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1.
分子生态学作为一门新兴的学科已经成为国内外科学家关注和研究的热点。目前的分子生态学技术主要有核酸杂交分析技术、特异性PCR扩增技术、DNA序列分析、基因芯片技术等。这些技术在环境微生物研究中的应用主要包括对微生物多样性的研究、种群结构和动力学的研究、代谢活性的研究以及在全球气候变化中对微生物影响的研究。最后,对环境微生物的分子生态学研究进行了展望。  相似文献   

2.
分子微生物生态学及其研究进展   总被引:28,自引:9,他引:19  
分子微生物生态学是分子生物学实验技术应用于微生物生态学研究领域而发展形成的一门交叉学科,在研究微生物生态系统组成结构、功能的分子机理以及微生物与生物和非生物环境之间相互关系等方面显示了巨大的潜力.十几年来分子微生物生态学研究所取得的成就证明:分子生物学研究技术向微生物生态学领域的不断渗透,为微生物生态学研究领域注入了新的活力,尤其在微生物多样性、微生物区系分子组成及变化规律以及微生物系统进化研究方面取得了重大突破.本文根据近年分子微生物生态学的研究进展,就分子微生物生态学概念的提出、发展历程、主要研究领域、主要研究方法以及未来研究热点领域作以简要综述。  相似文献   

3.
微生物分子生态学技术在污水处理系统中的应用   总被引:10,自引:3,他引:7       下载免费PDF全文
微生物分子生态学作为分子生物学与微生物生态学交叉而形成的学科,在污水处理方面广泛应用。本文从分子生态学实验技术角度,综述了目前污水处理系统中微生物群体结构、多样性及其与功能相关性的研究进展,探讨了分子生态学技术的发展与应用前景,并指出研究该体系微生物对于认识微生物系统发育地位具有重要意义。  相似文献   

4.
石油烃污染及修复过程中的微生物分子生态学研究进展   总被引:2,自引:0,他引:2  
针对环境中广泛存在的石油烃污染问题,从分子生态学的角度总结石油烃降解过程中的微生物生态学研究进展。着重介绍分子生态学的研究方法及与石油烃降解相关的降解基因和基因芯片的最新研究进展,同时对存在的问题和今后的研究方向进行总结。  相似文献   

5.
生物技术在分子微生物生态学上的应用   总被引:2,自引:0,他引:2       下载免费PDF全文
陈海敏  陈声明   《微生物学通报》1999,26(6):436-439
分子生物学及其技术的发展和变革开辟了生态学研究的新途径。分子生物学与生态学交叉的研究,越来越引起人们的重视,于是分子生态学便应运而生了。而分子微生物生态学则为其中的重要分支,它是运用分子的方法和技术,在基因水平上估计种的个体丰度,查明种的变异情况以及探究群落中微生物间相互关系的科学。生物技术的应用,使我们不必培养微生物,而直接通过对环境中的遗传物质的研究来达到目的,它为微生物生态学的研究开辟了新的途径。1用于分子微生物生态学的主要生物技术1.1核酸探针检测技术探针是能与特定核苷酸序列发生特异性互…  相似文献   

6.
MAR-FISH技术及其在环境微生物群落与功能研究中的应用   总被引:3,自引:0,他引:3  
对复杂环境中微生物群落结构和功能的研究是微生物生态学的重要任务。尽管现代分子生物学技术已经成功地用于解析环境中微生物的群落结构, 但是这些方法并不能提供微生物的原位生理学信息。而一种新的方法, 微观放射自显影和荧光原位杂交集成技术(MAR-FISH)则能够同时在单细胞水平上, 检测复杂环境中微生物的系统发育信息及其生理特性。本文总结了MAR-FISH方法的原理, 实验步骤及其在环境微生物群落与功能研究中的应用。  相似文献   

7.
基因工程微生物生态学研究进展   总被引:3,自引:1,他引:2  
Jin S  Zhang J  Wang Y  Meng S 《应用生态学报》2003,14(2):293-295
基因工程微生物(genctically enginccred microorganism,GEM)生态学的研究已成为微生物分子生态学的一项主要研究内容之一.随着分子标记和分子生物学检测手段的引入,传统的微生物生态学研究被注入了新的活力,在分子水平上探讨基因工程微生物与环境及环境中土著生物之间的关系已成为可能.基因工程微生物生态学是一门内容涉及分子生物学、微生物学、生态学等诸多学科的新型交叉边缘学科.本文提出加紧进行转基因生物生态学和转基因生物的风险评价的研究工作,建立适合中国国情的检测手段和评价标准,有助于我国基因工程微生物生态学的健康发展.  相似文献   

