Two decades of astrocytes in neurovascular coupling.

Frontiers in network physiology Pub Date : 2023-04-03 eCollection Date: 2023-01-01 DOI:10.3389/fnetp.2023.1162757
Annamaria Lia, Alessandro Di Spiezio, Michele Speggiorin, Micaela Zonta
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Abstract

The brain is a highly energy demanding organ, which accounts in humans for the 20% of total energy consumption at resting state although comprising only 2% of the body mass. The necessary delivery of nutrients to brain parenchyma is ensured by the cerebral circulatory system, through the exchange of glucose and oxygen (O2) at the capillary level. Notably, a tight spatial and temporal correlation exists between local increases in neuronal activity and the subsequent changes in regional cerebral blood flow. The recognized concept of neurovascular coupling (NVC), also named functional hyperemia, expresses this close relationship and stands at the basis of the modern functional brain imaging techniques. Different cellular and molecular mechanisms have been proposed to mediate this tight coupling. In this context, astrocytes are ideally positioned to act as relay elements that sense neuronal activity through their perisynaptic processes and release vasodilator agents at their endfeet in contact with brain parenchymal vessels. Two decades after the astrocyte involvement in neurovascular coupling has been proposed, we here review the experimental evidence that contributed to unraveling the molecular and cellular mechanisms underlying cerebral blood flow regulation. While traveling through the different controversies that moved the research in this field, we keep a peculiar focus on those exploring the role of astrocytes in neurovascular coupling and conclude with two sections related to methodological aspects in neurovascular research and to some pathological conditions resulting in altered neurovascular coupling.

Abstract Image

Abstract Image

神经血管耦合中的星形胶质细胞二十年。
大脑是一个对能量要求很高的器官,虽然只占人体质量的 2%,但却占人体静息状态下总能量消耗的 20%。脑循环系统通过毛细血管水平的葡萄糖和氧气(O2)交换,确保向脑实质输送必要的营养物质。值得注意的是,局部神经元活动的增加与随后区域脑血流量的变化之间存在着紧密的时空相关性。公认的神经血管耦合(NVC)概念(也称为功能性充血)表达了这种密切关系,是现代脑功能成像技术的基础。人们提出了不同的细胞和分子机制来介导这种紧密耦合。在这种情况下,星形胶质细胞被理想地定位为中继元件,通过其突触周围过程感知神经元活动,并在其与脑实质血管接触的末梢释放血管扩张剂。在星形胶质细胞参与神经-血管耦合被提出二十年后,我们在此回顾了有助于揭示脑血流调节的分子和细胞机制的实验证据。在回顾推动该领域研究的各种争议的同时,我们特别关注那些探索星形胶质细胞在神经血管耦合中的作用的研究,并以与神经血管研究方法相关的两个部分以及导致神经血管耦合改变的一些病理条件作为结束语。
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CiteScore
2.70
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