Department of Neuroscience, Imaging and Clinical Sciences, Institute for Advanced Biomedical Technologies, University G. D'Annunzio of Chieti-Pescara, Via Luigi Polacchi 13, 66100 Chieti, Italy.
Department of Energy, Engineering and Mathematical Models, University of Palermo, Viale delle Scienze 9, 90128 Palermo, Italy.
Sensors (Basel). 2020 May 16;20(10):2831. doi: 10.3390/s20102831.
Portable neuroimaging technologies can be employed for long-term monitoring of neurophysiological and neuropathological states. Functional Near-Infrared Spectroscopy (fNIRS) and Electroencephalography (EEG) are highly suited for such a purpose. Their multimodal integration allows the evaluation of hemodynamic and electrical brain activity together with neurovascular coupling. An innovative fNIRS-EEG system is here presented. The system integrated a novel continuous-wave fNIRS component and a modified commercial EEG device. fNIRS probing relied on fiberless technology based on light emitting diodes and silicon photomultipliers (SiPMs). SiPMs are sensitive semiconductor detectors, whose large detection area maximizes photon harvesting from the scalp and overcomes limitations of fiberless technology. To optimize the signal-to-noise ratio and avoid fNIRS-EEG interference, a digital lock-in was implemented for fNIRS signal acquisition. A benchtop characterization of the fNIRS component showed its high performances with a noise equivalent power below 1 pW. Moreover, the fNIRS-EEG device was tested in vivo during tasks stimulating visual, motor and pre-frontal cortices. Finally, the capabilities to perform ecological recordings were assessed in clinical settings on one Alzheimer's Disease patient during long-lasting cognitive tests. The system can pave the way to portable technologies for accurate evaluation of multimodal brain activity, allowing their extensive employment in ecological environments and clinical practice.
便携式神经影像学技术可用于长期监测神经生理和神经病理状态。功能近红外光谱 (fNIRS) 和脑电图 (EEG) 非常适合这种用途。它们的多模态集成允许评估血流动力学和电脑活动以及神经血管耦合。本文介绍了一种创新的 fNIRS-EEG 系统。该系统集成了一种新型连续波 fNIRS 组件和改进的商用 EEG 设备。fNIRS 探测依赖于基于发光二极管和硅光电倍增管 (SiPM) 的无光纤技术。SiPM 是一种灵敏的半导体探测器,其大检测面积最大限度地从头皮采集光子,并克服了无光纤技术的局限性。为了优化信噪比并避免 fNIRS-EEG 干扰,对 fNIRS 信号采集实施了数字锁定。fNIRS 组件的台式特性表明其具有低至 1 pW 的噪声等效功率的高性能。此外,该 fNIRS-EEG 设备在刺激视觉、运动和前额叶皮层的任务中在体内进行了测试。最后,在临床环境中对一名阿尔茨海默病患者进行了长时间认知测试,评估了在临床环境中进行生态记录的能力。该系统可以为准确评估多模态脑活动铺平道路,允许它们在生态环境和临床实践中广泛应用。