Hydrogeological and geological partitioning of iron and sulfur cycling bacterial consortia in subsurface coal-based mine waters.

IF 3.5 3区 生物学 Q2 MICROBIOLOGY
André Soares, Sara Maria Edwards Rassner, Arwyn Edwards, Gareth Farr, Nia Blackwell, Henrik Sass, Guglielmo Persiani, David Schofield, Andrew C Mitchell
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引用次数: 0

Abstract

Pyrite oxidation drives iron and sulfur availability across Earth's subsurface and is partly microbially mediated. Subsurface microbial communities accelerate this process at circumneutral pH directly by weathering pyritic surfaces and indirectly by causing changes to the surrounding microenvironment, thereby further accelerating pyrite weathering. However, our understanding of community structure dynamics and associated biogeochemistry in Fe- and S-rich lithologies, e.g. pyritic coal, is limited. Here, we present the first comprehensive regional and seasonal genus-level survey of bacterial groundwater communities in a pyritic coal-based aquifer in the South Wales Coalfield (SWC), using 16S rRNA gene amplicon sequencing. Seasonal changes in community structure were limited, suggesting limited influence of surface processes on subsurface communities. Instead, hydrogeologically distinct mine water blocks (MWB) and coal rank largely explained bacterial community structure variation across sites. Fe(II)-oxidizing Betaproteobacteriales genera Gallionella and Sideroxydans dominated the bacterial communities across nine sites and seven MWBs, while three sites within a single MWB, were dominated by S-oxidizing Epsilonbacteraeota genera Sulfuricurvum and Sulfurovum. The cooccurrence of pairs of Fe(II)- and S-oxidizing bacterial genera suggests functional redundancy, which coupled with genus-specific morphologies and life strategies, indicates the importance of distinct environmental and ecological niches within the SWC groundwater at seasonal and regional scales.

煤基地下水中铁硫循环菌群的水文地质与地质分配。
黄铁矿氧化驱动地球地下铁和硫的可用性,部分是由微生物介导的。在环中性pH下,地下微生物群落通过风化黄铁矿表面直接加速了这一过程,并通过引起周围微环境的变化间接加速了黄铁矿风化。然而,我们对富铁和富s岩性(如黄铁矿煤)的群落结构动态和相关生物地球化学的了解有限。在这里,我们首次使用16S rRNA基因扩增子测序,对南威尔士煤田(SWC)黄铁矿煤基含水层的地下水细菌群落进行了全面的区域和季节属水平调查。群落结构的季节变化有限,表明地表过程对地下群落的影响有限。相反,水文地质上不同的矿井水块(MWB)和煤阶在很大程度上解释了不同地点细菌群落结构的变化。铁(II)氧化Betaproteobacteriales属Gallionella和Sideroxydans在9个位点和7个MWB中占主导地位,而s -氧化Epsilonbacteraeota属sulphicurvum和Sulfurovum在单个MWB中的3个位点占主导地位。铁(II)-和s-氧化细菌属对的共存表明功能冗余,加上属特异性形态和生命策略,表明在季节和区域尺度上SWC地下水中不同的环境和生态位的重要性。
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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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