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Quorum Sensing: An Under-Explored Phenomenon in the Phylum Actinobacteria

机译:法定传感:Phylum <斜视> actinobacteria 中探讨的现象

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Quorum sensing is known to play a major role in the regulation of secondary metabolite production, especially, antibiotics, and morphogenesis in the phylum Actinobacteria . Although it is one of the largest bacterial phylum, only 25 of the 342 genera have been reported to use quorum sensing. Of these, only nine have accompanying experimental evidence; the rest are only known through bioinformatic analysis of gene/genome sequences. It is evident that this important communication mechanism is not extensively explored in Actinobacteria. In this review, we summarize the different quorum sensing systems while identifying the limitations of the existing screening strategies and addressing the improvements that have taken place in this field in recent years. The γ -butyrolactone system turned out to be almost exclusively limited to this phylum. In addition, methylenomycin furans, AI-2 and other putative AHL-like signaling molecules are also reported in Actinobacteria. The lack of existing screening systems in detecting minute quantities and of a wider range of signaling molecules was a major reason behind the limited information available on quorum sensing in this phylum. However, recent improvements in screening strategies hold a promising future and are likely to increase the discovery of new signaling molecules. Further, the quorum quenching ability in many Actinobacteria has a great potential in controlling the spread of plant and animal pathogens. A systematic and coordinated effort is required to screen and exploit the enormous potential that quorum sensing in the phylum Actinobacteria has to offer for human benefit.
机译:已知仲裁感测在次级代谢产物生产中的调节中发挥重要作用,特别是抗生素和体内肌动菌的形态发生。虽然它是最大的细菌门之一,但据报道,342属的25只据报道使用Quorum感测。其中,只有九个伴随实验证据;其余仅仅通过基因/基因组序列的生物信息分析已知。很明显,这种重要的沟通机制在猕猴桃中没有广泛探索。在这篇综述中,我们总结了不同的法定传感系统,同时识别现有的筛选策略的局限性并解决近年来在该领域发生的改进。 γ-丁内酯系统原来几乎完全限于这种场。此外,还报道了亚甲基霉素呋喃,AI-2和其他推定的AHL样信号传导分子。在检测分钟数量和更广泛的信号分子中缺乏现有的筛选系统是在该字段中对频压感测的有限信息的有限信息后面的主要原因。然而,筛选策略的最新改进持有未来有希望的未来,并且可能会增加新的信号分子的发现。此外,许多肌动菌的法定猝灭能力具有控制植物和动物病原体的蔓延的巨大潜力。需要系统和协调的努力来筛选和利用Phylum actinobacteria的巨大感测的巨大潜力必须提供人类利益。

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