单腿深蹲阶段的局部皮层电活动及其与膝关节额平面稳定性的关系。

IF 1.7 4区 医学 Q4 NEUROSCIENCES Experimental Brain Research Pub Date : 2024-11-01 Epub Date: 2024-09-23 DOI:10.1007/s00221-024-06927-3
Scott Bonnette, Evi Wezenbeek, Jed A Diekfuss, Taylor Zuleger, Mario Ramirez, Lexie Sengkhammee, Vicente Raja, Gregory D Myer, Christopher D Riehm
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引用次数: 0

摘要

本研究调查了单腿深蹲(SLS)三个阶段(即下降、保持和上升阶段)中运动相关脑区的脑电图(EEG)活动差异。具体来说,我们利用先进的磁共振成像引导脑电图源定位技术和无标记运动捕捉技术,探索了同时记录的下肢生物力学和大脑活动之间的相互作用。在非优势腿 SLS 的各阶段中,我们发现对侧(右半球)大脑活动在前中央回、后中央回和感觉运动区的活动中存在差异。另外,在优势 SLS 腿部,三个 SLS 阶段的对侧大脑活动差异较小。与大脑半球相关的大脑活动还与参与者的膝关节外翻角度运动范围(右半球)和膝关节外翻角度峰值(左半球)显著相关。除了大脑和生物力学方面的新发现外,本研究还揭示了在复杂的多关节运动中记录脑电图的技术可行性及其在理解感觉运动行为方面的潜在应用。
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Localized electrocortical activity as a function of single-leg squat phases and its relationship to knee frontal plane stability.

This study investigated differences in electroencephalography (EEG) activity within motor-related brain areas during three phases of a single-leg squat (SLS)-i.e., descending, holding, and ascending phases. Specifically, utilizing advanced magnetic resonance imaging guided EEG source localization techniques and markerless motion capture technology, we explored the interplay between concurrently recorded lower-extremity biomechanics and brain activity. Among the phases of a nondominant leg SLS, differences in contralateral brain activity (right hemisphere) were found in the activity of the precentral gyrus, the postcentral gyrus, and the sensory motor area. Alternatively, during the dominant SLS leg, differences among the three SLS phases in contralateral brain activity were fewer. Hemispheric dependent brain activity also significantly correlated with participants' knee valgus angle range of motion (right hemisphere) and peak knee valgus angles (left hemisphere). In addition to the novel brain and biomechanical findings, this study sheds light on the technical feasibility of recording EEG during complex multi-joint movements and its potential applications in understanding sensorimotor behavior.

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来源期刊
CiteScore
3.60
自引率
5.00%
发文量
228
审稿时长
1 months
期刊介绍: Founded in 1966, Experimental Brain Research publishes original contributions on many aspects of experimental research of the central and peripheral nervous system. The focus is on molecular, physiology, behavior, neurochemistry, developmental, cellular and molecular neurobiology, and experimental pathology relevant to general problems of cerebral function. The journal publishes original papers, reviews, and mini-reviews.
期刊最新文献
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