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Mineral formation induced by cable bacteria performing long-distance electron transport in marine sediments

机译:电缆细菌诱导的矿物质形成在海洋沉积物中进行长距离电子输送

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Cable bacteria are multicellular, filamentous microorganisms that are capable of transporting electrons over centimeter-scale distances. Although recently discovered, these bacteria appear to be widely present in the seafloor, and when active they exert a strong imprint on the local geochemistry. In particular, their electrogenic metabolism induces unusually strong pH excursions in aquatic sediments, which induces considerable mineral dissolution, and subsequent mineral reprecipitation. However, at present, it is unknown whether and how cable bacteria play an active or direct role in the mineral reprecipitation process. To this end we present an explorative study of the formation of sedimentary minerals in and near filamentous cable bacteria using a combined approach of electron microscopy and spectroscopic techniques. Our observations reveal the formation of polyphosphate granules within the cells and two different types of biomineral formation directly associated with multicellular filaments of these cable bacteria: (i)?the attachment and incorporation of clay particles in a coating surrounding the bacteria and (ii) encrustation of the cell envelope by iron minerals. These findings suggest a complex interaction between cable bacteria and the surrounding sediment matrix, and a substantial imprint of the electrogenic metabolism on mineral diagenesis and sedimentary biogeochemical cycling. In particular, the encrustation process leaves many open questions for further research. For example, we hypothesize that the complete encrustation of filaments might create a diffusion barrier and negatively impact the metabolism of the cable bacteria.
机译:电缆细菌是多细胞,丝状微生物,其能够在厘米级距离上传输电子。虽然最近发现,这些细菌似乎广泛存在于海底时,当激活时,它们在当地地球化学上发挥强大的印记。特别是,它们的电生代谢在水生沉积物中诱导异常强的pH偏移,这诱导相当大的矿物溶解和随后的矿物再沉淀。然而,目前,目前未知电缆细菌是否以及如何在矿物再划分过程中发挥积极或直接作用。为此,我们使用电子显微镜和光谱技术的组合方法展示了对纤维电缆细菌的沉积矿物质形成的探索性研究。我们的观察结果揭示了细胞内的多磷酸盐颗粒和两种不同类型的生物霉素地层,与这些电缆细菌的多细胞长丝直接相关:(i)?在围绕细菌和(ii)结壳的涂层中的附着和掺入粘土颗粒铁矿物的细胞包络。这些研究结果表明了电缆细菌和周围沉积物基质之间的复杂相互作用,以及矿物成岩作用和沉积生物地良化学循环的电力代谢的大幅印记。特别是,结束过程留下了许多开放问题以进行进一步研究。例如,我们假设细丝的完全结扎可能会产生扩散屏障并对电缆细菌的代谢产生负面影响。

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