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WEclMon——一种简单且强大的基于摄像头的系统,用于在光遗传学操作和自然条件下监测果蝇羽化。

WEclMon - A simple and robust camera-based system to monitor Drosophila eclosion under optogenetic manipulation and natural conditions.

作者信息

Ruf Franziska, Fraunholz Martin, Öchsner Konrad, Kaderschabek Johann, Wegener Christian

机构信息

Neurobiology and Genetics, Theodor-Boveri-Institute, Biocenter, University of Würzburg, Am Hubland, Würzburg, Germany.

Microbiology, Theodor-Boveri-Institute, Biocenter, University of Würzburg, Am Hubland, Würzburg, Germany.

出版信息

PLoS One. 2017 Jun 28;12(6):e0180238. doi: 10.1371/journal.pone.0180238. eCollection 2017.

Abstract

Eclosion in flies and other insects is a circadian-gated behaviour under control of a central and a peripheral clock. It is not influenced by the motivational state of an animal, and thus presents an ideal paradigm to study the relation and signalling pathways between central and peripheral clocks, and downstream peptidergic regulatory systems. Little is known, however, about eclosion rhythmicity under natural conditions, and research into this direction is hampered by the physically closed design of current eclosion monitoring systems. We describe a novel open eclosion monitoring system (WEclMon) that allows the puparia to come into direct contact with light, temperature and humidity. We demonstrate that the system can be used both in the laboratory and outdoors, and shows a performance similar to commercial closed funnel-type monitors. Data analysis is semi-automated based on a macro toolset for the open imaging software Fiji. Due to its open design, the WEclMon is also well suited for optogenetic experiments. A small screen to identify putative neuroendocrine signals mediating time from the central clock to initiate eclosion showed that optogenetic activation of ETH-, EH and myosuppressin neurons can induce precocious eclosion. Genetic ablation of myosuppressin-expressing neurons did, however, not affect eclosion rhythmicity.

摘要

果蝇及其他昆虫的羽化是一种受中枢和外周生物钟控制的昼夜节律行为。它不受动物动机状态的影响,因此是研究中枢和外周生物钟之间的关系及信号通路,以及下游肽能调节系统的理想范例。然而,对于自然条件下的羽化节律,人们知之甚少,目前的羽化监测系统的物理封闭设计阻碍了这一方向的研究。我们描述了一种新型的开放式羽化监测系统(WEclMon),该系统能使蛹直接接触光照、温度和湿度。我们证明该系统可在实验室和户外使用,并且其性能与商业封闭式漏斗型监测器相似。基于用于开源成像软件Fiji的宏工具集,数据分析实现了半自动化。由于其开放式设计,WEclMon也非常适合光遗传学实验。一个用于识别介导从中枢生物钟到启动羽化时间的假定神经内分泌信号的小筛选实验表明,对ETH、EH和肌抑制素神经元的光遗传学激活可诱导早熟羽化。然而,对表达肌抑制素的神经元进行基因消融并不影响羽化节律。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bda2/5489222/72ecbbd156ca/pone.0180238.g001.jpg

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