Gao Yu-Rong, Ma Yuncong, Zhang Qingguang, Winder Aaron T, Liang Zhifeng, Antinori Lilith, Drew Patrick J, Zhang Nanyin
Neuroscience Graduate Program, Pennsylvania State University, University Park, PA 16802, Unidted States; Department of Engineering Science and Mechanics, Pennsylvania State University, University Park, PA 16802, Unidted States.
Department of Biomedical Engineering, Pennsylvania State University, University Park, PA 16802, Unidted States.
Neuroimage. 2017 Jun;153:382-398. doi: 10.1016/j.neuroimage.2016.11.069. Epub 2016 Nov 28.
Functional magnetic resonance imaging (fMRI) has allowed the noninvasive study of task-based and resting-state brain dynamics in humans by inferring neural activity from blood-oxygenation-level dependent (BOLD) signal changes. An accurate interpretation of the hemodynamic changes that underlie fMRI signals depends on the understanding of the quantitative relationship between changes in neural activity and changes in cerebral blood flow, oxygenation and volume. While there has been extensive study of neurovascular coupling in anesthetized animal models, anesthesia causes large disruptions of brain metabolism, neural responsiveness and cardiovascular function. Here, we review work showing that neurovascular coupling and brain circuit function in the awake animal are profoundly different from those in the anesthetized state. We argue that the time is right to study neurovascular coupling and brain circuit function in the awake animal to bridge the physiological mechanisms that underlie animal and human neuroimaging signals, and to interpret them in light of underlying neural mechanisms. Lastly, we discuss recent experimental innovations that have enabled the study of neurovascular coupling and brain-wide circuit function in un-anesthetized and behaving animal models.
功能磁共振成像(fMRI)通过从血氧水平依赖(BOLD)信号变化推断神经活动,实现了对人类基于任务和静息状态下脑动力学的无创研究。对构成fMRI信号基础的血液动力学变化的准确解释,取决于对神经活动变化与脑血流量、氧合及体积变化之间定量关系的理解。虽然在麻醉动物模型中对神经血管耦合进行了广泛研究,但麻醉会导致大脑代谢、神经反应性和心血管功能的重大破坏。在此,我们回顾相关研究工作,这些研究表明清醒动物的神经血管耦合和脑回路功能与麻醉状态下的情况有很大不同。我们认为,现在是研究清醒动物神经血管耦合和脑回路功能的时候了,以弥合动物和人类神经成像信号背后的生理机制,并根据潜在神经机制对其进行解释。最后,我们讨论了最近的实验创新,这些创新使得在未麻醉的行为动物模型中研究神经血管耦合和全脑回路功能成为可能。
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