Prefrontal, posterior parietal and sensorimotor network activity underlying speed control during walking

被引:111
作者
Bulea, Thomas C. [1 ]
Kim, Jonghyun [2 ]
Damiano, Diane L. [1 ]
Stanley, Christopher J. [1 ]
Park, Hyung-Soon [3 ]
机构
[1] NIH, Dept Rehabil Med, Funct & Appl Biomech Sect, Bethesda, MD 20892 USA
[2] Daegu Gyeonbuk Inst Sci & Technol, Robot Engn Dept, Daegu, South Korea
[3] Korea Adv Inst Sci & Technol, Dept Mech Engn, Taejon 305701, South Korea
基金
新加坡国家研究基金会;
关键词
electroencephalography; source localization; motor cortex; gait; motor learning; gamma oscillations; event-related desynchronization; neurorehabilitation; BODY-WEIGHT SUPPORT; TREADMILL WALKING; CORTICOMUSCULAR COHERENCE; CORTICAL ACTIVATION; BRAIN ACTIVITY; MOTOR CONTROL; EEG; GAIT; BETA; SYNCHRONIZATION;
D O I
10.3389/fnhum.2015.00247
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Accumulating evidence suggests cortical circuits may contribute to control of human locomotion. Here, noninvasive electroencephalography (EEG) recorded from able-bodied volunteers during a novel treadmill walking paradigm was used to assess neural correlates of walking. A systematic processing method, including a recently developed subspace reconstruction algorithm, reduced movement-related EEG artifact prior to independent component analysis and dipole source localization. We quantified cortical activity while participants tracked slow and fast target speeds across two treadmill conditions: an active mode that adjusted belt speed based on user movements and a passive mode reflecting a typical treadmill. Our results reveal frequency specific, multi-focal task related changes in cortical oscillations elicited by active walking. Low gamma band power, localized to the prefrontal and posterior parietal cortices, was significantly increased during double support and early swing phases, critical points in the gait cycle since the active controller adjusted speed based on pelvis position and swing foot velocity. These phasic gamma band synchronizations provide evidence that prefrontal and posterior parietal networks, previously implicated in visuo-spatial and somotosensory integration, are engaged to enhance lower limb control during gait. Sustained mu and beta band desynchronization within sensorimotor cortex, a neural correlate for movement, was observed during walking thereby validating our methods for isolating cortical activity. Our results also demonstrate the utility of EEG recorded during locomotion for probing the multi-regional cortical networks which underpin its execution. For example, the cortical network engagement elicited by the active treadmill suggests that it may enhance neuroplasticity for more effective motor training.
引用
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页数:13
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