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兔视网膜多轴突无长突细胞中方向选择性的突触和形态学基础

The Synaptic and Morphological Basis of Orientation Selectivity in a Polyaxonal Amacrine Cell of the Rabbit Retina.

作者信息

Murphy-Baum Benjamin L, Taylor W Rowland

机构信息

Casey Eye Institute, Department of Ophthalmology, Oregon Health and Science University, Portland, Oregon 97239.

Casey Eye Institute, Department of Ophthalmology, Oregon Health and Science University, Portland, Oregon 97239

出版信息

J Neurosci. 2015 Sep 30;35(39):13336-50. doi: 10.1523/JNEUROSCI.1712-15.2015.

Abstract

Much of the computational power of the retina derives from the activity of amacrine cells, a large and diverse group of GABAergic and glycinergic inhibitory interneurons. Here, we identify an ON-type orientation-selective, wide-field, polyaxonal amacrine cell (PAC) in the rabbit retina and demonstrate how its orientation selectivity arises from the structure of the dendritic arbor and the pattern of excitatory and inhibitory inputs. Excitation from ON bipolar cells and inhibition arising from the OFF pathway converge to generate a quasi-linear integration of visual signals in the receptive field center. This serves to suppress responses to high spatial frequencies, thereby improving sensitivity to larger objects and enhancing orientation selectivity. Inhibition also regulates the magnitude and time course of excitatory inputs to this PAC through serial inhibitory connections onto the presynaptic terminals of ON bipolar cells. This presynaptic inhibition is driven by graded potentials within local microcircuits, similar in extent to the size of single bipolar cell receptive fields. Additional presynaptic inhibition is generated by spiking amacrine cells on a larger spatial scale covering several hundred microns. The orientation selectivity of this PAC may be a substrate for the inhibition that mediates orientation selectivity in some types of ganglion cells. Significance statement: The retina comprises numerous excitatory and inhibitory circuits that encode specific features in the visual scene, such as orientation, contrast, or motion. Here, we identify a wide-field inhibitory neuron that responds to visual stimuli of a particular orientation, a feature selectivity that is primarily due to the elongated shape of the dendritic arbor. Integration of convergent excitatory and inhibitory inputs from the ON and OFF visual pathways suppress responses to small objects and fine textures, thus enhancing selectivity for larger objects. Feedback inhibition regulates the strength and speed of excitation on both local and wide-field spatial scales. This study demonstrates how different synaptic inputs are regulated to tune a neuron to respond to specific features in the visual scene.

摘要

视网膜的大部分计算能力源自无长突细胞的活动,这是一类数量众多、种类多样的γ-氨基丁酸能和甘氨酸能抑制性中间神经元。在此,我们在兔视网膜中鉴定出一种ON型方向选择性、广域、多轴突无长突细胞(PAC),并展示了其方向选择性如何源自树突 Arbor的结构以及兴奋性和抑制性输入的模式。ON双极细胞的兴奋和OFF通路产生的抑制汇聚在一起,在感受野中心产生视觉信号的准线性整合。这有助于抑制对高空间频率的反应,从而提高对较大物体的敏感性并增强方向选择性。抑制还通过对ON双极细胞突触前终末的串行抑制连接来调节对该PAC的兴奋性输入的幅度和时间进程。这种突触前抑制由局部微回路内的分级电位驱动,其范围与单个双极细胞感受野的大小相似。额外的突触前抑制由覆盖数百微米的更大空间尺度上的爆发性无长突细胞产生。这种PAC的方向选择性可能是介导某些类型神经节细胞方向选择性抑制的基础。

意义声明

视网膜包含众多编码视觉场景中特定特征(如方向、对比度或运动)的兴奋性和抑制性回路。在此,我们鉴定出一种广域抑制性神经元,它对特定方向的视觉刺激做出反应,这种特征选择性主要归因于树突 Arbor的细长形状。来自ON和OFF视觉通路的汇聚兴奋性和抑制性输入的整合抑制了对小物体和精细纹理的反应,从而增强了对较大物体的选择性。反馈抑制在局部和广域空间尺度上调节兴奋的强度和速度。这项研究展示了不同的突触输入如何被调节,以使神经元能够对视觉场景中的特定特征做出反应。

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