The post‐arteriole transitional zone: a specialized capillary region that regulates blood flow within the CNS microvasculature

小动脉 壁细胞 神经科学 血流 星形胶质细胞 毛细管作用 神经血管束 生物 解剖 运动前神经元活动 微循环 细胞生物学 化学 医学 中枢神经系统 内科学 材料科学 内皮干细胞 生物化学 体外 复合材料
作者
Amreen Mughal,Mark T. Nelson,David C. Hill-Eubanks
出处
期刊:The Journal of Physiology [Wiley]
卷期号:601 (5): 889-901 被引量:4
标识
DOI:10.1113/jp282246
摘要

The brain is an energy hog, consuming available energy supplies at a rate out of all proportion to its relatively small size. This outsized demand, largely reflecting the unique computational activity of the brain, is met by an ensemble of neurovascular coupling mechanisms that link neuronal activity with local increases in blood delivery. This just-in-time replenishment strategy, made necessary by the limited energy-storage capacity of neurons, complicates the nutrient-delivery task of the cerebral vasculature, layering on a temporo-spatial requirement that invites - and challenges - mechanistic interpretation. The centre of gravity of research efforts to disentangle these mechanisms has shifted from an initial emphasis on astrocyte-arteriole-level processes to mechanisms that operate on the capillary level, a shift that has brought into sharp focus questions regarding the fine control of blood distribution to active neurons. As these investigations have drilled down into finer reaches of the microvasculature, they have revealed an arteriole-proximate subregion of CNS capillary networks that serves a regulatory function in directing blood flow into and within downstream capillaries. They have also illuminated differences in researchers' perspectives on the vascular structures and identity of mural cells in this region that impart the vasomodulatory effects that control blood distribution. In this review, we highlight the regulatory role of a variably named region of the microvasculature, referred to here as the post-arteriole transition zone, in channeling blood flow within CNS capillary networks, and underscore the contribution of dynamically contractile perivascular mural cell - generally, but not universally, recognized as pericytes - to this function.

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