Department of Medical Physics and Biomedical Engineering, University College London, London, UK.
Centre for Brain and Cognitive Development, Birkbeck College, University of London, London, UK.
Sci Rep. 2021 Feb 17;11(1):3977. doi: 10.1038/s41598-021-83420-9.
With the rapid growth of optical-based neuroimaging to explore human brain functioning, our research group has been developing broadband Near Infrared Spectroscopy (bNIRS) instruments, a technological extension to functional Near Infrared Spectroscopy (fNIRS). bNIRS has the unique capacity of monitoring brain haemodynamics/oxygenation (measuring oxygenated and deoxygenated haemoglobin), and metabolism (measuring the changes in the redox state of cytochrome-c-oxidase). When combined with electroencephalography (EEG), bNIRS provides a unique neuromonitoring platform to explore neurovascular coupling mechanisms. In this paper, we present a novel pipeline for the integrated analysis of bNIRS and EEG signals, and demonstrate its use on multi-channel bNIRS data recorded with concurrent EEG on healthy adults during a visual stimulation task. We introduce the use of the Finite Impulse Response functions within the General Linear Model for bNIRS and show its feasibility to statistically localize the haemodynamic and metabolic activity in the occipital cortex. Moreover, our results suggest that the fusion of haemodynamic and metabolic measures unveils additional information on brain functioning over haemodynamic imaging alone. The cross-correlation-based analysis of interrelationships between electrical (EEG) and haemodynamic/metabolic (bNIRS) activity revealed that the bNIRS metabolic signal offers a unique marker of brain activity, being more closely coupled to the neuronal EEG response.
随着基于光学的神经影像学技术的快速发展,我们的研究小组一直在开发宽带近红外光谱(bNIRS)仪器,这是功能近红外光谱(fNIRS)的技术延伸。bNIRS 具有独特的监测脑血液动力学/氧合(测量氧合和去氧血红蛋白)和代谢(测量细胞色素 c 氧化酶的氧化还原状态变化)的能力。当与脑电图(EEG)结合使用时,bNIRS 提供了一个独特的神经监测平台,用于探索神经血管耦合机制。在本文中,我们提出了一种用于 bNIRS 和 EEG 信号综合分析的新方法,并在健康成年人进行视觉刺激任务时同时记录多通道 bNIRS 和 EEG 数据的实验中演示了其用途。我们介绍了在广义线性模型中使用有限脉冲响应函数对 bNIRS 进行建模,并展示了其在统计上定位枕叶皮质血液动力学和代谢活动的可行性。此外,我们的结果表明,血液动力学和代谢测量的融合揭示了仅通过血液动力学成像无法获得的关于大脑功能的额外信息。电(EEG)和血液动力学/代谢(bNIRS)活动之间的互相关分析揭示了 bNIRS 代谢信号是大脑活动的独特标志物,与神经元 EEG 反应更为密切相关。