Institute of Physiology, Medical Faculty, Otto-von-Guericke-University, Magdeburg, Germany.
Pflugers Arch. 2013 Nov;465(11):1637-49. doi: 10.1007/s00424-013-1304-2. Epub 2013 Jun 9.
Genetic modifications and pharmacological studies enable the analysis of protein function in living cells. While many of these studies investigate the effect of proteins by bulk administration or withdrawal of the protein in complex cellular networks, understanding the more subtle mechanisms of protein function requires fine-tuned changes on a single-cell level without affecting the balance of the system. In order to analyse the consequences of protein modification at the single-cell level, we have developed a single-cell transfection method in the loose patch configuration, which allows juxtacellular recordings of neuronal cells prior to juxtacellular transfection. CA1 pyramidal neurons were selected based on morphological and electrophysiological criteria. Using a patch clamp amplifier which allows sensitive recordings of action currents in the loose seal mode as well as electroporation with high-voltage electrical stimulation the identified neurons were transfected with a combination of specific nucleotides, e.g. siRNA and a plasmid coding for GFP for later cell retrieval. Two days after transfection, whole-cell patch clamp recordings of transfected cells were performed to analyse electrophysiological properties. Action potential firing and synaptic transmission of single electroporated CA1 pyramidal cells were comparable to untransfected cells. Our study presents a method which enables identification of neurons by juxtacellular recording prior to single-cell juxtacellular transfection, allowing subsequent analysis of morphological and electrophysiological parameters several days after the genetic modification.
遗传修饰和药理学研究使我们能够在活细胞中分析蛋白质的功能。虽然这些研究中的许多研究通过批量给药或在复杂的细胞网络中撤回蛋白质来研究蛋白质的作用,但要了解蛋白质功能的更微妙机制,则需要在不影响系统平衡的情况下,在单细胞水平上进行精细的调整。为了在单细胞水平上分析蛋白质修饰的后果,我们开发了一种在松散斑块配置中的单细胞转染方法,该方法允许在进行细胞外转染之前对神经元细胞进行细胞外记录。根据形态和电生理标准选择 CA1 锥体神经元。使用允许在松散密封模式下对动作电流进行灵敏记录以及使用高压电刺激进行电穿孔的膜片钳放大器,将特定核苷酸(例如 siRNA)和编码 GFP 的质粒组合转染到已鉴定的神经元中,以便以后回收细胞。转染后两天,进行转染细胞的全细胞膜片钳记录,以分析电生理特性。单个电转染的 CA1 锥体神经元的动作电位发放和突触传递与未转染的细胞相当。我们的研究提出了一种方法,该方法可以通过细胞外记录在单细胞细胞外转染之前识别神经元,从而可以在遗传修饰后的几天内对形态和电生理参数进行后续分析。