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1.
胡立芳  贺永华 《环境科学》2007,28(1):199-203
通过接种Penicillium sp.和模拟小麦根际环境的方法,研究了甲磺隆在Penicillium sp.和小麦根际分泌物协同作用下的生物降解特性.结果表明,根系分泌物丰富了土著微生物和外源微生物,对甲磺隆的降解具有显著的促进作用.接种Penicillium sp.的根际土壤中甲磺隆降解半衰期为8.6 d,其降解速率是接种Penicillium sp.的非根际土壤的1.8倍,是普通根际土壤的2.7倍.继续追加甲磺隆的试验表明,接种菌株Penicillium sp.对甲磺隆的降解具有可持续性.  相似文献   

2.
膨胀污泥中丝状菌的分离鉴定与特性分析   总被引:3,自引:2,他引:1  
为了阐明膨胀污泥中的丝状菌种类和特性,利用培养法、显微镜检和分子生物学分析技术从城市污水处理厂的膨胀污泥中分离鉴定丝状菌,并对典型丝状菌进行特性分析.利用高氏一号培养基和淀粉培养基分离出的丝状菌可归入18个属,其中链霉菌属(Streptomyce)、细杆菌属(Microbacterium)属于放线菌门,其余均属于真菌.青霉菌属(Penicillium)、枝孢菌属(Cladosporium)、链格孢属(Alternaria)、曲霉菌属(Aspergillus)、毛孢子菌属(Trichosporon)在培养基上的出现频次较高.毛孢子菌、链霉菌、青霉菌和链格孢菌都能在pH中性或偏酸性条件下良好生长.高浓度的Na Cl能够抑制毛孢子菌和链霉菌,但对青霉菌和链格孢菌的抑制作用不明显.除毛孢子菌外,链霉菌、青霉菌和链格孢菌都可有效地利用蔗糖、淀粉和纤维素,碳源浓度增加会促进它们的生长.r DNA-ITS区高通量测序结果表明膨胀污泥中存在大量未知真菌.  相似文献   

3.
The antifungal potential of the pygidial gland secretion of the troglophilic ground beetle Laemostenus punctatus from a cave in Southeastern Serbia against cave-dwelling micromycetes, isolated from the same habitat, has been investigated. Eleven collected samples were analyzed and 32 isolates of cave-dwelling fungi were documented. A total of 14 fungal species were identified as members of the genera Aspergillus, Penicillium, Alternaria, Cladosporium, Rhizopus, Trichoderma, Arthrinium, Aureobasidium, Epicoccum, Talaromyces, and Fusarium. Five isolates were selected for testing the antifungal activity of the pygidial gland secretion: Talaromyces duclauxi, Aspergillus brunneouniseriatus, Penicillium sp., Rhizopus stolonifer, and Trichoderma viride. The microdilution method has been applied to detect minimal inhibitory concentrations (MICs) and minimal fungicidal concentrations (MFCs). The most sensitive isolate was Penicillium sp., while the other isolates demonstrated a high level of resistance to the tested agent. L. punctatus has developed a special mechanism of producing specific compounds that act synergistically within the secretion mixture, which are responsible for the antifungal action against pathogens from the cave. The results open opportunities for further research in the field of ground beetle defense against pathogens, which could have an important application in human medicine, in addition to the environmental impact, primarily.  相似文献   

4.
麦秸强化微生物降解石油烃及场地试验   总被引:6,自引:0,他引:6  
在油-盐混合污染耕地的耕作层中施加麦秸以强化水浸洗盐和促进微生物对石油烃的降解.通过实验考察了麦秸添加量对降解石油烃所用的阴沟肠杆菌(Enterobacter cloacae)和刺孢小克银汉霉菌(Cunninghamella echinulata)的生长及其对于石油烃降解行为的影响.结果发现,在土壤中添加5%(质量分数)麦秸可使土壤中的细菌和真菌生物量提高至对照样品的25和3倍;19 d时总石油烃降解率从29.2% 提高到48.0%,其中饱和烃、芳烃的降解率分别从31.5%和39.1%提高到55.7%和55.9%.在中原油田污染耕地现场试验结果表明,石油烃降解菌添加25 d后,添加麦秸的修复土壤中的细菌和真菌生物量为对照土壤的158和9倍;45 d后试验地块中的总石油烃质量分数降至0.3%以下,石油烃降解率最高达到75%.上述结果显示出添加麦秸与真菌-细菌协同修复方法相结合在治理油-盐混合污染耕地中具有很好的应用前景.  相似文献   

