Department of Biotechnology, BOKU - University of Natural Resources and Life Sciences, Muthgasse 18, 1190 Vienna, Austria.
Austrian Centre of Industrial Biotechnology, Muthgasse 11, 1190 Vienna, Austria.
FEMS Yeast Res. 2017 Nov 1;17(7). doi: 10.1093/femsyr/fox068.
The methylotrophic yeast Pichia pastoris (syn. Komagataella spp.) is one of the most important production systems for heterologous proteins. After the first genome sequences were published in 2009, tremendous effort was made to establish systems-level analytical methods. Methylotrophic lifestyle was one of the most thoroughly investigated topics, studied at the levels of transcriptome, proteome and metabolic flux. Also the responses of P. pastoris to environmental stress conditions experienced during high cell density production processes were studied. Metabolomics and flux analysis revealed the plasticity of the cellular metabolism in its adaption to the production of foreign proteins and served as blueprints for subsequent cell engineering and/or process design. The transcriptional response elicited by overexpression of heterologous proteins seems to depend on the nature and complexity of the recombinant product. Based on these data, novel targets for strain engineering could be deduced from transcriptomics and proteomics data mining and effectively enhanced protein secretion. Transcriptional regulation data also served as a valuable resource to identify novel promoters with the desired regulatory characteristics. This review aims to provide a comprehensive overview of systems biology applications in P. pastoris ranging from increased understanding of cell physiology to improving recombinant protein production in this cell factory.
甲醇营养型酵母巴斯德毕赤酵母(又名:Komagataella 属)是用于异源蛋白生产的最重要的表达系统之一。在 2009 年首次公布基因组序列后,人们投入了巨大的努力来建立系统分析方法。甲醇营养型生活方式是研究最多的课题之一,从转录组、蛋白质组和代谢通量等层面进行了研究。同时,还研究了巴斯德毕赤酵母对高密度细胞培养过程中遇到的环境胁迫条件的反应。代谢组学和通量分析揭示了细胞代谢在适应异源蛋白生产时的可塑性,为后续的细胞工程和/或工艺设计提供了蓝图。过量表达异源蛋白所引起的转录反应似乎取决于重组产物的性质和复杂性。基于这些数据,可以从转录组学和蛋白质组学数据挖掘中推导出用于菌株工程的新靶点,从而有效地提高蛋白分泌。转录调控数据还可用作识别具有所需调控特性的新型启动子的宝贵资源。本文综述了系统生物学在毕赤酵母中的应用,从加深对细胞生理学的理解到提高该细胞工厂的重组蛋白生产效率,涵盖了多个方面。