Department of Stem Cell and Regenerative Biology, Harvard University, Cambridge, MA, USA.
Stanley Center for Psychiatric Research, Broad Institute of MIT and Harvard, Cambridge, MA, USA.
Nature. 2022 Aug;608(7924):750-756. doi: 10.1038/s41586-022-05056-7. Epub 2022 Aug 10.
Microglia are specialized macrophages in the brain parenchyma that exist in multiple transcriptional states and reside within a wide range of neuronal environments. However, how and where these states are generated remains poorly understood. Here, using the mouse somatosensory cortex, we demonstrate that microglia density and molecular state acquisition are determined by the local composition of pyramidal neuron classes. Using single-cell and spatial transcriptomic profiling, we unveil the molecular signatures and spatial distributions of diverse microglia populations and show that certain states are enriched in specific cortical layers, whereas others are broadly distributed throughout the cortex. Notably, conversion of deep-layer pyramidal neurons to an alternate class identity reconfigures the distribution of local, layer-enriched homeostatic microglia to match the new neuronal niche. Leveraging the transcriptional diversity of pyramidal neurons in the neocortex, we construct a ligand-receptor atlas describing interactions between individual pyramidal neuron subtypes and microglia states, revealing rules of neuron-microglia communication. Our findings uncover a fundamental role for neuronal diversity in instructing the acquisition of microglia states as a potential mechanism for fine-tuning neuroimmune interactions within the cortical local circuitry.
小胶质细胞是脑实质中的特化巨噬细胞,存在多种转录状态,并存在于广泛的神经元环境中。然而,这些状态是如何以及在哪里产生的仍然知之甚少。在这里,我们使用小鼠体感皮层证明,小胶质细胞的密度和分子状态的获得取决于锥体神经元类别的局部组成。通过单细胞和空间转录组学分析,我们揭示了不同小胶质细胞群体的分子特征和空间分布,并表明某些状态在特定的皮层层中富集,而其他状态则广泛分布于整个皮层。值得注意的是,深层锥体神经元向另一种类别的身份转变,使得局部、层富集的稳态小胶质细胞的分布与新的神经元小生境相匹配。利用新皮层中锥体神经元的转录多样性,我们构建了一个配体-受体图谱,描述了单个锥体神经元亚型与小胶质细胞状态之间的相互作用,揭示了神经元-小胶质细胞通讯的规则。我们的研究结果揭示了神经元多样性在指导小胶质细胞状态获得方面的基本作用,这可能是微调皮层局部回路中神经免疫相互作用的一种潜在机制。