Max Planck Institute for Biological Intelligence, Martinsried, Germany.
Gottfried Schatz Research Center, Molecular Biology and Biochemistry, Medical University of Graz, Graz, Austria.
PLoS One. 2024 Apr 18;19(4):e0301999. doi: 10.1371/journal.pone.0301999. eCollection 2024.
To study how the nervous system processes visual information, experimenters must record neural activity while delivering visual stimuli in a controlled fashion. In animals with a nearly panoramic field of view, such as flies, precise stimulation of the entire visual field is challenging. We describe a projector-based device for stimulation of the insect visual system under a microscope. The device is based on a bowl-shaped screen that provides a wide and nearly distortion-free field of view. It is compact, cheap, easy to assemble, and easy to operate using the included open-source software for stimulus generation. We validate the virtual reality system technically and demonstrate its capabilities in a series of experiments at two levels: the cellular, by measuring the membrane potential responses of visual interneurons; and the organismal, by recording optomotor and fixation behavior of Drosophila melanogaster in tethered flight. Our experiments reveal the importance of stimulating the visual system of an insect with a wide field of view, and we provide a simple solution to do so.
为了研究神经系统如何处理视觉信息,实验人员必须在以可控方式呈现视觉刺激的同时记录神经活动。在具有近乎全景视野的动物(如苍蝇)中,精确刺激整个视野极具挑战性。我们描述了一种基于投影仪的显微镜下昆虫视觉系统刺激设备。该设备基于一个碗形屏幕,提供了宽阔且几乎无失真的视野。它体积小巧、价格便宜、易于组装,并且使用随附的开源刺激生成软件操作也很简单。我们从技术上验证了虚拟现实系统,并在两个层面的一系列实验中展示了其功能:通过测量视觉中间神经元的膜电位反应,实现细胞水平的验证;通过记录在系绳飞行中的黑腹果蝇的光转导和固定行为,实现机体水平的验证。我们的实验揭示了用宽视野刺激昆虫视觉系统的重要性,并提供了一种简单的解决方案。