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Immobilization of anode-attached microbes in a microbial fuel cell.

机译:将阳极附着的微生物固定在微生物燃料电池中。

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摘要

Current-generating (exoelectrogenic) bacteria in bioelectrochemical systems (BESs) may not be culturable using standard in vitro agar-plating techniques, making isolation of new microbes a challenge. More in vivo like conditions are needed where bacteria can be grown and directly isolated on an electrode. While colonies can be developed from single cells on an electrode, the cells must be immobilized after being placed on the surface. Here we present a proof-of-concept immobilization approach that allows exoelectrogenic activity of cells on an electrode based on applying a layer of latex to hold bacteria on surfaces. The effectiveness of this procedure to immobilize particles was first demonstrated using fluorescent microspheres as bacterial analogs. The latex coating was then shown to not substantially affect the exoelectrogenic activity of well-developed anode biofilms in two different systems. A single layer of airbrushed coating did not reduce the voltage produced by a biofilm in a microbial fuel cell (MFC), and more easily applied dip-and-blot coating reduced voltage by only 11% in a microbial electrolysis cell (MEC). This latex immobilization procedure will enable future testing of single cells for exoelectrogenic activity on electrodes in BESs.
机译:使用标准的体外琼脂铺板技术可能无法培养生物电化学系统(BESs)中产生电流的(外生电)细菌,这使得新微生物的分离成为一个挑战。需要更多类似体内的条件,细菌可以在其中生长并直接在电极上分离。虽然菌落可以从电极上的单个细胞发育而来,但将细胞置于表面后必须固定。在这里,我们介绍了一种概念验证的固定方法,该方法可通过在乳胶层上将细菌固持在表面上,从而在电极上实现细胞的外生电活性。首先使用荧光微球作为细菌类似物证明了该程序固定颗粒的有效性。然后显示出该乳胶涂料在两个不同的系统中基本上不影响发达的阳极生物膜的放电活性。单层喷漆涂层不会降低微生物燃料电池(MFC)中生物膜产生的电压,更容易应用的浸涂技术在微生物电解槽(MEC)中仅降低11%的电压。这种乳胶固定程序将使将来能够测试单个细胞在BESs电极上的放电活性。

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