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视锥视觉中的明适应涉及感受器和感受器后位点之间的转换。

Light adaptation in cone vision involves switching between receptor and post-receptor sites.

作者信息

Dunn Felice A, Lankheet Martin J, Rieke Fred

机构信息

Program in Neurobiology and Behavior, University of Washington, Seattle, Washington 98195, USA.

出版信息

Nature. 2007 Oct 4;449(7162):603-6. doi: 10.1038/nature06150. Epub 2007 Sep 12.

Abstract

We see over an enormous range of mean light levels, greater than the range of output signals retinal neurons can produce. Even highlights and shadows within a single visual scene can differ approximately 10,000-fold in intensity-exceeding the range of distinct neural signals by a factor of approximately 100. The effectiveness of daylight vision under these conditions relies on at least two retinal mechanisms that adjust sensitivity in the approximately 200 ms intervals between saccades. One mechanism is in the cone photoreceptors (receptor adaptation) and the other is at a previously unknown location within the retinal circuitry that benefits from convergence of signals from multiple cones (post-receptor adaptation). Here we find that post-receptor adaptation occurs as signals are relayed from cone bipolar cells to ganglion cells. Furthermore, we find that the two adaptive mechanisms are essentially mutually exclusive: as light levels increase the main site of adaptation switches from the circuitry to the cones. These findings help explain how human cone vision encodes everyday scenes, and, more generally, how sensory systems handle the challenges posed by a diverse physical environment.

摘要

我们能看到的平均光照水平范围极大,超过了视网膜神经元所能产生的输出信号范围。即使是单个视觉场景中的强光和阴影,其强度也可能相差约10000倍,比不同神经信号的范围超出约100倍。在这些条件下,日光视觉的有效性至少依赖于两种视网膜机制,它们在扫视之间约200毫秒的间隔内调节敏感度。一种机制存在于视锥光感受器中(感受器适应),另一种则位于视网膜回路中一个此前未知的位置,该位置受益于来自多个视锥的信号汇聚(感受器后适应)。我们在此发现,感受器后适应发生在信号从视锥双极细胞传递到神经节细胞的过程中。此外,我们发现这两种适应机制基本上是相互排斥的:随着光照水平的增加,适应的主要部位从回路转移到视锥。这些发现有助于解释人类视锥视觉如何编码日常场景,更普遍地说,有助于解释感觉系统如何应对多样物理环境带来的挑战。

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