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膝关节伸展和屈曲力量控制的神经关联:一项动力学仪器神经影像学研究。

Neural Correlates of Knee Extension and Flexion Force Control: A Kinetically-Instrumented Neuroimaging Study.

作者信息

Grooms Dustin R, Criss Cody R, Simon Janet E, Haggerty Adam L, Wohl Timothy R

机构信息

Ohio Musculoskeletal and Neurological Institute, Ohio University, Grover Center, Athens, OH, United States.

Division of Athletic Training, School of Applied Health Sciences and Wellness, College of Health Sciences and Professions, Ohio University, Grover Center, Athens, OH, United States.

出版信息

Front Hum Neurosci. 2021 Feb 4;14:622637. doi: 10.3389/fnhum.2020.622637. eCollection 2020.

Abstract

: The regulation of muscle force is a vital aspect of sensorimotor control, requiring intricate neural processes. While neural activity associated with upper extremity force control has been documented, extrapolation to lower extremity force control is limited. Knowledge of how the brain regulates force control for knee extension and flexion may provide insights as to how pathology or intervention impacts central control of movement. : To develop and implement a neuroimaging-compatible force control paradigm for knee extension and flexion. : A magnetic resonance imaging (MRI) safe load cell was used in a customized apparatus to quantify force (N) during neuroimaging (Philips Achieva 3T). Visual biofeedback and a target sinusoidal wave that fluctuated between 0 and 5 N was provided an MRI-safe virtual reality display. Fifteen right leg dominant female participants (age = 20.3 ± 1.2 years, height = 1.6 ± 0.10 m, weight = 64.8 ± 6.4 kg) completed a knee extension and flexion force matching paradigm during neuroimaging. The force-matching error was calculated based on the difference between the visual target and actual performance. Brain activation patterns were calculated and associated with force-matching error and the difference between quadriceps and hamstring force-matching tasks were evaluated with a mixed-effects model ( > 3.1, < 0.05, cluster corrected). : Knee extension and flexion force-matching tasks increased BOLD signal among cerebellar, sensorimotor, and visual-processing regions. Increased knee extension force-matching error was associated with greater right frontal cortex and left parietal cortex activity and reduced left lingual gyrus activity. Increased knee flexion force-matching error was associated with reduced left frontal and right parietal region activity. Knee flexion force control increased bilateral premotor, secondary somatosensory, and right anterior temporal activity relative to knee extension. The force-matching error was not statistically different between tasks. : Lower extremity force control results in unique activation strategies depending on if engaging knee extension or flexion, with knee flexion requiring increased neural activity (BOLD signal) for the same level of force and no difference in relative error. These fMRI compatible force control paradigms allow precise behavioral quantification of motor performance concurrent with brain activity for lower extremity sensorimotor function and may serve as a method for future research to investigate how pathologies affect lower extremity neuromuscular function.

摘要

肌肉力量的调节是感觉运动控制的一个重要方面,需要复杂的神经过程。虽然与上肢力量控制相关的神经活动已有文献记载,但向下肢力量控制的外推是有限的。了解大脑如何调节膝关节伸展和屈曲的力量控制,可能有助于深入了解病理学或干预措施如何影响运动的中枢控制。

目的

开发并实施一种用于膝关节伸展和屈曲的与神经成像兼容的力量控制范式。

方法

在定制设备中使用磁共振成像(MRI)安全测力传感器,以在神经成像期间(飞利浦Achieva 3T)量化力量(牛顿)。通过MRI安全虚拟现实显示器提供视觉生物反馈和在0至5牛顿之间波动的目标正弦波。15名右利腿女性参与者(年龄=20.3±1.2岁,身高=1.6±0.10米,体重=64.8±6.4千克)在神经成像期间完成膝关节伸展和屈曲力量匹配范式。根据视觉目标与实际表现之间的差异计算力量匹配误差。计算脑激活模式,并将其与力量匹配误差相关联,使用混合效应模型评估股四头肌和腘绳肌力量匹配任务之间的差异(>3.1,<0.05,聚类校正)。

结果

膝关节伸展和屈曲力量匹配任务增加了小脑、感觉运动和视觉处理区域的血氧水平依赖(BOLD)信号。膝关节伸展力量匹配误差增加与右侧额叶皮质和左侧顶叶皮质活动增加以及左侧舌回活动减少相关。膝关节屈曲力量匹配误差增加与左侧额叶和右侧顶叶区域活动减少相关。相对于膝关节伸展,膝关节屈曲力量控制增加了双侧运动前区、次级体感区和右侧颞前区的活动。任务之间的力量匹配误差在统计学上没有差异。

结论

下肢力量控制根据进行膝关节伸展还是屈曲会产生独特的激活策略,对于相同水平的力量,膝关节屈曲需要增加神经活动(BOLD信号),且相对误差没有差异。这些与功能磁共振成像(fMRI)兼容的力量控制范式允许在进行下肢感觉运动功能脑活动的同时对运动表现进行精确的行为量化,并可能作为未来研究病理学如何影响下肢神经肌肉功能的一种方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a8fa/7890238/456c4fc62505/fnhum-14-622637-g0001.jpg

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