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1.
马若潺  魏晓梦  何若 《生态学杂志》2017,28(6):2047-2054
甲烷生物氧化在全球大气甲烷平衡和温室气体的控制中起着重要作用.氧气是甲烷生物氧化过程中的重要影响因素之一.生境中氧浓度不仅影响好氧甲烷氧化菌的种群结构、活性及甲烷碳的分配,而且好氧甲烷氧化菌在不同氧浓度下具有不同的代谢途径.理解低氧生境中好氧甲烷氧化菌的缺氧耐受机理和甲烷生物氧化过程,对甲烷驱动型生态系统的碳循环和生物多样性有着重要意义.本文以好氧甲烷氧化菌为对象,综述了低氧生境中好氧甲烷氧化菌的活性及其种群结构、好氧甲烷氧化菌的缺氧耐受机理以及低氧生境中甲烷氧化菌与非甲烷氧化菌的关系,并对今后的研究方向进行了展望.  相似文献   

2.
甲烷氧化菌是一类可以利用甲烷作为唯一碳源和能源的细菌,在全球变化和整个生态系统碳循环过程中起着重要的作用。近年来,对甲烷氧化菌的生理生态特征及其在自然湿地中的群落多样性研究取得了较大进展。在分类方面,疣微菌门、NC10门及两个丝状菌属甲烷氧化菌的发现使其分类体系得到了进一步的完善;在单加氧酶方面,发现甲烷氧化菌可以利用pM MO和sM MO两种酶进行氧化甲烷的第一步反应,Ⅱ型甲烷氧化菌中pM MO2的发现证实甲烷氧化菌可以利用这种酶氧化低浓度的甲烷;在底物利用方面,已经发现了越来越多的兼性营养型甲烷氧化菌,证实它们可以利用的底物比之前认为的更广泛,其中包括乙酸等含有碳碳键的化合物;在生存环境方面,能在不同温度、酸度和盐度的环境中生存的甲烷氧化菌不断被分离出来。全球自然湿地甲烷氧化菌群落多样性的研究目前主要集中在北半球高纬度的酸性泥炭湿地,Ⅱ型甲烷氧化菌Methylocystis、Methylocella和Methylocapsa是这类湿地主要的甲烷氧化菌类群,尤其以Methylocystis类群最为广泛,而Ⅰ型甲烷氧化菌尤其是Methylobacter在北极寒冷湿地中占优势。随着高通量测序时代的到来和新的分离技术的发展,对甲烷氧化菌的现有认识将面临更多的挑战和发展。  相似文献   

3.
为分析氮源类型对甲烷氧化体系微生物群落的影响,本研究设计了以硝酸盐、铵盐、或氮气为唯一氮源的3个实验组对甲烷富集样品进行培养,监测培养基中离子浓度的变化,利用Illumina Miseq测序和克隆文库测序分析样品的微生物群落结构和组成,并通过定量PCR检测甲烷氧化菌和非甲烷甲基氧化菌嗜甲基菌的含量。研究显示,所有实验组中甲烷氧化菌的丰度均较低,非甲烷甲基氧化菌在群落中占主导地位,硝酸盐组和铵盐组中,嗜甲基菌科细菌的丰度最高,无氮源组中丛毛单胞菌科和柄杆菌科细菌占主导。这表明甲烷氧化是由甲烷氧化细菌和非甲烷甲基氧化菌协同完成,非甲烷甲基氧化菌通过利用甲烷氧化菌的代谢中间产物参与甲烷氧化。硝酸盐和铵盐在甲烷氧化过程中对嗜甲基菌的生长起促进作用。硝酸盐组和铵盐组中细菌群落的结构、组成及变化趋势相近,因此,硝酸盐可能和铵盐一样,作为营养物质参与到甲烷氧化过程中,而非作为电子受体进行反硝化反应。  相似文献   

4.
严程  梅娟  赵由才 《生物工程学报》2022,38(4):1322-1338
好氧甲烷氧化菌能以甲烷作为碳源和能源,对全球甲烷消除的贡献率高达10%–20%,还能有效地合成有价值的甲烷来源生物产品。文中介绍了好氧甲烷氧化菌的甲烷氧化代谢机理,总结了好氧甲烷氧化菌在填埋场甲烷减排、煤矿通风气治理、合成生物产品、油气藏勘探等领域的实际应用功效和研究热点,即污染物去除和产品合成效率的影响因素。基于对甲烷氧化菌规模化培养方法的研究,本文认为加强培养过程中代谢产物对甲烷氧化菌活性和种群结构影响的研究,以及开发经济高效的替代培养基和培养技术的研究将有利于好氧甲烷氧化菌生物技术的应用推广。  相似文献   

