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祖先感光器多样性作为视觉行为的基础。

Ancestral photoreceptor diversity as the basis of visual behaviour.

机构信息

University of Sussex, Sussex Neuroscience, Sussex Center for Sensory Neuroscience and Computation, Brighton, UK.

出版信息

Nat Ecol Evol. 2024 Mar;8(3):374-386. doi: 10.1038/s41559-023-02291-7. Epub 2024 Jan 22.

Abstract

Animal colour vision is based on comparing signals from different photoreceptors. It is generally assumed that processing different spectral types of photoreceptor mainly serves colour vision. Here I propose instead that photoreceptors are parallel feature channels that differentially support visual-motor programmes like motion vision behaviours, prey capture and predator evasion. Colour vision may have emerged as a secondary benefit of these circuits, which originally helped aquatic vertebrates to visually navigate and segment their underwater world. Specifically, I suggest that ancestral vertebrate vision was built around three main systems, including a high-resolution general purpose greyscale system based on ancestral red cones and rods to mediate visual body stabilization and navigation, a high-sensitivity specialized foreground system based on ancestral ultraviolet cones to mediate threat detection and prey capture, and a net-suppressive system based on ancestral green and blue cones for regulating red/rod and ultraviolet circuits. This ancestral strategy probably still underpins vision today, and different vertebrate lineages have since adapted their original photoreceptor circuits to suit their diverse visual ecologies.

摘要

动物的色觉基于比较不同光感受器的信号。一般认为,处理不同光谱类型的光感受器主要服务于色觉。在这里,我提出相反的观点,即光感受器是并行的特征通道,它们可以差异化地支持视觉运动程序,如运动视觉行为、猎物捕捉和逃避捕食者。色觉可能是这些电路的次要好处之一,这些电路最初帮助水生脊椎动物在水下世界中进行视觉导航和分割。具体来说,我认为,祖先脊椎动物的视觉是围绕三个主要系统构建的,包括一个基于祖先红锥和杆的高分辨率通用灰度系统,用于介导视觉身体稳定和导航;一个基于祖先紫外线锥的高灵敏度专用前景系统,用于介导威胁检测和猎物捕捉;以及一个基于祖先绿锥和蓝锥的净抑制系统,用于调节红/杆和紫外线电路。这种古老的策略可能仍然是当今视觉的基础,此后,不同的脊椎动物谱系已经适应了它们最初的光感受器电路,以适应它们多样化的视觉生态。

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