Fergusson Claire H, Saulog Julia, Paulo Bruno S, Wilson Darryl M, Liu Dennis Y, Morehouse Nicholas J, Waterworth Samantha, Barkei John, Gray Christopher A, Kwan Jason C, Eustaquio Alessandra S, Linington Roger G
Department of Chemistry, Simon Fraser University 8888 University Drive Burnaby BC V5A 1S6 Canada
Department of Pharmaceutical Sciences and Center for Biomolecular Sciences, College of Pharmacy, University of Illinois at Chicago Chicago IL 60607 USA
Chem Sci. 2024 May 7;15(21):8089-8096. doi: 10.1039/d4sc00825a. eCollection 2024 May 29.
Microorganisms from the order Burkholderiales have been the source of a number of important classes of natural products in recent years. For example, study of the beetle-associated symbiont led to the discovery of the antifungal polyketide lagriamide; an important molecule from the perspectives of both biotechnology and chemical ecology. As part of a wider project to sequence Burkholderiales genomes from our in-house Burkholderiales library we identified a strain containing a biosynthetic gene cluster (BGC) similar to the original lagriamide BGC. Structure prediction failed to identify any candidate masses for the products of this BGC from untargeted metabolomics mass spectrometry data. However, genome mining from publicly available databases identified fragments of this BGC from a culture collection strain of . Whole genome sequencing of this strain revealed the presence of a homologue of this BGC with very high sequence identity. Stable isotope feeding of the two strains in parallel using our newly developed IsoAnalyst platform identified the product of this lagriamide-like BGC directly from the crude fermentation extracts, affording a culturable supply of this interesting compound class. Using a combination of bioinformatic, computational and spectroscopic methods we defined the absolute configurations for all 11 chiral centers in this new metabolite, which we named lagriamide B. Biological testing of lagriamide B against a panel of 21 bacterial and fungal pathogens revealed antifungal activity against the opportunistic human pathogen , while image-based Cell Painting analysis indicated that lagriamide B also causes actin filament disruption in U2-OS osteosarcoma cells.
近年来,伯克霍尔德氏菌目(Burkholderiales)的微生物一直是许多重要类别的天然产物的来源。例如,对与甲虫相关的共生菌的研究导致了抗真菌聚酮化合物拉格酰胺(lagriamide)的发现;从生物技术和化学生态学的角度来看,这都是一种重要的分子。作为我们内部伯克霍尔德氏菌文库对伯克霍尔德氏菌目基因组进行测序的更广泛项目的一部分,我们鉴定出了一个菌株,其含有一个与原始拉格酰胺生物合成基因簇(BGC)相似的生物合成基因簇。结构预测未能从未靶向代谢组学质谱数据中识别出该BGC产物的任何候选质量峰。然而,从公开可用数据库进行的基因组挖掘在一个培养物保藏菌株中鉴定出了该BGC的片段。对该菌株进行全基因组测序揭示了存在一个与该BGC具有非常高序列同一性的同源物。使用我们新开发的IsoAnalyst平台对这两个菌株进行平行的稳定同位素标记,直接从粗发酵提取物中鉴定出了这种类拉格酰胺BGC的产物,从而提供了这种有趣化合物类别的可培养供应。通过结合生物信息学、计算和光谱方法,我们确定了这种新代谢物中所有11个手性中心的绝对构型,我们将其命名为拉格酰胺B。对拉格酰胺B针对21种细菌和真菌病原体的生物测试显示其对机会性人类病原体具有抗真菌活性,而基于图像的细胞绘画分析表明拉格酰胺B也会导致U2-OS骨肉瘤细胞中的肌动蛋白丝破坏。