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Metabolic connectivity mapping reveals effective connectivity in the resting human brain

机译:代谢连通性映射揭示了人类静息大脑中的有效连通性

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摘要

Directionality of signaling among brain regions provides essential information about human cognition and disease states. Assessing such effective connectivity (EC) across brain states using functional magnetic resonance imaging (fMRI) alone has proven difficult, however. We propose a novel measure of EC, termed metabolic connectivity mapping (MCM), that integrates undirected functional connectivity (FC) with local energy metabolism from fMRI and positron emission tomography (PET) data acquired simultaneously. This method is based on the concept that most energy required for neuronal communication is consumed postsynaptically, i.e., at the target neurons. We investigated MCM and possible changes in EC within the physiological range using “eyes open” versus “eyes closed” conditions in healthy subjects. Independent of condition, MCM reliably detected stable and bidirectional communication between early and higher visual regions. Moreover, we found stable top-down signaling from a frontoparietal network including frontal eye fields. In contrast, we found additional top-down signaling from all major clusters of the salience network to early visual cortex only in the eyes open condition. MCM revealed consistent bidirectional and unidirectional signaling across the entire cortex, along with prominent changes in network interactions across two simple brain states. We propose MCM as a novel approach for inferring EC from neuronal energy metabolism that is ideally suited to study signaling hierarchies in the brain and their defects in brain disorders.
机译:大脑区域之间信号传导的方向性提供了有关人类认知和疾病状态的基本信息。但是,仅使用功能磁共振成像(fMRI)评估跨大脑状态的这种有效连通性(EC)已证明很困难。我们提出了一种新的EC测量方法,称为代谢连通性映射(MCM),该方法将无定向功能连通性(FC)与同时从fMRI和正电子发射断层扫描(PET)数据获得的局部能量代谢相结合。该方法基于这样的概念,即神经元交流所需的大部分能量是突触后消耗的,即在目标神经元处。我们在健康受试者中使用“睁眼”与“闭眼”条件调查了MCM和生理范围内EC的可能变化。无论条件如何,MCM都能可靠地检测到早期和更高视觉区域之间的稳定双向通信。此外,我们从包括额眼视野在内的额顶网中发现了稳定的自上而下的信号。相比之下,我们发现仅在睁开眼睛的情况下,其他所有自上而下的信号从显着网络的所有主要簇传送到早期的视觉皮层。 MCM揭示了整个皮层上一致的双向和单向信号传递,以及两个简单大脑状态之间网络交互的显着变化。我们提出MCM作为一种从神经元能量代谢中推断EC的新颖方法,非常适合研究大脑中的信号传导层级及其在脑部疾病中的缺陷。

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