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Diversity, abundance and activity of microbial communities associated with anoxia in a hypersaline lake, the Salton Sea, California.

机译:加利福尼亚州索尔顿海的高盐湖中与缺氧相关的微生物群落的多样性,丰度和活性。

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摘要

Anaerobic environments are globally widespread and are colonized by microbes whose metabolic activities drive many of Earth's geochemical cycles. In this work, patterns of abundance, community structure, phylogenetic diversity, and activity of Archaea and Bacteria were compared along gradients in subsurface sediments and the water column of the Salton Sea, California.;Quantitative PCR assays (qPCR) of subsurface sediments revealed Archaea to be dominant at all depths, whereas Bacteria and Crenarchaeota were less abundant and exhibited stronger responses to changes in carbon and salinity with depth. Bacterial community structure (based on T-RFLP) patterns were correlated with salinity, whereas archaeal community patterns were weakly correlated with carbon. Archaeal diversity (16S rRNA) revealed diverse communities of Euryarchaeota and Crenarchaeota, and many were affiliated with previously described marine groups. The abundance of these groups across all depths suggests that several putatively marine archaeal groups are adapted to elevated salinity (5.0--11.8%) and sulfidic conditions of Salton Sea sediments. Differential responses of archaeal and bacterial communities to geochemical patterns are consistent with the hypothesis that adaptations to energy stress and availability distinguish the ecologies of these domains.;Shifts in water column microbial communities were strongly correlated with sulfide gradients formed by wind-driven lake mixing events. Actinobacteria, gamma--Proteobacteria (purple sulfur bacteria), and Chlorobi (green sulfur bacteria) were more prevalent at stations with higher sulfide concentration, and Synechococcus was the most abundant lineage at most stations. Archaeal diversity was low, and sequences were affiliated with methylotrophic Methanohalophilus, Methanococcoides, Methanosarcinales, and Marine Benthic Group (MBG)-D sequences. Compositional differences detected between stations may reflect differential tolerances or utilization of sulfide and other reduced-sulfur compounds by the planktonic microbial community.;Rate measurements, porewater constituents, and H2 concentrations of subsurface sediments were used to calculate depth profiles of free energy yield for dissimilatory sulfate reduction and energy flux. Sulfate reduction was found to be energetically favorable at all depths. In support of predictions of species-energy theory, significant, positive relationships between SRR and energy flux and bacterial abundance/richness were found. Estimations of energy flux may provide a unique means by which to compare species richness patterns across microbial systems.
机译:厌氧环境在全球范围内广泛存在,并被微生物定居,其代谢活动驱动着地球的许多地球化学循环。在这项工作中,沿加利福尼亚州萨尔顿海的地下沉积物和水柱中的梯度,比较了古细菌和细菌的丰度,群落结构,系统发育多样性以及活性的模式。;地下沉积物的定量PCR分析(qPCR)显示了古细菌在所有深度都占主导地位,而细菌和Crenarchaeota则较少,对碳和盐度随深度的变化表现出较强的响应。细菌群落结构(基于T-RFLP)模式与盐度相关,而古细菌群落模式与碳弱相关。古细菌多样性(16S rRNA)揭示了Euryarchaeota和Crenarchaeota的多样性,其中许多与先前描述的海洋群有关。这些群体在所有深度的丰富性表明,一些假定的海洋古细菌群体适应了盐度较高的盐度(5.0--11.8%)和萨尔顿海沉积物的硫化条件。古细菌和细菌群落对地球化学模式的不同响应与以下假设相符:对能量压力和可利用性的适应区分了这些区域的生态学。水柱微生物群落的变化与风驱动湖泊混合事件形成的硫化物梯度密切相关。 。放线菌,γ-变形杆菌(紫色硫细菌)和克洛比(绿色硫细菌)在硫化物浓度较高的站点上更为普遍,而合成球菌是大多数站点中最丰富的谱系。古细菌多样性低,并且序列与甲基营养型甲烷嗜盐菌,甲烷球菌,甲烷菌和海洋底栖生物群(MBG)-D序列相关。站点之间检测到的成分差异可能反映了浮游微生物群落对硫化物和其他还原硫化合物的差异容忍度或利用率。速率测量,孔隙水成分和地下沉积物的H2浓度用于计算自由能产量的深度剖面,以用于模拟硫酸盐还原和能量通量。发现在所有深度上硫酸盐的还原在能量上都是有利的。为了支持对物种能量理论的预测,SRR与能量通量和细菌丰度/丰富度之间存在显着的正相关关系。能量通量的估算可以提供一种独特的方法,通过该方法可以比较整个微生物系统中物种的丰富度模式。

著录项

  • 作者

    Swan, Brandon Kenneth.;

  • 作者单位

    University of California, Santa Barbara.;

  • 授予单位 University of California, Santa Barbara.;
  • 学科 Biology Microbiology.;Geochemistry.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 150 p.
  • 总页数 150
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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