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Addition of Riboflavin-Coupled Magnetic Beads Increases Current Production in Bioelectrochemical Systems via the Increased Formation of Anode-Biofilms

机译:核黄素偶联的磁珠的添加通过增加阳极生物膜的形成来增加生物电化学系统中的电流产生。

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摘要

Shewanella oneidensis is one of the best-understood model organisms for extracellular electron transfer. Endogenously produced and exported flavin molecules seem to play an important role in this process and mediate the connection between respiratory enzymes on the cell surface and the insoluble substrate by acting as electron shuttle and cytochrome-bound cofactor. Consequently, the addition of riboflavin to a bioelectrochemical system (BES) containing S. oneidensis cells as biocatalyst leads to a strong current increase. Still, an external application of riboflavin to increase current production in continuously operating BESs does not seem to be applicable due to the constant washout of the soluble flavin compound. In this study, we developed a recyclable electron shuttle to overcome the limitation of mediator addition to BES. Riboflavin was coupled to magnetic beads that can easily be recycled from the medium. The effect on current production and cell distribution in a BES as well as the recovery rate and the stability of the beads was investigated. The addition of synthesized beads leads to a more than twofold higher current production, which was likely caused by increased biofilm production. Moreover, 90% of the flavin-coupled beads could be recovered from the BESs using a magnetic separator.
机译:沙希氏菌是最能理解的细胞外电子转移模型生物之一。内源性产生和输出的黄素分子似乎在此过程中起着重要作用,并通过充当电子穿梭和细胞色素结合的辅因子来介导细胞表面呼吸酶与不溶性底物之间的连接。因此,将核黄素添加到含有拟南芥沙门氏菌细胞作为生物催化剂的生物电化学系统(BES)中会导致电流的强烈增加。但是,由于可溶黄素类化合物的不断冲洗,外部应用核黄素以增加连续操作的BES中电流的产生似乎并不适用。在这项研究中,我们开发了一种可循环利用的电子梭,以克服BES中添加介体的局限性。核黄素与可轻易从培养基中回收的磁珠偶联。研究了对BES中电流产生和细胞分布的影响,以及珠的回收率和稳定性。合成珠的添加导致电流产量增加两倍以上,这很可能是由于生物膜产量增加所致。此外,可以使用磁选机从BES中回收90%的黄素偶联珠。

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