首页> 外文期刊>Biosensors & Bioelectronics: The International Journal for the Professional Involved with Research, Technology and Applications of Biosensers and Related Devices >Characterization of a novel strain phylogenetically related to Kocuria rhizophila and its chemical modification to improve performance of microbial fuel cells
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Characterization of a novel strain phylogenetically related to Kocuria rhizophila and its chemical modification to improve performance of microbial fuel cells

机译:系统发育与根瘤菌属有关的新型菌株的表征及其化学修饰以提高微生物燃料电池的性能

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摘要

It is certainly an important research area to discovery new exoelectrogens for microbial fuel cells (MFCs), and how to effectively manipulate its cell property to improve power performance is still a great challenge. In this study, a new electrochemically active bacterium phylogenetically related to Kocuria rhizophila was first isolated and found electrogenic in MFCs, which was identified through the combination methods of molecular biology, physiological, biochemical and morphological characteristics. The MFCs inoculated with this strain generated power from a wide variety of substrates, reached a maximum power density of 75 mW/m(2) in the substrate of 1 g/L glucose. And the electron transfer mechanism was confirmed to be dominantly direct biofilm mechanism. Chemical treatment with five reagents was verified to be a feasible strategy to improve the power density of MFCs, increasing approximately 1.75 fold at most after treated with lysozyme. This enhancement was contributed to the significant enhancement on cell permeability, cell membrane fluidity and Coenzyme Q(10) (the electron carrier). Thus this work offered a novel Gram-positive electrogenic bacterium and proved chemical treatment was a feasible strategy to improve electron transfer for application in MFCs. (C) 2015 Elsevier B.V. All rights reserved.
机译:当然,发现用于微生物燃料电池(MFC)的新的外生电子是重要的研究领域,如何有效地控制其电池性能以改善功率性能仍然是一个巨大的挑战。在这项研究中,首先分离出一种新的与根瘤菌属亲缘关系的电化学活性细菌,并在MFCs中发现其是电致病的,这是通过分子生物学,生理学,生化和形态学特征的组合方法鉴定的。接种了该菌株的MFC从各种各样的底物上产生了能量,在1 g / L葡萄糖的底物中达到了75 mW / m(2)的最大功率密度。并且电子转移机制被证实是主要的直接生物膜机制。事实证明,用五种试剂进行化学处理是提高MFC功率密度的可行策略,用溶菌酶处理后最多可提高约1.75倍。这种增强作用有助于细胞通透性,细胞膜流动性和辅酶Q(10)(电子载体)的显着增强。因此,这项工作提供了一种新型的革兰氏阳性电致细菌,并证明化学处理是改善在MFC中应用的电子转移的可行策略。 (C)2015 Elsevier B.V.保留所有权利。

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