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Combined nonlinear metrics to evaluate spontaneous EEG recordings from chronic spinal cord injury in a rat model: a pilot study

机译:结合非线性指标评估大鼠模型中慢性脊髓损伤引起的自发性脑电图记录:一项初步研究

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摘要

Spinal cord injury (SCI) is a high-cost disability and may cause permanent loss of movement and sensation below the injury location. The chance of cure in human after SCI is extremely limited. Instead, neural regeneration could have been seen in animals after SCI, and such regeneration could be retarded by blocking neural plasticity pathways, showing the importance of neural plasticity in functional recovery. As an indicator of nonlinear dynamics in the brain, sample entropy was used here in combination with detrended fluctuation analysis (DFA) and Kolmogorov complexity to quantify functional plasticity changes in spontaneous EEG recordings of rats before and after SCI. The results showed that the sample entropy values were decreased at the first day following injury then gradually increased during recovery. DFA and Kolmogorov complexity results were in consistent with sample entropy, showing the complexity of the EEG time series was lost after injury and partially regained in 1 week. The tendency to regain complexity is in line with the observation of behavioral rehabilitation. A critical time point was found during the recovery process after SCI. Our preliminary results suggested that the combined use of these nonlinear dynamical metrics could provide a quantitative and predictive way to assess the change of neural plasticity in a spinal cord injury rat model.
机译:脊髓损伤(SCI)是高成本的残疾,可能会导致受伤部位下方的运动和感觉永久丧失。 SCI后治愈人类的机会非常有限。取而代之的是,在SCI后动物中可能会看到神经再生,并且这种再生可能会通过阻断神经可塑性通路而受到阻碍,这表明神经可塑性在功能恢复中的重要性。作为大脑中非线性动力学的指标,此处将样本熵与去趋势波动分析(DFA)和Kolmogorov复杂度结合使用,以量化SCI之前和之后大鼠自发EEG记录的功能可塑性变化。结果表明,损伤后第一天样品熵值降低,然后在恢复过程中逐渐升高。 DFA和Kolmogorov复杂度结果与样本熵一致,表明受伤后脑电图时间序列的复杂度丢失,并在1周内部分恢复。恢复复杂性的趋势与行为康复的观察一致。在SCI之后的恢复过程中发现了一个关键时间点。我们的初步结果表明,这些非线性动力学指标的组合使用可以提供一种定量和预测性的方法来评估脊髓损伤大鼠模型中神经可塑性的变化。

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