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1.
石油污染海域的微生物群落及烃的降解   总被引:5,自引:0,他引:5       下载免费PDF全文
目前世界海洋石油污染问题已经严重威胁到海洋生态环境的安全,生物修复是一种处理石油污染的新方法。综述了海洋环境中烃降解微生物生态学方面的一些研究进展,包括探测未培养细菌的新方法、新的分离方法及主要的烃降解菌株的特性,以便努力改进现有分离石油降解菌及石油乳化细菌的方法,同时发现对于石油降解有益的新菌种。  相似文献   

2.
石油烃污染物属于难降解混合物,生物修复已经成为石油烃污染环境的主要修复方法。文中简述了微生物对石油烃的间期适应过程和转运过程,并通过对部分典型石油烃成分的微生物降解机理和代谢路径的梳理和综述,阐释了石油烃生物降解过程中的菌株、基因、代谢路径等研究进展。此外,利用基因工程和代谢工程等手段,可对野生型石油烃降解菌进行改造,进一步提升其对石油烃污染环境的生物修复能力。最后,从石油烃降解菌的代谢途径改造、人工混菌体系的设计构建等角度,结合合成生物学和代谢工程的手段,提出了对石油烃降解的研究展望,以期提升对石油烃污染物的生物修复效果。  相似文献   

3.
该文归纳了细菌、真菌和藻类对石油烃的降解作用;讨论了微生物降解石油烃的影响因素,包括微生物种类、石油烃种类、温度、pH、营养物质、电子受体等;总结了微生物固定化技术、生物表面活性剂和基因工程技术在微生物降解石油烃领域的应用;最后,提出今后生物降解石油烃的研究重点可能是开发具有高效降解能力的菌群联合体。  相似文献   

4.
不动杆菌属(Acinetobacter)细菌降解石油烃的研究进展   总被引:3,自引:0,他引:3  
不动杆菌属细菌分布广泛,作为重要的石油烃降解者,在乳化和降解石油烃、降低石油烃生物毒性等方面有重要作用。本文概述了不动杆菌属细菌对烷烃、芳香烃等石油烃组分的降解,总结了该属细菌中已发现的烷烃氧化酶和芳香烃氧化酶,综述了该属细菌所分泌的表面活性剂的类型和乳化机理,讨论了固定化对该属细菌降解石油烃的影响,展望了该属细菌降解石油烃的应用前景。基于此,作者认为探索不动杆菌属细菌降解石油烃的详细机理和途径、发现关键酶、寻找遗传工具、构建基因工程菌、发掘环境友好的固定化材料,应是未来的研究重点及热点。  相似文献   

5.
石油污染是当前紧迫的水环境问题,研究石油污染物降解机制有助于探索石油污染修复技术路径。重点介绍了微生物降解石油污染物过程中的微生物种类、降解机制和反应机理,即具有代表性的细菌、真菌和藻类,石油烃的有氧降解(链烷烃、环烷烃和芳香烃)和厌氧降解(脱氢羟基化、延胡索酸盐加成)。并对微生物降解石油组分的影响因素进行了讨论,具体包括:烃类结构(支链多结构越复杂,越难降解)、微生物种类(混合菌的生化降解能力更强)、环境因子(pH、温度、盐度、含氧量和营养物质),进一步指出了生物修复技术应用于石油污染修复治理研究中的优缺点。此外,还对现有微生物降解技术的应用做了简要概述,归纳总结现有研究中存在的问题,尝试性的提出了今后生物降解石油污染物的研究重点,即生物降解石油的机制还需进一步明确,并重点分析了生物电化学方法在降解去除石油污染物方面可行性。综述石油烃生物降解机制和反应机理,以期为生物修复水体石油污染提供参考和借鉴作用。  相似文献   

6.
石油污染是我国目前陆地和海洋面临的主要污染问题之一,尽管以微生物为主体的原位修复技术在以往的实践中取得了良好的效果,但随着石油污染形式的严峻,微生物修复技术依然面临着巨大的挑战。随着石油降解微生物资源库的不断累积和研究手段的发展,人们对微生物石油降解机制有了更加深入的研究,为提高微生物修复技术的应用范围和应用效果奠定了良好的基础。从石油污染与技术应用趋势、石油降解微生物聚类分析、石油微生物降解的分子机制、石油污染的微生物修复技术几方面总结和梳理了国内外近期的研究进展,以其为迎接新的挑战提供抓手。  相似文献   

