Fontaine Romain, Hodne Kjetil, Weltzien Finn-Arne
Department of Basic Sciences and Aquatic Medicine, Faculty of Veterinary Medicine, Norwegian University of Life Sciences.
Department of Basic Sciences and Aquatic Medicine, Faculty of Veterinary Medicine, Norwegian University of Life Sciences;
J Vis Exp. 2018 Aug 16(138):57790. doi: 10.3791/57790.
Electrophysiological investigations of pituitary cells have been conducted in numerous vertebrate species, but very few in teleost fish. Among these, the clear majority have been performed on dissociated primary cells. To improve our understanding of how teleost pituitary cells, behave in a more biologically relevant environment, this protocol shows how to prepare viable brain-pituitary slices using the small freshwater fish medaka (Oryzias latipes). Making the brain-pituitary slices, pH and osmolality of all solutions were adjusted to values found in body fluids of freshwater fish living at 25 to 28 °C. Following slice preparation, the protocol demonstrates how to conduct electrophysiological recordings using the perforated whole-cell patch-clamp technique. The patch-clamp technique is a powerful tool with unprecedented temporal resolution and sensitivity, allowing investigation of electrical properties from intact whole cells down to single ion channels. Perforated patch is unique in that it keeps the intracellular environment intact preventing regulatory elements in the cytosol from being diluted by the patch pipette electrode solution. In contrast, when performing traditional whole-cell recordings, it was observed that medaka pituitary cells quickly lose their ability to fire action potentials. Among the various perforation techniques available, this protocol demonstrates how to achieve perforation of the patched membrane using the fungicide Amphotericin B.
人们已在众多脊椎动物物种中对垂体细胞进行了电生理研究,但在硬骨鱼中开展的研究却非常少。其中,绝大多数研究是在解离的原代细胞上进行的。为了更好地了解硬骨鱼垂体细胞在更具生物学相关性的环境中的行为,本方案展示了如何使用小型淡水鱼青鳉(Oryzias latipes)制备有活力的脑垂体切片。制备脑垂体切片时,将所有溶液的pH值和渗透压调整至生活在25至28°C的淡水鱼体液中的值。切片制备完成后,本方案展示了如何使用穿孔全细胞膜片钳技术进行电生理记录。膜片钳技术是一种强大的工具,具有前所未有的时间分辨率和灵敏度,能够研究从完整的全细胞到单个离子通道的电学特性。穿孔膜片的独特之处在于它能保持细胞内环境完整,防止胞质溶胶中的调节元件被膜片移液器电极溶液稀释。相比之下,在进行传统的全细胞记录时,观察到青鳉垂体细胞很快就会失去产生动作电位的能力。在现有的各种穿孔技术中,本方案展示了如何使用杀真菌剂两性霉素B实现对膜片的穿孔。