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Functional Analysis of the N-Acetylglucosamine Metabolic Genes of Streptomyces coelicolor and Role in Control of Development and Antibiotic Production

机译:Coelicolor链霉菌的N-乙酰氨基葡萄糖代谢基因的功能分析及其在发育和抗生素生产中的控制作用

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摘要

N-Acetylglucosamine, the monomer of chitin, is a favored carbon and nitrogen source for streptomycetes. Its intracellular catabolism requires the combined actions of the N-acetylglucosamine-6-phosphate (GlcNAc-6P) deacetylase NagA and the glucosamine-6-phosphate (GlcN-6P) deaminase/isomerase NagB. GlcNAc acts as a signaling molecule in the DasR-mediated nutrient sensing system, activating development and antibiotic production under poor growth conditions (famine) and blocking these processes under rich conditions (feast). In order to understand how a single nutrient can deliver opposite information according to the nutritional context, we carried out a mutational analysis of the nag metabolic genes nagA, nagB, and nagK. Here we show that the nag genes are part of the DasR regulon in Streptomyces coelicolor, which explains their transcriptional induction by GlcNAc. Most likely as the result of the intracellular accumulation of GlcN-6P, nagB deletion mutants fail to grow in the presence of GlcNAc. This toxicity can be alleviated by the additional deletion of nagA. We recently showed that in S. coelicolor, GlcNAc is internalized as GlcNAc-6P via the phosphoenolpyruvate-dependent sugar phosphotransferase system (PTS). Considering the relevance of GlcNAc for the control of antibiotic production, improved insight into GlcNAc metabolism in Streptomyces may provide new leads toward biotechnological applications.
机译:N-乙酰氨基葡萄糖,几丁质的单体,是链霉菌的首选碳和氮源。它的细胞内分解代谢需要N-乙酰氨基葡糖-6-磷酸(GlcNAc-6P)脱乙酰基酶NagA和葡萄糖胺-6-磷酸(GlcN-6P)脱氨酶/异构酶NagB的共同作用。 GlcNAc在DasR介导的营养感测系统中充当信号分子,在不良生长条件(饥荒)下激活发育和抗生素生产,并在丰富条件下(宴席)阻止这些过程。为了了解一种营养素如何根据营养背景传递相反的信息,我们对nag代谢基因nagA,nagB和nagK进行了突变分析。在这里,我们显示nag基因是天蓝色链霉菌中DasR调节子的一部分,这解释了它们通过GlcNAc的转录诱导作用。由于GlcN-6P的细胞内积累,最有可能是nagB缺失突变体在GlcNAc的存在下无法生长。可以通过额外缺失nagA来减轻这种毒性。我们最近显示在天蓝色链霉菌中,GlcNAc通过依赖磷酸烯醇丙酮酸的糖磷酸转移酶系统(PTS)被内化为GlcNAc-6P。考虑到GlcNAc与控制抗生素生产的相关性,对链霉菌中GlcNAc代谢的深入了解可能为生物技术应用提供新的线索。

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