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Seaweed resistance to microbial attack: A targeted chemical defense against marine fungi

机译:海藻对微生物侵袭的抵抗力:针对海洋真菌的针对性化学防御

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摘要

Pathogenic microbes can devastate populations of marine plants and animals. Yet, many sessile organisms such as seaweeds and sponges suffer remarkably low levels of microbial infection, despite lacking cell-based immune systems. Antimicrobial defenses of marine organisms are largely uncharacterized, although from a small number of studies it appears that chemical defenses may improve host resistance. In this study, we asked whether the common seaweed Lobophora variegata is chemically defended against potentially deleterious microorganisms. Using bioassay-guided fractionation, we isolated and characterized a 22-membered cyclic lactone, lobophorolide (1), of presumed polyketide origin, with sub-μM activity against pathogenic and saprophytic marine fungi. Deterrent concentrations of 1 were found in 46 of 51 samples collected from 10 locations in the Bahamas over a 4-year period. Lobophorolide (1) is structurally unprecedented, yet parts of the molecule are related to tolytoxin, the scytophycins, and the swinholides, macrolides previously isolated from terrestrial cyanobacteria and from marine sponges and gastropods. Until now, compounds of this structural class have not been associated with marine macrophytes. Our findings suggest that seaweeds use targeted antimicrobial chemical defense strategies and that secondary metabolites important in the ecological interactions between marine macroorganisms and microorganisms could be a promising source of novel bioactive compounds.
机译:病原微生物可以破坏海洋动植物种群。然而,尽管缺乏基于细胞的免疫系统,但许多无柄生物(如海藻和海绵)的微生物感染水平却非常低。尽管从少数研究看来,化学防御可能会改善宿主的抗药性,但海洋生物的抗菌防御基本没有特征。在这项研究中,我们询问普通海藻杂草Lobophora variegata是否在化学上防御了潜在的有害微生物。使用生物测定指导的分馏,我们分离出并表征了一种假定为聚酮化合物来源的22元环内酯,氧环磷酰胺(1),对病原性和腐生性海洋真菌的活性为亚μM。在四年的时间里,从巴哈马的10个地点收集的51个样本中,有46个样本的威慑浓度为1。核果糖苷(1)在结构上是空前的,但该分子的某些部分与毒素,胞藻素和swinholides(以前从陆地蓝藻以及海洋海绵和腹足动物中分离出的大环内酯)有关。到目前为止,这种结构类别的化合物尚未与海洋大型植物联系在一起。我们的发现表明,海藻使用了针对性的抗菌化学防御策略,并且在海洋大生物与微生物之间的生态相互作用中重要的次生代谢产物可能是新型生物活性化合物的有前途的来源。

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