Walz Jennifer M, Goldman Robin I, Carapezza Michael, Muraskin Jordan, Brown Truman R, Sajda Paul
Columbia University, Department of Biomedical Engineering, 351 Engineering Terrace, MC8904, 530 West 120th St., New York, NY 10027, USA.
Columbia University, Department of Biomedical Engineering, 351 Engineering Terrace, MC8904, 530 West 120th St., New York, NY 10027, USA; Waisman Laboratory for Brain Imaging and Behavior, University of Wisconsin, Madison, 1500 Highland Ave, Madison, WI 53705, USA.
Neuroimage. 2014 Nov 15;102 Pt 1(0 1):229-39. doi: 10.1016/j.neuroimage.2013.08.014. Epub 2013 Aug 17.
Focused attention continuously and inevitably fluctuates, and to completely understand the mechanisms responsible for these modulations it is necessary to localize the brain regions involved. During a simple visual oddball task, neural responses measured by electroencephalography (EEG) modulate primarily with attention, but source localization of the correlates is a challenge. In this study we use single-trial analysis of simultaneously-acquired scalp EEG and functional magnetic resonance image (fMRI) data to investigate the blood oxygen level dependent (BOLD) correlates of modulations in task-related attention, and we unravel the temporal cascade of these transient activations. We hypothesize that activity in brain regions associated with various task-related cognitive processes modulates with attention, and that their involvements occur transiently in a specific order. We analyze the fMRI BOLD signal by first regressing out the variance linked to observed stimulus and behavioral events. We then correlate the residual variance with the trial-to-trial variation of EEG discriminating components for identical stimuli, estimated at a sequence of times during a trial. Post-stimulus and early in the trial, we find activations in right-lateralized frontal regions and lateral occipital cortex, areas that are often linked to task-dependent processes, such as attentional orienting, and decision certainty. After the behavioral response we see correlates in areas often associated with the default-mode network and introspective processing, including precuneus, angular gyri, and posterior cingulate cortex. Our results demonstrate that during simple tasks both task-dependent and default-mode networks are transiently engaged, with a distinct temporal ordering and millisecond timescale.
集中注意力会持续且不可避免地波动,要完全理解导致这些调节的机制,就必须确定涉及的脑区。在一个简单的视觉oddball任务中,通过脑电图(EEG)测量的神经反应主要随注意力而调节,但相关信号源的定位是一项挑战。在本研究中,我们使用对同时获取的头皮EEG和功能磁共振成像(fMRI)数据进行的单试次分析,来研究任务相关注意力调节的血氧水平依赖(BOLD)相关性,并揭示这些瞬态激活的时间级联。我们假设,与各种任务相关认知过程相关的脑区活动会随注意力而调节,并且它们的参与会以特定顺序短暂发生。我们通过首先去除与观察到的刺激和行为事件相关的方差来分析fMRI的BOLD信号。然后,我们将剩余方差与在试次期间一系列时间点估计的相同刺激的EEG辨别成分的试次间变化进行相关分析。在刺激后和试次早期,我们在右侧额叶区域和枕叶外侧皮质发现激活,这些区域通常与任务依赖过程相关,如注意力定向和决策确定性。在行为反应之后,我们在通常与默认模式网络和内省处理相关的区域发现相关性,包括楔前叶、角回和后扣带回皮质。我们的结果表明,在简单任务期间,任务依赖网络和默认模式网络都会短暂参与,具有独特的时间顺序和毫秒级时间尺度。