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海洋生物膜细菌通过靶向化学防御来躲避真核生物的捕食。

Marine biofilm bacteria evade eukaryotic predation by targeted chemical defense.

作者信息

Matz Carsten, Webb Jeremy S, Schupp Peter J, Phang Shui Yen, Penesyan Anahit, Egan Suhelen, Steinberg Peter, Kjelleberg Staffan

机构信息

School of Biotechnology and Biomolecular Sciences and Centre for Marine Bio-Innovation, University of New South Wales, Sydney, Australia.

出版信息

PLoS One. 2008 Jul 23;3(7):e2744. doi: 10.1371/journal.pone.0002744.

Abstract

Many plants and animals are defended from predation or herbivory by inhibitory secondary metabolites, which in the marine environment are very common among sessile organisms. Among bacteria, where there is the greatest metabolic potential, little is known about chemical defenses against bacterivorous consumers. An emerging hypothesis is that sessile bacterial communities organized as biofilms serve as bacterial refuge from predation. By testing growth and survival of two common bacterivorous nanoflagellates, we find evidence that chemically mediated resistance against protozoan predators is common among biofilm populations in a diverse set of marine bacteria. Using bioassay-guided chemical and genetic analysis, we identified one of the most effective antiprotozoal compounds as violacein, an alkaloid that we demonstrate is produced predominately within biofilm cells. Nanomolar concentrations of violacein inhibit protozoan feeding by inducing a conserved eukaryotic cell death program. Such biofilm-specific chemical defenses could contribute to the successful persistence of biofilm bacteria in various environments and provide the ecological and evolutionary context for a number of eukaryote-targeting bacterial metabolites.

摘要

许多植物和动物通过抑制性次生代谢产物来抵御捕食或食草行为,在海洋环境中,这些次生代谢产物在固着生物中非常普遍。在代谢潜力最大的细菌中,关于抵御食细菌消费者的化学防御机制却知之甚少。一个新出现的假说是,组织成生物膜的固着细菌群落可作为细菌躲避捕食的避难所。通过测试两种常见的食细菌纳米鞭毛虫的生长和存活情况,我们发现有证据表明,在多种海洋细菌的生物膜群体中,对原生动物捕食者的化学介导抗性很常见。利用生物测定指导的化学和遗传分析,我们确定了最有效的抗原生动物化合物之一是紫菌素,一种生物碱,我们证明它主要在生物膜细胞内产生。纳摩尔浓度的紫菌素通过诱导保守的真核细胞死亡程序来抑制原生动物的摄食。这种生物膜特异性化学防御可能有助于生物膜细菌在各种环境中成功存续,并为许多针对真核生物的细菌代谢产物提供生态和进化背景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5e33/2444038/0079e5795d73/pone.0002744.g001.jpg

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