CreA is directly involved in pullulan biosynthesis and regulation of Aureobasidium melanogenum P16

被引:0
作者
Qin-Qing Wang
Yi Lu
Zi-Yan Ren
Zhe Chi
Guang-Lei Liu
Zhen-Ming Chi
机构
[1] Ocean University of China,College of Marine Life Sciences
来源
Current Genetics | 2017年 / 63卷
关键词
Glucose repression; CreA; Pullulan biosynthesis; Gene disruption;
D O I
暂无
中图分类号
学科分类号
摘要
Aureobasidium melanogenum P16 is a high pullulan-producing yeast. However, glucose repression on its pullulan biosynthesis must be relieved. After the gene encoding a glucose repressor was cloned, characterized and analyzed, it was found that the repressor belonged to one member of the CreA in filamentous fungi, not to one member of the Mig1 in yeasts. After the CREA gene was fully removed from the yeast strain P16, the glucose repression in the disruptant DG41 was relieved. At the same time, the pullulan production by the disruptant DG41 was enhanced compared to that by its wild-type strain P16, and the transcriptional levels of the gene encoding a glucosyltransferase, three genes encoding glucose transporters, the gene encoding a 6-P-glucose kinase and the genes encoding α-amylase, glucoamylase and pullulanase in the disruptant DG41 were also promoted. However, the transcriptional levels of the genes encoding the CreA and another two glucose transporters were greatly reduced. During the 10-liter fermentation, the disruptant DG41 produced 64.93 ± 1.33 g/l pullulan from 120 g/l of glucose, while its wild-type strain P16 produced only 52.0 ± 1.95 g/l pullulan within 132 h. After the CREA gene was complemented in the disruptant D373, the pullulan production by the transformant BC4 was greatly reduced compared to that by its wild-type strain P16, and the transcriptional levels of the many genes in the transformant BC4 were also decreased. All the results confirmed that the CreA played an important role in the regulation of pullulan biosynthesis in A. melanogenum P16, and that glucose derepression on pullulan biosynthesis could improve pullulan production from glucose. This study opened the possibility for improving the industrial production of this exopolysaccharide by genetic engineering.
引用
收藏
页码:471 / 485
页数:14
相关论文
共 146 条
[31]  
Liu GL(2008)Single nucleotide polymorphism analysis of a BMC Genom 9 601-934
[32]  
Zhang T(2012) hypercellulolytic mutant developed in Japan Carbohydr Polym 89 928-326
[33]  
Chi Z(2000)Glucose- and nitrogen sensing and regulatory mechanisms in J Bacteriol 182 320-249
[34]  
Wang XX(2013)Amylolytic enzymes produced by a color variant strain of Extremophiles 17 241-116
[35]  
Ma ZC(2008)Production of high molecular weight pullulan by Fung Genet Biol 45 103-undefined
[36]  
Buzdar MA(undefined) HP-2001 with soybean pomace as a nitrogen source undefined undefined undefined-undefined
[37]  
Chi ZM(undefined)Mechanism study of Tween 80 enhancing the pullulan production by undefined undefined undefined-undefined
[38]  
Choudhury AR(undefined)Analysis of sugars found in glycoproteins undefined undefined undefined-undefined
[39]  
Saluja P(undefined)Isolation of the undefined undefined undefined-undefined
[40]  
Prasad GS(undefined) gene from the cellulolytic fungus undefined undefined undefined-undefined