Näsi Tiina, Mäki Hanna, Hiltunen Petri, Heiskala Juha, Nissilä Ilkka, Kotilahti Kalle, Ilmoniemi Risto J
Department of Biomedical Engineering and Computational Science (BECS), Aalto University School of Science, P.O. Box 12200, FI-00076 AALTO, Espoo, Finland ; BioMag Laboratory, HUS Medical Imaging Center, Helsinki University Central Hospital, P.O. Box 340, FI-00029 HUS, Finland.
Biomed Opt Express. 2013 Mar 1;4(3):412-26. doi: 10.1364/BOE.4.000412. Epub 2013 Feb 13.
The effect of task-related extracerebral circulatory changes on diffuse optical tomography (DOT) of brain activation was evaluated using experimental data from 14 healthy human subjects and computer simulations. Total hemoglobin responses to weekday-recitation, verbal-fluency, and hand-motor tasks were measured with a high-density optode grid placed on the forehead. The tasks caused varying levels of mental and physical stress, eliciting extracerebral circulatory changes that the reconstruction algorithm was unable to fully distinguish from cerebral hemodynamic changes, resulting in artifacts in the brain activation images. Crosstalk between intra- and extracranial layers was confirmed by the simulations. The extracerebral effects were attenuated by superficial signal regression and depended to some extent on the heart rate, thus allowing identification of hemodynamic changes related to brain activation during the verbal-fluency task. During the hand-motor task, the extracerebral component was stronger, making the separation less clear. DOT provides a tool for distinguishing extracerebral components from signals of cerebral origin. Especially in the case of strong task-related extracerebral circulatory changes, however, sophisticated reconstruction methods are needed to eliminate crosstalk artifacts.
利用14名健康人类受试者的实验数据和计算机模拟,评估了与任务相关的脑外循环变化对脑激活的扩散光学断层扫描(DOT)的影响。使用放置在前额的高密度光电探测器网格测量总血红蛋白对工作日背诵、语言流畅性和手部运动任务的反应。这些任务引起了不同程度的精神和身体压力,引发了脑外循环变化,而重建算法无法将其与脑血流动力学变化完全区分开来,从而在脑激活图像中产生伪影。模拟证实了颅内层和颅外层之间的串扰。脑外效应通过表面信号回归得以减弱,并且在一定程度上取决于心率,从而能够识别与语言流畅性任务期间脑激活相关的血流动力学变化。在手部运动任务期间,脑外成分更强,使得分离不太清晰。DOT提供了一种将脑外成分与脑源性信号区分开来的工具。然而,特别是在与任务相关的脑外循环变化强烈的情况下,需要复杂的重建方法来消除串扰伪影。