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类流体阴极提高了紫色光合细菌从啤酒废水中生产有价值生物质的能力。

Fluid-like cathode enhances valuable biomass production from brewery wastewater in purple phototrophic bacteria.

作者信息

Manchon Carlos, Asensio Yeray, Muniesa-Merino Fernando, Llorente María, Pun Álvaro, Esteve-Núñez Abraham

机构信息

Universidad de Alcalá, Alcalá de Henares, Madrid, Spain.

Nanoelectra, Alcalá de Henares, Madrid, Spain.

出版信息

Front Microbiol. 2023 Mar 13;14:1115956. doi: 10.3389/fmicb.2023.1115956. eCollection 2023.

Abstract

The climate crisis requires rethinking wastewater treatment to recover resources, such as nutrients and energy. In this scenario, purple phototrophic bacteria (PPB), the most versatile microorganisms on earth, are a promising alternative to transform the wastewater treatment plant concept into a biorefinery model by producing valuable protein-enriched biomass. PPB are capable of interacting with electrodes, exchanging electrons with electrically conductive materials. In this work, we have explored for mobile-bed (either stirred or fluidized) cathodes to maximize biomass production. For this purpose, stirred-electrode reactors were operated with low-reduced (3.5 e/C) and high-reduced (5.9 e/C) wastewater under cathodic polarization (-0.4 V and -0.8 V vs. Ag/AgCl). We observed that cathodic polarization and IR irradiation can play a key role in microbial and phenotypic selection, promoting (at -0.4 V) or minimizing (at -0.8 V) the presence of PPB. Then, we further study how cathodic polarization modulates PPB biomass production providing a fluid-like electrode as part of a so-called photo microbial electrochemical fluidized-bed reactor (photoME-FBR). Our results revealed the impact of reduction status of carbon source in wastewater to select the PPB photoheterotrophic community and how electrodes drive microbial population shifts depending on the reduction status of such carbon source.

摘要

气候危机要求重新思考废水处理方式,以回收养分和能源等资源。在这种情况下,紫色光合细菌(PPB)作为地球上最具多功能性的微生物,有望通过生产富含蛋白质的有价值生物质,将废水处理厂的概念转变为生物精炼厂模式。PPB能够与电极相互作用,与导电材料交换电子。在这项工作中,我们探索了移动床(搅拌或流化)阴极,以最大限度地提高生物质产量。为此,搅拌电极反应器在阴极极化(相对于Ag/AgCl为-0.4 V和-0.8 V)下,分别用低还原度(3.5 e/C)和高还原度(5.9 e/C)的废水运行。我们观察到,阴极极化和红外辐射在微生物和表型选择中可发挥关键作用,促进(在-0.4 V时)或减少(在-0.8 V时)PPB的存在。然后,我们进一步研究阴极极化如何调节PPB生物质产量,提供一种类似流体的电极作为所谓的光微生物电化学流化床反应器(photoME-FBR)的一部分。我们的结果揭示了废水碳源还原状态对选择PPB光异养群落的影响,以及电极如何根据这种碳源的还原状态驱动微生物种群的变化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9cf2/10040824/897f34763ce3/fmicb-14-1115956-g001.jpg

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