生物
土壤水分
厚壁菌
α蛋白细菌
土壤微生物学
微生物种群生物学
蛋白质细菌
表土
植物
生态学
细菌
16S核糖体RNA
遗传学
作者
Frank Reith,Joël Brugger,Carla M. Zammit,Adrienne Gregg,Katherine C. Goldfarb,Gary L. Andersen,Todd Z. DeSantis,Yvette M. Piceno,Eoin Brodie,Zhenmei Lü,Zhili He,Jizhong Zhou,Steven A. Wakelin
出处
期刊:The ISME Journal
[Springer Nature]
日期:2012-06-07
卷期号:6 (11): 2107-2118
被引量:97
标识
DOI:10.1038/ismej.2012.48
摘要
Abstract Links between microbial community assemblages and geogenic factors were assessed in 187 soil samples collected from four metal-rich provinces across Australia. Field-fresh soils and soils incubated with soluble Au(III) complexes were analysed using three-domain multiplex-terminal restriction fragment length polymorphism, and phylogenetic (PhyloChip) and functional (GeoChip) microarrays. Geogenic factors of soils were determined using lithological-, geomorphological- and soil-mapping combined with analyses of 51 geochemical parameters. Microbial communities differed significantly between landforms, soil horizons, lithologies and also with the occurrence of underlying Au deposits. The strongest responses to these factors, and to amendment with soluble Au(III) complexes, was observed in bacterial communities. PhyloChip analyses revealed a greater abundance and diversity of Alphaproteobacteria (especially Sphingomonas spp.), and Firmicutes (Bacillus spp.) in Au-containing and Au(III)-amended soils. Analyses of potential function (GeoChip) revealed higher abundances of metal-resistance genes in metal-rich soils. For example, genes that hybridised with metal-resistance genes copA, chrA and czcA of a prevalent aurophillic bacterium, Cupriavidus metallidurans CH34, occurred only in auriferous soils. These data help establish key links between geogenic factors and the phylogeny and function within soil microbial communities. In particular, the landform, which is a crucial factor in determining soil geochemistry, strongly affected microbial community structures.
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