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果蝇对声音、重力和风的神经编码。

Neuronal encoding of sound, gravity, and wind in the fruit fly.

机构信息

Division of Biological Science, Graduate School of Science, Nagoya University, Furo, Chikusa, Nagoya, Aichi, 464-8602, Japan.

出版信息

J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2013 Apr;199(4):253-62. doi: 10.1007/s00359-013-0806-x. Epub 2013 Mar 13.

Abstract

The fruit fly Drosophila melanogaster responds behaviorally to sound, gravity, and wind. Exposure to male courtship songs results in reduced locomotion in females, whereas males begin to chase each other. When agitated, fruit flies tend to move against gravity. When faced with air currents, they 'freeze' in place. Based on recent studies, Johnston's hearing organ, the antennal ear of the fruit fly, serves as a sensor for all of these mechanosensory stimuli. Compartmentalization of sense cells in Johnston's organ into vibration-sensitive and deflection-sensitive neural groups allows this single organ to mediate such varied functions. Sound and gravity/wind signals sensed by these two neuronal groups travel in parallel from the fly ear to the brain, feeding into neural pathways reminiscent of the auditory and vestibular pathways in the human brain. Studies of the similarities between mammals and flies will lead to a better understanding of the principles of how sound and gravity information is encoded in the brain. Here, we review recent advances in our understanding of these principles and discuss the advantages of the fruit fly as a model system to explore the fundamental principles of how neural circuits and their ensembles process and integrate sensory information in the brain.

摘要

果蝇(Drosophila melanogaster)对声音、重力和风有行为反应。暴露于雄性求偶歌曲会导致雌性的运动减少,而雄性则开始相互追逐。当果蝇感到激动时,它们往往会逆着重力移动。当遇到气流时,它们会“冻结”在原地。基于最近的研究,约翰斯顿的听觉器官,果蝇的触角耳,充当了所有这些机械感觉刺激的传感器。约翰斯顿器官中的感觉细胞在振动敏感和偏斜敏感神经群中的分区允许这个单一器官介导如此多样化的功能。这两个神经元群感知到的声音和重力/风信号从果蝇的耳朵平行传输到大脑,进入类似于人类大脑中听觉和前庭途径的神经通路。对哺乳动物和苍蝇之间相似性的研究将有助于更好地理解大脑中声音和重力信息编码的原理。在这里,我们回顾了我们对这些原理的理解的最新进展,并讨论了果蝇作为模型系统的优势,以探索神经回路及其集合如何在大脑中处理和整合感觉信息的基本原理。

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