Berlin University of Technology, Institute of Biotechnology, Department of Applied and Molecular Microbiology, Gustav-Meyer-Allee 25, 13355 Berlin, Germany.
Appl Environ Microbiol. 2011 May;77(9):2975-83. doi: 10.1128/AEM.02740-10. Epub 2011 Mar 4.
Filamentous fungi are the cause of serious human and plant diseases but are also exploited in biotechnology as production platforms. Comparative genomics has documented their genetic diversity, and functional genomics and systems biology approaches are under way to understand the functions and interaction of fungal genes and proteins. In these approaches, gene functions are usually inferred from deletion or overexpression mutants. However, studies at these extreme points give only limited information. Moreover, many overexpression studies use metabolism-dependent promoters, often causing pleiotropic effects and thus limitations in their significance. We therefore established and systematically evaluated a tunable expression system for Aspergillus niger that is independent of carbon and nitrogen metabolism and silent under noninduced conditions. The system consists of two expression modules jointly targeted to a defined genomic locus. One module ensures constitutive expression of the tetracycline-dependent transactivator rtTA2(S)-M2, and one module harbors the rtTA2(S)-M2-dependent promoter that controls expression of the gene of interest (the Tet-on system). We show here that the system is tight, responds within minutes after inducer addition, and allows fine-tuning based on the inducer concentration or gene copy number up to expression levels higher than the expression levels of the gpdA promoter. We also validate the Tet-on system for the generation of conditional overexpression mutants and demonstrate its power when combined with a gene deletion approach. Finally, we show that the system is especially suitable when the functions of essential genes must be examined.
丝状真菌是人类和植物严重疾病的病原体,但也被用于生物技术作为生产平台。比较基因组学记录了它们的遗传多样性,功能基因组学和系统生物学方法正在进行中,以了解真菌基因和蛋白质的功能和相互作用。在这些方法中,基因功能通常是通过缺失或过表达突变体推断出来的。然而,在这些极端条件下的研究只能提供有限的信息。此外,许多过表达研究使用依赖代谢的启动子,这常常导致多效性效应,从而限制了它们的意义。因此,我们建立并系统地评估了一种独立于碳氮代谢且在非诱导条件下沉默的黑曲霉可调表达系统。该系统由两个共同靶向特定基因组位点的表达模块组成。一个模块确保四环素依赖性转录激活子 rtTA2(S)-M2 的组成型表达,另一个模块包含 rtTA2(S)-M2 依赖性启动子,该启动子控制感兴趣基因的表达(Tet-on 系统)。我们在这里表明,该系统是紧密的,在诱导剂添加后几分钟内响应,并可以根据诱导剂浓度或基因拷贝数进行微调,最高可达比 gpdA 启动子表达水平更高的表达水平。我们还验证了 Tet-on 系统用于生成条件过表达突变体,并展示了它与基因缺失方法结合时的强大功能。最后,我们表明,当必须检查必需基因的功能时,该系统特别适用。