Department of Neural and Behavioral Sciences, The Pennsylvania State University, Hershey, PA 17033, USA.
Department of Pathology, The Pennsylvania State University, Hershey, PA 17033, USA.
Cell Rep. 2022 Jun 21;39(12):110978. doi: 10.1016/j.celrep.2022.110978.
The cerebrovasculature and its mural cells must meet brain regional energy demands, but how their spatial relationship with different neuronal cell types varies across the brain remains largely unknown. Here we apply brain-wide mapping methods to comprehensively define the quantitative relationships between the cerebrovasculature, capillary pericytes, and glutamatergic and GABAergic neurons, including neuronal nitric oxide synthase-positive (nNOS) neurons and their subtypes in adult mice. Our results show high densities of vasculature with high fluid conductance and capillary pericytes in primary motor sensory cortices compared with association cortices that show significant positive and negative correlations with energy-demanding parvalbumin and vasomotor nNOS neurons, respectively. Thalamo-striatal areas that are connected to primary motor sensory cortices also show high densities of vasculature and pericytes, suggesting dense energy support for motor sensory processing areas. Our cellular-resolution resource offers opportunities to examine spatial relationships between the cerebrovascular network and neuronal cell composition in largely understudied subcortical areas.
脑血管及其壁细胞必须满足大脑区域的能量需求,但它们与不同神经元细胞类型的空间关系在大脑中的分布情况在很大程度上仍不清楚。在这里,我们应用全脑映射方法全面定义脑血管、毛细血管周细胞以及谷氨酸能和 GABA 能神经元(包括神经元型一氧化氮合酶阳性(nNOS)神经元及其亚型)之间的定量关系,在成年小鼠中。我们的结果表明,与与感觉运动皮层相关的大脑皮层相比,初级运动感觉皮层的血管密度较高,具有较高的流体传导能力和毛细血管周细胞,与能量需求较高的钙结合蛋白和血管运动性 nNOS 神经元分别呈显著正相关和负相关。与初级运动感觉皮层相连的丘脑-纹状体区域也显示出较高的血管密度和周细胞密度,这表明对运动感觉处理区域有密集的能量支持。我们的细胞分辨率资源为研究在很大程度上尚未研究的皮质下区域的脑血管网络与神经元细胞组成之间的空间关系提供了机会。