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Effects of reflex delays on postural control during unstable seated balance.

机译:不稳定坐姿平衡期间反射延迟对姿势控制的影响。

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Patients with low-back pain (LBP) exhibit longer trunk muscle reflex latencies and poorer postural control than healthy individuals. We hypothesized that balance during a simulated postural control task would become impaired when the delays exhibited by LBP patients were incorporated into neuromuscular control. The task chosen for this investigation was seated balancing, which emphasizes trunk muscles' contribution in postural control. This task was modeled in Simulink as a fourth order linearized dynamic system with feedback delays. Optimization (minimizing error between experimental and model data) of state variables was used to determine neuromuscular control parameters. Experimental data were obtained from 7 subjects during 5 perturbation trials while balancing on the seat with eyes closed. Model accuracy, reflecting the ability of the model to capture the dynamics of seated balance, was correlated with seated balance performance (r=0.91, p<0.001). To minimize the risk of erroneous findings from inaccurate modeling, only the best five balancers' data were used for hypothesis testing. In these five subjects, feedback delays in modeled neuromuscular control were increased to determine their effect on task stability, trunk displacement and trunk moment. Simulations showed that longer delays found in LBP, in general, did not produce unstable balancing, but did result in increased trunk displacement (p<0.001) and trunk moment (p=0.001). This impairment in neuromuscular control in chronic LBP patients could possibly exacerbate their condition by increasing tissue strain (more spinal displacement) and stress (more spinal loading).
机译:与健康个体相比,下腰痛(LBP)患者表现出更长的躯干肌肉反射潜伏期和较差的姿势控制。我们假设当LBP患者表现出的延迟被纳入神经肌肉控制中时,模拟姿势控制任务中的平衡会受到损害。这项研究选择的任务是坐姿平衡,强调躯干肌肉在姿势控制中的作用。该任务在Simulink中建模为具有反馈延迟的四阶线性化动态系统。状态变量的优化(最小化实验数据和模型数据之间的误差)用于确定神经肌肉控制参数。在5个摄动试验中,从7个受试者中获得了实验数据,同时闭着眼睛坐在座椅上保持平衡。模型的准确性反映了模型捕获坐垫平衡动力学的能力,与坐垫平衡性能相关(r = 0.91,p <0.001)。为了最大程度地减少因建模不正确而导致错误发现的风险,仅使用最佳的五个平衡器数据进行假设检验。在这五个对象中,增加了模拟神经肌肉控制中的反馈延迟,以确定它们对任务稳定性,躯干移位和躯干力矩的影响。模拟表明,通常在LBP中发现更长的延迟不会产生不稳定的平衡,但会导致躯干位移增加(p <0.001)和躯干弯矩(p = 0.001)。慢性LBP患者的神经肌肉控制能力受损可能会通过增加组织应变(增加脊柱位移)和增加压力(增加脊柱负荷)而加重病情。

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