5.
城市居家环境空气真菌群落结构特征研究   总被引:3,自引:1,他引:2  
居室环境质量的优劣与人类健康密切相关.成年人约80%~90%的时间是在室内度过,而且现代人们的生活越来越离不开空调,由于人体、房间和空调机在室内会形成了一个封闭的循环系统,容易使细菌、病毒、霉菌等微生物大量繁衍.因此,百货商场、学校教室、办公室和现代住宅等近年来成为了室内环境空气质量的研究热点.在北京市5个方向(东南西北中)共选取31户具有小孩的家庭于2009年11月~2010年10月进行试验,研究了城市居家环境空气真菌的群落结构特征.结果表明,从分离的225株空气真菌中共鉴定出24属,从鉴定出现的次数来看,其优势真菌属依次为青霉属(Penicillium)、枝孢属(Cladosporium)、曲霉属(Aspergillus)、链格孢属(Alternaria)和茎点霉属(Phoma),其中青霉属出现的次数占分离菌株总数的36%.居家环境中青霉属、枝孢属、曲霉属、链格孢属、丛梗孢属(Monilia)的出现频率较高,其中青霉属的出现频率在90%以上;浓度百分比较高的真菌依次为青霉属、枝孢属、曲霉属、无孢菌和链格孢属,它们浓度总和约占总浓度的65.0%及以上,其中青霉属浓度百分比为32.2%.在北京市取样的31户家庭中,空气真菌浓度范围为62~3 498 CFU.m-3,平均值为837 CFU.m-3.空气真菌总浓度与枝孢属、曲霉属、链格孢属浓度的季节变化特征基本一致,夏季明显高于春季、秋季和冬季(P<0.05*),冬季浓度最低,而青霉属浓度的季节变化则表现为春季较高,夏季、秋季和冬季没有显著差异(P>0.05*).北京市居家环境空气真菌浓度男孩家庭明显高于女孩家庭(P<0.05*),并且家庭空气真菌浓度与人均居住面积呈显著负相关.  相似文献   

6.
北京市室外空气真菌分布特征   总被引:9,自引:1,他引:8  
通过定点取样研究北京市空气真菌的种类组成,浓度特征及其动态变化规律.监测结果表明,北京市空气真菌平均浓度为(1164.8±73.2)CFU.m-3,浓度变异很大,变化范围为23.6~13959.5CFU.m-3.空气中优势真菌为枝孢属(Cladosporium)、青霉属(Penicillium)、链格孢属(Alternaria)、曲霉属(Aspergillus)和无孢菌(non-sporing),其中枝孢属是绝对优势真菌,浓度约占真菌总浓度的1/3以上.文教区和公园绿地空气真菌浓度夏季和秋季较高,春季和秋季较低,而交通干线空气真菌浓度4季变化趋势不明显.文教区和公园绿地空气真菌浓度明显高于交通干线(p<0.05),文教区和公园绿地之间则没有显著差异.  相似文献   

7.
有关内分泌干扰物三苯基锡(TPhT)生物降解的强化措施和降解机制的报道较少,TPhT降解过程中脱苯反应是同步还是逐步发生还不明确.为阐明这些问题,研究了吐温80对苏云金芽孢杆菌降解TPhT及其降解产物的影响.结果表明,吐温80能明显提高TPhT在水中的溶解度.苏云金芽孢杆菌和80 mg·L-1吐温80共同处理1 mg·L-1TPhT 2 d后,TPhT残余浓度降至48.4%.降解过程,吐温80可显著地减少细胞内Na+、NH+4和Mg2+向胞外的释放,增加对细胞外Cl-、PO3-4和K+的吸收.代谢产物分析表明,苯基锡的生物降解始于苯环裂解,而不是苯环和锡原子之间共价键的分裂.TPhT中各苯环的开环反应可以单独进行,亦可同步发生,进而生成二苯基锡、一苯基锡和无机锡.  相似文献   

