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Electrochemical Potential Influences Phenazine Production Electron Transfer and Consequently Electric Current Generation by Pseudomonas aeruginosa

机译:电化学势影响铜绿假单胞菌生产吩嗪电子转移并因此产生电流

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摘要

Pseudomonas aeruginosa has gained interest as a redox mediator (phenazines) producer in bioelectrochemical systems. Several biotic and abiotic factors influence the production of phenazines in synergy with the central virulence factors production regulation. It is, however, not clear how the electrochemical environment may influence the production and usage of phenazines by P. aeruginosa. We here determined the influence of the electrochemical potential on phenazine production and phenazine electron transfer capacity at selected applied potentials from -0.4 to +0.4 V (vs. Ag/AgClsat) using P. aeruginosa strain PA14. Our study reveals a profound influence of the electrochemical potential on the amount of phenazine-1-carboxylate production, whereby applied potentials that were more positive than the formal potential of this dominating phenazine (E° ′PCA = -0.24 V vs. Ag/AgClsat) stimulated more PCA production (94, 84, 128, and 140 μg mL-1 for -0.1, 0.1, 0.2, and 0.3 V, respectively) compared to more reduced potentials (38, 75, and 7 μg mL-1 for -0.4, -0.3, and -0.24 V, respectively). Interestingly, P. aeruginosa seems to produce an additional redox mediator (with E° ′ ∼ 0.052 V) at applied potentials below 0 V, which is most likely adsorbed to the electrode or present on the cells forming the biofilm around electrodes. At fairly negative applied electrode potentials, both PCA and the unknown redox compound mediate cathodic current generation. This study provides important insights applicable in optimizing the BES conditions and cultures for effective production and utilization of P. aeruginosa phenazines. It further stimulates investigations into the physiological impacts of the electrochemical environment, which might be decisive in the application of phenazines for electron transfer with P. aeruginosa pure- or microbial mixed cultures.
机译:铜绿假单胞菌已成为生物电化学系统中氧化还原介体(吩嗪)生产商的兴趣。几种生物和非生物因子与中央毒力因子生产调控协同影响吩嗪的生产。然而,尚不清楚电化学环境如何影响铜绿假单胞菌对吩嗪的生产和使用。我们在这里使用铜绿假单胞菌菌株PA14在从-0.4至+0.4 V(vs。Ag / AgClsat)的选定施加电势下确定了电化学势对吩嗪生成和吩嗪电子转移能力的影响。我们的研究揭示了电化学势对吩嗪-1-羧酸盐产生量的深远影响,由此施加的电势比该主导的吩嗪的形式势更正(E °' PCA =-相较于降低的0.24 V vs.Ag/AgClsat)刺激了更多的PCA产生(分别针对-0.1、0.1、0.1、0.2和0.3 V分别为94、84、128和140μgmL -1 )电位(分别对于-0.4,-0.3和-0.24 V分别为38、75和7μgmL -1 )。有趣的是,铜绿假单胞菌似乎在低于0 V的施加电势下会产生额外的氧化还原介体(E °'〜0.052 V),最有可能吸附到电极上或存在于形成该蛋白的细胞上。电极周围的生物膜。在相当负的电极电位下,PCA和未知的氧化还原化合物都会介导阴极电流的产生。这项研究提供了重要的见解,可用于优化BES条件和培养,以有效生产和利用铜绿假单胞菌吩嗪。它进一步激发了对电化学环境的生理影响的研究,这对于将吩嗪应用到铜绿假单胞菌纯菌或微生物混合培养物中进行电子转移可能具有决定性作用。

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