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幼虫的机械伤害感受测定

Mechanical Nociception Assay 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.prot108125. doi: 10.1101/pdb.prot108125.

Abstract

The nervous system of animals can sense and respond to noxious stimuli, which include noxious thermal, chemical, or mechanical stimuli, through a process called nociception. Here, we describe a simple behavioral assay to measure mechanically induced nociceptive responses in larvae. This assay tests larval mechanosensitivity to noxious force with calibrated von Frey filaments. First, we explain how to construct and calibrate the customizable von Frey filaments that can be used to deliver reproducible stimuli of a defined force or pressure. Next, we describe how to perform the mechanical nociception assay on third-instar larvae. Through comparison of the responses of genotypes of interest, this assay can be useful for investigation of molecular, cellular, and circuit mechanisms of mechanical nociception. At the molecular level, prior studies have identified the importance of sensory ion channels such as Pickpocket/Balboa, Piezo, dTRPA1, and Painless. At the cellular level, the class IV multidendritic arborizing (md-da) neurons are the main mechanical nociceptor neurons of the peripheral system, but class III and class II md-da have been found to also play a role. At the circuit level, studies have shown that mechanical nociception relies on interneurons of the abdominal ganglia that integrate inputs from these various md-da neuron classes.

摘要

动物的神经系统能够通过一种称为伤害感受的过程来感知有害刺激并做出反应,这些有害刺激包括有害的热、化学或机械刺激。在这里,我们描述了一种简单的行为测定方法,用于测量幼虫中机械诱导的伤害性反应。该测定法使用校准的冯·弗里(von Frey)细丝测试幼虫对有害力的机械敏感性。首先,我们解释如何构建和校准可定制的冯·弗里细丝,这些细丝可用于传递具有确定力或压力的可重复刺激。接下来,我们描述如何对三龄幼虫进行机械伤害感受测定。通过比较感兴趣的基因型的反应,该测定法可用于研究机械伤害感受的分子、细胞和回路机制。在分子水平上,先前的研究已经确定了感觉离子通道的重要性,如扒手/巴尔博亚(Pickpocket/Balboa)、压电蛋白(Piezo)、果蝇瞬时受体电位阳离子通道A1(dTRPA1)和无痛蛋白(Painless)。在细胞水平上,IV类多树突分支(md-da)神经元是外周系统的主要机械伤害感受器神经元,但已发现III类和II类md-da神经元也发挥作用。在回路水平上,研究表明机械伤害感受依赖于腹神经节的中间神经元,这些中间神经元整合来自这些不同md-da神经元类别的输入。

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