Department of Environmental Science and Engineering, Gwangju Institute of Science and Technology (GIST), 261 Cheomdan-gwagiro, Buk-gu, Gwangju, 500-712, Republic of Korea.
Environ Geochem Health. 2010 Apr;32(2):95-105. doi: 10.1007/s10653-009-9268-z. Epub 2009 Jun 23.
Arsenic is subject to microbial interactions, which support a wide range of biogeochemical transformations of elements in natural environments such as wetlands. The arsenic detoxification potential of the bacterial strains was investigated with the arsenite oxidation gene, aox genotype, which were isolated from the natural and constructed wetlands. The isolates were able to grow in the presence of 10 mM of sodium arsenite (As(III) as NaAsO(2)) and 1 mM of D: +glucose. Phylogenetic analysis based on 16S rRNA gene sequencing indicated that these isolated strains resembled members of the genus that have arsenic-resistant systems (Acinetobacter sp., Aeromonas sp., Agrobacterium sp., Comamonas sp., Enterobacter sp., Pantoea sp., and Pseudomonas sp.) with sequence similarities of 81-98%. One bacterial isolate identified as Pseudomonas stutzeri strain GIST-BDan2 (EF429003) showed the activity of arsenite oxidation and existence of aoxB and aoxR gene, which could play an important role in arsenite oxidation to arsenate. This reaction may be considered as arsenic detoxification process. The results of a batch test showed that P. stutzeri GIST-BDan2 (EF429003) completely oxidized in 1 mM of As(III) to As(V) within 25-30 h. In this study, microbial activity was evaluated to provide a better understanding of arsenic biogeochemical cycle in both natural and constructed wetlands, where ecological niches for microorganisms could be different, with a specific focus on arsenic oxidation/reduction and detoxification.
砷会受到微生物相互作用的影响,这些相互作用支持自然环境(如湿地)中元素的广泛生物地球化学转化。本研究从天然和人工湿地中分离出具有亚砷酸盐氧化基因(aox 基因型)的细菌菌株,以调查其砷解毒潜力。这些分离株能够在 10 mM 亚砷酸钠(As(III) 作为 NaAsO(2))和 1 mM D: +葡萄糖的存在下生长。基于 16S rRNA 基因测序的系统发育分析表明,这些分离株类似于具有砷抗性系统的属成员(不动杆菌属、气单胞菌属、农杆菌属、丛毛单胞菌属、肠杆菌属、泛菌属和假单胞菌属),序列相似性为 81-98%。一种鉴定为恶臭假单胞菌 GIST-BDan2 株(EF429003)的细菌分离株表现出亚砷酸盐氧化活性和 aoxB 和 aoxR 基因的存在,这些基因可能在将亚砷酸盐氧化为砷酸盐方面发挥重要作用。这一反应可被视为砷解毒过程。分批试验结果表明,恶臭假单胞菌 GIST-BDan2(EF429003)在 25-30 小时内将 1 mM 的 As(III) 完全氧化为 As(V)。本研究评估了微生物活性,以更好地了解天然和人工湿地中的砷生物地球化学循环,其中微生物的生态位可能不同,特别关注砷的氧化/还原和解毒。