8.
A pot experiment was conducted to investigate the biodegradation dynamics and related microbial ecophysiological responses to butachlor addition in a riparian soil planted with different plants such as Phragmites australis, Zizania aquatica, and Acorus calamus. The results showed that there were significant differences in microbial degradation dynamics of butachlor in the rhizosphere soils among the three riparian plants. A. calamus displays a significantly higher degradation efficiency of butachlor in the rhizosphere soils, as compared with Z aquatica and P. australis. Half-life time of butachlor degradation in the rhizospheric soils of P. australis, Z aquatica, and A. calamus were 7.5, 9.8 and 5.4 days, respectively. Residual butachlor concentration in A. calamus rhizosphere soil was 35.2% and 21.7% lower than that in Z aquatica and P. australis rhizosphere soils, respectively, indicating that A. calamus showed a greater improvement effect on biodegradation of butachlor in rhizosphere soils than the other two riparian plant. In general, microbial biomass and biochemical activities in rhizosphere soils were depressed by butachlor addition, despite the riparian plant types. However, rhizospheric soil microbial ecophysiological responses to butachlor addition significantly (P < 0.05) differed between riparian plant species. Compared to Z aquatica and P. australis, A. calamus showed significantly larger microbial number, higher enzyme activities and soil respiration rates in the rhizosphere soils. The results indicated that A. calamus have a better alleviative effect on inhibition of microbial growth due to butachlor addition and can be used as a suitable riparian plant for detoxifying and remediating butachlor contamination from agricultural nonpoint pollution.  相似文献   

9.
An acclimatized mixed microbial culture, predominantly Pseudomonas sp., was enriched from a sewage treatment plant, and its potential to simultaneously degrade mixtures of phenol and m-cresol was investigated during its growth in batch shake flasks. A 22 full factorial design with the two substrates at two different levels and different initial concentration ranges (low and high), was employed to carry out the biodegradation experiments. The substrates phenol and m-cresol were completely utilized within 21 h when present at low concentrations of 100 mg/L for each, and at high concentration of 600 mg/L for each, a maximum time of 187 h was observed for their removal. The biodegradation results also showed that the presence of phenol in low concentration range (100–300 mg/L) did not inhibit m-cresol biodegradation. Whereas the presence of m-cresol inhibited phenol biodegradation by the culture. Moreover, irrespective of the concentrations used, phenol was degraded preferentially and earlier than m-cresol. A sum kinetics model was used to describe the variation in the substrate specific degradation rates, which gave a high coefficient of determination value (R2 > 0.98) at the low concentration range of the substrates. From the estimated interaction parameter values obtained from this model, the inhibitory effect of phenol on m-cresol degradation by the culture was found to be more pronounced compared to that of m-cresol on phenol. This study showed a good potential of the indigenous mixed culture in degrading mixed substrate of phenolics.  相似文献   

10.
黄娟  马华  刘艳  潘雨  黄丽萍 《环境科学学报》2019,39(5):1489-1496
碳质纳米材料(Carbon Nanomaterials, CNMs)因具有独特的电学及光学等性质而引起了人们的广泛关注,从而被大量使用并释放到环境中,进而影响生态系统环境及生物化学过程,但目前有关CNMs与环境微生物相互作用的研究鲜见报道.因此,本文研究了枝孢菌KR14(Cladosporium sp.)与3种CNMs(单壁碳纳米管(SWCNTs)、石墨烯(Graphene)和氧化石墨烯(GO))的相互作用.结果表明,CNMs的加入促进了3种非特异性酶(漆酶、锰过氧化物酶和木质素过氧化物酶)活性增加,其中,对锰过氧化物酶(MnP)活性的促进作用最为显著,18 d最高增加26.1%.在3种类型的CNMs中,SWCNTs对MnP活性刺激最佳,GO最弱.木质素降解实验和电化学分析表明,CNMs可作为电子导体提高真菌胞外电子传递效率,进而提高KR14对木质素的降解.X射线光电子能谱(XPS)结果表明,除GO外,SWCNTs和石墨烯的氧碳比(O/C)均上升,二者表面发生变化.拉曼光谱(Raman)和傅立叶变换红外光谱(FTIR)结果表明,SWCNTs的I_D/I_G显著提高,无序性增加;石墨烯出现2D峰,即与KR14相互作用后有一定程度堆叠;KR14可引起CNMs结构转变.本研究结果有助于深入理解和评价环境中CNMs与真菌之间的相互作用关系及CNMs对真菌降解木质素和环境碳循环的影响.  相似文献   

