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RECEPTIVE FIELDS OF OPTIC TRACT AXONS AND LATERAL GENICULATE CELLS: PERIPHERAL EXTENT AND BARBITURATE SENSITIVITY.视束轴突和外侧膝状体细胞的感受野:外周范围和巴比妥类药物敏感性
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Intracellular chloride concentration is higher in rod bipolar cells than in cone bipolar cells of the mouse retina.在小鼠视网膜中,视杆双极细胞内的氯离子浓度高于视锥双极细胞。
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Bipolar cells contribute to nonlinear spatial summation in the brisk-transient (Y) ganglion cell in mammalian retina.双极细胞有助于哺乳动物视网膜中快瞬变型(Y型)神经节细胞的非线性空间总和。
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不同视网膜子回路对神经节细胞行为非线性的影响。

The influence of different retinal subcircuits on the nonlinearity of ganglion cell behavior.

作者信息

Hennig Matthias H, Funke Klaus, Wörgötter Florentin

机构信息

Institute for Neuronal Computational Intelligence and Technology, Department of Psychology, University of Stirling, Stirling, FK9 4LA, United Kingdom.

出版信息

J Neurosci. 2002 Oct 1;22(19):8726-38. doi: 10.1523/JNEUROSCI.22-19-08726.2002.

DOI:10.1523/JNEUROSCI.22-19-08726.2002
PMID:12351748
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6757783/
Abstract

Y-type retinal ganglion cells show a pronounced, nonlinear, frequency-doubling behavior in response to modulated sinewave gratings. This is not observed in X-type cells. The source of this spatial nonlinear summation is still under debate. We have designed a realistic biophysical model of the cat retina to test the influence of different retinal cell classes and subcircuits on the linearity of ganglion cell responses. The intraretinal connectivity consists of the fundamental feedforward pathway via bipolar cells, lateral horizontal cell connectivity, and two amacrine circuits. The wiring diagram of X- and Y-cells is identical apart from two aspects: (1) Y-cells have a wider receptive field and (2) they receive input from a nested amacrine circuit consisting of narrow- and wide-field amacrine cells. The model was tested with contrast-reversed gratings. First and second harmonic response components were determined to estimate the degree of nonlinearity. By means of circuit dissection, we found that a high degree of the Y-cell nonlinear behavior arises from the spatial integration of temporal photoreceptor nonlinearities. Furthermore, we found a weaker and less uniform influence of the nested amacrine circuit. Different sources of nonlinearities interact in a multiplicative manner, and the influence of the amacrine circuit is approximately 25% weaker than that of the photoreceptor. The model predicts that significant nonlinearities occur already at the level of horizontal cell responses. Pharmacological inactivation of the amacrine circuit is expected to exert a milder effect in reducing ganglion cell nonlinearity.

摘要

Y型视网膜神经节细胞在对调制正弦波光栅的反应中表现出明显的、非线性的倍频行为。而在X型细胞中未观察到这种现象。这种空间非线性总和的来源仍在争论中。我们设计了一个逼真的猫视网膜生物物理模型,以测试不同视网膜细胞类别和子电路对神经节细胞反应线性度的影响。视网膜内的连接包括通过双极细胞的基本前馈通路、横向水平细胞连接以及两个无长突细胞回路。X细胞和Y细胞的接线图除了两个方面相同:(1)Y细胞具有更宽的感受野;(2)它们从由窄场和宽场无长突细胞组成的嵌套无长突细胞回路接收输入。该模型用对比度反转光栅进行测试。确定了基波和二次谐波响应分量以估计非线性程度。通过电路剖析,我们发现Y细胞的高度非线性行为源于时间光感受器非线性的空间整合。此外,我们发现嵌套无长突细胞回路的影响较弱且不太均匀。不同的非线性来源以乘法方式相互作用,无长突细胞回路的影响比光感受器的影响弱约25%。该模型预测在水平细胞反应水平就已经出现显著的非线性。预计无长突细胞回路的药理学失活在降低神经节细胞非线性方面会产生较温和的效果。