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首页> 外文期刊>Audiology & neuro-otology >Neuromagnetic Cortical Activation during Initiation of Optokinetic Nystagmus: An MEG Pilot Study
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Neuromagnetic Cortical Activation during Initiation of Optokinetic Nystagmus: An MEG Pilot Study

机译:视动性眼球震颤启动过程中的神经磁皮质激活:MEG初步研究。

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Purpose: To investigate the spatiotemporal evolution of cortical activation during the initiation of optokinetic nystagmus using magnetoencephalography. Background: Previous imaging studies of optokinetic nystagmus in humans using positron emission tomography and functional magnetic resonance imaging discovered activation of a large set of cortical and subcortical structures during steady-state optokinetic stimulation, but did not provide information on the temporal dynamics of the initial response. Imaging studies have shown that cortical areas responsible for vision in occipital and temporo-occipital areas are involved, i.e. cortical areas control optokinetic stimulation in humans. Magnetoencephalography provides measures that reflect neural ensemble activity in the millisecond time scale, allowing the identification of early cortical components of visuomotor integration. Design/Methods: We studied neuromagnetic cortical responses during the initiation of optokinetic nystagmus in 6 right-handed healthy subjects. Neuromagnetic activity was recorded with a whole-head magnetoencephalograph, consisting of 143 planar gradiometers. Results: The mean (+/- SD) latency between stimulus onset and initiation of optokinetic nystagmus was 177.7 +/- 59 ms. Initiation of optokinetic nystagmus evoked an early component in the primary visual cortex starting at 40-90 ms prior to the onset of the slow phase of nystagmus. Almost simultaneously an overlapping second component occurred bilaterally in the temporo-occipital area (visual motion areas), pronounced in the right hemisphere, starting at 10-60 ms prior to the slow-phase onset. Both components showed long-duration activity lasting for up to 100 ms after slow-phase onset. Conclusions: Our findings suggest that the initiation of optokinetic nystagmus induces early cortical activation in the occipital cortex and almost simultaneously bilaterally in the temporo-occipital cortex. These cortical regions might represent essential areas for the monitoring of retinal slip. (C) 2015 S. Karger AG, Basel
机译:目的:利用脑磁图技术研究视动性眼球震颤起始过程中皮质激活的时空演变。背景:先前使用正电子发射断层扫描和功能磁共振成像对人体视动眼球震颤进行的成像研究发现,在稳态视动眼刺激期间,大量皮质和皮质下结构被激活,但未提供初始反应的时间动态信息。 。影像学研究表明,涉及枕骨和颞枕骨区域视觉的皮层区域,即皮层区域控制着人类的视动刺激。磁脑电图提供的措施可反映毫秒级的神经集合活动,从而可识别出视运动整合的早期皮质成分。设计/方法:我们在6位惯用右手的健康受试者中研究了视动眼球震颤发作期间的神经磁皮质反应。用由143个平面梯度仪组成的全头磁脑图仪记录神经磁活动。结果:刺激发作和视动性眼球震颤发作之间的平均(+/- SD)潜伏期为177.7 +/- 59 ms。视动性眼球震颤的发作在眼球震颤慢相发作之前的40-90 ms内引起初级视觉皮层的早期成分。几乎同时,在颞枕区域(视觉运动区域)的两侧出现了重叠的第二部分,在右半球显着出现,始于慢相发作之前的10-60 ms。在慢相发作后,这两种成分均显示出持续时间长达100 ms的长期活动。结论:我们的发现表明,视动性眼球震颤的诱发在枕叶皮质中早期皮质激活,并且在颞枕叶皮质中几乎同时在两侧引起皮质激活。这些皮质区域可能代表了监测视网膜滑移的重要区域。 (C)2015 S.Karger AG,巴塞尔

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