11.
铜绿假单胞菌对DBP的降解特性研究   总被引:2,自引:0,他引:2  
采用小容量全萃取方法,研究了1株铜绿假单胞菌对BDP的降解特性.结果表明,该菌株对DBP具有高效降解能力,当DBP浓度为400 mg/L,投菌量为2 g/L时,t1/2为3.60 d;其降解过程完全符合一级反应动力学.DBP作为该菌生长的唯一碳源时,其降解过程包括快速生物吸附、解析、降解等几个阶段.实验还确认了存在邻苯二甲酸单丁酯和邻苯二甲酸2种中间产物,从而验证了DBP在双加氧水解酶作用下2步水解变为邻苯二甲酸的历程.  相似文献   

12.
Our previous field studies have shown that the presence of molds in buildings does not necessarily mean elevated airborne spore counts. Therefore, we investigated the release of fungal spores from cultures of Aspergillus fumigatus, Penicillium sp. and Cladosporium sp. at different air velocities and air humidities. Spores of A. fumigatus and Penicillium sp. were released from conidiophores already at air velocity of 0.5 ms−1, whereas Cladosporium spores required at least a velocity of 1.0 ms−1. Airborne spore counts of A. fumigatus and Penicillium sp. were usually higher in dry than moist air, being minimal at relative humidities (r.h.) above 70%, while the effect of r.h. on the release of Cladosporium sp. was ambivalent. The geometric mean diameter of released spores increased when the r.h. exceeded a certain level which depends on fungal genus. Thus, spores of all three fungi were hygroscopic but the hygroscopicity of various spores appeared at different r.h.-ranges. This study indicates that spore release is controlled by external factors and depends on fungal genus which can be one reason for considerable variation of airborne spore counts in buildings with mold problems.  相似文献   

13.
太湖流域上游河网污染物降解系数研究   总被引:10,自引:0,他引:10  
污染物在河流中物理、化学和生物过程的共同作用下浓度会发生衰减,衰减的速率可用表观降解系数表示,其中,仅有生物过程引起污染物浓度衰减的速率用生物降解系数表示.为了探究太湖流域上游河网污染物的降解规律,在20个采样点开展原位实验测算了高锰酸盐指数、氨氮(NH+4-N)、总氮(TN)和总磷(TP)的表观降解系数和生物降解系数,并分析了生物降解系数占表观降解系数的比重.结果表明,太湖流域上游河网高锰酸盐指数、NH+4-N、TN和TP的表观降解系数分别为0.0216~0.1974、0.0152~0.3123、0.0080~0.7870和0.0274~0.5914 d~(-1);生物降解系数分别为0.0083~0.1264、0.0021~0.2138、0.0021~0.0905和0.0110~0.1528 d~(-1).高锰酸盐指数、NH+4-N、TN和TP生物降解系数与表观降解系数的比值分别为19.35%~91.30%、13.85%~99.12%、13.70%~97.78%和3.94%~98.39%.太湖流域上游河网不同河段的表观降解系数和生物降解系数存在较大差异.生物降解在TN和NH+4-N表观降解中发挥的作用较大,在高锰酸盐指数和TP表观降解中发挥的作用相对较小.  相似文献   

