Ultrastructure of precapillary sphincters and the neurovascular unit.

Vascular biology (Bristol, England) Pub Date : 2023-12-01 Print Date: 2023-01-01 DOI:10.1530/VB-23-0011
Søren Grubb
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引用次数: 0

Abstract

Neurons communicate with vasculature to regulate blood flow in the brain, a process maintained by the neurovascular unit (NVU). This interaction, termed neurovascular coupling, is believed to involve astrocytes or molecules capable of traversing the astrocytic endfeet. The precise mechanism, however, remains elusive. Using large 3D electron microscopy datasets, we can now study the entire NVU in context of vascular hierarchy. This study presents evidence supporting the role of precapillary sphincters as a nexus for neurovascular coupling and endothelial transcytosis. It also highlights the role of fibroblast-synthesized collagen in fortifying first-order capillaries. Furthermore, I demonstrate how astrocytic endfeet establish a barrier for fluid flow and reveal that the cortex's microvasculature is semicircled by an unexpected arrangement of parenchymal neuronal processes around penetrating arterioles and arterial-end capillaries in both mouse and human brains. These discoveries offer insights into the NVU's structure and its operational mechanisms, potentially aiding researchers in devising new strategies for preserving cognitive function and promoting healthy aging.

乳头前括约肌和神经血管单位的超微结构。
神经元与血管系统通信以调节大脑中的血流,这一过程由神经血管单元(NVU)维持。这种相互作用被称为神经-血管耦合,被认为涉及星形胶质细胞或能够穿过星形胶质细胞端足的分子。然而,确切的机制仍然难以捉摸。使用大型3D电子显微镜数据集,我们现在可以在血管层次结构的背景下研究整个NVU。这项研究提供了支持乳头前括约肌作为神经血管耦合和内皮细胞转运的纽带的作用的证据。它还强调了成纤维细胞合成的胶原蛋白在强化一级毛细血管中的作用。此外,我展示了星形细胞端足是如何为流体流动建立屏障的,并揭示了在小鼠和人类大脑中,大脑皮层的微血管是由穿透小动脉和动脉端毛细血管周围的实质神经元突起意外排列而成的半圆形。这些发现为NVU的结构及其运行机制提供了见解,可能有助于研究人员设计保护认知功能和促进健康衰老的新策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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