7.
低温微生物修复石油烃类污染土壤研究进展   总被引:3,自引:0,他引:3  
Wang SJ  Wang X  Lu GL  Wang QH  Li FS  Guo GL 《应用生态学报》2011,22(4):1082-1088
耐冷菌、嗜冷菌等低温微生物广泛存在于极地、高山以及高纬度等土壤环境中,是石油烃类污染物在低温条件下降解与转化的重要微生物资源.利用低温微生物的独特优势,石油污染土壤的低温生物修复技术的研究成为当前热点领域.本文系统综述了低温石油烃降解菌的分类及冷适机制,低温微生物对不同类型石油烃组分的降解特征和降解机理,低温环境中接种降解菌、添加营养物质和表面活性剂等强化技术在石油污染土壤中生物修复的应用.以及微生物分子生物学技术在低温微生物降解石油烃的研究现状,为拓展我国石油污染土壤生物修复技术提供参考.  相似文献   

8.
微生物降解石油烃的功能基因研究进展   总被引:4,自引:3,他引:1  
微生物对石油烃的降解在自然衰减去除土壤和地下水石油烃污染的过程中发挥了重要作用。微生物通过其产生的一系列酶来利用和降解这类有机污染物,其中,编码关键降解酶的基因称为功能基因。功能基因可作为生物标志物用于分析环境中石油烃降解基因的多样性。因此,研究石油降解功能基因是分析土著微生物群落多样性、评价自然衰减潜力与构建基因工程菌的重要基础。本文主要介绍了烷烃和芳香烃在有氧和无氧条件下的微生物降解途径,重点总结了烷烃和芳香烃降解的主要功能基因及其作用,包括参与羟化作用的单加氧酶和双加氧酶基因、延胡索酸加成反应的琥珀酸合酶基因以及中心中间产物的降解酶基因等。  相似文献   

9.
石油化工产品的不合理处置与泄漏导致石油及其衍生物大量释放到环境中,由此造成的环境污染问题日益严重,石油污染已成为全球性公害之一。微生物修复技术凭借其成本低、环境友好等优势,广泛应用于石油污染的治理。大量研究表明功能微生物群落在石油污染生态系统的修复体系中发挥了重要的作用。其中,细菌是最主要、最活跃的石油降解微生物。然而,在原位/异位生物修复过程中,存在功能菌群在污染体系中难维持、易失调及石油烃降解途径不明晰等问题。因此,本文总结了石油污染自然生态系统和微宇宙实验体系中的细菌群落结构、石油烃代谢机制及相关功能基因,并对微生物法处理石油污染的未来研究方向提出展望,为石油污染场地生物修复方案的制定提供理论参考。  相似文献   

10.
鼠李糖脂对微生物降解石油烃废水的影响   总被引:3,自引:0,他引:3  
目的:研究鼠李糖脂对微生物降解石油烃废水的影响.方法:通过测定生物量和观察菌株表面来研究鼠李糖脂对菌株的影响;通过正交实验设计,确定石油烃降解率影响因素.通过石油烃降解率的测定,探讨鼠李糖脂与H2O2深度氧化协同作用对微生物降解石油烃的影响.结果:菌株对石油烃的降解率达53%,在相同条件下,添加鼠李糖脂的石油烃降解率提高了12%-20%.添加鼠李糖脂后菌株的生物量明显增多,菌株细胞表面疏水.正交设计表明,影响石油烃降解的主导因子是培养温度,其次是培养时间和鼠李糖脂的添加量.正交设计得到最佳组合为A3B2C1,即培养时间为7d;温度为35℃,鼠李糖脂浓度为60mg/L.3个因素的最佳组合下,石油烃降解率为82%.加入200 mg/L的H2O2时,降解率从82%提高到97%.结论:鼠李糖脂能促进菌株的生长.鼠李糖脂与H2O2深度氧化协同作用有助于微生物对石油烃类污染物降解效率的提高.  相似文献   

11.
小黑麦对石油污染盐碱土壤细菌群落与石油烃降解的影响   总被引:1,自引:0,他引:1  
王拓  唐璐  栾玥  张淼  陈佳欣  郭长虹 《生态学报》2019,39(24):9143-9151
为了研究小黑麦对石油污染盐碱土壤中的细菌群落与石油烃降解率的影响,采用高通量测序技术,设置0 g/kg,1 g/kg和5 g/kg三个石油浓度,以未种植小黑麦的土壤作为对照,对6组不同处理的盐碱土壤样品的细菌群落结构及其多样性进行测定,并分析土壤中的石油烃降解率。结果表明:在土壤石油浓度为1 g/kg和5 g/kg时,小黑麦根际土壤中的石油烃降解率相较对照组分别提高了36.67%和33.20%。从6个土壤样品中分别获得21398—27899条测序序列。在石油污染土壤中,小黑麦根际土壤的细菌群落多样性和丰度均大于对照组的土壤。同时,在"门","纲","属"的分类水平上,小黑麦根际土壤细菌群落中的一些根际细菌的相对丰度增加了,主要包括变形菌门(Proteobacteria)、酸杆菌门(Acidobacteria)、γ-变形菌纲(Gammaproteobacteria)、烷烃降解菌科-未命名菌属(Alcanivoracaceae_norank)、黄单胞菌属(Xanthomonas)、亚硝化单胞菌-不可培养菌属(Nitrosomonadaceae_unculture)等。有一些相对丰度增加的根际细菌是以石油及石油分解物为碳源的微生物。本研究证明种植小黑麦改变了石油污染盐碱土壤根际土壤细菌群落结构组成和多样性,促进了降解石油微生物群落的构建,显著提高了盐碱土壤石油污染的降解效果。研究结果为石油污染盐碱土壤的植物修复奠定了理论基础。  相似文献   