14.
为了提高秸秆纤维素乙醇废水的处理效果,选择6种东北土著白腐真菌,对2%的秸秆纤维素乙醇废水中木质素进行降解处理.采用正交试验法对筛选出的高效降解菌进行产漆酶培养基的优化.结果表明:6种白腐真菌最高酶活大小顺序为青顶拟多孔菌>血红密孔菌>糙皮侧耳菌>彩绒革盖菌>烟色烟管菌>灵芝;血红密孔菌、糙皮侧耳菌、彩绒革盖菌、青顶拟多孔菌、灵芝、烟色烟管菌在第0天起始质量浓度为640.9~716.6 mg/L,在第14天木质素的质量浓度分别为434.0、411.2、441.8、441.7、533.3、503.5 mg/L,对木质素的去除率分别为37.1%、37.0%、31.8%、31.7%、25.6%、21.4%,并分别在第12、12、4、4、2、6天木质素降解趋于平稳,表明降解效果最好的菌种为血红密孔菌.血红密孔菌产漆酶培养基最优组合方案:最佳碳源为锯末,质量浓度为35 g/L;最佳氮源为蛋白胨,质量浓度为4 g/L;最佳pH为5.极差分析表明,各因素对血红密孔菌产漆酶的影响顺序为碳源>氮源> pH >氮源质量浓度>碳源质量浓度.在最佳培养基条件下,废水中木质素降解率达41.1%.研究显示,血红密孔菌可以作为生物法处理秸秆纤维素乙醇废水的菌种资源,也可为今后的进一步应用研究提供科学依据.   相似文献   

15.
好氧-厌氧污泥耦合白腐真菌单元对焦化废水的处理   总被引:1,自引:0,他引:1  
白腐真菌因能分泌胞外木质素降解酶降解难降解有机污染物,而在难降解有机废水处理中具有巨大应用潜力.其研究常采用白腐真菌直接处理废水,很少关注常规生物法耦合白腐真菌的处理方式.基于此,分别采用白腐真菌和好氧-厌氧污泥耦合Phanerochaete Chrysosporium处理焦化废水以考察后者的可行性.在好氧-厌氧污泥耦合P.chrysosporium的处理中,仅采用3 d的处理时间,好氧-厌氧污泥可将6097 mg·L~(-1)的COD和351 mg·L~(-1)的氨氮分别降至1634~1684 mg·L~(-1)和102~117 mg·L~(-1);进而固定化P.chrysosporium将COD和氨氮再次分别降至1322~1372 mg·L~(-1)和16~62 mg·L~(-1).最终COD和氨氮的去除率分别达77%~78%和82%~95%,这表明:好氧-厌氧污泥耦合P.chrysosporium处理焦化废水可在更短的处理周期完成比直接采用白腐真菌处理更好的处理效果,此思路合理可行.  相似文献   

16.
地下水石油污染高效生物降解研究   总被引:7,自引:1,他引:6  
考察了高效复合微生物对地下水石油污染物降解效果,并建立了地下水污染质生物降解迁移数学模型.从石油污染的土壤中分离筛选到能够高效降解石油的菌株,经鉴定为假单胞菌属、黄杆菌属和微球菌属,这3种菌属24h对石油降解率分别为62%,56%和52%,且3种菌属组成的复合菌较单一菌属对石油降解率都要高,达85%.高效复合菌与石油配水一起进入模拟地下含水介质的反应器,在反应器前部均能形成一个稳定的生物带.石油配水流经该生物带,石油降解率可达60%以上,反应器出水石油降解率平均可达90%以上.建立的地下水污染质生物降解迁移数学模型对地下水有机污染质生物降解有较好的预测效果,计算值与实测值呈良好的相关性.  相似文献   

17.
木质素降解酶及其调控机理研究的进展   总被引:11,自引:0,他引:11  
近年来有关木质素降解微生物和木质素降解酶的产与调控机理的研究表明,腐霉和细菌在木质自然降解中起着重要作用,腐霉的降解作用发生在次级代谢阶段,而细菌发生在初级代谢阶段,影响木质素降解酶的产生酶活力高低的因素有碳氮的选择与限制;诱导物的添加;表面活性剂的使用;某些金属离子浓度水平的改变;菌丝的固定化,温度和摇床转速的变换等。  相似文献   

