Suppr超能文献

评价三种活性炭对水相沉积物中多氯联苯的联合吸附和生物降解作用。

Evaluation of three activated carbons for combined adsorption and biodegradation of PCBs in aquatic sediment.

机构信息

BRGM - Water, Environment & Ecotechnology Division (D3E), 3 av. Claude Guillemin, 45060 Orléans, Cedex 2, France.

BRGM - Laboratory Division, 3 av. Claude Guillemin, 45060 Orléans, Cedex 2, France.

出版信息

Water Res. 2014 Aug 1;59:304-15. doi: 10.1016/j.watres.2014.04.021. Epub 2014 Apr 21.

Abstract

Three commercial granular activated carbons (GACs) were studied at laboratory scale with a view to the combined adsorption and biodegradation of PCBs in aquatic sediment. The three GACs, with contrasting physico-chemical characteristics, all show a high adsorption of PCBs and are thus capable of reducing aqueous pollutant concentrations. After a one-month incubation with 'Aroclor 1242'-spiked sediment, the three GACs were each colonized by a multispecies biofilm, although with different amounts of attached bacterial biomass and significantly distinct genetic bacterial communities; interestingly, the highest bacterial biomass was attached to the microporous vegetable GAC. The multispecies biofilms developed on the three GACs were all predominantly composed of Proteobacteria, especially the β-, γ- and δ- subclasses, Chloroflexi and Acidobacteria, with genera previously found in environments containing PCBs or biphenyls, or able to perform cometabolic and direct PCB degradation. After an eight-month incubation under aerobic conditions, it was only the vegetable Picabiol GAC, with its low microporous volume, high total surface area and acidic property, that showed a significant (21%) reduction of tri- through penta-CB. Our results suggest that PCB bio-transformation by the bacterial community attached to the GAC is influenced by GAC's physico-chemical characteristics. Thus, a properly selected GAC could effectively be used to a) sequestrate and concentrate PCB from contaminated aquatic sediment and b) act as a support for efficient PCB degradation by an autochthonous bacterial biofilm.

摘要

三种商业颗粒状活性炭(GAC)在实验室规模上进行了研究,目的是在水-底泥系统中同时进行 PCB 的吸附和生物降解。这三种 GAC 具有不同的物理化学特性,均表现出对 PCB 的高吸附能力,因此能够降低水相污染物浓度。经过一个月用“多氯联苯 1242”污染底泥的培养后,三种 GAC 均被多物种生物膜定殖,尽管附着的细菌生物量不同,且遗传细菌群落差异显著;有趣的是,微孔蔬菜 GAC 附着的细菌生物量最高。在三种 GAC 上形成的多物种生物膜主要由变形菌门组成,特别是β-、γ-和δ-亚门、绿弯菌门和酸杆菌门,其中一些菌属先前在含有 PCB 或联苯的环境中被发现,或者能够进行共代谢和直接 PCB 降解。在有氧条件下培养八个月后,只有微孔体积低、总表面积高、呈酸性的蔬菜型 Picabiol GAC 表现出显著的(21%)三氯到五氯 PCB 减少。我们的结果表明,附着在 GAC 上的细菌群落对 PCB 的生物转化受到 GAC 物理化学特性的影响。因此,选择合适的 GAC 可以有效地用于 a)从受污染的水-底泥系统中隔离和浓缩 PCB,b)作为土著细菌生物膜高效 PCB 降解的支持物。

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验