高分辨率MR应用的最新进展及其对神经血管耦合研究的意义。

Frontiers in neuroenergetics Pub Date : 2010-09-27 eCollection Date: 2010-01-01 DOI:10.3389/fnene.2010.00130
Noam Harel, Patrick J Bolan, Robert Turner, Kamil Ugurbil, Essa Yacoub
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引用次数: 25

摘要

目前对功能磁共振成像的血管起源的理解是基于许多假设和理论建模,但很少有实验验证来支持或挑战这些模型。已知的脑血管功能特性主要局限于大脑脊液表面和小毛细血管。然而,对于连接这两组血管的中等大小血管群(主要是皮质内血管)以及可能发生关键血流调节的地方,存在明显的知识缺乏。近年来,核磁共振技术和方法的进步使得对大脑的探测在结构和功能上都达到了以前无法达到的分辨率和覆盖范围。功能磁共振成像已被用于映射功能单位到皮质柱和层的水平。这些能力为研究神经血管耦合和测试关于基本大脑组织的假设开辟了新的可能性。在这里,我们总结了最近在人类和动物模型中研究神经血管和功能成像的前沿MR应用。根据所描述的成像能力,我们提出了一种理论,其中皮质柱,参与特定神经元计算的神经元集合,在空间上与特定血管单位相关,即由一组潜水动脉包围的新兴主静脉簇。如果功能(神经元)和结构(血管)单位之间确实存在这种相关性,作为一种基本的内在皮层特征,那么可以想象,在皮质区域中勾画出未知或尚未确定的功能域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Recent Advances in High-Resolution MR Application and Its Implications for Neurovascular Coupling Research.

Recent Advances in High-Resolution MR Application and Its Implications for Neurovascular Coupling Research.

Recent Advances in High-Resolution MR Application and Its Implications for Neurovascular Coupling Research.

Recent Advances in High-Resolution MR Application and Its Implications for Neurovascular Coupling Research.

The current understanding of fMRI, regarding its vascular origins, is based on numerous assumptions and theoretical modeling, but little experimental validation exists to support or challenge these models. The known functional properties of cerebral vasculature are limited mainly to the large pial surface and the small capillary level vessels. However, a significant lack of knowledge exists regarding the cluster of intermediate-sized vessels, mainly the intracortical, connecting these two groups of vessels and where, arguably, key blood flow regulation takes place. In recent years, advances in MR technology and methodology have enabled the probing of the brain, both structurally and functionally, at resolutions and coverage not previously attainable. Functional MRI has been utilized to map functional units down to the levels of cortical columns and lamina. These capabilities open new possibilities for investigating neurovascular coupling and testing hypotheses regarding fundamental cerebral organization. Here, we summarize recent cutting-edge MR applications for studying neurovascular and functional imaging, both in humans as well as in animal models. In light of the described imaging capabilities, we put forward a theory in which a cortical column, an ensemble of neurons involved in a particular neuronal computation is spatially correlated with a specific vascular unit, i.e., a cluster of an emerging principle vein surrounded by a set of diving arteries. If indeed such a correlation between functional (neuronal) and structural (vascular) units exist as a fundamental intrinsic cortical feature, one could conceivably delineate functional domains in cortical areas that are not known or have not been identified.

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