Faculty of Engineering, Bar-Ilan University, Ramat-Gan, 5290002, Israel.
The Bar-Ilan Institute of Nanotechnology and Advanced Materials, Bar-Ilan University, Ramat-Gan, 5290002, Israel.
J Biophotonics. 2020 Feb;13(2):e201900201. doi: 10.1002/jbio.201900201. Epub 2019 Nov 15.
A novel photonic method for remote monitoring of task-related hemodynamic changes in human brain activation is presented. Physiological processes associated with neural activity, such as nano-vibrations due to blood flow and tissue oxygenation in the brain, are detected by remote sensing of nano-acoustic vibrations using temporal spatial analysis of defocused self-interference random patterns. Temporal nanometric changes of the speckle pattern due to visual task-induced hemodynamic responses were tracked by this method. Reversing visual checkerboard stimulation alternated with rest epochs, and responsive signals were identified in occipital lobe using near-infrared spectroscopy. Temporal vibrations associated with these hemodynamic response functions were observed using three different approaches: (a) single spot illumination at active and control areas simultaneously, (b) subspots cross-correlation-based analysis, and (c) multiwavelength measurement using a magnitude-squared wavelet coherence function. Findings show remote sensing of task-specific neural activity in the human brain.
提出了一种用于远程监测人类大脑激活相关血流动力学变化的新型光子学方法。通过使用离焦自干涉随机图案的时空分析来远程感应纳米声振动,检测到与神经活动相关的生理过程,例如由于血流和大脑中的组织氧合而产生的纳米振动。通过这种方法可以跟踪由于视觉任务引起的血流动力学响应而导致的散斑图案的时间纳米级变化。通过近红外光谱,使用反转视觉棋盘刺激与休息时段交替的方式,在枕叶中识别出响应信号。使用三种不同的方法观察到与这些血流动力学响应功能相关的时间振动:(a)在活动区和对照区同时进行单点照明,(b)基于子点互相关的分析,以及(c)使用幅度平方小波相干函数进行多波长测量。研究结果表明,可以远程感应人类大脑中的特定任务的神经活动。