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基于反硝化细菌特定菌群运行的微生物电解池中生物制氢

Biohydrogen Production in Microbial Electrolysis Cell Operating on Designed Consortium of Denitrifying Bacteria.

作者信息

Ekadewi Putty, Arbianti Rita, Gomez Cristina, Utami Tania Surya

机构信息

Bioprocess Engineering, Department of Chemical Engineering, University of Indonesia, Kampus Baru UI, 16424 Depok, Indonesia.

Department of Biotechnology, Indonesia International Institute for Life Sciences, Jl. Pulomas Barat Kav. 88, 13210 East Jakarta, Indonesia.

出版信息

Food Technol Biotechnol. 2023 Mar;61(1):4-13. doi: 10.17113/ftb.61.01.23.7496.

Abstract

RESEARCH BACKGROUND

This study provides insight into the use of a designed microbial community to produce biohydrogen in simple, single-chamber microbial electrolysis cells (MECs). The ability of MECs to stably produce biohydrogen relies heavily on the setup and microorganisms working inside the system. Despite having the most straightforward configuration and effectively avoiding costly membranes, single-chamber MECs are prone to competing metabolic pathways. We present in this study one possible way of avoiding this problem using characteristically defined, designed microbial consortium. Here, we compare the performance of MECs inoculated with a designed consortium to MECs operating with a naturally occurring soil consortium.

EXPERIMENTAL APPROACH

We adapted a cost-effective and simple single-chamber MEC design. The MEC was gastight, 100 mL in volume, and equipped with continuous monitoring for electrical output using a digital multimeter. Microorganisms were sourced from Indonesian environmental samples, either as denitrifying bacterial isolates grouped as a designed consortium or natural soil microbiome used in its entirety. The designed consortium consisted of five species from the and genera. The headspace gas profile was monitored periodically with a gas chromatograph. At the end of the culture, the composition of the natural soil consortium was characterized by next generation sequencing and the growth of the bacteria on the surface of the anodes by field emission scanning electron microscopy.

RESULTS AND CONCLUSIONS

We found that MEC using a designed consortium presented a better H production profile, with the ability of the system to maintain headspace H concentration relatively stable for a long time after reaching stationary growth period. In contrast, MECs inoculated with soil microbiome exhibited a strong decline in headspace H profile within the same time frame.

NOVELTY AND SCIENTIFIC CONTRIBUTION

This work utilizes a designed, denitrifying bacterial consortium isolated from Indonesian environmental samples that can survive in a nitrate-rich environment. Here we propose using a designed consortium as a biological approach to avoid methanogenesis in MECs, as a simple and environmentally friendly alternative to current chemical/physical methods. Our findings offer an alternative solution to avoid the problem of H loss in single-chamber MECs along with optimizing biohydrogen production through bioelectrochemical routes.

摘要

研究背景

本研究深入探讨了利用设计好的微生物群落,在简单的单室微生物电解池(MEC)中生产生物氢气的情况。MEC稳定生产生物氢气的能力在很大程度上依赖于系统内部的装置和微生物。尽管单室MEC具有最直接的配置并有效避免了昂贵的膜,但它容易出现竞争性代谢途径。在本研究中,我们提出了一种使用特定定义的、设计好的微生物群落来避免这个问题的可能方法。在这里,我们将接种了设计好的群落的MEC的性能与使用天然土壤群落运行的MEC的性能进行了比较。

实验方法

我们采用了一种经济高效且简单的单室MEC设计。该MEC是气密的,体积为100毫升,并配备了使用数字万用表对电输出进行连续监测的装置。微生物来自印度尼西亚的环境样本,要么是作为被归类为设计好的群落的反硝化细菌分离物,要么是整个使用的天然土壤微生物群。设计好的群落由来自 属和 属的五个物种组成。顶空气体分布通过气相色谱仪定期监测。在培养结束时,通过下一代测序对天然土壤群落的组成进行了表征,并通过场发射扫描电子显微镜对阳极表面细菌的生长情况进行了观察。

结果与结论

我们发现使用设计好的群落的MEC呈现出更好的氢气产生情况,在达到稳定生长期后,该系统能够在很长一段时间内将顶空气体中的氢气浓度维持在相对稳定的水平。相比之下,接种了土壤微生物群的MEC在同一时间范围内顶空气体中的氢气分布出现了大幅下降。

新颖性与科学贡献

这项工作利用了从印度尼西亚环境样本中分离出的、能够在富含硝酸盐的环境中存活的设计好的反硝化细菌群落。在这里,我们提出使用设计好的群落作为一种生物学方法来避免MEC中的甲烷生成,作为当前化学/物理方法的一种简单且环保的替代方案。我们的研究结果提供了一种替代解决方案,以避免单室MEC中氢气损失的问题,并通过生物电化学途径优化生物氢气的生产。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b43a/10187575/23e6879d931f/FTB-61-4-f1.jpg

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