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Linking geochemistry with microbial community structure and function in sulfidic geothermal systems of Yellowstone National Park.

机译:将地球化学与黄石国家公园硫化地热系统中的微生物群落结构和功能联系起来。

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摘要

Members of the archaeal phylum Crenarchaeota are often associated with microbial communities in high-temperature (> 70 ˚C) geothermal springs. Environmental genome sequencing (metagenomics) has revealed that populations of Sulfolobales, Desulfurococcales, and Thermoproteales are abundant in hypoxic elemental sulfur sediments of Yellowstone National Park (YNP) and possess enzyme complexes that are implicated in the cycling of carbon, sulfur, and arsenic. Therefore, the primary objectives of this work were to (i) identify the abundant Desulfurococcales and Thermoproteales sequences in these habitats, (ii) characterize the growth and curate the genome of the first Thermoproteales representative isolated from YNP (Pyrobaculum yellowstonensis strain WP30), and (iii) establish a linkage between geochemistry and microbial community structure and function by identifying key proteins that are important to these populations in situ.;The primary Desulfurococcales populations were related to Acidilobus spp. and exhibited similar metabolic potential in near-neutral (pH 4-6) hypoxic elemental sulfur sediments and acidic (pH ∼3) iron oxide mats. These populations are primarily anaerobic heterotrophs that ferment complex organic carbon and are auxotrophic with regards to numerous vitamins and cofactors. These organisms are often found together with members of the Thermoproteales, which are widely distributed in elemental sulfur sediments, acidic iron oxide mats, and streamer communities. P. yellowstonensis strain WP30 was obtained from a hypoxic elemental sulfur sediment habitat with high concentrations of arsenic. This organism was shown to reduce elemental sulfur and/or arsenate in the presence of yeast extract. The complete genome of str. WP30 contained numerous dimethylsulfoxide molybopterin (DMSO-MPT) proteins, which are inovolved in redox reactions of inorganic constituents (i.e. sulfur and arsenic), and genomic comparisons revealed that this organism is closely related to native Pyrobaculum populations. The distribution of Thermoproteales populations was correlated with pH, while the presence of respiratory complexes (terminal oxidases, DMSO-MPT, and dissimilatory sulfate reductases) was correlated with the presence of key electron donors and acceptors. Intron sequences identified in Thermoproteales 16S rRNA genes and were shown in silico to prevent the binding of "universal" primers that are often used in environmental surveys. These metagenomic, microbiological, and geochemical studies have advanced the understanding of Crenarchaeota diversity and function in YNP.
机译:古细菌门Crenarchaeota的成员通常与高温(> 70℃)的地热泉中的微生物群落有关。环境基因组测序(基因组学)已显示,黄石国家公园(YNP)的低氧元素硫沉积物中,硫代小球藻,脱硫代球菌和热蛋白酶的种群丰富,并具有与碳,硫和砷循环有关的酶复合物。因此,这项工作的主要目的是(i)在这些栖息地中鉴定出丰富的Desulfurococcales和Thermoproteales序列,(ii)表征从YNP(Pyrobaculum yellowstonensis菌株WP30)分离出来的第一个Thermoproteales代表的生长和调控基因组,以及(iii)通过鉴定对这些种群重要的关键蛋白质,在地球化学与微生物群落结构和功能之间建立联系。;主要的脱硫球菌种群与嗜酸菌属有关。并且在接近中性(pH 4-6)的低氧元素硫沉积物和酸性(pH 〜3)氧化铁垫中表现出相似的代谢潜能。这些种群主要是厌氧异养菌,可发酵复杂的有机碳,并且在多种维生素和辅助因子方面是营养缺陷的。这些生物通常与热蛋白酶的成员一起发现,热蛋白酶的成员广泛分布在元素硫沉积物中,酸性氧化铁垫和流光群落中。 P. yellowstonensis菌株WP30是从具有高浓度砷的低氧元素硫沉积物生境获得的。在酵母提取物的存在下,该生物显示出还原元素硫和/或砷酸盐的能力。 str。的完整基因组。 WP30包含许多二甲基亚砜钼蝶呤(DMSO-MPT)蛋白,这些蛋白参与无机成分(即硫和砷)的氧化还原反应,并且基因组比较表明,该生物体与天然焦竹种群密切相关。热蛋白酶种群的分布与pH相关,而呼吸复合物(末端氧化酶,DMSO-MPT和异化硫酸盐还原酶)的存在与关键电子供体和受体的存在相关。在Thermoproteales 16S rRNA基因中鉴定出的内含子序列已在计算机上显示,可防止环境调查中经常使用的“通用”引物结合。这些宏基因组学,微生物学和地球化学研究提高了对YNP中Crenarchaeota多样性和功能的了解。

著录项

  • 作者

    Jay, Zackary James.;

  • 作者单位

    Montana State University.;

  • 授予单位 Montana State University.;
  • 学科 Geobiology.;Microbiology.;Environmental science.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 225 p.
  • 总页数 225
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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