Institute of Brain and Psychological Sciences, Sichuan Normal University, Chengdu, China.
The Clinical Hospital of Chengdu Brain Science Institute, MOE Key Lab for Neuroinformation, School of Life Science and Technology, University of Electronic Science and Technology of China, Chengdu, China.
PLoS One. 2020 Nov 12;15(11):e0242330. doi: 10.1371/journal.pone.0242330. eCollection 2020.
Temporal variability of the neural signal has been demonstrated to be closely related to healthy brain function. Meanwhile, the evolving brain functions are supported by dynamic relationships among brain regions. We hypothesized that the spatial variability of brain signal might provide important information about brain function. Here we used the spatial sample entropy (SSE) to investigate the spatial variability of neuroimaging signal during a steady-state presented face detection task. Lower SSE was found during task state than during resting state, associating with more repetitive functional interactions between brain regions. The standard deviation (SD) of SSE during the task was negatively related to the SD of reaction time, suggesting that the spatial pattern of neural activity is reorganized according to particular cognitive function and supporting the previous theory that greater variability is associated with better task performance. These results were replicated with reordered data, implying the reliability of SSE in measuring the spatial organization of neural activity. Overall, the present study extends the research scope of brain signal variability from the temporal dimension to the spatial dimension, improving our understanding of the spatiotemporal characteristics of brain activities and the theory of brain signal variability.
神经信号的时变特征与大脑的健康功能密切相关。同时,大脑区域之间的动态关系支持着大脑功能的演变。我们假设,脑信号的空间变异性可能为大脑功能提供重要信息。在这里,我们使用空间样本熵(SSE)来研究在稳态呈现的面孔检测任务中神经影像学信号的空间变异性。任务状态下的 SSE 低于静息状态,这与大脑区域之间更重复的功能相互作用有关。任务期间 SSE 的标准差(SD)与反应时间的 SD 呈负相关,表明神经活动的空间模式根据特定的认知功能进行了重新组织,支持了先前的理论,即更大的变异性与更好的任务表现相关。这些结果在重新排序的数据中得到了复制,表明 SSE 在测量神经活动的空间组织方面具有可靠性。总的来说,本研究将脑信号变异性的研究范围从时间维度扩展到空间维度,提高了我们对大脑活动时空特征和脑信号变异性理论的理解。