12.
李辉  牟伯中 《微生物学报》2008,35(5):0803-0808
油藏微生物是一类宝贵的资源, 在油层生态系统的物质循环和能量流动中发挥着主导作用。传统上, 主要依赖纯培养技术, 使得大部分油藏微生物都没能得到充分认识。分子方法克服了纯培养方法中遇到的问题, 能更好地了解环境微生物群落多样性。近年来, 在油藏微生物群落多样性研究中的应用进展迅速, 对油藏微生物学和生态学的发展产生了重要影响。文中评述了近年来国内外在油藏微生物分子生态方面的研究进展, 并对进一步的研究提出了展望。  相似文献   

13.
李辉  牟伯中 《微生物学通报》2008,35(5):0803-0808
油藏微生物是一类宝贵的资源,在油层生态系统的物质循环和能量流动中发着主导作用.传统上,主要依赖纯培养技术,使得大部分油藏微生物都没能得到充分认识.分子方法克服了纯培养方法中遇到的问题,能更好地了解环境微生物群落多样性.近年来,在油藏微生物群落多样性研究中的应用进展迅速,对油藏微生物学和生态学的发展产生了重要影响.文中评述了近年来国内外在油藏微生物分子生态方面的研究进展,并对进一步的研究提出了展望.  相似文献   

14.
快速筛选复杂有机物降解微生物混合菌系,在污染物治理过程中具有重要的实践意义.本研究首次尝试利用MicroRespTM技术分析微生物酶液活性的方法,快速标定高效降解菌及混合菌系的石油烃降解能力,并采用传统的摇瓶培养检测法予以验证.通过微生物胞内、胞外及混合酶液的活性分析,考察了不同酶系(胞外、胞内及混合酶液)、菌系对石油烃分子的降解情况.结果表明: 结合MicroRespTM技术的酶液活性测定法能够快速检测石油烃代谢酶系的降解能力,其灵敏度好、通量高,与传统的菌株摇瓶培养方法的检测结果基本一致.其中,7株菌株的120种全组合菌系活性测定试验在12 h周期内1次完成.筛选周期由传统摇瓶培养所需的7 d缩短10倍以上.以酶活性测定结果为指导设计的复配菌系具有较高的降解效率,最高石油烃降解率达(56.1±1.6)%.表明本筛选方法精度高、通量高,可用于石油烃降解功能菌系的构建.  相似文献   

15.
Recent advances in petroleum microbiology.   总被引:23,自引:0,他引:23  
Recent advances in molecular biology have extended our understanding of the metabolic processes related to microbial transformation of petroleum hydrocarbons. The physiological responses of microorganisms to the presence of hydrocarbons, including cell surface alterations and adaptive mechanisms for uptake and efflux of these substrates, have been characterized. New molecular techniques have enhanced our ability to investigate the dynamics of microbial communities in petroleum-impacted ecosystems. By establishing conditions which maximize rates and extents of microbial growth, hydrocarbon access, and transformation, highly accelerated and bioreactor-based petroleum waste degradation processes have been implemented. Biofilters capable of removing and biodegrading volatile petroleum contaminants in air streams with short substrate-microbe contact times (<60 s) are being used effectively. Microbes are being injected into partially spent petroleum reservoirs to enhance oil recovery. However, these microbial processes have not exhibited consistent and effective performance, primarily because of our inability to control conditions in the subsurface environment. Microbes may be exploited to break stable oilfield emulsions to produce pipeline quality oil. There is interest in replacing physical oil desulfurization processes with biodesulfurization methods through promotion of selective sulfur removal without degradation of associated carbon moieties. However, since microbes require an environment containing some water, a two-phase oil-water system must be established to optimize contact between the microbes and the hydrocarbon, and such an emulsion is not easily created with viscous crude oil. This challenge may be circumvented by application of the technology to more refined gasoline and diesel substrates, where aqueous-hydrocarbon emulsions are more easily generated. Molecular approaches are being used to broaden the substrate specificity and increase the rates and extents of desulfurization. Bacterial processes are being commercialized for removal of H(2)S and sulfoxides from petrochemical waste streams. Microbes also have potential for use in removal of nitrogen from crude oil leading to reduced nitric oxide emissions provided that technical problems similar to those experienced in biodesulfurization can be solved. Enzymes are being exploited to produce added-value products from petroleum substrates, and bacterial biosensors are being used to analyze petroleum-contaminated environments.  相似文献   

