A guide to delineate the logic of neurovascular signaling in the brain.

Frontiers in neuroenergetics Pub Date : 2011-04-25 eCollection Date: 2011-01-01 DOI:10.3389/fnene.2011.00001
David Kleinfeld, Pablo Blinder, Patrick J Drew, Jonathan D Driscoll, Arnaud Muller, Philbert S Tsai, Andy Y Shih
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引用次数: 84

Abstract

The neurovascular system may be viewed as a distributed nervous system within the brain. It transforms local neuronal activity into a change in the tone of smooth muscle that lines the walls of arterioles and microvessels. We review the current state of neurovascular coupling, with an emphasis on signaling molecules that convey information from neurons to neighboring vessels. At the level of neocortex, this coupling is mediated by: (i) a likely direct interaction with inhibitory neurons, (ii) indirect interaction, via astrocytes, with excitatory neurons, and (iii) fiber tracts from subcortical layers. Substantial evidence shows that control involves competition between signals that promote vasoconstriction versus vasodilation. Consistent with this picture is evidence that, under certain circumstances, increased neuronal activity can lead to vasoconstriction rather than vasodilation. This confounds naïve interpretations of functional brain images. We discuss experimental approaches to detect signaling molecules in vivo with the goal of formulating an empirical basis for the observed logic of neurovascular control.

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描述大脑中神经血管信号的逻辑的指南。
神经血管系统可以看作是脑内的一个分布式神经系统。它将局部神经元活动转化为小动脉和微血管壁平滑肌张力的变化。我们回顾了神经血管耦合的现状,重点介绍了从神经元到邻近血管传递信息的信号分子。在新皮层水平,这种耦合是通过以下途径介导的:(i)可能与抑制性神经元直接相互作用,(ii)通过星形胶质细胞与兴奋性神经元间接相互作用,以及(iii)皮层下层的纤维束。大量证据表明,控制涉及促进血管收缩和血管扩张的信号之间的竞争。与此一致的证据是,在某些情况下,神经元活动的增加会导致血管收缩而不是血管舒张。这混淆了naïve对功能性脑图像的解释。我们讨论了在体内检测信号分子的实验方法,目的是为观察到的神经血管控制逻辑提供经验基础。
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