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Neuronal nonlinearity explains greater visual spatial resolution for darks than lights

机译:神经元的非线性解释了黑暗比光具有更大的视觉空间分辨率

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摘要

Astronomers and physicists noticed centuries ago that visual spatial resolution is higher for dark than light stimuli, but the neuronal mechanisms for this perceptual asymmetry remain unknown. Here we demonstrate that the asymmetry is caused by a neuronal nonlinearity in the early visual pathway. We show that neurons driven by darks (OFF neurons) increase their responses roughly linearly with luminance decrements, independent of the background luminance. However, neurons driven by lights (ON neurons) saturate their responses with small increases in luminance and need bright backgrounds to approach the linearity of OFF neurons. We show that, as a consequence of this difference in linearity, receptive fields are larger in ON than OFF thalamic neurons, and cortical neurons are more strongly driven by darks than lights at low spatial frequencies. This ON/OFF asymmetry in linearity could be demonstrated in the visual cortex of cats, monkeys, and humans and in the cat visual thalamus. Furthermore, in the cat visual thalamus, we show that the neuronal nonlinearity is present at the ON receptive field center of ON-center neurons and ON receptive field surround of OFF-center neurons, suggesting an origin at the level of the photoreceptor. These results demonstrate a fundamental difference in visual processing between ON and OFF channels and reveal a competitive advantage for OFF neurons over ON neurons at low spatial frequencies, which could be important during cortical development when retinal images are blurred by immature optics in infant eyes.
机译:天文学家和物理学家几个世纪前注意到,黑暗的视觉空间分辨率要比光刺激的视觉空间分辨率高,但是这种感知不对称的神经元机制仍然未知。在这里,我们证明了不对称性是由早期视觉通路中的神经元非线性引起的。我们表明,由黑暗驱动的神经元(OFF神经元)与亮度的降低大致呈线性关系,而与背景亮度无关。但是,由光驱动的神经元(ON神经元)会以较小的亮度增加来饱和其响应,并且需要明亮的背景才能接近OFF神经元的线性。我们显示,由于这种线性差异,ON处的感受野比OFF处的丘脑神经元大,而皮层神经元在黑暗中比在低空间频率下更受光照驱动。这种线性的ON / OFF不对称性可以在猫,猴子和人类的视觉皮层以及猫的视觉丘脑中得到证明。此外,在猫的视觉丘脑中,我们显示神经元非线性存在于ON中心神经元的ON受体场中心和OFF中心神经元的ON受体场周围,暗示了在感光体水平上的起源。这些结果证明了ON和OFF通道之间的视觉处理存在根本差异,并揭示了OFF神经元在低空间频率下比ON神经元具有竞争优势,这可能在皮质发育过程中很重要,因为当视网膜图像因婴儿眼中未成熟的光学镜片而模糊时,这在皮质发展中很重要。

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