Murthy Mala, Turner Glenn
Cold Spring Harb Protoc. 2013 Feb 1;2013(2):140-8. doi: 10.1101/pdb.prot071704.
Whole-cell patch-clamp recordings provide exceptional access to spiking and synaptic neural activity. This method has been applied to neurons in the central nervous system of Drosophila and allows researchers the opportunity to study the function of their neurons of interest within the context of native circuits in a genetically tractable model system. In this protocol, we describe the technique for in vivo whole-cell patch-clamp recordings in a preparation which exposes neurons in the fly brain. We also offer technical suggestions and discuss some of the challenges encountered in recording from single neurons in the fly brain. Neurons are patched following routine recording protocols for whole-cell patch clamp. At the physiology rig, additional cleaning of the brain is performed to allow easy access to the neurons, and the cells can be filled with a diffusible dye during recordings, to examine the morphology of the recorded cell post hoc. In the electrophysiology rig used for Drosophila patch-clamp recordings, the microscope stage has been removed, so that the recording platform instead rests on a ring stand support that is magnetically fixed to the table. Manipulators and stimulus delivery are also in fixed locations, whereas the microscope sits on an x-y translation stage.
全细胞膜片钳记录为研究神经元的放电活动和突触神经活动提供了绝佳途径。该方法已应用于果蝇中枢神经系统的神经元,使研究人员有机会在一个具有遗传易处理性的模型系统中,在天然神经回路的背景下研究感兴趣的神经元的功能。在本实验方案中,我们描述了在一个暴露果蝇大脑神经元的制备物中进行体内全细胞膜片钳记录的技术。我们还提供了技术建议,并讨论了在果蝇大脑单个神经元记录中遇到的一些挑战。按照全细胞膜片钳的常规记录方案对神经元进行封接。在生理实验台上,对大脑进行额外的清理,以便于接触神经元,并且在记录过程中可以用一种可扩散的染料填充细胞,以便事后检查记录细胞的形态。在用于果蝇膜片钳记录的电生理实验台上,显微镜载物台已被移除,这样记录平台就放置在一个通过磁力固定在实验台上的环形支架上。操纵器和刺激传递装置也处于固定位置,而显微镜则放置在一个xy平移台上。