Escape response of the crab Neohelice to computer generated looming and translational visual danger stimuli

Florencia Scarano, Daniel Tomsic
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引用次数: 16

Abstract

Historically, arthropod behavior has been considered to be a collection of simple, automaton-like routines commanded by domain-specific brain modules working independently. Nowadays, it is evident that the extensive behavioral repertoire of these animals and its flexibility necessarily imply far more complex abilities than originally assumed. For example, even what was thought to be a straightforward behavior of crabs, the escape response to visual danger stimuli, proved to involve a number of sequential stages, each of which implying decisions made on the bases of stimulus and contextual information. Inspired in previous observations on how the stimulus trajectory can affect the escape response of crabs in the field, we investigated the escape response to images of objects approaching directly toward the crab (looming stimuli: LS) or moving parallel to it (translational stimuli: TS) in the laboratory. Computer simulations of moving objects were effective to elicit escapes. LS evoked escapes with higher probability and intensity (speed and distance of escape) than TS, but responses started later. In addition to the escape run, TS also evoked a defensive response of the animal with its claws. Repeated presentations of TS or LS were both capable of inducing habituation. Results are discussed in connection with the possibilities offered by crabs to investigate the neural bases of behaviors occurring in the natural environment.

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蟹对计算机生成的隐现和平移视觉危险刺激的逃生反应
从历史上看,节肢动物的行为被认为是由特定领域的大脑模块独立工作的简单的、类似于自动机的日常行为的集合。如今,很明显,这些动物广泛的行为技能及其灵活性必然意味着比最初假设的要复杂得多的能力。例如,螃蟹对视觉危险刺激的逃避反应被认为是一种简单的行为,但事实证明,它涉及许多连续的阶段,每个阶段都意味着基于刺激和环境信息做出的决定。在前人关于刺激轨迹如何影响螃蟹逃逸反应的研究基础上,我们在实验室中研究了直接靠近螃蟹的物体(隐现刺激:LS)或平行移动的物体(平移刺激:TS)的逃逸反应。移动物体的计算机模拟可以有效地诱导逃跑。LS诱发逃逸的概率和强度(逃逸速度和逃逸距离)均高于TS,但反应开始时间较TS晚。除了逃跑外,TS还用爪子引起了动物的防御反应。TS或LS的重复呈现都能诱导习惯。研究结果与螃蟹研究自然环境中发生的行为的神经基础的可能性有关。
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来源期刊
Journal of Physiology-Paris
Journal of Physiology-Paris 医学-神经科学
CiteScore
2.02
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: Each issue of the Journal of Physiology (Paris) is specially commissioned, and provides an overview of one important area of neuroscience, delivering review and research papers from leading researchers in that field. The content will interest both those specializing in the experimental study of the brain and those working in interdisciplinary fields linking theory and biological data, including cellular neuroscience, mathematical analysis of brain function, computational neuroscience, biophysics of brain imaging and cognitive psychology.
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