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利用卤化物耗竭加速卤代烷烃衍生天然产物的发现。

Accelerating the discovery of alkyl halide-derived natural products using halide depletion.

机构信息

Department of Chemistry and Chemical Biology, Harvard University, Cambridge, MA, USA.

Department of Biology, University of the Pacific, Stockton, CA, USA.

出版信息

Nat Chem. 2024 Feb;16(2):173-182. doi: 10.1038/s41557-023-01390-z. Epub 2024 Jan 12.

Abstract

Even in the genomic era, microbial natural product discovery workflows can be laborious and limited in their ability to target molecules with specific structural features. Here we leverage an understanding of biosynthesis to develop a workflow that targets the discovery of alkyl halide-derived natural products by depleting halide anions, a key biosynthetic substrate for enzymatic halogenation, from microbial growth media. By comparing the metabolomes of bacterial cultures grown in halide-replete and deficient media, we rapidly discovered the nostochlorosides, the products of an orphan halogenase-encoding gene cluster from Nostoc punctiforme ATCC 29133. We further found that these products, a family of unusual chlorinated glycolipids featuring the rare sugar gulose, are polymerized via an unprecedented enzymatic etherification reaction. Together, our results highlight the power of leveraging an understanding of biosynthetic logic to streamline natural product discovery.

摘要

即使在基因组时代,微生物天然产物的发现工作流程也可能很繁琐,并且在针对具有特定结构特征的分子方面能力有限。在这里,我们利用对生物合成的理解,开发了一种工作流程,通过耗尽卤化物阴离子(酶卤化的关键生物合成底物)从微生物生长培养基中靶向发现烷基卤化物衍生的天然产物。通过比较在富含卤化物和缺乏卤化物的培养基中生长的细菌培养物的代谢组,我们迅速发现了 Nostochlorosides,这是来自 Nostoc punctiforme ATCC 29133 的孤儿卤化酶编码基因簇的产物。我们进一步发现,这些产物是一组不寻常的氯化糖脂,具有罕见的糖古洛糖,通过前所未有的酶醚化反应聚合。总之,我们的结果强调了利用对生物合成逻辑的理解来简化天然产物发现的强大功能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a25f/10849952/c0a52f52344c/41557_2023_1390_Fig1_HTML.jpg

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