首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Controlling the gain of rod-mediated signals in the Mammalian retina.
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Controlling the gain of rod-mediated signals in the Mammalian retina.

机译:控制哺乳动物视网膜中杆介导信号的增益。

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摘要

Effective sensory processing requires matching the gain of neural responses to the range of signals encountered. For rod vision, gain controls operate at light levels at which photons arrive rarely at individual rods, light levels too low to cause adaptation in rod phototransduction. Under these conditions, adaptation within a conserved pathway in mammalian retina maintains sensitivity as light levels change. To relate retinal signals to behavioral work on detection at low light levels, we measured how background light affects the gain and noise of primate ganglion cells. To determine where and how gain is controlled, we tracked rod-mediated signals across the mouse retina. These experiments led to three main conclusions: (1) the primary site of adaptation at low light levels is the synapse between rod bipolar and AII amacrine cells; (2) cellular noise after the gain control is nearly independent of background intensity; and (3) at low backgrounds, noise in the circuitry, rather than rod noise or fluctuations in arriving photons, limits ganglion cell sensitivity. This work provides physiological insights into the rich history of experiments characterizing how rod vision avoids saturation as light levels increase.
机译:有效的感觉处理需要将神经反应的增益与遇到的信号范围相匹配。对于棒视觉,增益控制在光子很少到达单个棒的光水平下操作,该光水平太低而不会导致棒光转导的适应。在这些条件下,哺乳动物视网膜在保守途径内的适应随着光照水平的变化而保持敏感性。为了将视网膜信号与低照度下的行为研究联系起来,我们测量了背景光如何影响灵长类神经节细胞的增益和噪声。为了确定在何处以及如何控制增益,我们在小鼠视网膜上跟踪了杆介导的信号。这些实验得出三个主要结论:(1)在弱光条件下适应的主要部位是双极杆和AII无长突细胞之间的突触; (2)增益控制后的细胞噪声几乎与背景强度无关; (3)在低背景下,电路中的噪声而不是杆噪声或到达的光子波动限制了神经节细胞的敏感性。这项工作为丰富的实验历史提供了生理学见解,这些实验描述了杆状视觉如何随着光水平的增加而避免饱和。

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