生物转化
丰度(生态学)
生物
多样性(政治)
中国
土壤水分
环境化学
砷
环境科学
生态学
化学
地理
生物化学
酶
有机化学
人类学
社会学
考古
作者
Siyu Zhang,Fang‐Jie Zhao,Guo‐Xin Sun,Jian‐Qiang Su,Xiao‐Ru Yang,Hu Li,Yong‐Guan Zhu
标识
DOI:10.1021/acs.est.5b00028
摘要
Microbe-mediated arsenic (As) biotransformation in paddy soils determines the fate of As in soils and its availability to rice plants, yet little is known about the microbial communities involved in As biotransformation. Here, we revealed wide distribution, high diversity, and abundance of arsenite (As(III)) oxidase genes (aioA), respiratory arsenate (As(V)) reductase genes (arrA), As(V) reductase genes (arsC), and As(III) S-adenosylmethionine methyltransferase genes (arsM) in 13 paddy soils collected across Southern China. Sequences grouped with As biotransformation genes are mainly from rice rhizosphere bacteria, such as some Proteobacteria, Gemmatimonadales, and Firmicutes. A significant correlation of gene abundance between arsC and arsM suggests that the two genes coexist well in the microbial As resistance system. Redundancy analysis (RDA) indicated that soil pH, EC, total C, N, As, and Fe, C/N ratio, SO42–-S, NO3–-N, and NH4+-N were the key factors driving diverse microbial community compositions. This study for the first time provides an overall picture of microbial communities involved in As biotransformation in paddy soils, and considering the wide distribution of paddy fields in the world, it also provides insights into the critical role of paddy fields in the As biogeochemical cycle.
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