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光学脑成像及其在神经反馈中的应用。

Optical brain imaging and its application to neurofeedback.

机构信息

Clinical Neurotechnology Laboratory, Dept. of Psychiatry and Psychotherapy, Neuroscience Research Center, Campus Charité Mitte (CCM), Charité - University Medicine of Berlin, Berlin, Germany.

JARA-Institute Molecular Neuroscience and Neuroimaging (INM-11), Jülich Research Centre, Jülich, Germany; Child Neuropsychology Section, Department of Child and Adolescent Psychiatry, Psychosomatics and Psychotherapy, Medical Faculty, RWTH Aachen University, Germany.

出版信息

Neuroimage Clin. 2021;30:102577. doi: 10.1016/j.nicl.2021.102577. Epub 2021 Jan 26.

Abstract

Besides passive recording of brain electric or magnetic activity, also non-ionizing electromagnetic or optical radiation can be used for real-time brain imaging. Here, changes in the radiation's absorption or scattering allow for continuous in vivo assessment of regional neurometabolic and neurovascular activity. Besides magnetic resonance imaging (MRI), over the last years, also functional near-infrared spectroscopy (fNIRS) was successfully established in real-time metabolic brain imaging. In contrast to MRI, fNIRS is portable and can be applied at bedside or in everyday life environments, e.g., to restore communication and movement. Here we provide a comprehensive overview of the history and state-of-the-art of real-time optical brain imaging with a special emphasis on its clinical use towards neurofeedback and brain-computer interface (BCI) applications. Besides pointing to the most critical challenges in clinical use, also novel approaches that combine real-time optical neuroimaging with other recording modalities (e.g. electro- or magnetoencephalography) are described, and their use in the context of neuroergonomics, neuroenhancement or neuroadaptive systems discussed.

摘要

除了被动记录脑电或磁场活动外,还可以使用非电离电磁或光辐射进行实时脑成像。在这里,辐射的吸收或散射的变化允许对区域神经代谢和神经血管活动进行连续的体内评估。除了磁共振成像 (MRI) 之外,近年来,功能近红外光谱 (fNIRS) 也在实时代谢脑成像中成功建立。与 MRI 相比,fNIRS 具有便携性,可在床边或日常生活环境中应用,例如恢复交流和运动。在这里,我们全面概述了实时光学脑成像的历史和最新技术,特别强调了其在神经反馈和脑-机接口 (BCI) 应用中的临床应用。除了指出临床应用中最关键的挑战外,还描述了将实时光学神经成像与其他记录模式(例如,脑电图或脑磁图)相结合的新方法,并讨论了它们在神经工效学、神经增强或神经自适应系统中的使用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3731/7868728/3666c83c63a4/gr1.jpg

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