哺乳动物光感受器特性的多样性:对栖息地和生活方式的适应?

Leo Peichl
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引用次数: 331

摘要

所有哺乳动物的视网膜都含有用于弱光视觉的杆状光感受器和用于日光和彩色视觉的锥状光感受器。大多数非灵长类哺乳动物具有基于两种视锥类型的二色视觉,这些视锥类型具有光谱上不同的视觉色素:短波长敏感(S-)视锥和长波长的敏感(L-)视锥。除了这种基本的相似性之外,物种之间还存在着显著的差异。本文回顾了一些引人注目的例子。球果与杆状体的密度比在最夜间为1:200,在少数日间物种中为20:1。在某些物种中,光谱锥型的比例及其在视网膜上的分布与大多数哺乳动物的模式不同,包括完全没有s锥。根据不同的物种,l -锥色素的光谱灵敏度可能在绿色、黄色或橙色达到峰值,而s -锥色素的光谱灵敏度可能在蓝色、紫色或近紫外线达到峰值。虽然每个球果只表达一种色素是规律,但有些物种的球果中L-和s -色素的共表达占很大比例。人们普遍认为,所有这些变化都是对与特定栖息地和生活方式有关的特定视觉需求的适应。然而,在许多情况下,我们还没有确定一个给定的光感受器排列的自适应价值。比较解剖学是一种富有成效的方法,可以探索哺乳动物视网膜蓝图中可能的排列范围,并识别具有特别有趣或令人费解的模式的物种,这些模式值得通过生理和行为分析进一步仔细研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Diversity of mammalian photoreceptor properties: adaptations to habitat and lifestyle?

All mammalian retinae contain rod photoreceptors for low-light vision and cone photoreceptors for daylight and color vision. Most nonprimate mammals have dichromatic color vision based on two cone types with spectrally different visual pigments: a short-wavelength-sensitive (S-)cone and a long-wavelength-sensitive (L-)cone. Superimposed on this basic similarity, there are remarkable differences between species. This article reviews some striking examples. The density ratio of cones to rods ranges from 1:200 in the most nocturnal to 20:1 in a few diurnal species. In some species, the proportion of the spectral cone types and their distribution across the retina deviate from the pattern found in most mammals, including a complete absence of S-cones. Depending on species, the spectral sensitivity of the L-cone pigment may peak in the green, yellow, or orange, and that of the S-cone pigment in the blue, violet, or near-ultraviolet. While exclusive expression of one pigment per cone is the rule, some species feature coexpression of the L- and S-pigment in a significant proportion of their cones. It is widely assumed that all these variations represent adaptations to specific visual needs associated with particular habitats and lifestyles. However, in many cases we have not yet identified the adaptive value of a given photoreceptor arrangement. Comparative anatomy is a fruitful approach to explore the range of possible arrangements within the blueprint of the mammalian retina and to identify species with particularly interesting or puzzling patterns that deserve further scrutiny with physiological and behavioral assays.

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