具有酰胺降解能力的金属还原假单胞菌菌株135的分离与鉴定

M. H. Yakasai, M. F. Rahman, M. Rahim, M. E. Khayat, N. A. Shamaan, M. Shukor
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引用次数: 11

摘要

污染场地中重金属和有机异种污染物的存在证明了应用多种微生物降解剂或具有同时解毒多种污染物能力的微生物是合理的。钼是一种重要的重金属,对反刍动物有很高的毒性。反刍动物,如牛和山羊,在浓度低至百万分之几的情况下,会出现严重的坏血病,导致死亡。本研究从污染土壤中分离出一种具有酰胺降解能力的钼还原菌。这种细菌利用葡萄糖作为最好的电子供体,将钼酸钠形式的钼还原为钼蓝。最大的pH降低发生在6.0和6.3之间,细菌在25和40℃之间表现出良好的降低。钼酸盐浓度在15 ~ 25 mM时,钼的还原作用最大。其他碳源,包括有毒的异种生物,如酰胺,筛选其支持钼酸盐还原的能力。在所有酰胺中,只有丙烯酰胺能支持钼还原。其他酰胺;如乙酰胺和丙酰胺可以支持生长。系统发育分析初步鉴定该细菌为假单胞菌135菌株。这种细菌在修复被钼污染的地方是必不可少的,特别是在与丙烯酰胺(一种已知的土壤稳定剂)共污染的农业土壤中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Isolation and characterization of a metal-reducing Pseudomonas sp. strain 135 with amide-degrading capability
The presence of both heavy metals and organic xenobiotic pollutants in a contaminated site justifies the application of either a multitude of microbial degraders or microorganisms having the capacity to detoxify a number of pollutants at the same time. Molybdenum is an essential heavy metal that is toxic to ruminants at a high level. Ruminants such as cow and goats experience severe hypocuprosis leading to scouring and death at a concentration as low as several parts per million. In this study, a molybdenum-reducing bacterium with amide-degrading capacity has been isolated from contaminated soils. The bacterium, using glucose as the best electron donor reduces molybdenum in the form of sodium molybdate to molybdenum blue. The maximal pH reduction occurs between 6.0 and 6.3, and the bacterium showed an excellent reduction in temperatures between 25 and 40 oC. The reduction was maximal at molybdate concentrations of between 15 and 25 mM. Molybdenum reduction incidentally was inhibited by several toxic heavy metals. Other carbon sources including toxic xenobiotics such as amides were screened for their ability to support molybdate reduction. Of all the amides, only acrylamide can support molybdenum reduction. The other amides; such as acetamide and propionamide can support growth. Analysis using phylogenetic analysis resulted in a tentative identification of the bacterium as Pseudomonas sp. strain 135. This bacterium is essential in remediating sites contaminated with molybdenum, especially in agricultural soil co-contaminated with acrylamide, a known soil stabilizer.
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