Ross Jayden M, Kim Chang, Allen Denise, Crouch Elizabeth E, Narsinh Kazim, Cooke Daniel L, Abla Adib A, Nowakowski Tomasz J, Winkler Ethan A
Department of Neurological Surgery, University of California, San Francisco, San Francisco, CA, United States.
Department of Anatomy, University of California, San Francisco, San Francisco, CA, United States.
Front Physiol. 2020 Dec 3;11:600767. doi: 10.3389/fphys.2020.600767. eCollection 2020.
The cerebrovasculature is essential to brain health and is tasked with ensuring adequate delivery of oxygen and metabolic precursors to ensure normal neurologic function. This is coordinated through a dynamic, multi-directional cellular interplay between vascular, neuronal, and glial cells. Molecular exchanges across the blood-brain barrier or the close matching of regional blood flow with brain activation are not uniformly assigned to arteries, capillaries, and veins. Evidence has supported functional segmentation of the brain vasculature. This is achieved in part through morphologic or transcriptional heterogeneity of brain vascular cells-including endothelium, pericytes, and vascular smooth muscle. Advances with single cell genomic technologies have shown increasing cell complexity of the brain vasculature identifying previously unknown cell types and further subclassifying transcriptional diversity in cardinal vascular cell types. Cell-type specific molecular transitions or zonations have been identified. In this review, we summarize emerging evidence for the expanding vascular cell diversity in the brain and how this may provide a cellular basis for functional segmentation along the arterial-venous axis.
脑血管系统对大脑健康至关重要,其职责是确保充足的氧气和代谢前体的输送,以保证正常的神经功能。这是通过血管、神经元和神经胶质细胞之间动态的、多向的细胞相互作用来协调的。跨越血脑屏障的分子交换或局部血流与大脑激活的紧密匹配并非均匀地分配给动脉、毛细血管和静脉。有证据支持脑血管系统的功能分区。这部分是通过脑血管细胞(包括内皮细胞、周细胞和血管平滑肌)的形态或转录异质性来实现的。单细胞基因组技术的进展表明,脑血管系统的细胞复杂性不断增加,识别出了以前未知的细胞类型,并进一步对主要血管细胞类型的转录多样性进行了亚分类。已经确定了细胞类型特异性的分子转变或分区。在这篇综述中,我们总结了关于大脑中不断扩大的血管细胞多样性的新证据,以及这如何为沿动静脉轴的功能分区提供细胞基础。