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首页> 外文期刊>IEEE transactions on rehabilitation engineering >EMG and metabolite-based prediction of force in paralyzed quadriceps muscle under interrupted stimulation
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EMG and metabolite-based prediction of force in paralyzed quadriceps muscle under interrupted stimulation

机译:肌电和基于代谢物的断头刺激下股四头肌麻痹力的预测

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A major issue associated with functional electrical stimulation (FES) of a paralyzed limb is the decay with time of the muscle force as a result of fatigue. A possible means to reduce fatigue during FES is by using interrupted stimulation, in which fatigue and recovery occur in sequence. In this study, we present a model which enables us to evaluate the temporal force generation capacity within the electrically activated muscle during first stimulation fatigue, i.e., when the muscle is activated from unfatigued initial conditions, and during postrest stimulation, i.e., after different given rest durations. The force history of the muscle is determined by the activation as derived from actually measured electromyogram (EMG) data, and by the metabolic fatigue function expressing the temporal changes of muscle metabolites, from existing data acquired by in vivo /sup 31/P MR spectroscopy in terms of the inorganic phosphorus variables, Pi or H/sub 2/PO/sub 4//sup -/, and by the intracellular pH. The model was solved for supra maximal stimulation in isometric contractions separated by rest periods, and compared to experimentally obtained measurements. EMG data were fundamental for prediction of the ascending force during its posttetanic response. On the other hand, prediction of the decaying phase of the force was possible only by means of the metabolite-based fatigue function. The prediction capability of the model was assessed by means of the error between predicted and measured force profiles. The predicted force obtained from the model in first stimulation fatigue fits well with the experimental one. In postrest stimulation fatigue, the different metabolites provided different prediction capabilities of the force, depending on the duration of the rest period. Following rest duration of 1 min, Pi provided the best prediction of force; H/sub 2/PO/sub 4//sup -/ extended the prediction capacity of the model to up to 6 min and pH provided a reliable prediction for rest durations longer than 12 min. The results presented shed light on the roles of EMG and of metabolites in prediction of the force history of a paralyzed muscle under conditions where fatigue and recovery occur in sequence.
机译:与瘫痪肢体的功能性电刺激(FES)相关的主要问题是由于疲劳导致的肌肉力量随时间的衰减。减少FES期间疲劳的一种可能方法是使用间断刺激,其中疲劳和恢复顺序发生。在这项研究中,我们提出了一个模型,该模型使我们能够评估在第一次刺激疲劳期间(即,肌肉从未疲劳的初始状态被激活时)以及在休息后刺激期间(即,在不同的给定条件下)激活时,电激活的肌肉内的暂时力产生能力。休息时间。肌肉的力量历程是根据从体内测得的肌电图(EMG)数据得出的激活情况,以及根据体内/ up 31 / P MR光谱学获得的现有数据,通过表达肌肉代谢物的时间变化的代谢疲劳函数来确定的就无机磷变量而言,Pi或H / sub 2 / PO / sub 4 // sup-/,以及细胞内pH。对模型进行求解,以在由休息期分隔的等距收缩中获得最大刺激,并将其与实验获得的测量值进行比较。 EMG数据是预测其强直反应期间上升力的基础。另一方面,只能通过基于代谢物的疲劳函数来预测力的衰减阶段。通过预测力和测得力分布之间的误差评估模型的预测能力。在第一次刺激疲劳中从模型获得的预测力与实验值非常吻合。在休息后刺激疲劳中,取决于休息时间的长短,不同的代谢物提供了不同的力预测能力。在休息1分钟后,Pi提供了最佳的力量预测; H / sub 2 / PO / sub 4 // sup-/将模型的预测能力扩展到了6分钟,pH值为休息时间超过12分钟提供了可靠的预测。研究结果揭示了肌电图和代谢物在顺序出现疲劳和恢复的情况下预测瘫痪肌肉力量史的作用。

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