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1.
采用苯酚羟化酶基因特异引物检测苯酚降解菌   总被引:18,自引:2,他引:16  
根据苯酚羟化酶基因高度保守序列设计了一对该基因的特异PCR引物。采用该特异引物从苯酚降解菌醋酸钙不动杆菌 (Acinetobactercalcoaceticus)PHEA 2的总DNA中扩增到唯一一条大小为 684bp的片段。该DNA片段与已知的A .calcoaceticusNCIB82 50的苯酚羟化酶基因具有高度的同源性 ,其核苷酸序列的同源性为 84% ,推导的氨基酸序列的同源性为 98%。对苯酚和非苯酚降解菌株的PCR扩增结果表明 :所有苯酚降解菌均能扩增出 684bp的特征片段 ,而非苯酚降解菌则无PCR条带。对炼焦废水中的细菌群落进行PCR扩增和生化特性检测表明 :显示 684bp特征片段的菌株均具有苯酚降解特性。上述结果表明 ,利用苯酚羟化酶基因的特异引物可对环境中的苯酚降解菌株进行准确快速的PCR检测。  相似文献   

2.
苯酚降解菌phen8的分离筛选及其16SrDNA序列分析   总被引:6,自引:0,他引:6  
为筛选高效苯酚降解菌株 ,从炼油厂排污废水中分离筛选到 1株苯酚降解菌 phen8。利用PCR方法和琼脂糖凝胶电泳技术检测到 phen8菌中苯酚羟化酶基因片段的特异性条带 ,从基因水平上证实了 phen8菌的苯酚降解功能的遗传基础。应用PCR技术克隆到 16SrDNA片段 ,其核苷酸序列分析结果表明 ,该菌株的 16SrDNA全序列与斯氏假单胞菌DSM 5 0 2 2 7和DSM 5 0 2 38的同源性为 98% (在GenBank中的登记号为AF 2 8476 4)。初步确立了该菌在微生物系统发育学上的地位 ,暂定为假单胞菌 (Pseudomonassp .) phen8。  相似文献   

3.
一株苯酚降解菌的分离与鉴定   总被引:1,自引:1,他引:0  
目的:筛选能高效降解苯酚的微生物,并进行初步鉴定。方法:从某焦化厂排水沟采集污泥,通过逐步驯化筛选苯酚降解菌株;利用形态观察、生理生化检测、16SrDNA序列分析进行初步鉴定。结果:筛选获得1株苯酚降解菌JDM-2—1,该菌能够以苯酚为惟一碳源,耐酚能力高达2200mg/L,在30℃和pH7.0条件下,42h内能将800mg/L的苯酚彻底降解;初步鉴定其为球形芽孢杆菌(Bacillus sphaericus)。结论:菌株JDM-2-1是一株高效降解苯酚的球形芽孢杆菌。  相似文献   

4.
一株苯酚降解菌的筛选、鉴定及其降解特性   总被引:2,自引:0,他引:2  
本研究采用逐量分批驯化的方法,从造纸废水中分离得到一株能够以苯酚为唯一碳源生长的苯酚降解菌株F5-1.经形态观察、生理生化特性鉴定及16S rDNA序列分析,将该菌株鉴定为克雷伯菌(Klebsie-lla sp.).该菌株能够在7 h时完全降解初始浓度为100 mg/L的苯酚,降解苯酚主要发生在生长对数期;在pH 5.0~9.0,NaCl浓度0~80 g/L,温度20~40℃范围内,菌株F5-1均可有效降解初始浓度为100~1 200 mg/L的苯酚;能够耐受的最大苯酚浓度为1 500 mg/L.本研究结果表明,F5-1菌株对处理环境条件复杂的含酚废水具有潜在的应用前景.  相似文献   

5.
苯酚高效降解菌的筛选和降解特性的研究   总被引:2,自引:0,他引:2  
从天津市煤气厂的活性污泥中筛选、分离得到一株高效苯酚降解菌。经BIOLOG细菌自动鉴定系统及16SrDNA鉴定,该菌株为粪产碱杆菌(Alcaligenesfaecalis)。苯酚降解实验证实,该菌能在76h内完全降解1600mg·L-1的苯酚,并且随着苯酚浓度的增加,底物抑制作用增强,细胞得率下降。  相似文献   