5.
甲烷氧化菌及其在环境治理中的应用   总被引:2,自引:0,他引:2  
魏素珍 《应用生态学报》2012,23(8):2309-2318
甲烷的生物氧化包括好氧氧化和厌氧氧化两种,分别由好氧甲烷氧化菌和厌氧甲烷氧化菌完成.由于该过程是减少自然环境中温室气体甲烷排放的重要途径,越来越受到各国学者的重视.本文主要对当前甲烷氧化菌的研究现状进行了综述,对好氧甲烷氧化菌的种类、参与氧化甲烷的关键酶,厌氧甲烷氧化菌的种类、参与的微生物菌种以及氧化机理进行了论述,并对这两类微生物在温室气体减排、污染物治理、废水生物脱氮、硫及金属元素回收等方面的应用现状及前景进行了分析.  相似文献   

6.
甲烷氧化菌是一类能够以甲烷作为唯一碳源和能量维持生存的微生物,其活动与生态系统中物质循环及能量流动密切相关。【目的】了解阿哈湖水库沉积物中甲烷氧化菌群落结构及代谢功能。【方法】采用宏基因组技术对环湖沉积物和湖心沉积物进行研究。【结果】水库沉积物中主要的好氧甲烷氧化菌是甲基杆菌属(Methylobacter) (0.37%)和甲基单胞菌属(Methylomonas) (0.12%),主要的厌氧甲烷氧化菌是Candidatus_Methylomirabilis (0.12%),属于NC10门细菌中的亚硝酸盐反硝化型厌氧甲烷氧化菌,其中好氧甲烷氧化菌的pmoA基因为6.16×107 copies/g,反硝化型厌氧甲烷氧化菌的16S rRNA基因为2.84×107 copies/g。4种代谢的功能基因多样性表现为氮代谢>碳代谢>硫代谢>甲烷代谢,基于京都基因和基因组百科全书(Kyoto encyclopedia of genes and genomes, KEGG)基因库进行注释得到6大类功能,发现18条与碳(包括甲烷)、氮、硫代谢有关的完整代谢途径。主坐标分析(principal coordinates analysis, PCoA)显示环湖沉积物与湖心沉积物之间的甲烷氧化菌种类和功能存在显著差异。影响甲烷氧化菌分布的主要环境因子为氧化还原电位、电导率和硫酸根。【结论】阿哈湖水库甲烷氧化菌以Ⅰ型好氧甲烷氧化菌为主,甲烷氧化菌群落代谢途径丰富,Ⅰ型和Ⅱ型甲烷氧化菌在对O2的适应性上有显著差异。相关研究可为湖泊水生态环境的保护和微生物资源的开发利用等方面提供一定的理论支撑。  相似文献   

7.
甲烷营养菌(methanotrophs)是一类以CH_4为唯一碳源和能源的细菌,广泛分布在水稻土、森林土、苔原土、泥炭地、海洋与湖泊底泥、堆肥、垃圾填埋场及地下水等环境中,并作为大气甲烷(CH_4)唯一的生物汇(库),在全球温室效应研究中备受关注.目前,关于土壤甲烷营养菌的研究主要包括菌株的多样性、生态分布以及环境因素对微生物氧化CH_4过程的影响.本文从甲烷营养菌的分类入手,概述稻田土壤CH_4的氧化与释放、旱地土壤CH_4的氧化以及影响土壤CH_4氧化的因素等方面的研究进展,同时介绍了土壤甲烷营养菌研究领域的几种主要的分子研究技术,以期为甲烷营养菌相关的研究提供参考.  相似文献   

