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追踪果蝇幼虫对嗅觉神经元光遗传学刺激的行为反应。

Tracking Drosophila Larval Behavior in Response to Optogenetic Stimulation of Olfactory Neurons.

作者信息

Clark David A, Kohler Donovan, Mathis America, Slankster Eryn, Kafle Samipya, Odell Seth R, Mathew Dennis

机构信息

Department of Biology, MS-0314, University of Nevada; Integrated Neuroscience Graduate Program, University of Nevada.

Department of Biology, MS-0314, University of Nevada.

出版信息

J Vis Exp. 2018 Mar 21(133):57353. doi: 10.3791/57353.

Abstract

The ability of insects to navigate toward odor sources is based on the activities of their first-order olfactory receptor neurons (ORNs). While a considerable amount of information has been generated regarding ORN responses to odorants, the role of specific ORNs in driving behavioral responses remains poorly understood. Complications in behavior analyses arise due to different volatilities of odorants that activate individual ORNs, multiple ORNs activated by single odorants, and the difficulty in replicating naturally observed temporal variations in olfactory stimuli using conventional odor-delivery methods in the laboratory. Here, we describe a protocol that analyzes Drosophila larval behavior in response to simultaneous optogenetic stimulation of its ORNs. The optogenetic technology used here allows for specificity of ORN activation and precise control of temporal patterns of ORN activation. Corresponding larval movement is tracked, digitally recorded, and analyzed using custom written software. By replacing odor stimuli with light stimuli, this method allows for a more precise control of individual ORN activation in order to study its impact on larval behavior. Our method could be further extended to study the impact of second-order projection neurons (PNs) as well as local neurons (LNs) on larval behavior. This method will thus enable a comprehensive dissection of olfactory circuit function and complement studies on how olfactory neuron activities translate in to behavior responses.

摘要

昆虫向气味源导航的能力基于其一阶嗅觉受体神经元(ORN)的活动。虽然已经产生了大量关于ORN对气味剂反应的信息,但特定ORN在驱动行为反应中的作用仍知之甚少。行为分析中的复杂情况源于激活单个ORN的气味剂挥发性不同、单一气味剂激活多个ORN,以及在实验室中使用传统气味传递方法难以复制自然观察到的嗅觉刺激的时间变化。在这里,我们描述了一种协议,用于分析果蝇幼虫对其ORN同时进行光遗传学刺激的行为反应。这里使用的光遗传学技术允许ORN激活的特异性和ORN激活时间模式的精确控制。相应的幼虫运动被跟踪、数字记录,并使用自定义编写的软件进行分析。通过用光刺激取代气味刺激,该方法允许对单个ORN激活进行更精确的控制,以研究其对幼虫行为的影响。我们的方法可以进一步扩展,以研究二阶投射神经元(PN)以及局部神经元(LN)对幼虫行为的影响。因此,这种方法将能够全面剖析嗅觉回路功能,并补充关于嗅觉神经元活动如何转化为行为反应的研究。

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本文引用的文献

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Independent optical excitation of distinct neural populations.独立光学激发不同的神经群体。
Nat Methods. 2014 Mar;11(3):338-46. doi: 10.1038/nmeth.2836. Epub 2014 Feb 9.
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Functional diversity among sensory receptors in a Drosophila olfactory circuit.果蝇嗅觉回路中感觉受体的功能多样性。
Proc Natl Acad Sci U S A. 2013 Jun 4;110(23):E2134-43. doi: 10.1073/pnas.1306976110. Epub 2013 May 20.

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