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利用生物光声技术在斑马鱼中产生声音。

Sound generation in zebrafish with Bio-Opto-Acoustics.

机构信息

School of Mathematics and Physics, The University of Queensland, Brisbane, Australia.

Queensland Brain Institute, The University of Queensland, Brisbane, Australia.

出版信息

Nat Commun. 2020 Nov 30;11(1):6120. doi: 10.1038/s41467-020-19982-5.

Abstract

Hearing is a crucial sense in underwater environments for communication, hunting, attracting mates, and detecting predators. However, the tools currently used to study hearing are limited, as they cannot controllably stimulate specific parts of the auditory system. To date, the contributions of hearing organs have been identified through lesion experiments that inactivate an organ, making it difficult to gauge the specific stimuli to which each organ is sensitive, or the ways in which inputs from multiple organs are combined during perception. Here, we introduce Bio-Opto-Acoustic (BOA) stimulation, using optical forces to generate localized vibrations in vivo, and demonstrate stimulation of the auditory system of zebrafish larvae with precise control. We use a rapidly oscillated optical trap to generate vibrations in individual otolith organs that are perceived as sound, while adjacent otoliths are either left unstimulated or similarly stimulated with a second optical laser trap. The resulting brain-wide neural activity is characterized using fluorescent calcium indicators, thus linking each otolith organ to its individual neuronal network in a way that would be impossible using traditional sound delivery methods. The results reveal integration and cooperation of the utricular and saccular otoliths, which were previously described as having separate biological functions, during hearing.

摘要

听觉在水下环境中对于通讯、捕猎、吸引配偶和察觉捕食者至关重要。然而,目前用于研究听觉的工具受到限制,因为它们无法控制地刺激听觉系统的特定部位。迄今为止,听觉器官的作用是通过使器官失活的损伤实验来确定的,这使得很难衡量每个器官对特定刺激的敏感程度,或者在感知过程中多个器官的输入是如何组合的。在这里,我们引入生物光学声刺激(Bio-Opto-Acoustic,BOA),使用光学力在体内产生局部振动,并展示了对斑马鱼幼虫听觉系统的精确控制刺激。我们使用快速振荡的光阱在单个耳石器官中产生可被感知为声音的振动,而相邻的耳石则保持不被刺激或用第二束光学激光阱进行类似的刺激。利用荧光钙指示剂来描述由此产生的全脑神经活动,从而将每个耳石器官与其单独的神经网络联系起来,这是使用传统声音传递方法不可能实现的。研究结果揭示了以前被描述为具有独立生物学功能的囊斑和椭圆囊在听觉过程中的整合和协作。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e051/7705743/2741518a6c4b/41467_2020_19982_Fig1_HTML.jpg

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