8.
陆地生态系统甲烷产生和氧化过程的微生物机理   总被引:8,自引:0,他引:8  
张坚超  徐镱钦  陆雅海 《生态学报》2015,35(20):6592-6603
陆地生态系统存在许多常年性或季节性缺氧环境,如:湿地、水稻土、湖泊沉积物、动物瘤胃、垃圾填埋场和厌氧生物反应器等。每年有大量有机物质进入这些环境,在缺氧条件下发生厌氧分解。甲烷是有机质厌氧分解的最终产物。产生的甲烷气体可通过缺氧-有氧界面释放到大气,产生温室效应,是重要的温室气体。产甲烷过程是缺氧环境中有机质分解的核心环节,而甲烷氧化是缺氧-有氧界面的重要微生物过程。甲烷的产生和氧化过程共同调控大气甲烷浓度,是全球碳循环不可分割的组成部分。对陆地生态系统甲烷产生和氧化过程的微生物机理研究进展进行了概要回顾和综述。主要内容包括:新型产甲烷古菌即第六和第七目产甲烷古菌和嗜冷嗜酸产甲烷古菌的发现;短链脂肪酸中间产物互营氧化过程与直接种间电子传递机制;新型甲烷氧化菌包括厌氧甲烷氧化菌和疣微菌属好氧甲烷氧化菌的发现;甲烷氧化菌生理生态与环境适应的新机制。这些研究进展显著拓展了人们对陆地生态系统甲烷产生和氧化机理的认识和理解。随着新一代土壤微生物研究技术的发展与应用,甲烷产生和氧化微生物研究领域将面临更多机遇和挑战,对未来发展趋势做了展望。  相似文献   

9.
极端环境下嗜热酸甲烷营养细菌研究进展   总被引:5,自引:0,他引:5  
郑勇  郑袁明  张丽梅  贺纪正 《生态学报》2009,29(7):3864-3871
甲烷营养细菌能够将温室气体甲烷(CH4)转化为CO2或生物质,在碳生物地球化学循环及缓解由温室气体导致的全球气候变化方面发挥着重要的作用.甲烷营养细菌生存的条件范围较为广泛,但在中性pH (5~8)和中温(20~35℃)范围内生长最佳.系统进化分析认为,它们均属于γ-或α-变形菌门(Proteobacteria).最近3项独立完成的研究从极端热酸(pH接近1,温度高于50℃)环境中分离获得了具有甲烷氧化(营养)功能的微生物,经鉴定均属于疣微菌门(Verrucomicrobia).这些全新的、不同于以往的研究结果不仅是对现有关于甲烷营养细菌生态学认知的进一步拓展,同时也暗示着可能存在着新型的、由微生物介导的CH4氧化途径与机制. 因此,特就极端环境中嗜热嗜酸甲烷营养细菌的最新研究进展作一概述.  相似文献   

10.
郑燕  贾仲君 《微生物学报》2013,53(2):173-184
[目的]利用新一代高通量测序技术分析复杂土壤环境中整体微生物群落结构的变化规律,研究特定功能微生物生理过程的分子机制;利用稳定性同位素示踪微生物核酸DNA/RNA,研究复杂土壤中关键元素转化的微生物调控机制.[方法]针对我国第四纪红色粘土母质发育的3种稻田红壤,围绕13C-甲烷好氧氧化的微生物过程,在DNA和RNA水平高通量测序土壤微生物群落16S rRNA基因和16S rRNA,通过超高速密度梯度离心土壤微生物总核酸获得13C-标记的DNA/RNA,进一步采用克隆文库技术研究稻田红壤甲烷好氧氧化的微生物作用者.[结果]新一代高通量测序结果表明,3种稻田红壤甲烷的好氧氧化过程中,甲烷好氧氧化菌占土壤整体微生物群落的丰度显著增加,RNA水平的增幅显著高于DNA水平,能够更为灵敏地反映土壤甲烷好氧氧化的微生物过程.3种稻田红壤甲烷的好氧氧化过程中,类型Ⅰ和类型Ⅱ甲烷好氧氧化菌在湖南古市土壤中显著增加,湖南桃源土壤中类型Ⅱ甲烷好氧氧化菌增加明显,而类型Ⅰ甲烷好氧氧化菌在广东雷州土壤中增幅最大.进一步利用13C-DNA和13C-RNA分别构建pmoA基因和16S rRNA克隆文库,发现类型Ⅰ甲烷好氧氧化菌主导了湖南古市和广东雷州稻田红壤甲烷的好氧氧化过程,类型Ⅱ甲烷好氧氧化菌主导了湖南桃源稻田红壤甲烷的好氧氧化过程.[结论]新一代高通量测序技术能够在整体微生物群落水平,清楚反映复杂土壤中特定功能微生物的生理生态过程,而RNA较DNA水平的分析更为灵敏;稳定性同位素示踪微生物核酸DNA/RNA技术能够准确地揭示复杂土壤重要过程的微生物作用者.  相似文献   