6.
焦化废水中4株苯酚高效降解菌的分离及鉴定   总被引:2,自引:0,他引:2  
目的:从焦化废水中筛选苯酚高效降解菌并进行鉴定.方法:在100~1000 mg/L的苯酚为惟-碳源的无机盐培养基上分离出单菌落,测定各菌株的生长曲线以及对苯酚的降解效牢;利用 16S rDNA序列分析结合菌株的形态特征确定各菌株的分类地位.结果:筛选获得4株苯酚降解菌,均能够以苯酚为惟一碳源,在30℃、pH7.0、摇床转速130 r/min、2%的接种量条件下,24h内能将1 000mg/L的苯酚降解91%以上;4株菌可初步鉴定为芽孢杆菌属(ZL1)、产碱杆菌属(ZL2、ZL4)、沙雷氏菌属(ZL3).其中,从焦化废水中分离出高效降解苯酚的沙雷氏菌未见报道.结论:从焦化废水中获得4株苯酚高效降解细菌,对高浓度含酚废水的生物降解具有潜在的应用前景.  相似文献   

7.
苯酚降解菌ZJ-1的分离及降解特性研究   总被引:4,自引:1,他引:3  
目的:筛选苯酚降解菌,用于降解苯酚提高氧化塘处理效率.方法:以苯酚为惟一碳源进行选择性培养.结果:从乌鲁木齐市某炼油厂污水池的活性污泥中分离出一株能以苯酚为惟一碳源培养基上生长的菌株,编号为ZJ-1,该菌株最高可耐受1000mg/L的苯酚.对该苯酚降解菌降解性能研究表明:该菌具有较强的降解能力,在32℃、pH 7左右、接种量1%时,摇床振荡速度120r/min的条件下,该菌株在48h内苯酚降解率可达81%以上.培养液中苯酚浓度在300mg/L、500mg/L时,该菌株的降解率比较明显.当苯酚浓度大于1000mg/L时,则元明显降解效果.结论:ZJ-1菌株对苯酚具有较强的降解能力,具有广阔的应用前景.  相似文献   

8.
董小军  洪青  李恋  李顺鹏 《微生物学报》2008,48(11):1486-1492
[目的]本研究的目的是分离对硝基苯酚(PNP)降解菌,研究其对PNP的降解特性;克隆其降解相关基因,并进行表达.[方法]本研究通过富集培养法和系列稀释平板涂布法分离PNP降解菌株;采用形态观察、生理生化特征测定和16S rDNA分析对菌株进行初步鉴定;通过摇瓶试验研究菌株降解特性;利用SEFA-PCR技术克隆降解相关基因,并亚克隆到表达载体pET29a中,构建重组表达质粒pETpnpC,再转入受体菌E.coli BL21(DE3)中进行诱导表达;通过分光光度法测定表达产物的酶活力.[结果]分离到一株PNP降解菌PDS-7,将该菌株鉴定为假单胞菌属(Pseudomonassp.);该菌株能够以PNP作为唯一碳源、氮源和能源生长,菌株对PNP的最高耐受浓度为80 mg/L,最适降解温度为30℃,偏碱性条件有利于菌株对PNP的降解;克隆了PNP降解过程中的偏苯三酚1,2-双加氧酶基因pnpC及马来酰醋酸还原酶基因pnpD(GenBank登陆号EU233791);将pnpC在E.coli BL21(DE3)菌株进行了诱导表达,表达产物对偏苯三酚和邻苯二酚均有邻位开环活性,比活力分别为0.45 U/mg protein和0.37 U/mg protein,表明偏苯三酚1,2-双加氧酶基因pnpC得到了活性表达.[结论]分离鉴定了一株PNP降解菌Pseudomonas sp.PDS-7,研究了该菌株的降解特性,克隆和表达了降解相关基因.  相似文献   

