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通过基于核磁共振的代谢组学和生物信息学相结合的工作流程,在链霉菌属MBT76中发现C-糖基吡喃萘醌。

Discovery of C-Glycosylpyranonaphthoquinones in Streptomyces sp. MBT76 by a Combined NMR-Based Metabolomics and Bioinformatics Workflow.

作者信息

Wu Changsheng, Du Chao, Ichinose Koji, Choi Young Hae, van Wezel Gilles P

机构信息

Molecular Biotechnology, Institute of Biology, Leiden University , Sylviusweg 72, 2333 BE Leiden, The Netherlands.

Natural Products Laboratory, Institute of Biology, Leiden University , Sylviusweg 72 2333 BE Leiden, The Netherlands.

出版信息

J Nat Prod. 2017 Feb 24;80(2):269-277. doi: 10.1021/acs.jnatprod.6b00478. Epub 2017 Jan 27.

Abstract

Mining of microbial genomes has revealed that actinomycetes harbor far more biosynthetic potential for bioactive natural products than anticipated. Activation of (cryptic) biosynthetic gene clusters and identification of the corresponding metabolites has become a focal point for drug discovery. Here, we applied NMR-based metabolomics combined with bioinformatics to identify novel C-glycosylpyranonaphthoquinones in Streptomyces sp. MBT76 and to elucidate the biosynthetic pathway. Following activation of the cryptic qin gene cluster for a type II polyketide synthase (PKS) by constitutive expression of its pathway-specific activator, bioinformatics coupled to NMR profiling facilitated the chromatographic isolation and structural elucidation of qinimycins A-C (1-3). The intriguing structural features of the qinimycins, including 8-C-glycosylation, 5,14-epoxidation, and 13-hydroxylation, distinguished these molecules from the model pyranonaphthoquinones actinorhodin, medermycin, and granaticin. Another novelty lies in the unusual fusion of a deoxyaminosugar to the pyranonaphthoquinone backbone during biosynthesis of the antibiotics BE-54238 A and B (4, 5). Qinimycins showed weak antimicrobial activity against Gram-positive bacteria. Our work shows the utility of combining bioinformatics, targeted activation of cryptic gene clusters, and NMR-based metabolic profiling as an effective pipeline for the discovery of microbial natural products with distinctive skeletons.

摘要

对微生物基因组的挖掘表明,放线菌产生具有生物活性的天然产物的生物合成潜力远远超出预期。(隐秘的)生物合成基因簇的激活以及相应代谢产物的鉴定已成为药物发现的焦点。在此,我们应用基于核磁共振的代谢组学结合生物信息学,以鉴定链霉菌属MBT76中新型的C-糖基吡喃萘醌,并阐明其生物合成途径。通过组成型表达其途径特异性激活剂激活II型聚酮合酶(PKS)的隐秘qin基因簇后,结合核磁共振分析的生物信息学方法有助于对秦霉素A-C(1-3)进行色谱分离和结构解析。秦霉素有趣的结构特征,包括8-C-糖基化、5,14-环氧化和13-羟基化,使这些分子有别于模型吡喃萘醌放线紫红素、美登霉素和石榴菌素。另一个新奇之处在于,在抗生素BE-54238 A和B(4, 5)的生物合成过程中,脱氧氨基糖与吡喃萘醌主链发生了异常融合。秦霉素对革兰氏阳性菌显示出微弱的抗菌活性。我们的工作表明,将生物信息学、隐秘基因簇的靶向激活以及基于核磁共振的代谢谱分析相结合,是发现具有独特骨架的微生物天然产物的有效途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/50e7/5373568/a307e8c66f35/np-2016-004782_0001.jpg

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