11.
The diversity of methanotrophic bacteria associated with roots of submerged rice plants was assessed using cultivation-independent techniques. The research focused mainly on the retrieval of pmoA, which encodes the alpha subunit of the particulate methane monooxygenase. A novel methanotroph-specific community-profiling method was established using the terminal restriction fragment length polymorphism (T-RFLP) technique. The T-RFLP profiles clearly revealed a more complex root-associated methanotrophic community than did banding patterns obtained by pmoA-based denaturing gradient gel electrophoresis. The comparison of pmoA-based T-RFLP profiles obtained from rice roots and bulk soil of flooded rice microcosms suggested that there was a substantially higher abundance of type I methanotrophs on rice roots than in the bulk soil. These were affiliated to the genera Methylomonas, Methylobacter, Methylococcus, and to a novel type I methanotroph sublineage. By contrast, type II methanotrophs of the Methylocystis-Methylosinus group could be detected with high relative signal intensity in both soil and root compartments. Phylogenetic treeing analyses and a set of substrate-diagnostic amino acid residues provided evidence that a novel pmoA lineage was detected. This branched distinctly from all currently known methanotrophs. To examine whether the retrieval of pmoA provided a complete view of root-associated methanotroph diversity, we also assessed the diversity detectable by recovery of genes coding for subunits of soluble methane monooxygenase (mmoX) and methanol dehydrogenase (mxaF). In addition, both 16S rRNA and 16S ribosomal DNA (rDNA) were retrieved using a PCR primer set specific to type I methanotrophs. The overall methanotroph diversity detected by recovery of mmoX, mxaF, and 16S rRNA and 16S rDNA corresponded well to the diversity detectable by retrieval of pmoA.  相似文献   

12.
Methane vents are of significant geochemical and ecological importance. Notable progress has been made toward understanding anaerobic methane oxidation in marine sediments; however, the diversity and distribution of aerobic methanotrophs in the water column are poorly characterized. Both environments play an essential role in regulating methane release from the oceans to the atmosphere. In this study, the diversity of particulate methane monooxygenase (pmoA) and 16S rRNA genes from two methane vent environments along the California continental margin was characterized. The pmoA phylotypes recovered from methane-rich sediments and the overlying water column differed. Sediments harbored the greatest number of unique pmoA phylotypes broadly affiliated with the Methylococcaceae family, whereas planktonic pmoA phylotypes formed three clades that were distinct from the sediment-hosted methanotrophs and distantly related to established methanotrophic clades. Water column-associated phylotypes were highly similar between field sites, suggesting that planktonic methanotroph diversity is controlled primarily by environmental factors rather than geographical proximity. Analysis of 16S rRNA genes from methane-rich waters did not readily recover known methanotrophic lineages, with only a few phylotypes demonstrating distant relatedness to Methylococcus. The development of new pmo primers increased the recovery of monooxygenase genes from the water column and led to the discovery of a highly diverged monooxygenase sequence which is phylogenetically intermediate to Amo and pMMO. This sequence potentiates insight into the amo/pmo superfamily. Together, these findings lend perspective into the diversity and segregation of aerobic methanotrophs within different methane-rich habitats in the marine environment.  相似文献   

13.
Culture-independent molecular biological techniques, including 16S rRNA gene and functional gene clone libraries and microarray analyses using pmoA (encoding a key subunit of particulate methane monooxygenase), were applied to investigate the methanotroph community structure in alkaline soil from a Chinese coal mine. This environment contained a high diversity of methanotrophs, including the type II methanotrophs Methylosinus / Methylocystis , type I methanotrophs related to Methylobacter / Methylosoma and Methylococcus , and a number of as yet uncultivated methanotrophs. In order to identify the metabolically active methane-oxidizing bacteria from this alkaline environment, DNA stable isotope probing (DNA-SIP) experiments using 13CH4 were carried out. This showed that both type I and type II methanotrophs were active, together with methanotrophs related to Methylocella , which had previously been found only in acidic environments. Methylotrophs, including Methylopila and Hyphomicrobium , were also detected in soil DNA and after DNA-SIP experiments. DNA sequence information on the most abundant, active methanotrophs in this alkaline soil will facilitate the design of oligonucleotide probes to monitor enrichment cultures when isolating key alkaliphilic methanotrophs from such environments.  相似文献   

