Department of Biology, University of Victoria, Victoria, Canada.
Elife. 2020 Feb 25;9:e52949. doi: 10.7554/eLife.52949.
Recent studies indicate that the precise timing and location of excitation and inhibition (E/I) within active dendritic trees can significantly impact neuronal function. How synaptic inputs are functionally organized at the subcellular level in intact circuits remains unclear. To address this issue, we took advantage of the retinal direction-selective ganglion cell circuit, where directionally tuned inhibition is known to shape non-directional excitatory signals. We combined two-photon calcium imaging with genetic, pharmacological, and single-cell ablation methods to examine the extent to which inhibition 'vetoes' excitation at the level of individual dendrites of direction-selective ganglion cells. We demonstrate that inhibition shapes direction selectivity independently within small dendritic segments (<10µm) with remarkable accuracy. The data suggest that the parallel processing schemes proposed for direction encoding could be more fine-grained than previously envisioned.
最近的研究表明,在活跃的树突中兴奋和抑制(E/I)的精确时间和位置可以显著影响神经元功能。在完整的电路中,突触输入在亚细胞水平上是如何进行功能组织的,目前还不清楚。为了解决这个问题,我们利用视网膜方向选择性神经节细胞回路,已知其中方向调谐的抑制作用可以塑造非方向的兴奋性信号。我们结合双光子钙成像以及遗传、药理学和单细胞消融方法,研究了抑制作用在方向选择性神经节细胞的单个树突水平上对兴奋的“否决”程度。我们证明,抑制作用可以在小的树突段(<10µm)内独立地精确塑造方向选择性。这些数据表明,用于方向编码的并行处理方案可能比以前想象的更加精细。