9.
旨在分析陶厄氏菌属(Genus Thuaera)中的一株菌株Thauera sp.K11对含酚废水中酚类化合物的降解作用和途径。以石化污水厂分离菌株K11为研究对象,克隆其16S r RNA基因和关键酶基因,并进行系统发育分析,在基因水平探究苯酚降解机理;利用气相色谱技术检测酚类化合物降解效果和苯酚降解机理。结果显示,利用16S r RNA系统学分析发现K11是陶厄氏菌属的一株细菌。该菌对11种酚类化合物具有降解作用,其中5种酚类化合物72 h的降解率90%。克隆并获得了K11的苯酚羟化酶和邻苯二酚双加氧酶基因。酶活性测定表明,K11通过苯酚羟化酶催化苯酚转化为邻苯二酚,然后利用邻苯二酚-2,3-双加氧酶催化产生2-HMSA。陶厄氏菌Thauera sp.K11是一株能够降解多种酚类化合物的菌株,具有较强的酚类污染物降解能力,其通过苯酚→邻苯二酚→2-HMSA途径进行苯酚降解。  相似文献   

10.
【目的】鉴定从某化工厂附近土样中分离到的一株耐高浓度苯酚的菌株T10,通过优化菌株的培养条件提高菌株对苯酚的降解率。【方法】根据菌株的形态、生理生化鉴定及16S rDNA测序分析确定其种属,以液体摇瓶培养菌株T10对苯酚的降解率为指标,对菌株的生长条件进行优化。【结果】菌株T10属恶臭假单胞菌(Pseudomonas putida)。添加葡萄糖、蛋白胨能有效缩短T10菌的生长周期,并使苯酚的降解率提高1.7倍。在菌体初始接种浓度为10%、温度为30°C、转速为180 r/min条件下,对初始苯酚浓度、pH和装液量的响应面优化结果如下:初始苯酚浓度3 000 mg/L、pH 7.5和装液量80 mL/250 mL,苯酚去除率最高可达到87.56%。【结论】T10菌能够耐受较高浓度的含酚废水,并且对苯酚有较强的降解能力,为下一步利用生物法处理含酚废水提供科学依据。  相似文献   

11.
假单胞菌诱导筛选菌株PhA苯酚降解动力学及SDS对其影响   总被引:2,自引:0,他引:2  
为提高苯酚降解速率,由假单胞菌(Pseudonomonas.sp)诱导筛选得到了一株能以苯酚为唯一碳源生长的新菌株Pha,并使其苯酚选择压力从400mg/L逐步提高到了700mg/L。且Pha菌株降解苯酚过程符合一级反应动力学方程。使用十二烷基磺酸钠(SDS)作为增溶剂来促进降解时,发现在SDS浓度为50~150mg/L时,降解苯酚的速率随SDS浓度增加而提高。SDS在低浓度时对其生长影响很小,但浓度达到300mg/L时,对其生长开始有了明显的抑制作用。结果标明PhA菌株有着较高的苯酚耐受浓度,SDS可以显著的提高苯酚的降解速率。SDS的理论最佳投放量为150mg/L。  相似文献   

12.
Thermophilic bacteria capable of degrading phenol as the sole carbon source were isolated from sewage effluent. The isolates were aerobic, sporulating, motile rod-shaped bacteria characterized as Bacillus species with growth temperature optima of 50–60°C. The enzyme catalyzing the second step in the phenol degradation meta-cleavage pathway, catechol-2,3-dioxygenase, was detected in all isolates grown in the presence of phenol. One strain, designated Bacillus strain Cro3.2, was capable of degrading phenol, o-, m-, and p-cresol via the meta-pathway and tolerated phenol at concentrations up to 0.1% (w/v) without apparent inhibition of growth. Phenol degradation activities in strain Cro3.2 were induced 3–5 h after supplementation by phenol, orcinol, and the cresols but not by halo- or nitro-substituted phenols. Maximal rates of phenol degradation in stirred bioreactors (10 μmol/min−1/g−1 cells) were achieved at an O2 delivery rate of 1.0 vvm and temperatures of 45–60°C; however, catechol-2,3-dioxygenase (but not 2-hydroxymuconic semialdehyde dehydrogenase) was rapidly inactivated at high oxygen concentrations. Whole cells of Bacillus strain Cro3.2 entrapped in calcium alginate, polyacrylamide, and agarose gels showed widely different rates of phenol degradation. In calcium alginate gels, rapid loss of phenol-degrading activity was attributed to calcium-induced inactivation of catechol-2,3-dioxygenase. No stabilization with respect to oxygen-induced inactivation was observed under any of the immobilization conditions. It is concluded that the counteractive effects of oxygen limitation at low dO2 and inactivation of catechol-2,3-dioxygenase at high dO2 levels pose a significant impediment to the use of resting thermophile cells in the treatment of phenolic waste streams.  相似文献   

