Klammt Christian, Löhr Frank, Schäfer Birgit, Haase Winfried, Dötsch Volker, Rüterjans Heinz, Glaubitz Clemens, Bernhard Frank
Centre for Biomolecular Magnetic Resonance, University of Frankfurt/Main, Institute for Biophysical Chemistry, Frankfurt/Main, Germany.
Eur J Biochem. 2004 Feb;271(3):568-80. doi: 10.1111/j.1432-1033.2003.03959.x.
We demonstrate the high level expression of integral membrane proteins (IMPs) in a cell-free coupled transcription/translation system using a modified Escherichia coli S30 extract preparation and an optimized protocol. The expression of the E. coli small multidrug transporters EmrE and SugE containing four transmembrane segments (TMS), the multidrug transporter TehA with 10 putative TMS, and the cysteine transporter YfiK with six putative TMS, were analysed. All IMPs were produced at high levels yielding up to 2.7 mg of protein per mL of reaction volume. Whilst the vast majority of the synthesized IMPs were precipitated in the reaction mixture, the expression of a fluorescent EmrE-sgGFP fusion construct showed evidence that a small part of the synthesized protein 'remained soluble and this amount could be significantly increased by the addition of E. coli lipids into the cell-free reaction. Alternatively, the majority of the precipitated IMPs could be solubilized in detergent micelles, and modifications to the solubilization procedures yielded proteins that were almost pure. The folding induced by formation of the proposed alpha-helical secondary structures of the IMPs after solubilization in various micelles was monitored by CD spectroscopy. Furthermore, the reconstitution of EmrE, SugE and TehA into proteoliposomes was demonstrated by freeze-fracture electron microscopy, and the function of EmrE was additionally analysed by the specific transport of ethidium. The cell-free expression technique allowed efficient amino acid specific labeling of the IMPs with 15N isotopes, and the recording of solution NMR spectra of the solubilized EmrE, SugE and YfiK proteins further indicated a correctly folded conformation of the proteins.
我们使用改良的大肠杆菌S30提取物制备方法和优化方案,在无细胞偶联转录/翻译系统中展示了整合膜蛋白(IMPs)的高水平表达。分析了含有四个跨膜区段(TMS)的大肠杆菌小多药转运蛋白EmrE和SugE、具有10个推定TMS的多药转运蛋白TehA以及具有6个推定TMS的半胱氨酸转运蛋白YfiK的表达。所有IMPs均高水平产生,每毫升反应体积产生高达2.7毫克蛋白质。虽然绝大多数合成的IMPs在反应混合物中沉淀,但荧光EmrE-sgGFP融合构建体的表达表明,一小部分合成蛋白“保持可溶”,并且通过向无细胞反应中添加大肠杆菌脂质,这一数量可显著增加。另外,大多数沉淀的IMPs可在去污剂胶束中溶解,并且对溶解程序的修改产生了几乎纯的蛋白质。通过圆二色光谱监测在各种胶束中溶解后IMPs的拟议α-螺旋二级结构形成所诱导的折叠。此外,通过冷冻断裂电子显微镜证明了EmrE、SugE和TehA重构入蛋白脂质体,并且通过乙锭的特异性转运额外分析了EmrE的功能。无细胞表达技术允许用15N同位素对IMPs进行高效的氨基酸特异性标记,并且对溶解的EmrE、SugE和YfiK蛋白的溶液核磁共振谱的记录进一步表明了蛋白质的正确折叠构象。