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Monitoring system for the study of autotrophic biofilms in bioremediation of polyaromatic compounds

机译:多芳族化合物生物修复中自养生物膜研究监测系统

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Bacterial and other natural materials such as plants and algae have received increasing interest for bioremediation efforts. The identificatIon of materials capable of biodegrading or sequestering environmental pollutants offers an attractive alternative to chemical or physical means of remediation. A number of bacteria capable of biodegrAding organic or reducing metal pollutants have received great interest. Similarly, the use of natural plants to absorb pollutants from soil anD liquid samples is another potential approach. Our interest lies in identification of naturally occurring algae and their ability to absorb polyaromatic compounds (PAC) from groundwater sources (i.e. streams). These algae could serve as natural water filters for streams contaminated with Polyaromatic hydrocarbons. Polycyclic aromatic compounds, which comprise a complex class of condensed multi-ring benzenoid compounds, are important environmental pollutants originating from a wide variety of natural and anthropogenic sources. PACs are generally formed during incomplete combustion or pyrolysis of organic matter containing carbon and hydrogen. Because combustion of organic materials is involved in countless natural processes or human activities, PACs are omnipresent and abundant pollutants in air, soil and water. Among energy-related products, fossil fuels are the major sources of PACs. The primary sources of airborne PACs are associated with combustion, coal coking, and petroleum catalytic cracking. Coal and shale conversion also contribute to production of PACs. Production, transportation and, use of synthetic fuels and petroleum products provide emission sources for PACs. In urban environments an significant source of PACs is diesel exhaust. Food cooking and cigarette smoking activities contribute to PAC occurrence in indoor environments. Chemical analysis of PACs is of great environmental and toxicological interest because many of them have been shown to be mutagens and/or potent carcinogens in laboratory animal assays. The parent homocyclic species, which contain only carbon and hydrogen, are the familiar polyaromatic hydrocarbon (PAH) compounds. In addition to the PAH compounds, there are thousands of substituted compounds that could have various substituent groups, such as alkyl, amino, chloro, cyano, hydroxy, oxy, or thio groups. In this study we investigate anthracene and pyrene as PAH model systems. A portable fiberoptic instrument capable of real-time measurements has been developed for field screening these PAHs in surface water and natural algae systems. Our preliminary studies investigated the detection limits of anthracene and pyrene and the adsorption properties of two algae using fluorescence monitoring. An exposure study of the algae to 5 ppb anthracene was performed to investigate the ability of the algae to adsorb PAHs.
机译:细菌和其他天然材料,如植物和藻类,对生物修复努力产生了越来越关注的兴趣。能够进行生物降解或螯合环境污染物的材料的鉴定为化学或物理修复手段提供了有吸引力的替代品。许多能够生物降解的有机或还原金属污染物的细菌受到了极大的兴趣。类似地,使用天然植物吸收土壤和液体样品的污染物是另一种潜在的方法。我们的兴趣在于鉴定天然存在的藻类及其吸收地下水来源(即流)的多芳族化合物(PAC)的能力。这些藻类可以用作用多芳烃污染的料流的天然水过滤器。包含复杂的浓缩的多环苯单胞外化合物的多环芳族化合物是源自各种天然和人为源的重要环保污染物。 PACS通常在不完全燃烧或含碳和氢的有机物质的燃烧或热解中形成。由于有机材料的燃烧参与了无数的自然过程或人类活动,PACS是空气,土壤和水中的无所不在和丰富的污染物。在能量相关的产品中,化石燃料是PACS的主要来源。机载PACS的主要来源与燃烧,煤炭和石油催化裂化有关。煤炭和页岩转换也有助于生产PACS。合成燃料和石油产品的生产,运输和使用提供PACS的排放来源。在城市环境中,PACS的重要来源是柴油排气。食品烹饪和香烟吸烟活动有助于在室内环境中的PAC发生。 PACS的化学分析具有巨大的环境和毒理学利益,因为它们中的许多人已被证明是在实验室动物测定中的诱变和/或有效的致癌物质。仅含有碳和氢的亲本同源物种是熟悉的多芳芳烃(PAH)化合物。除了PAH化合物之外,还有成千上万的取代化合物,可以具有各种取代基,例如烷基,氨基,氯,氰基,羟基,氧或硫代基团。在该研究中,我们将蒽和芘作为PAH模型系统调查。已经开发了一种能够进行实时测量的便携式光纤仪器,用于在地表水和天然藻类系统中筛选这些PAH。我们的初步研究调查了使用荧光监测的蒽和芘的检测限,以及两种藻类的吸附性能。进行藻类对5ppb蒽的曝光研究以研究藻类对吸附PAHS的能力。

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