16.
石油中长链烷烃微生物降解及分子机制研究进展   总被引:1,自引:1,他引:0  
中长链烷烃是石油烃中的重要组成部分,由于其疏水性强、黏度大、化学活性低、难降解,是地下原油黏度大、石油采收率低、泄漏后长期污染生态环境的重要原因,因此成为提高石油采收率和石油污染环境治理中的重要降解目标。微生物降解中长链烷烃作为一种新型高效的绿色技术日益受到重视。本文总结了微生物降解中长链烷烃的间期适应与转运过程,与转运过程相关的膜蛋白,微生物好氧与厌氧降解的代谢途径,以及好氧降解过程中的基因调控机制,并对微生物降解中长链烷烃的研究方向提出了展望,以期为后续的相关研究工作提供参考。  相似文献   

17.
In this work, the potential effect of metals, such as Cd, Cu and Pb, on the biodegradation of petroleum hydrocarbons in estuarine sediments was investigated under laboratory conditions. Sandy and muddy non-vegetated sediments were collected in the Lima River estuary (NW Portugal) and spiked with crude oil and each of the metals. Spiked sediments were left in the dark under constant shaking for 15 days, after which crude oil biodegradation was evaluated. To estimate microbial abundance, total cell counts were obtained by DAPI staining and microbial community structure was characterized by ARISA. Culturable hydrocarbon degraders were determined using a modified most probable number protocol. Total petroleum hydrocarbons concentrations were analysed by Fourier Transform Infrared Spectroscopy after their extraction by sonication, and metal contents were determined by atomic absorption spectrometry. The results obtained showed that microbial communities had the potential to degrade petroleum hydrocarbons, with a maximum of 32 % degradation obtained for sandy sediments. Both crude oil and metals changed the microbial community structure, being the higher effect observed for Cu. Also, among the studied metals, only Cu displayed measurable deleterious effect on the hydrocarbons degradation process, as shown by a decrease in the hydrocarbon degrading microorganisms abundance and in the hydrocarbon degradation rates. Both degradation potential and metal influence varied with sediment characteristics probably due to differences in contaminant bioavailability, a feature that should be taken into account in developing bioremediation strategies for co-contaminated estuarine sites.  相似文献   

18.
Recent Advances in Petroleum Microbiology   总被引:26,自引:0,他引:26       下载免费PDF全文
Recent advances in molecular biology have extended our understanding of the metabolic processes related to microbial transformation of petroleum hydrocarbons. The physiological responses of microorganisms to the presence of hydrocarbons, including cell surface alterations and adaptive mechanisms for uptake and efflux of these substrates, have been characterized. New molecular techniques have enhanced our ability to investigate the dynamics of microbial communities in petroleum-impacted ecosystems. By establishing conditions which maximize rates and extents of microbial growth, hydrocarbon access, and transformation, highly accelerated and bioreactor-based petroleum waste degradation processes have been implemented. Biofilters capable of removing and biodegrading volatile petroleum contaminants in air streams with short substrate-microbe contact times (<60 s) are being used effectively. Microbes are being injected into partially spent petroleum reservoirs to enhance oil recovery. However, these microbial processes have not exhibited consistent and effective performance, primarily because of our inability to control conditions in the subsurface environment. Microbes may be exploited to break stable oilfield emulsions to produce pipeline quality oil. There is interest in replacing physical oil desulfurization processes with biodesulfurization methods through promotion of selective sulfur removal without degradation of associated carbon moieties. However, since microbes require an environment containing some water, a two-phase oil-water system must be established to optimize contact between the microbes and the hydrocarbon, and such an emulsion is not easily created with viscous crude oil. This challenge may be circumvented by application of the technology to more refined gasoline and diesel substrates, where aqueous-hydrocarbon emulsions are more easily generated. Molecular approaches are being used to broaden the substrate specificity and increase the rates and extents of desulfurization. Bacterial processes are being commercialized for removal of H2S and sulfoxides from petrochemical waste streams. Microbes also have potential for use in removal of nitrogen from crude oil leading to reduced nitric oxide emissions provided that technical problems similar to those experienced in biodesulfurization can be solved. Enzymes are being exploited to produce added-value products from petroleum substrates, and bacterial biosensors are being used to analyze petroleum-contaminated environments.  相似文献   

19.
Microbial petroleum degradation: use of mixed hydrocarbon substrates   总被引:12,自引:8,他引:4       下载免费PDF全文
Methods of examining hydrocarbons to estimate the microbial degradation of petroleum are compared. Gas-liquid chromatography with a mixed hydrocarbon substrate has been shown to be useful in evaluating microbial potential for degradation of a number of hydrocarbons.  相似文献   

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