Department of Connectomics, Max Planck Institute for Brain Research, D-60438 Frankfurt, Germany.
Bernstein Center for Computational Neuroscience, Humboldt University, D-10115 Berlin, Germany.
Nature. 2017 Sep 28;549(7673):469-475. doi: 10.1038/nature24005. Epub 2017 Sep 20.
Research on neuronal connectivity in the cerebral cortex has focused on the existence and strength of synapses between neurons, and their location on the cell bodies and dendrites of postsynaptic neurons. The synaptic architecture of individual presynaptic axonal trees, however, remains largely unknown. Here we used dense reconstructions from three-dimensional electron microscopy in rats to study the synaptic organization of local presynaptic axons in layer 2 of the medial entorhinal cortex, the site of grid-like spatial representations. We observe path-length-dependent axonal synapse sorting, such that axons of excitatory neurons sequentially target inhibitory neurons followed by excitatory neurons. Connectivity analysis revealed a cellular feedforward inhibition circuit involving wide, myelinated inhibitory axons and dendritic synapse clustering. Simulations show that this high-precision circuit can control the propagation of synchronized activity in the medial entorhinal cortex, which is known for temporally precise discharges.
大脑皮层神经元连接的研究主要集中在神经元之间突触的存在和强度上,以及它们在突触后神经元胞体和树突上的位置。然而,单个突触前轴突树突的突触结构在很大程度上仍然未知。在这里,我们使用大鼠的三维电子显微镜密集重建来研究内侧隔核皮层 2 层中局部突触前轴突的突触组织,这里是网格状空间表示的部位。我们观察到与轴突长度相关的轴突突触排序,即兴奋性神经元的轴突依次靶向抑制性神经元,然后是兴奋性神经元。连接分析显示,存在一个涉及宽而有髓鞘的抑制性轴突和树突突触聚类的细胞前馈抑制回路。模拟表明,这个高精度的回路可以控制内侧隔核皮层中同步活动的传播,该区域以时间上精确的放电而闻名。