13.
The purpose of this study is to investigate the feasibility of biologically removing phenol from waste gases by means of a biofilter using a Pseudomonas putida strain. Two series of both batch and continuous tests have been performed in order to ascertain the microbial degradation of phenol. For the preliminary batch tests, carried out in order to test the effective feasibility of the process and to investigate their kinetic behavior, two different microbial cultures belonging to the Pseudomonas genus have been employed, a heterogeneous culture and a pure strain of P. putida. The results of these comparative investigation showed that the pure culture is more efficient than the mixed one, even when the latter has undergone three successive acclimatization tests. The continuous experiments have been conducted during a period of about 1 year in a laboratory-scale column, packed with a mixture of peat and glass beads, and utilizing the pure culture of P. putida as microflora and varying the inlet phenol concentration from 50 up to 2000 mg m(-3). The results obtained show that high degrees of conversion can be obtained (0.93/0.996) operating at a residence time of 54 s. (c) 1993 John Wiley & Sons, Inc.  相似文献   

14.
从含酚废水处理池污泥中驯化分离得到一株能以苯酚为唯一碳源的菌株FD-1。经18SrDNA和ITS序列的BLAST比对及系统发育分析,鉴定FD-1为热带假丝酵母(Candida tropicalis)的近缘种。FD-1对苯酚的降解能力较强,能够完全降解浓度为1 000mg·L-1的苯酚溶液。初步确定了FD-1在降解苯酚溶液时的最适温度为30~35℃,pH为6.0~7.0,并且通过探讨加入无机盐、培养基原料以及改变接种量三个因素对苯酚降解的影响,其耐受盐的浓度可达5%,对实践中应用微生物降解含酚废水具有积极的意义。  相似文献   

15.
A 4-chlorophenol (4-CP)-degrading bacterium, strain CPW301, was isolated from soil and identified as Comamonas testosteroni. This strain dechlorinated and degraded 4-CP via a meta-cleavage pathway. CPW301 could also utilize phenol as a carbon and energy source without the accumulation of any metabolites via the same meta-cleavage pathway. When phenol was added as a additional substrate, CPW301 could degrade 4-CP and phenol simultaneously. The addition of phenol greatly accelerated the degradation of 4-CP due to the increased cell mass. The simultaneous degradation of the 4-CP and phenol is useful not only for enhanced cell growth but also for the bioremediation of both compounds, which are normally present in hazardous waste sites as a mixture.  相似文献   

16.
A bacterium, CP1, identified as Pseudomonas putida strain, was investigated for its ability to grow on and degrade mono-chlorophenols and phenols as sole carbon sources in aerobic shaking batch culture. The organism degraded up to 1.56 mM 2- and 3-chlorophenol, 2.34 mM 4-chlorophenol and 8.5 mM phenol using an ortho-cleavage pathway. P. putida CP1, acclimated to degrade 2-chlorophenol, was capable of 3-chlorocatechol degradation, while P. putida, acclimated to 4-chlorophenol degradation, degraded 4-chlorocatechol. Growth of P. putida CP1 on higher concentrations of the mono-chlorophenols, ≥1.56 mM 4-chlorophenol and ≥0.78 mM 2- and 3-chlorophenol, resulted in decreases in cell biomass despite metabolism of the substrates, and the formation of large aggregates of cells in the culture medium. Increases in cell biomass with no clumping of the cells resulted from growth of P. putida CP1 on phenol or on lower concentrations of mono-chlorophenol. Bacterial adherence to hydrocarbons (BATH) assays showed cells grown on the higher concentrations of mono-chlorophenol to be more hydrophobic than those grown on phenol and lower concentrations of mono-chlorophenol. The results suggested that increased hydrophobicity and autoaggregation of P. putida CP1 were a response to toxicity of the added substrates. Journal of Industrial Microbiology & Biotechnology (2002) 28, 316–324 DOI: 10.1038/sj/jim/7000249 Received 27 June 2001/ Accepted in revised form 09 February 2002  相似文献   