8.
微生物分子生态学研究方法的新进展   总被引:2,自引:0,他引:2  
环境中微生物的群落结构及多样性和微生物的功能及代谢机理是微生物生态学的研究热点,长期以来,由于受到研究技术的限制,对微生物的群落结构和多样性的认识还不全面,微生物的功能及代谢机理方面了解也很少.随着高通量测序、基因芯片等新技术的不断更新,微生物分子生态学的研究方法和研究途径也在不断变化.高通量测序技术改变了微生物多样性、宏基因组学和宏转录组学的研究方法,GeoChip高密度覆盖海量已知功能的基因探针于单张芯片,能快速确定微生物和已知功能基因的存在与否.总结和比较了目前最新的研究手段,并归纳了这些方法的适用性和优缺点.  相似文献   

9.
DGGE/TGGE技术在土壤微生物分子生态学研究中的应用   总被引:3,自引:0,他引:3  
传统的微生物生态学研究方法只限于环境样品中极少部分(0.1% ̄1%)可培养的微生物类群,极大程度地限制了对土壤微生物群落结构的研究。综述了以16S rDNA为主要研究对象的DGGE/TGGE(Denaturing gradientgel electrophoresis,DGGE/Temperature gradient gel electrophoresis,TGGE)技术原理,以其为主要手段结合PCR扩增、克隆建库、序列测定以及种系分析对土壤微生物的群落结构和多样性研究的最新动态。DGGE/TGGE技术极大地推动了土壤微生物分子生态学的发展,同时也为实际问题的诊断、作物生长跟踪监测等提供了技术支撑,在土壤微生物分子生态学研究和生产实践中起着越来越重要的作用。  相似文献   

10.
反硝化菌功能基因及其分子生态学研究进展   总被引:9,自引:0,他引:9  
由微生物推动的反硝化作用是地球氮素循环的重要分支,尽管已被发现广泛存在于细菌、真菌和古生菌中,其功能基因的研究仍仅限于很少几个物种。现代分子生物学的发展为研究环境微生物提供了行之有效的方法,以反硝化功能基因作为分子标记的分子生态学研究迅猛发展。综述近年来国内外微生物反硝化功能基因研究及以其为标记的分子生态学研究进展。  相似文献   

11.
异化Fe(III)还原微生物是厌氧环境中广泛存在的一类主要微生物类群,它们的共同特征是可以利用Fe(III)作为末端电子受体而获能。异化Fe(III)还原微生物具有强大的代谢功能,可还原许多有毒重金属包括一些放射性核素,还可降解利用许多有机污染物,在污染环境的生物修复中具有重要的应用价值。本文对异化Fe(III)还原微生物的分布、分类,代谢功能多样性以及异化Fe(III)还原的意义做了评述,旨在加强相关领域的研究人员对此的了解和重视,通过学科的交叉和合作加快我国在这一领域的研究。  相似文献   

12.
A preliminary investigation was conducted to identify the presence of bacteria in fuel‐contaminated Antarctic soil that could potentially be used to bioremediate the contaminated soil at McMurdo Station and other sites in Antarctica. The ability of soil microorganisms to metabolize fuels under the extreme climatic and oligotrophic conditions of Antarctica was of concern. Bacteria were isolated from fuel‐contaminated soil on site at McMurdo Station. Bacteria from noncontaminated soil near the station were also studied for comparison. The Antarctic soil microorganisms exhibited the ability to endure cold and oligotrophic environments. Experiments also showed that bacteria from the fuel spill site were active in their contaminated environment and that acclimation to xenobiotic compounds was necessary. Application of bioremediation in the extreme environmental conditions found at McMurdo Station, Antarctica, were also considered. The possibility of altering environmental factors necessary to adequately support in situ bioremediation in this extreme climate is discussed.  相似文献   

