Metagenomic analysis of microbial community and function involved in cd-contaminated soil

生物 基因组 小桶 代谢途径 微生物种群生物学 土壤微生物学 微生物 蛋白质细菌 土壤污染 微生物生态学 细菌 污染 生态学 土壤水分 生物化学 新陈代谢 基因 16S核糖体RNA 遗传学 转录组 基因表达
作者
Gang Feng,Tian Xie,Xin Wang,Jiuyuan Bai,Lin Tang,Hai Zhao,Wei Wei,Maolin Wang,Yun Zhao
出处
期刊:BMC Microbiology [BioMed Central]
卷期号:18 (1) 被引量:201
标识
DOI:10.1186/s12866-018-1152-5
摘要

Soil contaminated with the heavy metal Cadmium (Cd) is a widespread problem in many parts of the world. Based on metagenomic analysis, we investigated the functional potential and structural diversity of the microbial community in Cd-contaminated and non-contaminated soil samples and we explored the associated metabolic pathway network in cluster of orthologous groups (COG) and Kyoto Encyclopedia of Genes and Genomes (KEGG). The results showed that microorganisms in these soils were quite abundant, and many of them possessed numerous physiological functions. However, Cd-contamination has the potential to reduce the microbial diversity and further alter the community structure in the soil. Notably, function analysis of the crucial microorganisms (e. g. Proteobacteria, Sulfuricella and Thiobacillus) indicated that these bacteria and their corresponding physiological functions were important for the community to cope with Cd pollution. The COG annotation demonstrated that the predominant category was the microbial metabolism cluster in both soil samples, while the relative abundance of metabolic genes was increased in the Cd-contaminated soil. The KEGG annotation results exhibited that the non-contaminated soil had more genes, pathways, modules, orthologies and enzymes involved in metabolic pathways of microbial communities than the Cd-contaminated soil. The relative abundance of some dominant KEGG pathways increased in the Cd contaminated soil, and they were mostly enriched to the metabolism, biosynthesis and degradation of amino acids, fatty acids and nucleotides, which was related to Cd tolerance of the microorganisms. Cd-contamination can decrease the taxonomic species of microbes in soil and change the soil microbial composition. The functional pathways involved in the soil change with microbial structure variation, many of which are related to the heavy metal tolerance of soil microbes. The Cd-contaminated soil microbes is a potential resource for exploring cadmium resistant or tolerant bacteria.
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