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首页> 外文期刊>Microbial Cell Factories >Evaluation of vector systems and promoters for overexpression of the acarbose biosynthesis gene acbC in Actinoplanes sp. SE50/110
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Evaluation of vector systems and promoters for overexpression of the acarbose biosynthesis gene acbC in Actinoplanes sp. SE50/110

机译:评估载体系统和启动子在放线猕猴桃属中阿卡波糖生物合成基因acbC的过表达。 SE50 / 110

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摘要

Actinoplanes sp. SE50/110 is a natural producer of acarbose. It has been extensively studied in the last decades, which has led to the comprehensive analysis of the whole genome, transcriptome and proteome. First genetic and microbial techniques have been successfully established allowing targeted genome editing by CRISPR/Cas9 and conjugal transfer. Still, a suitable system for the overexpression of singular genes does not exist for Actinoplanes sp. SE50/110. Here, we discuss, test and analyze different strategies by the example of the acarbose biosynthesis gene acbC. The integrative φC31-based vector pSET152 was chosen for the development of an expression system, as for the replicative pSG5-based vector pKC1139 unwanted vector integration by homologous recombination was observed. Since simple gene duplication by pSET152 integration under control of native promoters appeared to be insufficient for overexpression, a promoter screening experiment was carried out. We analyzed promoter strengths of five native and seven heterologous promoters using transcriptional fusion with the gusA gene and glucuronidase assays as well as reverse transcription quantitative PCR (RT-qPCR). Additionally, we mapped transcription starts and identified the promoter sequence motifs by 5′-RNAseq experiments. Promoters with medium to strong expression were included into the pSET152-system, leading to an overexpression of the acbC gene. AcbC catalyzes the first step of acarbose biosynthesis and connects primary to secondary metabolism. By overexpression, the acarbose formation was not enhanced, but slightly reduced in case of strongest overexpression. We assume either disturbance of substrate channeling or a negative feed-back inhibition by one of the intermediates, which accumulates in the acbC-overexpression mutant. According to LC–MS-analysis, we conclude, that this intermediate is valienol-7P. This points to a bottleneck in later steps of acarbose biosynthesis. Development of an overexpression system for Actinoplanes sp. SE50/110 is an important step for future metabolic engineering. This system will help altering transcript amounts of singular genes, that can be used to unclench metabolic bottlenecks and to redirect metabolic resources. Furthermore, an essential tool is provided, that can be transferred to other subspecies of Actinoplanes and industrially relevant derivatives.
机译:放线飞机sp。 SE50 / 110是阿卡波糖的天然生产商。在过去的几十年中,它已被广泛研究,从而导致对整个基因组,转录组和蛋白质组的全面分析。已经成功建立了第一个遗传和微生物技术,允许通过CRISPR / Cas9进行目标基因组编辑和结合转移。但是,对于放线猕猴桃尚不存在用于奇异基因过表达的合适系统。 SE50 / 110。在这里,我们以阿卡波糖生物合成基因acbC为例讨论,测试和分析不同的策略。选择基于整合的基于φC31的载体pSET152来开发表达系统,就像发现基于复制的基于pSG5的载体pKC1139一样,通过同源重组观察到不需要的载体整合。由于在天然启动子的控制下通过pSET152整合进行简单的基因复制似乎不足以进行过表达,因此进行了启动子筛选实验。我们使用与gusA基因的转录融合和葡糖醛酸糖苷酶测定以及逆转录定量PCR(RT-qPCR)分析了五个天然和七个异源启动子的启动子强度。此外,我们绘制了转录起点图,并通过5'-RNAseq实验鉴定了启动子序列基序。 pSET152系统包含具有中等至强表达的启动子,导致acbC基因过表达。 AcbC催化阿卡波糖生物合成的第一步,并将一级代谢与二级代谢联系起来。通过过度表达,阿卡波糖的形成没有增强,但在最强的过度表达的情况下略有减少。我们假设底物通道干扰或中间体之一积聚在acbC过表达突变体中而导致负反馈抑制。根据LC-MS分析,我们得出结论,该中间体为valienol-7P。这指出了阿卡波糖生物合成后续步骤的瓶颈。放线飞机过表达系统的开发。 SE50 / 110是未来代谢工程的重要一步。该系统将帮助改变单个基因的转录数量,这些基因可用于消除代谢瓶颈和重定向代谢资源。此外,提供了一种必要的工具,可以将其转移到猕猴桃属植物的其他亚种和与工业相关的衍生物。

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