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The Spatial Dimensions of Electrically Coupled Networks of Interneurons in the Neocortex

机译:新皮层内部神经元电耦合网络的空间尺寸

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摘要

Inhibitory interneurons of the neocortex are electrically coupled to cells of the same type through gap junctions. We studied the spatial organization of two types of interneurons in the rat somatosensory cortex: fast-spiking (FS) parvalbumin-immunoreactive (PV+) cells, and low threshold-spiking (LTS) somatostatin-immunoreactive (SS+) cells. Paired recordings in layer 4 demonstrated that both the probability of coupling and the coupling coefficient drop steeply with intersomatic distance, reaching zero beyond 200 μm. The dendritic arbors of FS and LTS cells were reconstructed from electrophysiologically characterized, biocytin-filled cells; the two cell types had only minor differences in the number and span of their dendrites. However, there was a markedly higher density of PV+ cells than SS+ cells. PV+ cells were densest in layer 4, while SS+ cell density peaked in the subgranular layers. From these data we estimate that there is measurable electrical coupling (directly or indirectly via intermediary cells) between each interneuron and 20–50 others. The large number of electrical synapses implies that each interneuron participates in a large, continuous syncytium. To evaluate the functional significance of these findings, we examined several simple architectures of coupled networks analytically. We present a mathematical method to estimate the average summated coupling conductance that each cell receives from all of its neighbors, and the average leak conductance of individual cells, and we suggest that these have the same order of magnitude. These quantitative results have important implications for the effects of electrical coupling on the dynamic behavior of interneuron networks.
机译:新皮质的抑制性中间神经元通过间隙连接与相同类型的细胞电耦合。我们研究了大鼠体感皮层中两种类型的中间神经元的空间组织:快速加标(FS)小白蛋白免疫反应(PV +)细胞和低阈值加标(LTS)生长抑素免疫反应(SS +)细胞。在第4层中的成对记录表明,耦合的概率和耦合系数都随着晶间距离而急剧下降,超过200μm时达到零。 FS和LTS细胞的树突状树突由电生理学特征的生物素填充细胞重建而成。两种细胞类型的树突的数量和跨度只有很小的差异。但是,PV +电池的密度明显高于SS +电池。 PV +细胞在第4层中最密集,而SS +细胞密度在亚颗粒层中达到峰值。根据这些数据,我们估计每个中间神经元与其他20–50个中间神经元之间存在可测量的电耦合(直接或间接地通过中间单元)。大量的电突触意味着每个中间神经元参与一个大的连续合胞体。为了评估这些发现的功能意义,我们以分析方式检查了耦合网络的几种简单架构。我们提出了一种数学方法来估计每个单元从其所有邻居接收的平均求和的耦合电导,以及单个单元的平均泄漏电导,我们建议它们具有相同的数量级。这些定量结果对于电耦合对中间神经网络的动态行为的影响具有重要意义。

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