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使用一种经过改进的微流控嗅觉芯片对雄性秀丽隐杆线虫头部神经元中响应信息素的神经元活动进行成像。

Using an Adapted Microfluidic Olfactory Chip for the Imaging of Neuronal Activity in Response to Pheromones in Male C. Elegans Head Neurons.

作者信息

Reilly Douglas K, Lawler Daniel E, Albrecht Dirk R, Srinivasan Jagan

机构信息

Department of Biology and Biotechnology, Worcester Polytechnic Institute.

Department of Biomedical Engineering, Worcester Polytechnic Institute.

出版信息

J Vis Exp. 2017 Sep 7(127):56026. doi: 10.3791/56026.

Abstract

The use of calcium indicators has greatly enhanced our understanding of neural dynamics and regulation. The nematode Caenorhabditis elegans, with its completely mapped nervous system and transparent anatomy, presents an ideal model for understanding real-time neural dynamics using calcium indicators. In combination with microfluidic technologies and experimental designs, calcium-imaging studies using these indicators are performed in both free-moving and trapped animals. However, most previous studies utilizing trapping devices, such as the olfactory chip described in Chronis et al., have devices designed for use in the more common hermaphrodite, as the less common male is both morphologically and structurally dissimilar. An adapted olfactory chip was designed and fabricated for increased efficiency in male neuronal imaging with using young adult animals. A turn was incorporated into the worm loading port to rotate the animals and to allow for the separation of the individual neurons within a bilateral pair in 2D imaging. Worms are exposed to a controlled flow of odorant within the microfluidic device, as described in previous hermaphrodite studies. Calcium transients are then analyzed using the open-source software ImageJ. The procedure described herein should allow for an increased amount of male-based C. elegans calcium imaging studies, deepening our understanding of the mechanisms of sex-specific neuronal signaling.

摘要

钙指示剂的使用极大地增进了我们对神经动力学和调节的理解。线虫秀丽隐杆线虫具有完全绘制的神经系统和透明的解剖结构,是使用钙指示剂理解实时神经动力学的理想模型。结合微流控技术和实验设计,使用这些指示剂的钙成像研究在自由移动和被困动物中均有进行。然而,以前大多数使用捕获装置(如Chronis等人描述的嗅觉芯片)的研究,其设计的装置适用于更常见的雌雄同体,因为不太常见的雄性在形态和结构上都有所不同。为提高对年轻成年雄性动物神经元成像的效率,设计并制造了一种改良的嗅觉芯片。在蠕虫装载端口中加入了一个转弯结构,用于旋转动物,并在二维成像中分离双侧配对中的单个神经元。如之前对雌雄同体的研究所描述的那样,蠕虫在微流控装置中暴露于受控的气味流中。然后使用开源软件ImageJ分析钙瞬变。本文所述的程序应能增加基于雄性秀丽隐杆线虫的钙成像研究数量,加深我们对性别特异性神经元信号传导机制的理解。

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