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Purification and functional comparison of nine human Aquaporins produced in Saccharomyces cerevisiae for the purpose of biophysical characterization

机译:酿酒酵母生产的九种人类水通道蛋白的纯化和功能比较用于生物物理表征

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摘要

The sparse number of high-resolution human membrane protein structures severely restricts our comprehension of molecular physiology and ability to exploit rational drug design. In the search for a standardized, cheap and easily handled human membrane protein production platform, we thoroughly investigated the capacity of S. cerevisiae to deliver high yields of prime quality human AQPs, focusing on poorly characterized members including some previously shown to be difficult to isolate. Exploiting GFP labeled forms we comprehensively optimized production and purification procedures resulting in satisfactory yields of all nine AQP targets. We applied the obtained knowledge to successfully upscale purification of histidine tagged human AQP10 produced in large bioreactors. Glycosylation analysis revealed that AQP7 and 12 were O-glycosylated, AQP10 was N-glycosylated while the other AQPs were not glycosylated. We furthermore performed functional characterization and found that AQP 2, 6 and 8 allowed flux of water whereas AQP3, 7, 9, 10, 11 and 12 also facilitated a glycerol flux. In conclusion, our S. cerevisiae platform emerges as a powerful tool for isolation of functional, difficult-to-express human membrane proteins suitable for biophysical characterization.
机译:高分辨率的人类膜蛋白结构稀疏,严重限制了我们对分子生理学和利用合理药物设计能力的理解。在寻找标准化,便宜且易于操作的人膜蛋白生产平台时,我们彻底研究了酿酒酵母提供高质量高品质人用AQP的能力,重点是表征较差的成员,包括先前证明难以分离的成员。利用GFP标记的形式,我们全面优化了生产和纯化程序,从而使所有9个AQP靶标的收率均令人满意。我们将获得的知识成功应用于大型生物反应器中生产的组氨酸标签人AQP10的成功大规模纯化。糖基化分析显示,AQP7和12被O-糖基化,AQP10被N-糖基化,而其他AQP没有被糖基化。我们还进行了功能表征,发现AQP 2、6和8允许水通量,而AQP3、7、9、10、11和12也促进了甘油通量。总之,我们的酿酒酵母平台是一种强大的工具,可用于分离功能多样,难以表达的适用于生物物理表征的人膜蛋白。

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