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Microbiology and potential applications of aerobic methane oxidation coupled to denitrification (AME-D) process : a review

机译:需氧甲烷氧化与反硝化(AME-D)结合的微生物学及其潜在应用:综述

摘要

Aerobic methane oxidation coupled to denitrification (AME-D) is an important link between the global methane and nitrogen cycles. This mini-review updates discoveries regarding aerobic methanotrophs and denitrifiers, as a prelude to spotlight the microbial mechanism and the potential applications of AME-D. Until recently, AME-D was thought to be accomplished by a microbial consortium where denitrifying bacteria utilize carbon intermediates, which are excreted by aerobic methanotrophs, as energy and carbon sources. Potential carbon intermediates include methanol, citrate and acetate. This mini-review presents microbial thermodynamic estimations and postulates that methanol is the ideal electron donor for denitrification, and may serve as a trophic link between methanotrophic bacteria and denitrifiers. More excitingly, new discoveries have revealed that AME-D is not only confined to the conventional synergism between methanotrophic bacteria and denitrifiers. Specifically, an obligate aerobic methanotrophic bacterium, Methylomonas denitrificans FJG1, has been demonstrated to couple partial denitrification with methane oxidation, under hypoxia conditions, releasing nitrous oxide as a terminal product. This finding not only substantially advances the understanding of AME-D mechanism, but also implies an important but unknown role of aerobic methanotrophs in global climate change through their influence on both the methane and nitrogen cycles in ecosystems. Hence, further investigation on AME-D microbiology and mechanism is essential to better understand global climate issues and to develop niche biotechnological solutions. This mini-review also presents traditional microbial techniques, such as pure cultivation and stable isotope probing, and powerful microbial techniques, such as (meta-) genomics and (meta-) transcriptomics, for deciphering linked methane oxidation and denitrification. Although AME-D has immense potential for nitrogen removal from wastewater, drinking water and groundwater, bottlenecks and potential issues are also discussed.
机译:需氧甲烷氧化与反硝化(AME-D)耦合是全球甲烷和氮循环之间的重要链接。这份小型回顾更新了有关好氧甲烷氧化菌和反硝化剂的发现,以此作为聚焦微生物机理和AME-D潜在应用的序幕。直到最近,AME-D还被认为是由微生物联合会实现的,在该联合会中,反硝化细菌利用碳中间体(需氧的甲烷营养菌排泄出的碳中间体)作为能源和碳源。潜在的碳中间体包括甲醇,柠檬酸盐和乙酸盐。这篇小型综述提出了微生物的热力学估算,并假设甲醇是反硝化的理想电子供体,并且可以充当甲烷营养细菌和反硝化剂之间的营养纽带。更令人兴奋的是,新发现表明,AME-D不仅限于甲烷氧化营养细菌和反硝化剂之间的常规协同作用。具体地,已经证明专性需氧甲烷营养型细菌脱氮甲烷单胞菌FJG1在缺氧条件下将部分脱氮与甲烷氧化结合,释放出一氧化二氮作为最终产物。这一发现不仅大大提高了对AME-D机理的了解,而且还暗示了好氧甲烷菌对全球生态系统中甲烷和氮循环的影响,但在全球气候变化中起着重要但未知的作用。因此,对AME-D微生物学和机理的进一步研究对于更好地理解全球气候问题和开发利基生物技术解决方案至关重要。这份小型综述还介绍了传统的微生物技术,例如纯培养和稳定的同位素探测,以及强大的微生物技术,例如(元)基因组学和(元)转录组学,用于解密关联的甲烷氧化和反硝化作用。尽管AME-D具有从废水,饮用水和地下水中脱氮的巨大潜力,但也讨论了瓶颈和潜在问题。

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