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鉴定斑马鱼的嗅觉警报物质。

Identification of olfactory alarm substances in zebrafish.

机构信息

Laboratory for Systems Molecular Ethology, RIKEN Center for Brain Science, Saitama 351-0198, Japan; RIKEN CBS-KAO Collaboration Center, RIKEN Center for Brain Science, Saitama 351-0198, Japan; ERATO Touhara Chemosensory Signal Project, JST, Tokyo 113-8657, Japan.

ERATO Touhara Chemosensory Signal Project, JST, Tokyo 113-8657, Japan; Laboratory of Biological Chemistry, Department of Applied Biological Chemistry, The University of Tokyo, Tokyo 113-8657, Japan.

出版信息

Curr Biol. 2024 Apr 8;34(7):1377-1389.e7. doi: 10.1016/j.cub.2024.02.003. Epub 2024 Feb 28.

Abstract

Escaping from danger is one of the most fundamental survival behaviors for animals. Most freshwater fishes display olfactory alarm reactions in which an injured fish releases putative alarm substances from the skin to notify its shoaling company about the presence of danger. Here, we identified two small compounds in zebrafish skin extract, designated as ostariopterin and daniol sulfate. Ostariopterin is a pterin derivative commonly produced in many freshwater fishes belonging to the Ostariophysi superorder. Daniol sulfate is a novel sulfated bile alcohol specifically present in the Danio species, including zebrafish. Ostariopterin and daniol sulfate activate distinct glomeruli in the olfactory bulb. Zebrafish display robust alarm reactions, composed of darting, freezing, and bottom dwelling, only when they are concomitantly stimulated with ostariopterin and daniol sulfate. These results demonstrate that the fish alarm reaction is driven through a coincidence detection mechanism of the two compounds along the olfactory neural circuitry.

摘要

逃避危险是动物最基本的生存行为之一。大多数淡水鱼类表现出嗅觉报警反应,即受伤的鱼从皮肤中释放出假定的报警物质,通知其群体有危险的存在。在这里,我们在斑马鱼皮肤提取物中鉴定出两种小分子化合物,分别命名为ostariopterin 和 daniol 硫酸盐。ostariopterin 是一种蝶呤衍生物,通常存在于许多属于硬骨鱼超目的淡水鱼类中。daniol 硫酸盐是一种新型的硫酸化胆甾醇醇,仅存在于包括斑马鱼在内的 Danio 属中。ostariopterin 和 daniol 硫酸盐激活嗅觉球中的不同肾小球。只有当斑马鱼同时受到 ostariopterin 和 daniol 硫酸盐的刺激时,才会表现出强烈的报警反应,包括冲刺、冻结和底部栖息。这些结果表明,鱼类的报警反应是通过嗅觉神经回路中两种化合物的巧合检测机制驱动的。

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