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幼虫伤害性逃避行为的光遗传学刺激

Optogenetic Stimulation of Nociceptive Escape Behaviors in Larvae.

作者信息

Mauthner Stephanie E, Tracey W Daniel

机构信息

Gill Center for Biomolecular Science, Indiana University, Bloomington, Indiana 47405, USA.

Department of Biology, Indiana University, Bloomington, Indiana 47405, USA.

出版信息

Cold Spring Harb Protoc. 2025 Apr 1;2025(4):pdb.prot108128. doi: 10.1101/pdb.prot108128.

Abstract

In animals, noxious stimuli activate a neural process called nociception. larvae perform a rolling escape locomotion behavior in response to nociceptive sensory stimuli. Noxious mechanical, thermal, and chemical stimuli each trigger this same escape response in larvae. The polymodal sensory neurons that initiate the rolling response have been identified based on the expression patterns of genes that are known to be required for nociception responses. The synaptic output of these neurons, known as class IV multidendritic sensory neurons, is required for behavioral responses to thermal, mechanical, and chemical triggers of the rolling escape locomotion. Importantly, optogenetic stimulation of the class IV multidendritic neurons has also shown that the activation of those cells is sufficient to trigger nociceptive rolling. Optogenetics uses light-activated ion channels expressed in neurons of interest to bypass the normal physiological transduction machinery so that the cell may be activated in response to light that is applied by the investigator. This protocol describes an optogenetic technique that uses channelrhodopsin-2 (ChR2) to activate larval nociceptors and trigger nociceptive rolling. First, we explain how to set up the necessary genetic crosses and culture the larval progeny. Next, we describe how to perform the optogenetic nociception assay on third-instar larvae.

摘要

在动物中,有害刺激会激活一种称为伤害感受的神经过程。幼虫会对伤害性感觉刺激做出滚动逃避运动行为。有害的机械、热和化学刺激都会在幼虫中引发相同的逃避反应。基于已知的伤害感受反应所需基因的表达模式,已经确定了引发滚动反应的多模态感觉神经元。这些神经元的突触输出,即IV类多树突感觉神经元,对于滚动逃避运动对热、机械和化学触发因素的行为反应是必需的。重要的是,对IV类多树突神经元的光遗传学刺激也表明,这些细胞的激活足以引发伤害性滚动。光遗传学利用在感兴趣的神经元中表达的光激活离子通道来绕过正常的生理转导机制,以便细胞可以响应研究者施加的光而被激活。本方案描述了一种光遗传学技术,该技术使用通道视紫红质-2(ChR2)来激活幼虫伤害感受器并引发伤害性滚动。首先,我们解释如何进行必要的遗传杂交并培养幼虫后代。接下来,我们描述如何对三龄幼虫进行光遗传学伤害感受测定。

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引用本文的文献

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Cold Spring Harb Protoc. 2025 Apr 1;2025(4):pdb.top108172. doi: 10.1101/pdb.top108172.

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