The role of learning-walk related multisensory experience in rewiring visual circuits in the desert ant brain.

IF 1.9 4区 心理学 Q3 BEHAVIORAL SCIENCES
Wolfgang Rössler, Robin Grob, Pauline N Fleischmann
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引用次数: 3

Abstract

Efficient spatial orientation in the natural environment is crucial for the survival of most animal species. Cataglyphis desert ants possess excellent navigational skills. After far-ranging foraging excursions, the ants return to their inconspicuous nest entrance using celestial and panoramic cues. This review focuses on the question about how naïve ants acquire the necessary spatial information and adjust their visual compass systems. Naïve ants perform structured learning walks during their transition from the dark nest interior to foraging under bright sunlight. During initial learning walks, the ants perform rotational movements with nest-directed views using the earth's magnetic field as an earthbound compass reference. Experimental manipulations demonstrate that specific sky compass cues trigger structural neuronal plasticity in visual circuits to integration centers in the central complex and mushroom bodies. During learning walks, rotation of the sky-polarization pattern is required for an increase in volume and synaptic complexes in both integration centers. In contrast, passive light exposure triggers light-spectrum (especially UV light) dependent changes in synaptic complexes upstream of the central complex. We discuss a multisensory circuit model in the ant brain for pathways mediating structural neuroplasticity at different levels following passive light exposure and multisensory experience during the performance of learning walks.

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学习行走相关的多感官体验在沙漠蚁大脑视觉回路重新布线中的作用。
自然环境中有效的空间定位对大多数动物物种的生存至关重要。巨形沙漠蚁具有出色的导航技能。在长途觅食后,蚂蚁会利用天空和全景提示回到它们不显眼的巢穴入口。本文综述了naïve蚂蚁如何获取必要的空间信息并调整其视觉罗盘系统的问题。Naïve蚂蚁在从黑暗的巢穴内部过渡到明亮的阳光下觅食时,会进行有组织的学习行走。在最初的学习行走中,蚂蚁使用地球磁场作为地球罗盘参考,以巢为导向进行旋转运动。实验操作表明,特定的天空罗盘线索触发了中央复合体和蘑菇体整合中心的视觉回路中的结构神经元可塑性。在学习散步过程中,天空偏振模式的旋转需要两个整合中心的体积和突触复合体的增加。相反,被动光暴露会触发中央复合体上游突触复合体的光谱(尤其是紫外光)依赖性变化。我们讨论了蚂蚁大脑中的多感觉回路模型,在被动光照射和学习散步期间的多感觉体验中,不同水平的通路介导结构神经可塑性。
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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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