首页> 美国卫生研究院文献>G3: GenesGenomesGenetics >Identification of a Classical Mutant in the Industrial Host Aspergillus niger by Systems Genetics: LaeA Is Required for Citric Acid Production and Regulates the Formation of Some Secondary Metabolites
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Identification of a Classical Mutant in the Industrial Host Aspergillus niger by Systems Genetics: LaeA Is Required for Citric Acid Production and Regulates the Formation of Some Secondary Metabolites

机译:通过系统遗传学鉴定工业宿主黑曲霉中的经典突变体:柠檬酸生产需要LaeA并调节某些次生代谢产物的形成

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摘要

The asexual filamentous fungus Aspergillus niger is an important industrial cell factory for citric acid production. In this study, we genetically characterized a UV-generated A. niger mutant that was originally isolated as a nonacidifying mutant, which is a desirable trait for industrial enzyme production. Physiological analysis showed that this mutant did not secrete large amounts of citric acid and oxalic acid, thus explaining the nonacidifying phenotype. As traditional complementation approaches to characterize the mutant genotype were unsuccessful, we used bulk segregant analysis in combination with high-throughput genome sequencing to identify the mutation responsible for the nonacidifying phenotype. Since A. niger has no sexual cycle, parasexual genetics was used to generate haploid segregants derived from diploids by loss of whole chromosomes. We found that the nonacidifying phenotype was caused by a point mutation in the laeA gene. LaeA encodes a putative methyltransferase-domain protein, which we show here to be required for citric acid production in an A. niger lab strain (N402) and in other citric acid production strains. The unexpected link between LaeA and citric acid production could provide new insights into the transcriptional control mechanisms related to citric acid production in A. niger. Interestingly, the secondary metabolite profile of a ΔlaeA strain differed from the wild-type strain, showing both decreased and increased metabolite levels, indicating that LaeA is also involved in regulating the production of secondary metabolites. Finally, we show that our systems genetics approach is a powerful tool to identify trait mutations.
机译:无性丝状真菌黑曲霉是柠檬酸生产的重要工业细胞工厂。在这项研究中,我们从遗传上表征了紫外线产生的黑曲霉突变体,该突变体最初作为非酸化突变体被分离出来,这是工业酶生产的理想特性。生理分析表明,该突变体不分泌大量柠檬酸和草酸,从而解释了非酸化表型。由于传统的互补方法无法表征突变基因型,因此我们将大量分离子分析与高通量基因组测序结合使用,以鉴定引起非酸化表型的突变。由于黑曲霉没有性周期,因此,通过全性染色体丢失,使用了双性恋遗传学来产生源自二倍体的单倍体分离子。我们发现非酸化表型是由laeA基因中的点突变引起的。 LaeA编码一个假定的甲基转移酶结构域蛋白,在这里我们证明它是黑曲霉实验室菌株(N402)和其他柠檬酸生产菌株中柠檬酸生产所必需的。 LaeA和柠檬酸生产之间的意想不到的联系可能会提供与黑曲霉柠檬酸生产相关的转录控制机制的新见解。有趣的是,ΔlaeA菌株的次级代谢产物谱与野生型菌株不同,显示出代谢产物水平降低和升高,表明LaeA也参与调节次级代谢产物的产生。最后,我们证明了我们的系统遗传学方法是识别性状突变的有力工具。

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