13.
More and more data are available indicating that numerous (infectious) diseases are related to the home environment. Airborne microorganisms (bacteria, fungi), mites (in sheets or carpets), and (parts of) insects and beetles may be the cause of respiratory diseases such as asthma. In Europe and North America, more than half of the registered food infections appear to be contracted in the home. Then there is the development of new pathogens or the adaptation of microorganisms to extreme conditions. In many cases, the occurrence of adapted or resistant microorganisms is a reaction to the changing environment. Examples of this are the growth of Listeria monocytogenes in refrigerated food products and the presence of Legionella pneumophila in systems containing stagnant water.The main sources of infection in the domestic environment are people, pests, pets, and contaminated food and water. Germs are transmitted by direct contact with people or animals, by contaminated food, water, surfaces and air.Under circumstances favourable to microorganisms, the cells are able to survive or multiply into large numbers. Especially in places which stay moist for a long time considerable amounts of microorganisms are found, among with pathogenic types.The phrase ‘home hygiene’ does not merely refer to cleaning the house (daily). In practice, cleaning is not the only important issue; knowing how to prevent contamination is just as crucial. Domestic hygiene is the total sum of the measures used to prevent (insofar as possible) contamination with pathogens, and thus decreasing the number of infectious diseases. The hygiene measures required can be divided into three groups:
• Hygiene during food preparation.
• Personal and sanitary hygiene.
• Domestic environment.
This contribution will focus on food storage, food preparation and the effect of 'hygienic cleaners’ in the domestic kitchen.  相似文献   

14.
The living and working environments of spacecraft become progressively contaminated by a number of microorganisms. A large number of microorganisms, including pathogenic microorganisms, some of which are fungi, have been found in the cabins of space stations. However, it is not known how the characteristics of microorganisms change in the space environment. To predict how a microgravity environment might affect fungi, and thus how their characteristics could change on board spacecraft, strains of the pathogenic fungi Aspergillus niger and Candida albicans were subjected to on-ground tests in a simulated microgravity environment produced by a three-dimensional (3D) clinostat. These fungi were incubated and cultured in a 3D clinostat in a simulated microgravity environment. No positive or negative differences in morphology, asexual reproductive capability, or susceptibility to antifungal agents were observed in cultures grown under simulated microgravity compared to those grown in normal earth gravity (1 G). These results strongly suggest that a microgravity environment, such as that on board spacecraft, allows growth of potentially pathogenic fungi that can contaminate the living environment for astronauts in spacecraft in the same way as they contaminate residential areas on earth. They also suggest that these organisms pose a similar risk of opportunistic infections or allergies in astronauts as they do in people with compromised immunity on the ground and that treatment of fungal infections in space could be the same as on earth.  相似文献   

15.
Use of genetically modified microorganisms (GEMs) for pollution abatement has been limited because of risks associated with their release in the environment. Recent developments in the area of recombinant DNA technologies have paved the way for conceptualizing "suicidal genetically engineered microorganisms" (S-GEMS) to minimize such anticipated hazards and to achieve efficient and safer bioremediation of contaminated sites. Our strategy of designing a novel S-GEM is based on the knowledge of killer-anti-killer gene(s) that would be susceptible to programmed cell death after detoxification of any given contaminated site(s).  相似文献   

16.
Emulsification of hydrocarbons by subsurface bacteria   总被引:2,自引:0,他引:2  
Summary Biosurfactants have potential for use in enhancement of in situ biorestoration by increasing the bioavailability of contaminants. Microorganisms isolated from biostimulated, contaminated and uncontaminated zones at the site of an aviation fuel spill and hydrocarbon-degrading microorganisms isolated from sites contaminated with unleaded gasoline were examined for their abilities to emulsify petroleum hydrocarbons. Emulsifying ability was quantified by a method involving agitation and visual inspection. Biostimulated-zone microbes and hydrocarbon-degrading microorganisms were the best emulsifiers as compared to contaminated and uncontaminated zone microbes. Biostimulation (nutrient and oxygen addition) may have been the dominant factor which selected for and encouraged growth of emulsifiers; exposure to hydrocarbon was also important. Biostimulated microorganisms were better emulsifiers of aviation fuel (the contaminant hydrocarbon) than of heavier hydrocarbon to which they were not previously exposed. By measuring surface tension changes of culture broths, 11 out of 41 emulsifiers tested were identified as possible biosurfactant producers and two isolates produced large surface tension reductions indicating the high probability of biosurfactant production.  相似文献   

