Mortimer B. Zuckerman Mind Brain Behavior Institute and Department of Biomedical Engineering, Columbia University, New York, NY, USA; Section on Functional Imaging Methods, Laboratory of Brain and Cognition, National Institute of Mental Health, National Institutes of Health, Bethesda, MD, USA.
Mortimer B. Zuckerman Mind Brain Behavior Institute and Department of Biomedical Engineering, Columbia University, New York, NY, USA.
Cell Rep. 2023 Jun 27;42(6):112527. doi: 10.1016/j.celrep.2023.112527. Epub 2023 May 26.
Although resting-state functional magnetic resonance imaging (fMRI) studies have observed dynamically changing brain-wide networks of correlated activity, fMRI's dependence on hemodynamic signals makes results challenging to interpret. Meanwhile, emerging techniques for real-time recording of large populations of neurons have revealed compelling fluctuations in neuronal activity across the brain that are obscured by traditional trial averaging. To reconcile these observations, we use wide-field optical mapping to simultaneously record pan-cortical neuronal and hemodynamic activity in awake, spontaneously behaving mice. Some components of observed neuronal activity clearly represent sensory and motor function. However, particularly during quiet rest, strongly fluctuating patterns of activity across diverse brain regions contribute greatly to interregional correlations. Dynamic changes in these correlations coincide with changes in arousal state. Simultaneously acquired hemodynamics depict similar brain-state-dependent correlation shifts. These results support a neural basis for dynamic resting-state fMRI, while highlighting the importance of brain-wide neuronal fluctuations in the study of brain state.
尽管静息态功能磁共振成像(fMRI)研究观察到大脑中广泛存在的相关活动的动态变化网络,但 fMRI 对血流动力学信号的依赖使得结果难以解释。与此同时,新兴的实时记录大量神经元的技术揭示了大脑中神经元活动令人信服的波动,这些波动被传统的试验平均所掩盖。为了协调这些观察结果,我们使用宽场光学映射在清醒、自发行为的小鼠中同时记录全皮质神经元和血流动力学活动。观察到的神经元活动的一些成分显然代表了感觉和运动功能。然而,特别是在安静休息期间,不同脑区活动的强烈波动模式对区域间相关性有很大贡献。这些相关性的动态变化与觉醒状态的变化相吻合。同时获得的血流动力学描绘了类似的与大脑状态相关的相关性变化。这些结果支持了动态静息态 fMRI 的神经基础,同时强调了在大脑状态研究中广泛的神经元波动的重要性。