17.
一株高效苯酚降解真菌的分离鉴定及其菌剂的制备   总被引:1,自引:0,他引:1  
【背景】含酚废水是普遍存在的有毒、难降解的有机污染物之一,生物法处理含酚废水因成本低、无二次污染而具有广阔的应用前景。可降解苯酚的微生物中,真菌比细菌对恶劣环境的适应性更好。针对液态菌液保存时间较短和运输困难的瓶颈,制备固体菌剂可以提高菌体存活率和储藏稳定性。【目的】筛选一株能够高效降解苯酚的真菌,优化其降酚性能并选择合适的载体制备菌剂。【方法】通过逐级驯化和纯化分离降酚菌,筛选得到降酚性能较强的真菌并通过ITS r DNA基因测序进行种属鉴定,通过参数优化进一步提高菌株降解苯酚的性能;以不同材料为载体制备菌剂,通过稀释平板计数法和苯酚降解实验探究菌剂在不同温度下的保存效果。【结果】分离筛选得到一株高效降解苯酚真菌QWD1,通过鉴定证明其属于Magnusiomyces capitatus,其最适降解条件:(NH_4)_2SO_4为氮源,接种量为15%,pH为7.0,温度为35°C,氮源浓度为14 mmol/L。在此条件下,28 d内对1 600 mg/L苯酚去除率可以达到97.15%;制备菌剂最合适载体为谷糠,适宜保存温度为4°C,保存时间可达到90 d甚至更长,活菌数高达2.5×10~8 CFU/g左右,降解苯酚效果良好。【结论】筛选得到了一株高效降解苯酚真菌,优化其降解性能并将其制备成菌剂,为处理含酚废水提供了新菌种和理论支持。  相似文献   

18.
一株苯酚高效降解菌的分离及其分解能力的初步研究   总被引:11,自引:0,他引:11  
为了寻找能高效降解苯酚的微生物 ,从武汉市某化工厂周围的下水道污泥中 ,筛选分离出一种具有很高苯酚降解能力的菌株PheD1。通过生理生化及外观鉴定[1~ 3] ,将其初步鉴定为假单胞菌 (Pseudomonassp .)。经驯化后发现 ,该菌生长的迟缓期随苯酚浓度的增大而延长 ,但比同类报道的苯酚降解菌要短 ;在 35℃对数生长期时的苯酚降解率超过同类报道[6 ] ,6 0 0mg·L- 1 苯酚浓度的完全降解时间在 2 4h之内 ,比同类报道[4~ 6 ] 苯酚降解菌的分解能力要高。该菌为好氧菌 ,在空气充足的条件下可提高降解能力。对该菌的继续研究可使其在苯酚的生物降解及污水处理等实际运用中起到重要的作用。  相似文献   

19.
The degradation of phenol (100-2800 mg/L) by cells Pseudomonas putida CCRC14365 in an extractive hollow-fiber membrane bioreactor (HFMBR) was studied, in which the polypropylene fibers were prewetted with ethanol. The effects of flow velocity, the concentrations of phenol, and the added dispersive agent tetrasodium pyrophosphate on phenol degradation and cell growth were examined. It was shown that about 10% of phenol was sorbed on the fibers at the beginning of the degradation process. The cells P. putida fully degraded 2000 mg/L of phenol within 73 h when the cells were immobilized and separated by the fibers. Even at a level of 2800 mg/L, phenol could be degraded more than 90% after 95-h operation. At low phenol levels (< 400 mg/L) where substrate inhibition was not severe, it was more advantageous to treat the solution in a suspended system. At higher phenol levels (> 1000 mg/L), however, such HFMBR-immobilized cells could degrade phenol to a tolerable concentration with weak substrate-inhibition effect, and the degradation that followed could be completed by suspended cultures due to their larger degradation rate. The process development in an HFMBR system was also discussed.  相似文献   

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