17.
嗜盐微生物在环境修复中的研究进展   总被引:3,自引:1,他引:3       下载免费PDF全文
人类活动产生的污染物,使一些天然盐环境遭受不同程度的污染,或者使环境受到污染物与高盐的双重污染。在高盐条件下,非嗜盐微生物的代谢会受到抑制,其生物修复效率明显降低,甚至丧失修复能力。嗜盐微生物则能够在高盐环境中栖息繁殖,凸显其修复被污染高盐环境的生物学效率和广阔的应用前景。就嗜盐微生物降解石油烃、芳香烃衍生物和有机磷等污染物的研究进展进行了综述和讨论。  相似文献   

18.
水平基因转移是不同于垂直基因转移的遗传物质的交流方式.在污染环境这一特异生态环境中,降解基因的水平转移有着独特的功能与作用.研究环境中污染物降解基因在微生物间的水平转移,更深入地了解微生物种群适应污染环境的机理,对于评价污染物的环境毒理、生物可降解性以及污染环境的可修复潜力具有重要参考价值.在污染物生物修复实践中,可以通过调控降解基因的水平转移,增强污染环境中微生物的降解能力,更有效地发挥生物修复作用.文章将对环境中细菌间基因交流的机制,污染物降解基因的水平转移对微生物适应污染环境的机理、水平基因转移对代谢途径的进化及其对污染物生物修复作用的影响等方面的研究进展做一综述.  相似文献   

19.
【背景】石油污染治理中的生物修复因无二次污染、处理成本低等优点受到人们的广泛关注,但由于石油烃向环境中大量输入,导致环境中氮源的相对不足成为制约生物修复效率的关键因素之一,因此筛选能够适应寡氮环境的微生物具有重要的生态意义。【目的】从辽河油田油藏水中筛选在不添加氮源培养基中生长的微生物,为石油污染环境生物修复提供候选菌株。【方法】利用改良无氮培养基分离菌株,根据16SrRNA基因序列同源性鉴定菌株,并对其进行固氮酶活性分析、固氮基因和石油降解基因扩增。【结果】筛选得到21株菌,分属于16个不同的属,其中假单胞菌属所占比例最高(23.8%)。固氮酶活性分析结果表明,8株细菌可检测到乙炔还原活性,从3株菌株中扩增到固氮基因nifH,其余13株细菌被鉴定为寡氮营养菌(oligotrophic-nitrogen bacteria)。对21株菌株的石油降解相关基因进行扩增,发现5株菌株基因组中具有烷烃单加氧酶基因alkB或细胞色素P450基因。【结论】本研究从辽河油田油藏水中分离到的细菌适应寡氮环境,具备降解石油潜能,丰富了石油污染地区的微生物多样性,为生物修复提供菌种基础。  相似文献   

20.
植物根系分泌物对土壤污染修复的作用及影响机理   总被引:4,自引:0,他引:4  
王亚  冯发运  葛静  李勇  余向阳 《生态学报》2022,42(3):829-842
生物修复是一种经济环保的土壤修复技术。根系分泌物是利用生物修复污染土壤过程中的关键物质,也是植物与土壤微生物进行物质交换和信息传递的重要载体,在植物响应污染物胁迫中扮演重要角色。研究植物根系分泌物对土壤污染修复的作用和影响机理,是深入理解植物和微生物环境适应机制的重要途径,对促进生物修复污染土壤有重要指导意义。从污染物胁迫对根系分泌物的影响、根系分泌物对土壤污染物环境行为的影响、根系分泌物在调控污染土壤中根际微生物群落结构和多样性中发挥的作用等几个方面综述了根系分泌物对土壤污染修复的影响及内在机制。研究结果表明,根系分泌物在降低重金属对植物的毒性、加速有机污染物降解等方面有非常重要的作用。根系分泌物对土壤微生物的丰度和多样性均有显著影响,其与根际微生物互作在土壤污染物的消减中发挥了重要的调控作用。在此基础上,提出了以往研究中的不足,并对污染物胁迫下根系分泌物未来研究的方向和趋势进行了展望。  相似文献   

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