Chiarelli Antonio M, Zappasodi Filippo, Di Pompeo Francesco, Merla Arcangelo
University of Illinois at Urbana Champaign, Beckman Institute, Urbana, Illinois, United States.
Università G. d'Annunzio, Department of Neuroscience, Imaging and Clinical Science, Chieti, Italy.
Neurophotonics. 2017 Oct;4(4):041411. doi: 10.1117/1.NPh.4.4.041411. Epub 2017 Aug 22.
Multimodal monitoring has become particularly common in the study of human brain function. In this context, combined, synchronous measurements of functional near-infrared spectroscopy (fNIRS) and electroencephalography (EEG) are getting increased interest. Because of the absence of electro-optical interference, it is quite simple to integrate these two noninvasive recording procedures of brain activity. fNIRS and EEG are both scalp-located procedures. fNIRS estimates brain hemodynamic fluctuations relying on spectroscopic measurements, whereas EEG captures the macroscopic temporal dynamics of brain electrical activity through passive voltages evaluations. The "orthogonal" neurophysiological information provided by the two technologies and the increasing interest in the neurovascular coupling phenomenon further encourage their integration. This review provides, together with an introduction regarding the principles and future directions of the two technologies, an evaluation of major clinical and nonclinical applications of this flexible, low-cost combination of neuroimaging modalities. fNIRS-EEG systems exploit the ability of the two technologies to be conducted in an environment or experimental setting and/or on subjects that are generally not suited for other neuroimaging modalities, such as functional magnetic resonance imaging, positron emission tomography, and magnetoencephalography. fNIRS-EEG brain monitoring settles itself as a useful multimodal tool for brain electrical and hemodynamic activity investigation.
多模态监测在人类脑功能研究中已变得尤为常见。在这种背景下,功能近红外光谱(fNIRS)和脑电图(EEG)的联合同步测量越来越受到关注。由于不存在电光干扰,将这两种脑活动的非侵入性记录方法整合起来相当简单。fNIRS和EEG都是头皮定位的方法。fNIRS依靠光谱测量来估计脑血流动力学波动,而EEG则通过被动电压评估来捕捉脑电活动的宏观时间动态。这两种技术提供的“正交”神经生理学信息以及对神经血管耦合现象日益增长的兴趣进一步推动了它们的整合。本综述在介绍这两种技术的原理和未来方向的同时,还对这种灵活、低成本的神经成像模态组合的主要临床和非临床应用进行了评估。fNIRS-EEG系统利用了这两种技术在通常不适合其他神经成像模态(如功能磁共振成像、正电子发射断层扫描和脑磁图)的环境或实验设置中以及/或者对受试者进行测量的能力。fNIRS-EEG脑监测成为一种用于脑电和血流动力学活动研究的有用多模态工具。