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酵母毕赤酵母的介电分析和多细胞电融合用于电生理研究。

Dielectric analysis and multi-cell electrofusion of the yeast Pichia pastoris for electrophysiological studies.

机构信息

Department of Biophysical Chemistry, Max-Planck-Institute of Biophysics, Max-von-Laue-Strasse 3, 60438 Frankfurt, Germany.

出版信息

J Membr Biol. 2012 Dec;245(12):815-26. doi: 10.1007/s00232-012-9484-9. Epub 2012 Aug 8.

Abstract

The yeast Pichia pastoris has become the most favored eukaryotic host for heterologous protein expression. P. pastoris strains capable of overexpressing various membrane proteins are now available. Due to their small size and the fungal cell wall, however, P. pastoris cells are hardly suitable for direct electrophysiological studies. To overcome these limitations, the present study aimed to produce giant protoplasts of P. pastoris by means of multi-cell electrofusion. Using a P. pastoris strain expressing channelrhodopsin-2 (ChR2), we first developed an improved enzymatic method for cell wall digestion and preparation of wall-less protoplasts. We thoroughly analyzed the dielectric properties of protoplasts by means of electrorotation and dielectrophoresis. Based on the dielectric data of tiny parental protoplasts (2-4 μm diameter), we elaborated efficient electrofusion conditions yielding consistently stable multinucleated protoplasts of P. pastoris with diameters of up to 35 μm. The giant protoplasts were suitable for electrophysiological measurements, as proved by whole-cell patch clamp recordings of light-induced, ChR2-mediated currents, which was impossible with parental protoplasts. The approach presented here offers a potentially valuable technique for the functional analysis of low-signal channels and transporters, expressed heterologously in P. pastoris and related host systems.

摘要

毕赤酵母已成为异源蛋白表达最受欢迎的真核宿主。现在已经有能够过量表达各种膜蛋白的毕赤酵母菌株。然而,由于其体积小和真菌细胞壁的原因,毕赤酵母细胞几乎不适合直接进行电生理研究。为了克服这些限制,本研究旨在通过多细胞电融合生产毕赤酵母的巨大原生质体。使用表达通道视紫红质-2 (ChR2) 的毕赤酵母菌株,我们首先开发了一种改良的酶法用于细胞壁消化和无壁原生质体制备。我们通过电动旋转和介电泳彻底分析了原生质体的介电特性。基于微小亲本质体(直径 2-4μm)的介电数据,我们精心设计了高效的电融合条件,得到了直径可达 35μm 的稳定多核毕赤酵母原生质体。通过全细胞膜片钳记录光诱导的 ChR2 介导电流,证明了巨大原生质体适用于电生理测量,而亲本质体则无法进行这种测量。本文介绍的方法为在毕赤酵母和相关宿主系统中异源表达的低信号通道和转运体的功能分析提供了一种有潜在价值的技术。

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