一种新型伯克霍尔德菌衍生生物碱- 4-羟基-3-甲基-2-烯基喹啉的抗生物膜性能。

IF 3.7 2区 生物学 Q2 MICROBIOLOGY
mSphere Pub Date : 2025-05-27 Epub Date: 2025-05-08 DOI:10.1128/msphere.01081-24
McKinley D Williams, Taylor R Sweeney, Sabrina Trieu, Ravi Orugunty, Abdelahhad Barbour, Fereshteh Younesi, Michael Glogauer, Nopakorn Hansanant, Ronald Shin, Shi-En Lu, Kevin Cao, Abraham Tenorio, Sigmund J Haidacher, Anthony M Haag, Thomas D Horvath, Leif Smith
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引用次数: 0

摘要

生物膜是多种微生物在不同环境中更好地建立自身和垄断资源获取的重要定植机制。一些细菌已经进化出专门的代谢物,当这些代谢物分泌时,会破坏竞争异种产生的生物膜的形成和稳定性,从而为生产生物提供生态优势。鉴于陆地生态系统内发生的激烈竞争,土壤衍生物种可能是鉴定这些化合物的候选者。从密西西比州土壤中分离出的伯克氏菌MS14菌株此前已被证明能产生抗微生物化合物,如球虫菌素和鸟虫素。在本报告中,我们证明该菌株也产生4-羟基-3-甲基-2-烯基喹啉(HMAQ-7),这是一种基于生物碱的代谢物,结构类似于伯克霍尔德菌产生的其他代谢物。HMAQ-7的分离纯化量足以阐明其共价结构并评价其生物学效应。该化合物被发现具有抑制几种生物膜生物合成的独特能力,包括溶血葡萄球菌等机会性病原体和唾液衍生的多物种生物膜。HMAQ-7还显示出调节枯草芽孢杆菌其他细胞行为的能力,包括运动和产孢,这表明该分子对存在于许多不同微环境中的种间动力学很重要。本研究进一步了解了伯克霍尔德菌产生的2-烷基-4(1H)-喹诺酮代谢产物的结构复杂性和生物学功能。低微摩尔浓度的HMAQ-7诱导可观察到的细菌生长形态差异。本研究表征的HMAQ-7’的抗生物膜特性将促进未来对可能的生物学和应用作用的研究。利用HMAQ-7'改变生物膜形成的能力可能促进伯克霍尔德氏菌在多种环境中的定植,即水生、土壤,并可能在感染期间定植。HMAQ可能会破坏伯克霍尔德氏菌自然环境中潜在竞争物种的竞争,也可能会破坏囊性纤维化患者肺部感染的竞争。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Antibiofilm properties of 4-hydroxy-3-methyl-2-alkenylquinoline, a novel Burkholderia-derived alkaloid.

Biofilms are an important colonization mechanism employed by several microbial species to better establish themselves and monopolize the acquisition of resources across different environs. Some bacteria have evolved specialized metabolites that, when secreted, disrupt the formation and stability of biofilms generated by competing heterospecies, providing the producing organism with an ecological advantage. Soil-derived species are probable candidates for the identification of such compounds, given the intense level of competition that occurs within the terrestrial ecosystem. The MS14 strain of Burkholderia contaminans isolated from soil in Mississippi has previously been shown to produce antimicrobial compounds like occidiofungin and ornibactin. In this report, we demonstrate that this strain also produces 4-hydroxy-3-methyl-2-alkenylquinoline (HMAQ-7), an alkaloid-based metabolite structurally similar to others produced by Burkholderia. HMAQ-7 was isolated and purified in sufficient quantities to enable the elucidation of its covalent structure and the evaluation of its biological effects. The compound was found to possess a unique ability to inhibit biofilm biosynthesis in several species, including opportunistic pathogens like Staphylococcus haemolyticus and within saliva-derived multispecies biofilms. HMAQ-7 also demonstrated an ability to modulate additional cellular behaviors in Bacillus subtilis, including motility and sporulation, suggesting that this molecule is important to the interspecies dynamics present across many diverse microenvironments.IMPORTANCEThe present study furthers our understanding of the structural complexity and the biological functions of the 2-alkyl-4(1H)-quinolone metabolites produced by Burkholderia spp. Low micromolar concentrations of HMAQ-7' induced observable bacterial growth morphology differences. The antibiofilm properties of the HMAQ-7' characterized in this study will promote future investigations into possible biological and applied roles. The ability to alter biofilm formation using HMAQ-7' may facilitate Burkholderia spp. colonization in a multitude of environments, that is, aquatic, soil, and possibly during infection. HMAQ may subvert competition by potential competitor species in natural environments of Burkholderia spp. and possibly lung infections of cystic fibrosis patients.

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来源期刊
mSphere
mSphere Immunology and Microbiology-Microbiology
CiteScore
8.50
自引率
2.10%
发文量
192
审稿时长
11 weeks
期刊介绍: mSphere™ is a multi-disciplinary open-access journal that will focus on rapid publication of fundamental contributions to our understanding of microbiology. Its scope will reflect the immense range of fields within the microbial sciences, creating new opportunities for researchers to share findings that are transforming our understanding of human health and disease, ecosystems, neuroscience, agriculture, energy production, climate change, evolution, biogeochemical cycling, and food and drug production. Submissions will be encouraged of all high-quality work that makes fundamental contributions to our understanding of microbiology. mSphere™ will provide streamlined decisions, while carrying on ASM''s tradition for rigorous peer review.
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