kairomonons对啮齿动物的行为和神经生物学意义:最新综述。

IF 3.2 3区 医学 Q2 NEUROSCIENCES Frontiers in Neuroscience Pub Date : 2025-02-19 eCollection Date: 2025-01-01 DOI:10.3389/fnins.2025.1485312
Diya Manjunath, Hayavadhan Sampath, Roy N Kirkwood, Sinsha Santhosh, Devaraj Sankarganesh
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引用次数: 0

摘要

像许多其他脊椎动物一样,啮齿动物通过信息素进行交流,这有利于物种内的交流。相比之下,kairomonone是参与种间交流的符号化学物质,促进不同物种生物之间的信息交流,但对接受者有利。Kairomones诱导啮齿动物的行为、生理和内分泌变化,并已被证明可以激活嗅觉系统(主嗅觉系统、副嗅觉系统和Gruenberg神经节)的一个或多个组成部分的特定神经通路。复杂的嗅觉网络帮助啮齿动物天生识别kairomones,并引发适当的行为(厌恶,回避,防御和逃避机制),生理和内分泌变化。到目前为止,对猫科动物、犬科动物和蛇类等捕食者的气味来源(如尿液、粪便、毛发和身体摩擦)已经在啮齿类动物中进行了研究。特定的kairomonons已经被识别,行为测试,并验证了它们在啮齿类动物中诱导行为,神经元和内分泌变化的潜力。研究最多的kairomonone之一是狐狸气味,2,5-二氢2,4,5-三甲基噻唑啉,尽管其他化合物已被报道到有限的程度。本文综述了近年来有关激素及其对大鼠和小鼠行为系统、神经系统和内分泌系统影响的研究进展。
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Behavioral and neurobiological implications of kairomones for rodents: an updated review.

Like many other vertebrates, rodents communicate via pheromones, which favors intraspecies communication. In contrast, kairomones are semiochemicals involved in interspecific communication, facilitating information between organisms of different species but advantageous for the receiver. Kairomones induce behavioral, physiological, and endocrinological changes in rodents, and have been proven to activate specific neuronal pathways in one or multiple components of the olfactory system (the main olfactory system, accessory olfactory system, and Gruenberg ganglion). The sophisticated olfactory networks help rodents innately recognize kairomones and elicit appropriate behavioral (aversive, avoidance, defense, and escape mechanisms), physiological, and endocrinological changes. Thus far, odor sources (e.g., urine, feces, hair, and body rubbings) of predators, such as felines, canines, and serpentes, have been studied in rodents. Specific kairomones have been identified, behaviorally tested, and validated for their potential to induce behavioral, neuronal, and endocrinological changes in rodents. One of the most studied kairomones is the fox odor, 2,5-dihydro 2,4,5-trimethylthiazoline, although other compounds have been reported to a limited extent. This review summarizes the current knowledge on kairomones and their effects on the behavioral, neuronal, and endocrine systems of rats and mice.

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来源期刊
Frontiers in Neuroscience
Frontiers in Neuroscience NEUROSCIENCES-
CiteScore
6.20
自引率
4.70%
发文量
2070
审稿时长
14 weeks
期刊介绍: Neural Technology is devoted to the convergence between neurobiology and quantum-, nano- and micro-sciences. In our vision, this interdisciplinary approach should go beyond the technological development of sophisticated methods and should contribute in generating a genuine change in our discipline.
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