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The contrast sensitivity of retinal ganglion cells of the cat.猫视网膜神经节细胞的对比敏感度。
J Physiol. 1966 Dec;187(3):517-52. doi: 10.1113/jphysiol.1966.sp008107.
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Random wiring in the midget pathway of primate retina.灵长类视网膜侏儒通路中的随机布线。
J Neurosci. 2006 Apr 12;26(15):3908-17. doi: 10.1523/JNEUROSCI.4891-05.2006.
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Contribution of chromatic aberrations to color signals in the primate visual system.色差对灵长类视觉系统中颜色信号的贡献。
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Chromatic organization of ganglion cell receptive fields in the peripheral retina.周边视网膜神经节细胞感受野的颜色组织
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Correlated firing improves stimulus discrimination in a retinal model.相关性放电可改善视网膜模型中的刺激辨别能力。
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Lateral interactions in the perception of flicker and in the physiology of the lateral geniculate nucleus.视觉闪烁感知及外侧膝状体核生理学中的侧向相互作用。
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Chromatic and spatial properties of parvocellular cells in the lateral geniculate nucleus of the marmoset (Callithrix jacchus).狨猴(Callithrix jacchus)外侧膝状核中P细胞的颜色和空间特性
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10
L and M cone contributions to the midget and parasol ganglion cell receptive fields of macaque monkey retina.L和M视锥细胞对猕猴视网膜侏儒节细胞和伞状节细胞感受野的贡献。
J Neurosci. 2004 Feb 4;24(5):1079-88. doi: 10.1523/JNEUROSCI.3828-03.2004.

小细胞通路中M和L视锥细胞输入至感受野的特异性:具有功能偏向性的随机布线

Specificity of M and L cone inputs to receptive fields in the parvocellular pathway: random wiring with functional bias.

作者信息

Buzás Péter, Blessing Esther M, Szmajda Brett A, Martin Paul R

机构信息

National Vision Research Institute of Australia, Carlton, Victoria 3053, Australia.

出版信息

J Neurosci. 2006 Oct 25;26(43):11148-61. doi: 10.1523/JNEUROSCI.3237-06.2006.

DOI:10.1523/JNEUROSCI.3237-06.2006
PMID:17065455
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6674646/
Abstract

Many of the parvocellular pathway (PC) cells in primates show red-green spectral selectivity (cone opponency), but PC ganglion cells in the retina show no anatomical signs of cone selectivity. Here we asked whether responses of PC cells are compatible with "random wiring" of cone inputs. We measured long-wavelength-sensitive (L) and medium-wavelength-sensitive (M) cone inputs to PC receptive fields in the dorsal lateral geniculate of marmosets, using discrete stimuli (apertures and annuli) to achieve functional segregation of center and surround. Receptive fields between the fovea and 30 degrees eccentricity were measured. We show that, in opponent PC cells, the center is dominated by one (L or M) cone type, with normally <20% contribution from the other cone type (high "cone purity"), whereas non-opponent cells have mixed L and M cone inputs to the receptive field center. Furthermore, opponent response strength depends on the overall segregation of L and M cone inputs to center and surround rather than exclusive input from one cone type to either region. These data are consistent with random wiring. The majority of PC cells in both foveal (<8 degrees) and peripheral retina nevertheless show opponent responses. This arises because cone purity in the receptive field surround is at least as high as in the center, and the surround in nearly all opponent PC cells is dominated by the opposite cone type to that which dominates the center. These functional biases increase the proportion of opponent PC cells, but their anatomical basis is unclear.

摘要

灵长类动物中的许多小细胞通路(PC)细胞表现出红绿色光谱选择性(视锥细胞拮抗),但视网膜中的PC神经节细胞没有视锥细胞选择性的解剖学迹象。在这里,我们探讨了PC细胞的反应是否与视锥细胞输入的“随机布线”相一致。我们使用离散刺激(光圈和圆环)来实现中央和外周的功能分离,测量了狨猴背外侧膝状体中PC感受野的长波敏感(L)和中波敏感(M)视锥细胞输入。测量了中央凹和30度偏心率之间的感受野。我们发现,在拮抗PC细胞中,中央由一种(L或M)视锥细胞类型主导,另一种视锥细胞类型的贡献通常<20%(高“视锥细胞纯度”),而非拮抗细胞的感受野中央有混合的L和M视锥细胞输入。此外,拮抗反应强度取决于L和M视锥细胞输入到中央和外周的整体分离,而不是一种视锥细胞类型单独输入到任何一个区域。这些数据与随机布线一致。然而,中央凹(<8度)和周边视网膜中的大多数PC细胞都表现出拮抗反应。这是因为感受野外周的视锥细胞纯度至少与中央一样高,并且几乎所有拮抗PC细胞的外周都由与主导中央的视锥细胞类型相反的视锥细胞类型主导。这些功能偏差增加了拮抗PC细胞的比例,但其解剖学基础尚不清楚。