Department of Earth Sciences, National Cheng Kung University, Tainan, Taiwan.
J Environ Sci Health A Tox Hazard Subst Environ Eng. 2011;46(11):1239-46. doi: 10.1080/10934529.2011.598802.
Microbial reduction of arsenate [As(V)] plays an important role in arsenic (As) mobilization in aqueous environments. In this study, we investigated reduction of arsenate by different bacterial isolates such as OSBH(1) (GU329913), OSBH(2) (GU329914), OSBH(3) (GU329915), OSBH(4) (GU329916) and OSBH(5) (GU329917), isolated from the oil sludge of a sewage treatment plant operated by the China Petroleum Refinery Company in Kaohsiung, southern Taiwan. Bacterial strains of pure culture were identified by 16S rRNA analysis (≥99 % nucleotide similarity). Morphological and 16S rRNA analysis show that the isolate OSBH(1) is similar to E. coli, OSBH(2) is similar to P. stutzeri, OSBH(3) is similar to P. putida, OSBH(4) is similar to P. aeruginosa, and OSBH(5) is similar to B. Cereus. The As(V) was transformed to As(III) in the presence of isolates OSBH(2) and OSBH(5) by a detoxification process. The potential reduction rates of As(V) were higher in the presence of isolate OSBH(5) compared to the isolate OSBH(2). The microbial growth (cell/mL) of isolate OSBH(5) was significantly higher in culture medium compared to OSBH(2). The bacterial isolates such as OSBH(1), OSBH(3) and OSBH(4) were found to be incapable of transforming the As(V). It is concluded that the activity of the oil-degrading bacterial isolates described in this work contributes to the mobilization of As in the more toxic As(III) form that affects biotic life.
微生物还原砷酸盐[As(V)]在水溶液中砷的迁移中起着重要作用。本研究从台湾南部高雄中国石油炼油厂污水处理厂的油泥中分离出不同的细菌分离物,如 OSBH(1)(GU329913)、OSBH(2)(GU329914)、OSBH(3)(GU329915)、OSBH(4)(GU329916)和 OSBH(5)(GU329917),研究了它们对砷酸盐的还原作用。通过 16S rRNA 分析(≥99%核苷酸相似性)鉴定细菌纯培养物。形态学和 16S rRNA 分析表明,分离物 OSBH(1)与大肠杆菌相似,OSBH(2)与施氏假单胞菌相似,OSBH(3)与恶臭假单胞菌相似,OSBH(4)与铜绿假单胞菌相似,OSBH(5)与蜡样芽胞杆菌相似。在分离物 OSBH(2)和 OSBH(5)的存在下,As(V)通过解毒过程转化为 As(III)。在分离物 OSBH(5)存在下,As(V)的潜在还原率高于分离物 OSBH(2)。与 OSBH(2)相比,分离物 OSBH(5)在培养基中的微生物生长(细胞/mL)明显更高。发现分离物 OSBH(1)、OSBH(3)和 OSBH(4)不能转化 As(V)。综上所述,本工作中描述的石油降解细菌分离物的活性有助于砷以更具毒性的 As(III)形式迁移,从而影响生物生命。