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Multiple siderophores: bug or feature?

机译:多个桥梁:错误或功能?

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It is common for bacteria to produce chemically diverse sets of small Fe-binding molecules called siderophores. Studies of siderophore bioinorganic chemistry have firmly established the role of these molecules in Fe uptake and provided great insight into Fe complexation. However, we still do not fully understand why microbes make so many siderophores. In many cases, the release of small structural variants or siderophore fragments has been ignored, or considered as an inefficiency of siderophore biosynthesis. Yet, in natural settings, microbes live in complex consortia and it has become increasingly clear that the secondary metabolite repertoires of microbes reflect this dynamic environment. Multiple siderophore production may, therefore, provide a window into microbial life in the wild. This minireview focuses on three biochemical routes by which multiple siderophores can be released by the same organism-multiple biosynthetic gene clusters, fragment release, and precursor-directed biosynthesis-and highlights emergent themes related to each. We also emphasize the plurality of reasons for multiple siderophore production, which include enhanced iron uptake via synergistic siderophore use, microbial warfare and cooperation, and non-classical functions such as the use of siderophores to take up metals other than Fe.
机译:细菌是常见的,以产生叫做散发体的化学多样的小型Fe绑定分子。对阳性生物碱性化学的研究牢固地建立了这些分子在Fe摄取中的作用,并提供了对Fe络合的洞察力。但是,我们仍然没有完全理解为什么微生物制作这么多的裙梁。在许多情况下,已经忽略了小型结构变体或阳光片段的释放,或被视为阳光生物合成的效率。然而,在自然的环境中,微生物生活在复杂的联盟中,越来越明显微生物的次级代谢物曲目反映了这种动态环境。因此,多个纵横战过的生产可以在野外提供进入微生物寿命的窗口。该Minireview专注于三个生化途径,通过该途径可以通过相同的生物 - 多种生物合成基因簇,片段释放和前兆的生物合成释放到哪种生化路线 - 并突出显示与每个有关的紧急主题。我们还强调了多种展示了多种展示的原因,包括通过协同展示的铁孔使用,微生物战争和合作以及非古典功能,以及使用施工电池以占用Fe以外的金属来增强铁摄取。

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