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首页> 外文期刊>Journal of Neuroscience Methods >A novel control software that improves the experimental workflow of scanning photostimulation experiments.
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A novel control software that improves the experimental workflow of scanning photostimulation experiments.

机译:一种新颖的控制软件,可改善扫描光刺激实验的实验工作流程。

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摘要

Optical uncaging of caged compounds is a well-established method to study the functional anatomy of a brain region on the circuit level. We present an alternative approach to existing experimental setups. Using a low-magnification objective we acquire images for planning the spatial patterns of stimulation. Then high-magnification objectives are used during laser stimulation providing a laser spot between 2 microm and 20 microm size. The core of this system is a video-based control software that monitors and controls the connected devices, allows for planning of the experiment, coordinates the stimulation process and manages automatic data storage. This combines a high-resolution analysis of neuronal circuits with flexible and efficient online planning and execution of a grid of spatial stimulation patterns on a larger scale. The software offers special optical features that enable the system to achieve a maximum degree of spatial reliability. The hardware is mainly built upon standard laboratory devices and thus ideally suited to cost-effectively complement existing electrophysiological setups with a minimal amount of additional equipment. Finally, we demonstrate the performance of the system by mapping the excitatory and inhibitory connections of entorhinal cortex layer II stellate neurons and present an approach for the analysis of photo-induced synaptic responses in high spontaneous activity.
机译:笼状化合物的光学解开是在电路水平上研究大脑区域功能解剖的公认方法。我们为现有的实验装置提供了一种替代方法。使用低放大倍率的物镜,我们获取图像以计划刺激的空间模式。然后,在激光刺激过程中使用高放大倍率的物镜,提供2微米至20微米大小的激光点。该系统的核心是基于视频的控制软件,该软件监视和控制连接的设备,允许进行实验计划,协调刺激过程并管理自动数据存储。这将神经回路的高分辨率分析与灵活有效的在线计划以及更大范围内执行的空间刺激模式网格相结合。该软件提供特殊的光学功能,使系统能够实现最大程度的空间可靠性。硬件主要建立在标准实验室设备上,因此非常适合以最少的附加设备经济有效地补充现有的电生理设置。最后,我们通过映射内嗅皮层II星状神经元的兴奋性和抑制性连接来证明系统的性能,并提出了一种用于分析高自发性活动中光诱导突触反应的方法。

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