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EEG correlates of postural audio-biofeedback.

机译:脑电图相关的姿势音频生物反馈。

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The control of postural sway depends on the dynamic integration of multi-sensory information in the central nervous system. Augmentation of sensory information, such as during auditory biofeedback (ABF) of the trunk acceleration, has been shown to improve postural control. By means of quantitative electroencephalography (EEG), we examined the basic processes in the brain that are involved in the perception and cognition of auditory signals used for ABF. ABF and Fake ABF (FAKE) auditory stimulations were delivered to 10 healthy naive participants during quiet standing postural tasks, with eyes-open and closed. Trunk acceleration and 19-channels EEG were recorded at the same time. Advanced, state-of-the-art EEG analysis and modeling methods were employed to assess the possibly differential, functional activation, and localization of EEG spectral features (power in alpha, beta, and gamma bands) between the FAKE and the ABF conditions, for both the eyes-open and the eyes-closed tasks. Participants gained advantage by ABF in reducing their postural sway, as measured by a reduction of the root mean square of trunk acceleration during the ABF compared to the FAKE condition. Population-wise localization analysis performed on the comparison FAKE - ABF revealed: (i) a significant decrease of alpha power in the right inferior parietal cortex for the eyes-open task; (ii) a significant increase of gamma power in left temporo-parietal areas for the eyes-closed task; (iii) a significant increase of gamma power in the left temporo-occipital areas in the eyes-open task. EEG outcomes supported the idea that ABF for postural control heavily modulates (increases) the cortical activation in healthy participants. The sites showing the higher ABF-related modulation are among the known cortical areas associated with multi-sensory, perceptual integration, and sensorimotor integration, showing a differential activation between the eyes-open and eyes-closed conditions.
机译:姿势摇摆的控制取决于中枢神经系统中多感官信息的动态整合。增强感觉信息(例如在躯干加速的听觉生物反馈(ABF)期间)可改善姿势控制。通过定量脑电图(EEG),我们检查了大脑中与用于ABF的听觉信号的感知和认知有关的基本过程。在安静的站立姿势任务中,睁大眼睛和闭上眼睛,对10名健康的天真参与者进行了ABF和假ABF(FAKE)听觉刺激。同时记录躯干加速度和19通道脑电图。我们采用了先进的,先进的EEG分析和建模方法来评估FAKE和ABF条件之间的EEG频谱特征(α,β和gamma谱带的功率)之间可能存在的差异,功能激活和定位,睁大眼睛和闭眼的任务。参加者通过ABF获得了减少姿势摇摆的优势,这是通过ABF期间躯干加速度的均方根值与FAKE状态相比的降低来衡量的。在比较FAKE-ABF上进行的总体人群定位分析表明:(i)睁眼时右下顶叶皮层的alpha功率显着降低; (ii)闭眼时左侧颞顶区的伽马能显着增加; (iii)睁眼时左颞枕区域的伽马能显着增加。脑电图的结果支持这样的想法,即姿势控制的ABF会严重调节(增加)健康参与者的皮质激活。表现出更高的与ABF相关的调制的位点在与多感官,知觉整合和感觉运动整合相关的已知皮质区域中,显示了睁眼和闭眼状态之间的差异激活。

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