18.
短期填埋龄垃圾堆体内微生物群落结构与种群分布特征   总被引:1,自引:0,他引:1  
填埋垃圾的稳定化过程一般经历好氧过渡、水解酸化、初期产甲烷及稳定产甲烷阶段,固相垃圾的厌氧水解酸化阶段常被视为垃圾降解的限速步骤,而这一阶段微生物的降解作用是影响垃圾稳定化进程的关键.以青岛市小涧西生活垃圾填埋场短期填埋龄垃圾为研究对象,采用MiSeq高通量测序研究了填埋龄0~1、1.0~1.5、1.5~2 a垃圾堆体内微生物的群落结构多样性及种群分布特征.结果表明,0~1 a填埋龄垃圾微生物多样性高于1.0~1.5 a和1.5~2 a垃圾堆体,且微生物多样性整体上随填埋深度呈降低趋势.参与垃圾降解细菌多样性比真菌更丰富,而真菌多样性随填埋区域、填埋龄的不同呈现更显著的差异.参与短期填埋龄垃圾降解的细菌中,Firmicutes在填埋层上层为优势菌门,最大比例达到65%,Proteobacteria在填埋层中下层为优势菌门,最大比例达到88%.填埋上层细菌菌属以Defluviitoga、Aerococcus、Clostridium III和Proteiniphilum为主,而在中下层以Thiopseudomonas、Sporosarcina和Eionea为主.真菌主要包括3个菌门,Ascomycota在各点位均为最优势菌门,属水平上Kernia及Aspergillus作为常见的腐生菌属,在不同点位均有较高的丰度.冗余分析表明短期填埋龄垃圾堆体内微生物不同时空分布存在显著差异性,且细菌群落结构的变化受pH值影响较大,而真菌群落结构的变化与垃圾有机质密切相关.  相似文献   

19.
The impacts of soil organic matter (SOM), aging and sterilization on the production of lignin peroxidase (LIP) and manganese peroxidase (MnP) by Phanerochaete chrysosporium during the biodegradation of pyrene in soils were investigated. The biodegradation of pyrene by P. chrysosporium decreased with increasing SOM content, whereas the maximum activities of LiP and MnP increased, which indicates that SOM outweighed pyrene in controlling enzyme production. Sterilization enhanced the degradation of pyrene due to the elimination of competition from indigenous microbes, whereas aging led to a reduction in the degradation of pyrene primarily through changes in its sorbed forms. Both sterilization and aging could reduce SOM content and alter its structure, which also influenced the bioavailability of pyrene and the enzyme activity. The sterilization and aging processes caused changes in the degradation of pyrene, and the enzyme activities were greater in soils with high SOM contents. MnP was related to the degradation of pyrene to a greater extent, whereas LiP was more related to the decomposition of SOM.  相似文献   

20.
采用绿豆为供试植物,通过温室盆栽试验研究接种丛枝菌根(arbuscular mycorrhiza,AM)真菌与DEHP降解菌对DEHP污染土壤的修复作用以及对植物生长的影响.试验土壤中添加DEHP含量为100mg·kg-1,试验设AM真菌Acaulospora laelis 90034、降解菌Bacillus sp.DW1和Gordonia sp.DH3单独接种以及互相组合的联合接种处理,同时设置不接种的对照处理(CK).苗后60 d收获植株.结果表明,AM真菌能很好的侵染绿豆的根系,菌根侵染提高了绿豆地上部分的干重,而对根系的干重则没有显著的影响;同时菌根侵染也促进了绿豆的P营养.但接种DW1与DH3对菌根侵染率与绿豆生长都没有显著影响.3种菌剂无论是单独或者联合接种都能显著促进土壤中DEHP的降解,3种菌剂同时接种则对DEHP的降解能达到最好的协同作用,同时也减少DEHP在绿豆地上部分的累积,这为DEHP污染农田土壤的植物修复提供了理论依据.  相似文献   

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