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Development of metal tolerance in soil bacterial communities exposed to experimentally increased metal levels.在实验中增加金属水平的条件下,土壤细菌群落对金属耐受性的发展。
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Microbiological Comparisons within and across Contiguous Lacustrine, Paleosol, and Fluvial Subsurface Sediments.连续湖相、古土壤和河流地下沉积物中的微生物比较。
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Effect of metal-rich sludge amendments on the soil microbial community.富金属污泥改良剂对土壤微生物群落的影响。
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Phospholipid Fatty Acid composition, biomass, and activity of microbial communities from two soil types experimentally exposed to different heavy metals.两种土壤类型中微生物群落的磷脂脂肪酸组成、生物量和活性对不同重金属的实验暴露。
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Bacterial biomass, metabolic state, and activity in stream sediments: relation to environmental variables and multiple assay comparisons.溪流沉积物中的细菌生物量、代谢状态和活性:与环境变量和多种测定方法比较的关系。
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Structure and seasonal dynamics of hyporheic zone microbial communities in free-stone rivers of the western United States.美国西部基岩河流潜流带微生物群落的结构与季节动态
Microb Ecol. 2003 Aug;46(2):200-15. doi: 10.1007/BF03036883.
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Differences in hyporheic-zone microbial community structure along a heavy-metal contamination gradient.沿重金属污染梯度的潜流带微生物群落结构差异。
Appl Environ Microbiol. 2003 Sep;69(9):5563-73. doi: 10.1128/AEM.69.9.5563-5573.2003.
10
Cultivation-dependent and -independent approaches for determining bacterial diversity in heavy-metal-contaminated soil.用于确定重金属污染土壤中细菌多样性的依赖培养和不依赖培养方法。
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沿重金属污染梯度的浅层潜流带微生物群落结构的季节动态

Seasonal dynamics of shallow-hyporheic-zone microbial community structure along a heavy-metal contamination gradient.

作者信息

Feris Kevin P, Ramsey Philip W, Frazar Chris, Rillig Matthias, Moore Johnnie N, Gannon James E, Holben William E

机构信息

Microbial Ecology Program, Division of Biological Sciences, University of Montana, Missoula, Montana 59812, USA.

出版信息

Appl Environ Microbiol. 2004 Apr;70(4):2323-31. doi: 10.1128/AEM.70.4.2323-2331.2004.

DOI:10.1128/AEM.70.4.2323-2331.2004
PMID:15066828
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC383024/
Abstract

Heavy metals contaminate numerous freshwater streams and rivers worldwide. Previous work by this group demonstrated a relationship between the structure of hyporheic microbial communities and the fluvial deposition of heavy metals along a contamination gradient during the fall season. Seasonal variation has been documented in microbial communities in numerous terrestrial and aquatic environments, including the hyporheic zone. The current study was designed to assess whether relationships between hyporheic microbial community structure and heavy-metal contamination vary seasonally by monitoring community structure along a heavy-metal contamination gradient for more than a year. No relationship between total bacterial abundance and heavy metals was observed (R(2) = 0.02, P = 0.83). However, denaturing gradient gel electrophoresis pattern analysis indicated a strong and consistent linear relationship between the difference in microbial community composition (populations present) and the difference in the heavy metal content of hyporheic sediments throughout the year (R(2) = 0.58, P < 0.001). Correlations between heavy-metal contamination and the abundance of four specific phylogenetic groups (most closely related to the alpha, beta, and gamma-proteobacteria and cyanobacteria) were apparent only during the fall and early winter, when the majority of organic matter is deposited into regional streams. These seasonal data suggest that the abundance of susceptible populations responds to heavy metals primarily during seasons when the potential for growth is highest.

摘要

重金属污染着全球众多的淡水溪流和河流。该研究团队之前的工作表明,在秋季,潜流带微生物群落结构与沿污染梯度的河流重金属沉积之间存在关联。在包括潜流带在内的众多陆地和水生环境中,微生物群落的季节性变化已有记录。本研究旨在通过对沿重金属污染梯度的群落结构进行为期一年多的监测,评估潜流带微生物群落结构与重金属污染之间的关系是否随季节变化。未观察到总细菌丰度与重金属之间的关系(R² = 0.02,P = 0.83)。然而,变性梯度凝胶电泳图谱分析表明,全年微生物群落组成差异(存在的种群)与潜流沉积物重金属含量差异之间存在强烈且一致的线性关系(R² = 0.58,P < 0.001)。重金属污染与四个特定系统发育类群(与α-、β-和γ-变形菌以及蓝细菌关系最为密切)的丰度之间的相关性仅在秋季和初冬期间明显,此时大部分有机物质会沉积到区域溪流中。这些季节性数据表明,易感种群的丰度主要在生长潜力最高的季节对重金属作出反应。