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胞质ATP:柠檬酸裂解酶的基因缺失导致黑曲霉中有机酸产量的改变。

Gene deletion of cytosolic ATP: citrate lyase leads to altered organic acid production in Aspergillus niger.

作者信息

Meijer Susan, Nielsen Michael Lynge, Olsson Lisbeth, Nielsen Jens

机构信息

Department for Systems Biology, Center for Microbial Biotechnology, Technical University of Denmark, Building 223, 2800 Lyngby, Denmark.

出版信息

J Ind Microbiol Biotechnol. 2009 Oct;36(10):1275-80. doi: 10.1007/s10295-009-0607-y. Epub 2009 Jun 25.

Abstract

With the availability of the genome sequence of the filamentous fungus Aspergillus niger, the use of targeted genetic modifications has become feasible. This, together with the fact that A. niger is well established industrially, makes this fungus an attractive micro-organism for creating a cell factory platform for production of chemicals. Using molecular biology techniques, this study focused on metabolic engineering of A. niger to manipulate its organic acid production in the direction of succinic acid. The gene target for complete gene deletion was cytosolic ATP: citrate lyase (acl), which had previously been identified by using genome-scale stoichiometric metabolic model simulations. The acl gene was deleted using the bipartite gene-targeting method, and the mutant was characterized in batch cultivation. It was found that the succinic acid yield was increased threefold by deleting the acl gene. Additionally, the total amount of organic acids produced in the deletion strain was significantly increased. Genome-scale stoichiometric metabolic model predictions can be used for identifying gene targets. Deletion of the acl led to increased succinic acid production by A. niger.

摘要

随着丝状真菌黑曲霉基因组序列的可得,进行靶向基因改造已变得可行。这一点,再加上黑曲霉在工业上已得到充分确立,使得这种真菌成为创建用于化学品生产的细胞工厂平台的有吸引力的微生物。利用分子生物学技术,本研究聚焦于黑曲霉的代谢工程,以操控其朝着琥珀酸方向生产有机酸。用于完全基因缺失的基因靶点是胞质ATP:柠檬酸裂解酶(acl),此前已通过使用基因组规模的化学计量代谢模型模拟鉴定出来。使用双元基因靶向方法删除了acl基因,并在分批培养中对突变体进行了表征。发现通过删除acl基因,琥珀酸产量提高了三倍。此外,缺失菌株中产生的有机酸总量显著增加。基因组规模的化学计量代谢模型预测可用于识别基因靶点。删除acl导致黑曲霉琥珀酸产量增加。

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