14.
Termite-derived methane contributes 3 to 4% to the total methane budget globally. Termites are not known to harbor methane-oxidizing microorganisms (methanotrophs). However, a considerable fraction of the methane produced can be consumed by methanotrophs that inhabit the mound material, yet the methanotroph ecology in these environments is virtually unknown. The potential for methane oxidation was determined using slurry incubations under conditions with high (12%) and in situ (∼0.004%) methane concentrations through a vertical profile of a termite (Macrotermes falciger) mound and a reference soil. Interestingly, the mound material showed higher methanotrophic activity. The methanotroph community structure was determined by means of a pmoA-based diagnostic microarray. Although the methanotrophs in the mound were derived from populations in the reference soil, it appears that termite activity selected for a distinct community. Applying an indicator species analysis revealed that putative atmospheric methane oxidizers (high-indicator-value probes specific for the JR3 cluster) were indicative of the active nest area, whereas methanotrophs belonging to both type I and type II were indicative of the reference soil. We conclude that termites modify their environment, resulting in higher methane oxidation and selecting and/or enriching for a distinct methanotroph population.  相似文献   

15.
Methane is an important greenhouse gas which is produced from many natural and anthropogenic sources. It plays an important role in overall global warming. A significant amount of methane is removed through microbiological oxidation by methanotrophic bacteria, which are widespread in the environment, including many extreme environments. The key enzyme of these microorganisms, methane monooxygenase (MMO), especially the soluble MMO, is remarkable in its broad substrate specificity. This unique capability, i.e. catalyzing reactions of environmental importance, has attracted great attention for applied microbiologists and biochemical engineers. In this review, recent advances in the application of methanotrophs to environmental bioengineering are summarized, including biodiversity, catalytic properties, and cultivation, etc. We have focused on two aspects of the application and potential value of methanotrophs in environmental bioengineering, namely methane removal and biodegradation of toxic compounds. The removal of methane produced from landfills has been widely studied, and much of this work can be used as a source of reference for coal mine gas removal. Many bioreactors using methanotrophs in bioremediation have been developed in recent years. These reactors have two forms of configuration, single-stage and multi-stage. Current limitations which may affect the engineering applications of methanotrophs are discussed, such as the lack of suitable methanotrophic isolate, gas transfer limitation, competitive inhibition of MMO, regeneration of reducing equivalents for MMO and product toxicity.  相似文献   

16.
Soda lakes are an environment with an unusually high pH and often high salinity. To identify the active methanotrophs in the Soda lake sediments, sediment slurries were incubated with a 10% (v/v) (13)CH(4) headspace and the (13)C-labelled DNA was subsequently extracted from these sediments following CsCl density gradient centrifugation. This DNA was then used as a template for PCR amplification of 16S rRNA genes and genes encoding PmoA and MmoX of methane monooxygenase, key enzymes in the methane oxidation pathway. Phylogenetic analysis of 16S rRNA genes, PmoA and MmoX identified that strains of Methylomicrobium, Methylobacter, Methylomonas and 'Methylothermus' had assimilated the (13)CH(4). Phylogenetic analysis of PmoA sequences amplified from DNA extracted from Soda lake sediments before Stable Isotope Probing (SIP) treatment showed that a much wider diversity of both type I and type II methanotroph sequences are present in this alkaline environment. The majority of methanotroph sequences detected in the (13)C-DNA studies were from type I methanotrophs, with 50% of 16S rRNA clones and 100% of pmoA clones from both Lake Suduntuiskii Torom and Lake Gorbunka suggesting that the type I methanotrophs are probably responsible for the majority of methane oxidation in this environment.  相似文献   

