Methods Biomech Biomed Engin. 2017 Oct;20(13):1382-1393. doi: 10.1080/10255842.2017.1366992. Epub 2017 Aug 24.

Abstract

BACKGROUND

Knee injuries are common during landing activities. Greater landing height increases peak ground reaction forces (GRFs) and loading at the knee joint. As major muscles to stabilize the knee joint, Quadriceps and Hamstring muscles provide internal forces to attenuate the excessive GRF. Despite the number of investigations on the importance of muscle function during landing, the role of landing height on these muscles forces using modeling during landing is not fully investigated.

METHODS

Participant-specific musculoskeletal models were developed using experimental motion analysis data consisting of anatomic joint motions and GRF from eight male participants performing double-leg drop landing from 30 and 60 cm. Muscle forces were calculated in OpenSim and their differences were analyzed at the instances of high risk during landing i.e. peak GRF for both heights.

RESULTS

The maximum knee flexion angle and moments were found significantly higher from a double-leg landing at 60 cm compared to 30 cm. The results showed elevated GRF, and mean muscle forces during landing. At peak GRF, only quadriceps showed significantly greater forces at 60 cm. Hamstring muscle forces did not significantly change at 60 cm compared to 30 cm.

CONCLUSIONS

Quadriceps and hamstring muscle forces changed at different heights. Since hamstring forces were similar in both landing heights, this could lead to an imbalance between the antagonist muscles, potentially placing the knee at risk of injury if combined with small flexion angles that was not observed at peak GRF in our study. Thus, enhanced neuromuscular training programs strengthening the hamstrings may be required to address this imbalance. These findings may contribute to enhance neuromuscular training programs to prevent knee injuries during landing.

摘要

背景

在落地活动中,膝关节损伤很常见。更大的落地高度会增加地面反作用力峰值(GRF)以及膝关节的负荷。作为稳定膝关节的主要肌肉,股四头肌和腘绳肌提供内力以减弱过大的GRF。尽管对落地过程中肌肉功能的重要性进行了大量研究,但利用落地过程建模研究落地高度对这些肌肉力量的作用尚未得到充分研究。

方法

利用实验运动分析数据开发特定参与者的肌肉骨骼模型,这些数据包括八名男性参与者从30厘米和60厘米高度进行双腿下落着地时的解剖关节运动和GRF。在OpenSim中计算肌肉力量,并在落地高风险时刻(即两个高度的GRF峰值)分析其差异。

结果

发现从60厘米高度双腿落地时的最大膝关节屈曲角度和力矩显著高于30厘米高度。结果显示落地期间GRF升高,平均肌肉力量也升高。在GRF峰值时,只有股四头肌在60厘米高度时显示出显著更大的力量。与30厘米高度相比,60厘米高度时腘绳肌力量没有显著变化。

结论

股四头肌和腘绳肌力量在不同高度发生变化。由于两个落地高度的腘绳肌力量相似,这可能导致拮抗肌之间失衡,如果再加上我们研究中在GRF峰值时未观察到的小屈曲角度,可能会使膝关节面临受伤风险。因此,可能需要加强神经肌肉训练计划来增强腘绳肌力量以解决这种失衡。这些发现可能有助于改进神经肌肉训练计划,以预防落地过程中的膝关节损伤。

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