Filosa J A, Morrison H W, Iddings J A, Du W, Kim K J
Georgia Regents University, 1120 15th Street, Augusta, GA 30912, United States.
University of Arizona, 1305 N. Martin Avenue, P.O. Box 210203, Tucson, AZ 85721, United States.
Neuroscience. 2016 May 26;323:96-109. doi: 10.1016/j.neuroscience.2015.03.064. Epub 2015 Apr 3.
The brain possesses two intricate mechanisms that fulfill its continuous metabolic needs: cerebral autoregulation, which ensures constant cerebral blood flow over a wide range of arterial pressures and functional hyperemia, which ensures rapid delivery of oxygen and glucose to active neurons. Over the past decade, a number of important studies have identified astrocytes as key intermediaries in neurovascular coupling (NVC), the mechanism by which active neurons signal blood vessels to change their diameter. Activity-dependent increases in astrocytic Ca(2+) activity are thought to contribute to the release of vasoactive substances that facilitate arteriole vasodilation. A number of vasoactive signals have been identified and their role on vessel caliber assessed both in vitro and in vivo. In this review, we discuss mechanisms implicating astrocytes in NVC-mediated vascular responses, limitations encountered as a result of the challenges in maintaining all the constituents of the neurovascular unit intact and deliberate current controversial findings disputing a main role for astrocytes in NVC. Finally, we briefly discuss the potential role of pericytes and microglia in NVC-mediated processes.
脑自动调节,可确保在广泛的动脉压范围内维持恒定的脑血流量;以及功能性充血,可确保向活跃的神经元快速输送氧气和葡萄糖。在过去十年中,许多重要研究已将星形胶质细胞确定为神经血管耦合(NVC)中的关键中介,神经血管耦合是活跃神经元向血管发出信号以改变其直径的机制。依赖于活动的星形胶质细胞Ca(2+)活性增加被认为有助于释放促进小动脉血管舒张的血管活性物质。已经确定了多种血管活性信号,并在体外和体内评估了它们对血管口径的作用。在这篇综述中,我们讨论了星形胶质细胞参与NVC介导的血管反应的机制、由于维持神经血管单元所有成分完整所面临的挑战而遇到的局限性,以及当前对星形胶质细胞在NVC中的主要作用存在争议的研究结果。最后,我们简要讨论了周细胞和小胶质细胞在NVC介导过程中的潜在作用。