Adult zebrafish can learn Morris water maze-like tasks in a two-dimensional virtual reality system.

IF 4.3 Q1 BIOCHEMICAL RESEARCH METHODS Cell Reports Methods Pub Date : 2024-10-21 Epub Date: 2024-09-23 DOI:10.1016/j.crmeth.2024.100863
Tanvir Islam, Makio Torigoe, Yuki Tanimoto, Hitoshi Okamoto
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Abstract

Virtual reality (VR) has emerged as a powerful tool for investigating neural mechanisms of decision-making, spatial cognition, and navigation. In many head-fixed VRs for rodents, animals locomote on spherical treadmills that provide rotation information in two axes to calculate two-dimensional (2D) movement. On the other hand, zebrafish in a submerged head-fixed VR can move their tail to enable movement in 2D VR environment. This motivated us to create a VR system for adult zebrafish to enable 2D movement consisting of forward translation and rotations calculated from tail movement. Besides presenting the VR system, we show that zebrafish can learn a virtual Morris water maze-like (VMWM) task in which finding an invisible safe zone was necessary for the zebrafish to avoid an aversive periodic mild electric shock. Results show high potential for our VR system to be combined with optical imaging for future studies to investigate spatial learning and navigation.

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成年斑马鱼可以在二维虚拟现实系统中学习类似莫里斯水迷宫的任务。
虚拟现实(VR)已成为研究决策、空间认知和导航神经机制的有力工具。在许多啮齿动物头部固定的虚拟现实中,动物在球形跑步机上运动,跑步机提供两个轴的旋转信息,以计算二维(2D)运动。另一方面,在浸没式头固定 VR 中的斑马鱼可以移动尾巴,以便在二维 VR 环境中移动。这促使我们为成年斑马鱼创建一个 VR 系统,以实现由尾巴运动计算出的前向平移和旋转组成的二维运动。除了展示 VR 系统外,我们还展示了斑马鱼可以学习类似虚拟莫里斯水迷宫(VMWM)的任务,在该任务中,斑马鱼必须找到一个看不见的安全区,才能避免周期性的轻微电击。研究结果表明,我们的虚拟现实系统与光学成像相结合,在未来研究空间学习和导航方面具有很大的潜力。
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来源期刊
Cell Reports Methods
Cell Reports Methods Chemistry (General), Biochemistry, Genetics and Molecular Biology (General), Immunology and Microbiology (General)
CiteScore
3.80
自引率
0.00%
发文量
0
审稿时长
111 days
期刊最新文献
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