Polarization vision in terrestrial hermit crabs.

IF 1.9 4区 心理学 Q3 BEHAVIORAL SCIENCES Journal of Comparative Physiology A-Neuroethology Sensory Neural and Behavioral Physiology Pub Date : 2023-11-01 Epub Date: 2023-04-12 DOI:10.1007/s00359-023-01631-z
Martin J How, Alasdair Robertson, Samuel P Smithers, David Wilby
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引用次数: 1

Abstract

Polarization vision is used by a wide range of animals for navigating, orienting, and detecting objects or areas of interest. Shallow marine and semi-terrestrial crustaceans are particularly well known for their abilities to detect predator-like or conspecific-like objects based on their polarization properties. On land, some terrestrial invertebrates use polarization vision for detecting suitable habitats, oviposition sites or conspecifics, but examples of threat detection in the polarization domain are less well known. To test whether this also applies to crustaceans that have evolved to occupy terrestrial habitats, we determined the sensitivity of two species of land and one species of marine hermit crab to predator-like visual stimuli varying in the degree of polarization. All three species showed an ability to detect these cues based on polarization contrasts alone. One terrestrial species, Coenobita rugosus, showed an increased sensitivity to objects with a higher degree of polarization than the background. This is the inverse of most animals studied to date, suggesting that the ecological drivers for polarization vision may be different in the terrestrial environment.

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陆地寄居蟹的偏振视觉。
偏振视觉被许多动物用于导航、定位和探测感兴趣的物体或区域。浅海和半陆生甲壳类动物因其根据极化特性探测捕食者或同类物体的能力而闻名。在陆地上,一些陆生无脊椎动物利用偏振视觉来探测合适的栖息地、产卵地点或同种动物,但在偏振领域检测威胁的例子鲜为人知。为了测试这是否也适用于已经进化到占据陆地栖息地的甲壳类动物,我们确定了两种陆地寄居蟹和一种海洋寄居蟹对不同极化程度的类似捕食者的视觉刺激的敏感性。这三个物种都显示出仅根据极化对比就能探测到这些线索的能力。一个陆生物种,Coenobita rugosus,对极化程度高于背景的物体表现出更高的敏感性。这与迄今为止研究的大多数动物的情况相反,这表明在陆地环境中,极化视觉的生态驱动因素可能是不同的。
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来源期刊
CiteScore
4.80
自引率
14.30%
发文量
67
审稿时长
1 months
期刊介绍: The Journal of Comparative Physiology A welcomes original articles, short reviews, and short communications in the following fields: - Neurobiology and neuroethology - Sensory physiology and ecology - Physiological and hormonal basis of behavior - Communication, orientation, and locomotion - Functional imaging and neuroanatomy Contributions should add to our understanding of mechanisms and not be purely descriptive. The level of organization addressed may be organismic, cellular, or molecular. Colour figures are free in print and online.
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