Gale Steven, Prsa Mario, Schurger Aaron, Gay Annietta, Paillard Aurore, Herbelin Bruno, Guyot Jean-Philippe, Lopez Christophe, Blanke Olaf
Center for Neuroprosthetics, École Polytechnique Fédérale de Lausanne, Lausanne, Switzerland; Laboratory of Cognitive Neuroscience, Brain-Mind Institute, École Polytechnique Fédérale de Lausanne, Lausanne, Switzerland;
Department of Otorhinolaryngology, University Hospital Geneva, Geneva, Switzerland;
J Neurophysiol. 2016 Mar;115(3):1228-42. doi: 10.1152/jn.00153.2015. Epub 2015 Dec 16.
While there have been numerous studies of the vestibular system in mammals, less is known about the brain mechanisms of vestibular processing in humans. In particular, of the studies that have been carried out in humans over the last 30 years, none has investigated how vestibular stimulation (VS) affects cortical oscillations. Here we recorded high-density electroencephalography (EEG) in healthy human subjects and a group of bilateral vestibular loss patients (BVPs) undergoing transient and constant-velocity passive whole body yaw rotations, focusing our analyses on the modulation of cortical oscillations in response to natural VS. The present approach overcame significant technical challenges associated with combining natural VS with human electrophysiology and reveals that both transient and constant-velocity VS are associated with a prominent suppression of alpha power (8-13 Hz). Alpha band suppression was localized over bilateral temporo-parietal scalp regions, and these alpha modulations were significantly smaller in BVPs. We propose that suppression of oscillations in the alpha band over temporo-parietal scalp regions reflects cortical vestibular processing, potentially comparable with alpha and mu oscillations in the visual and sensorimotor systems, respectively, opening the door to the investigation of human cortical processing under various experimental conditions during natural VS.
虽然已经有许多关于哺乳动物前庭系统的研究,但对于人类前庭处理的脑机制了解较少。特别是在过去30年里针对人类开展的研究中,没有一项研究调查过前庭刺激(VS)如何影响皮层振荡。在此,我们记录了健康人类受试者和一组双侧前庭丧失患者(BVP)在经历瞬态和恒速被动全身偏航旋转时的高密度脑电图(EEG),我们的分析重点是响应自然VS时皮层振荡的调制。本方法克服了将自然VS与人类电生理学相结合所面临的重大技术挑战,并揭示瞬态和恒速VS均与显著抑制α波功率(8 - 13赫兹)有关。α波段抑制定位于双侧颞顶头皮区域,并且这些α调制在BVP中明显较小。我们提出,颞顶头皮区域α波段振荡的抑制反映了皮层前庭处理,可能分别与视觉和感觉运动系统中的α和μ振荡相当,这为在自然VS期间各种实验条件下研究人类皮层处理打开了大门。