秀丽隐杆线虫急性热回避和适应的高通量分析系统。

Journal of biological methods Pub Date : 2020-03-17 eCollection Date: 2020-01-01 DOI:10.14440/jbm.2020.324
Andrei-Stefan Lia, Dominique A Glauser
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引用次数: 3

摘要

伤害感觉及其可塑性是控制动物适应性行为反应的重要生物过程。这些过程也与人类不同的疼痛状况有关,并受到了相当大的关注,特别是通过啮齿动物模型研究和使用热诱发戒断行为分析作为不愉快经历的读数。最近,无脊椎动物也作为有用的补充模型出现,它们有自己的一套优势,包括它们对基因操作的适应性,它们的神经系统的可及性和相对简单性,以及与动物痛苦有关的伦理问题。像人类一样,秀丽隐杆线虫(秀丽隐杆线虫)可以探测到有害的热量,并产生回避反应,如逆转。在这里,我们提出了一种适合于秀丽隐杆线虫热诱发逆转和适应重复刺激的高通量分析方法。我们推出了两个平台:INFERNO(用于红外诱发反转分析平台),允许在含有大量种群(> 100只动物)的培养皿中量化热敏性,以及ThermINATOR(用于热适应多路感应平台),允许同时大规模适应多达18个蠕虫种群。我们表明,野生型动物在对重复的有害热脉冲的反应中逐渐脱敏。此外,通过分析突变动物的表型,我们发现基线敏感性和适应机制分别是由遗传上可分离的分子途径支持的。综上所述,该方法能够对秀丽隐杆线虫的热回避进行高通量评估,并将有助于加速该无脊椎动物模型在该领域的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A system for the high-throughput analysis of acute thermal avoidance and adaptation in <i>C. elegans</i>.

A system for the high-throughput analysis of acute thermal avoidance and adaptation in <i>C. elegans</i>.

A system for the high-throughput analysis of acute thermal avoidance and adaptation in <i>C. elegans</i>.

A system for the high-throughput analysis of acute thermal avoidance and adaptation in C. elegans.

Nociception and its plasticity are essential biological processes controlling adaptive behavioral responses in animals. These processes are also linked to different pain conditions in human and have received considerable attention, notably via studies in rodent models and the use of heat-evoked withdrawal behavior assays as a readout of unpleasant experience. More recently, invertebrates have also emerged as useful complementary models, with their own set of advantages, including their amenability to genetic manipulations, the accessibility and relative simplicity of their nervous system and ethical concerns linked to animal suffering. Like humans, the nematode Caenorhabditis elegans (C. elegans) can detect noxious heat and produce avoidance responses such as reversals. Here, we present a methodology suitable for the high-throughput analysis of C. elegans heat-evoked reversals and the adaptation to repeated stimuli. We introduce two platforms: the INFERNO (for infrared-evoked reversal analysis platform), allowing the quantification of the thermal sensitivity in a petri dish containing a large population (> 100 animals), and the ThermINATOR (for thermal adaptation multiplexed induction platform), allowing the mass-adaptation of up to 18 worm populations at the same time. We show that wild type animals progressively desensitize in response to repeated noxious heat pulses. Furthermore, analyzing the phenotype of mutant animals, we show that the mechanisms underlying baseline sensitivity and adaptation, respectively, are supported by genetically separable molecular pathways. In conclusion, the presented method enables the high-throughput evaluation of thermal avoidance in C. elegans and will contribute to accelerate studies in the field with this invertebrate model.

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