17.
The diversity of methanotrophic bacteria associated with roots of submerged rice plants was assessed using cultivation-independent techniques. The research focused mainly on the retrieval of pmoA, which encodes the α subunit of the particulate methane monooxygenase. A novel methanotroph-specific community-profiling method was established using the terminal restriction fragment length polymorphism (T-RFLP) technique. The T-RFLP profiles clearly revealed a more complex root-associated methanotrophic community than did banding patterns obtained by pmoA-based denaturing gradient gel electrophoresis. The comparison of pmoA-based T-RFLP profiles obtained from rice roots and bulk soil of flooded rice microcosms suggested that there was a substantially higher abundance of type I methanotrophs on rice roots than in the bulk soil. These were affiliated to the genera Methylomonas, Methylobacter, Methylococcus, and to a novel type I methanotroph sublineage. By contrast, type II methanotrophs of the Methylocystis-Methylosinus group could be detected with high relative signal intensity in both soil and root compartments. Phylogenetic treeing analyses and a set of substrate-diagnostic amino acid residues provided evidence that a novel pmoA lineage was detected. This branched distinctly from all currently known methanotrophs. To examine whether the retrieval of pmoA provided a complete view of root-associated methanotroph diversity, we also assessed the diversity detectable by recovery of genes coding for subunits of soluble methane monooxygenase (mmoX) and methanol dehydrogenase (mxaF). In addition, both 16S rRNA and 16S ribosomal DNA (rDNA) were retrieved using a PCR primer set specific to type I methanotrophs. The overall methanotroph diversity detected by recovery of mmoX, mxaF, and 16S rRNA and 16S rDNA corresponded well to the diversity detectable by retrieval of pmoA.  相似文献   

18.
Acidic wetlands of the northern hemisphere are an important source of methane, a major greenhouse gas. The taxonomic identity of the aerobic methanotrophic bacteria, which colonize these environments and reduce the potential flux of methane to the atmosphere, has remained elusive for a long time. Both cultivation-independent molecular approaches and cultivation-based studies have been used to identify methanotrophs in this acidic habitat. It was shown that acidic peat is colonized mainly by methanotrophic representatives of the Alphaproteobacteria: Methylocystis spp., Methylocella spp. and Methylocapsa spp. Novel methanotrophic isolates from acidic wetlands display a number of unique characteristics and metabolic traits including unusual cell ultrastructure and fatty acid composition, ability to utilize some multicarbon compounds as growth substrates, and new regulatory mechanisms of methane oxidation. Several other methanotroph populations, which have been detected in acidic peat by molecular approaches but have so far eluded isolation, represent a challenge for further cultivation studies.  相似文献   

19.
The oxidation of methane to methanol in methanotrophic bacteria is catalysed by the enzyme methane monooxygenase (MM0). This multicomponent enzyme catalyses a range of oxidations including that of aliphatic and aromatic compounds and therefore has potential for commercial exploitation. This study details the molecular characterization of the soluble MMO (sMMO) genes from the Type II methanotroph Methylosinus trichosporium OB3b. The structural genes encoding the alpha, beta and gamma subunits of sMMO protein A and the structural gene encoding component B have been isolated and sequenced. These genes have been expressed and their products identified using an in vitro system. A comparative analysis of sMMO predicted sequences of M. trichosporium OB3b and the taxonomically related M. capsulatus (Bath) is also presented.  相似文献   

20.
自然湿地土壤产甲烷菌和甲烷氧化菌多样性的分子检测   总被引:3,自引:0,他引:3  
佘晨兴  仝川 《生态学报》2011,31(14):4126-4135
自然湿地是CH4排放的重要来源之一。产甲烷菌和甲烷氧化菌是介导自然湿地甲烷循环的重要功能菌群。开展产甲烷菌和甲烷氧化菌多样性的检测研究有助于揭示微生物介导的甲烷循环以及自然湿地甲烷排放的时空异质性。传统基于培养的检测方法已被证实无法充分描述产甲烷菌和甲烷氧化菌的多样性,而分子检测方法为自然湿地土壤产甲烷菌和甲烷氧化菌的多样性检测提供了一种更准确和科学的工具。本文综述了自然湿地土壤产甲烷菌和甲烷氧化菌的定性和定量分子检测方法,包括末端限制性片段长度多态性(T-RFLP)、变性梯度凝胶电泳(DGGE)、荧光原位杂交(FISH)和实时定量PCR(real-time qPCR),重点分析了分子检测中两类重要的标记基因,总结了不同类型自然湿地产甲烷菌和甲烷氧化菌群落多样性的最新成果,提出了我国在该领域今后应深入研究探讨的一些问题及建议。  相似文献   

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