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Community of thermoacidophilic and arsenic resistant microorganisms isolated from a deep profile of mine heaps

机译:从矿山的深处分离出的嗜热和抗砷微生物群落

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摘要

Soluble arsenic (As) in acidic feed solution may inhibit the copper (Cu) bioleaching process within mine heaps. To clarify the effect of soluble arsenic on the live biomass and bioxidative activity in heaps, toxicological assays were performed using a synthetic feed solution given by a mine company. The microorganisms had previously been isolated from two heap samples at up to 66 m depth, and cultured using specific media for chemolithotrophic acidophiles (pH 1–2) and moderate thermophiles (48°C), for arsenic tolerance assay. The four media with the highest biomass were selected to assay As-resistance; one culture (Q63h) was chosen to assay biooxidative activity, using a heap sample that contained chalcopyrite and covellite. We found that 0.5 g/L of As does not affect living biomass or biooxidative activity on Cu sulfides, but it dissolves Cu, while As precipitates as arsenic acid (H3AsO4·½H2O). The arsenic tolerant community, as identified by 16S rDNA gene sequence analysis, was composed of three main metabolic groups: chemolithotrophs (Leptospirillum, Sulfobacillus); chemolithoheterotrophs and organoheterotrophs as Acidovorax temperans, Pseudomonas alcaligenes, P. mendocina and Sphingomonas spp. Leptospirillum spp. and S.thermosulfidooxidans were the dominant taxa in the Q63–66 cultures from the deepest sample of the oldest, highest-temperature heap. The results indicated arsenic resistance in the microbial community, therefore specific primers were used to amplify ars (arsenic resistance system), aio (arsenite oxidase), or arr (arsenate respiratory reduction) genes from total sample DNA. Presence of arsB genes in S. thermosulfidooxidans in the Q63–66 cultures permits H3AsO4-As(V) detoxification and strengthens the community’s response to As.
机译:酸性进料溶液中的可溶性砷(As)可能会抑制矿堆中铜(Cu)的生物浸出过程。为了阐明可溶性砷对堆中活生物量和双氧化活性的影响,使用矿业公司提供的合成饲料溶液进行了毒理学测定。之前已从两个堆样品中分离出了最大深度为66 m的微生物,并使用针对化营养性嗜酸菌(pH 1-2)和中等嗜热性菌(48°C)的特定培养基进行了砷耐受性测定。选择四种具有最高生物量的培养基来测定抗As。选择一种培养物(Q63h),使用包含黄铜矿和陨石的堆样本来测定生物氧化活性。我们发现0.5 g / L的As不会影响生物量或对硫化铜的生物氧化活性,但会溶解Cu,而As则以砷酸(H3AsO4·1 / 2H2O)的形式沉淀。通过16S rDNA基因序列分析确定的耐砷性群落由三个主要的代谢组组成:化学营养型(Leptospirillum,磺基芽孢杆菌);化石异养营养体和有机异养营养体,如火豆酸杆菌,产假单胞菌,门氏假单胞菌和鞘氨醇单胞菌。钩端螺旋体在最古老的,温度最高的堆中,从最深的样品中发现,S63和S.thermosulfidooxidans是Q63-66培养物中的主要类群。结果表明了微生物群落中的砷抗性,因此使用特异性引物从样品总DNA中扩增出ars(砷抗性系统),aio(砷氧化还原酶)或arr(砷性呼吸减少)基因。在Q63-66文化中,热硫亚砜中存在arsB基因可以使H3AsO4-As(V)解毒,并增强社区对As的反应。

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