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Magnetoencephalography: From SQUIDs to neuroscience: Neuroimage 20th Anniversary Special Edition

机译:脑磁图学:从SQUID到神经科学:Neuroimage 20周年特别版

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摘要

Magnetoencephalography (MEG), with its direct view to the cortex through the magnetically transparent skull, has developed from its conception in physics laboratories to a powerful tool of basic and clinical neuroscience. MEG provides millisecond time resolution and allows real-time tracking of brain activation sequences during sensory processing, motor planning and action, cognition, language perception and production, social interaction, and various brain disorders. Current-day neuromagnetometers house hundreds of SQUIDs, superconducting quantum interference devices, to pick up signals generated by concerted action of cortical neurons. Complementary MEG measures of neuronal involvement include evoked responses, modulation of cortical rhythms, properties of the on-going neural activity, and interareal connectivity. Future MEG breakthroughs in understanding brain dynamics are expected through advanced signal analysis and combined use of MEG with hemodynamic imaging (fMRI). Methodological development progresses most efficiently when linked with insightful neuroscientific questions.
机译:磁脑电图(MEG)通过磁透明的头骨直接观察皮层,从物理实验室的概念发展为基础和临床神经科学的强大工具。 MEG提供毫秒级的时间分辨率,并允许在感官处理,运动计划和动作,认知,语言知觉和产生,社交互动以及各种脑部疾病期间实时跟踪大脑激活序列。当今的神经磁强计装有数百个SQUID(超导量子干扰设备),用于拾取由皮层神经元的协同作用产生的信号。 MEG对神经元受累的补充测量包括诱发反应,皮质节律的调节,持续神经活动的性质以及区域间的连通性。通过先进的信号分析以及将MEG与血流动力学成像(fMRI)结合使用,有望在理解脑动力学方面实现MEG的未来突破。与深刻的神经科学问题联系在一起时,方法学的发展最为有效。

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