Nitrate-reducing microorganisms prevent souring of an oil field produced water storage pond.

IF 3.5 3区 生物学 Q2 MICROBIOLOGY
Gabrielle Scheffer, Jayne Rattray, Paul Evans, Wei Shi, Srijak Bhatnagar, Casey R J Hubert
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引用次数: 0

Abstract

Nitrate addition for mitigating sulfide production in oil field systems has been studied in laboratory settings and in some subsurface oil reservoirs. To promote water recycling and reuse associated with oil reservoirs produced by hydraulic fracturing, high-salinity produced waters are temporarily stored in surface ponds prior to subsequent reinjection into the subsurface. In this study, nitrate was added directly to a storage pond to prevent sulfide accumulation. DNA sequencing of pond water over a 4-week period revealed a decrease in the proportion of sulfate-reducing microorganisms following nitrate application. Sulfate levels remained stable during this period, whereas nitrate and nitrite fluctuated in the days following the nitrate addition. Metagenome-assembled genomes (MAGs) reconstructed from the pond water microbiome highlighted different organisms with genes for organoheterotrophic and lithoheterotrophic nitrate reduction, whereas genes associated with sulfide production via sulfate or thiosulfate reduction were barely detected. Within those MAGs, genes for acetate metabolism were observed, consistent with acetate decreasing substantially in the pond water in the presence of nitrate. After nitrate was consumed an increase in relative abundance of putative autotrophic microorganisms was observed (e.g. Arhodomonas, Guyparkeria, and Psychroflexus), corresponding to a drop in total inorganic carbon measurements in the storage pond. This trial offers an overview on microbial processes taking place in storage pond environments in response to nitrate addition.

硝酸还原微生物防止油田采出水储存池酸化。
在实验室环境和一些地下油藏中,研究了在油田系统中添加硝酸盐以减少硫化物的产生。为了促进水力压裂采出油藏的水循环和再利用,高矿化度的采出水在回注到地下之前暂时储存在地表池塘中。在本研究中,为了防止硫化物的积累,直接在储水池中添加硝酸盐。在4周的时间里,对池塘水的DNA测序显示,施用硝酸盐后,硫酸盐还原微生物的比例下降。在此期间,硫酸盐水平保持稳定,而硝酸盐和亚硝酸盐在添加硝酸盐后的几天内波动。从池塘水微生物组中重建的宏基因组组装基因组(MAGs)突出了具有有机异养和岩石异养硝酸盐还原基因的不同生物体,而通过硫酸盐或硫代硫酸盐还原产生硫化物的相关基因几乎没有检测到。在这些mag中,观察到醋酸盐代谢基因,这与硝酸盐存在时池塘水中醋酸盐大幅减少的情况一致。在消耗硝酸盐后,观察到假定的自养微生物的相对丰度增加(例如,Arhodomonas, Guyparkeria和Psychroflexus),对应于存储池中总无机碳测量值的下降。本试验提供了一个概述微生物过程发生在存储池环境响应硝酸盐添加。
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来源期刊
FEMS microbiology ecology
FEMS microbiology ecology 生物-微生物学
CiteScore
7.50
自引率
2.40%
发文量
132
审稿时长
3 months
期刊介绍: FEMS Microbiology Ecology aims to ensure efficient publication of high-quality papers that are original and provide a significant contribution to the understanding of microbial ecology. The journal contains Research Articles and MiniReviews on fundamental aspects of the ecology of microorganisms in natural soil, aquatic and atmospheric habitats, including extreme environments, and in artificial or managed environments. Research papers on pure cultures and in the areas of plant pathology and medical, food or veterinary microbiology will be published where they provide valuable generic information on microbial ecology. Papers can deal with culturable and non-culturable forms of any type of microorganism: bacteria, archaea, filamentous fungi, yeasts, protozoa, cyanobacteria, algae or viruses. In addition, the journal will publish Perspectives, Current Opinion and Controversy Articles, Commentaries and Letters to the Editor on topical issues in microbial ecology. - Application of ecological theory to microbial ecology - Interactions and signalling between microorganisms and with plants and animals - Interactions between microorganisms and their physicochemical enviornment - Microbial aspects of biogeochemical cycles and processes - Microbial community ecology - Phylogenetic and functional diversity of microbial communities - Evolutionary biology of microorganisms
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