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从土壤中分离得到1株降解2,4-二氯酚(2,4-DCP)能力较强的细菌菌株GT241-1,克隆了该菌株的3,5-二氯儿茶酚1,2-双加氧酶基因(dcpB),采用的克隆策略为:用Southern杂交对dcpB进行定位后,构建重组质粒,再用斑点杂交从重组质粒中筛选目的转化子.经序列测定得知dcpB亚克隆片段全长4303bp,其中dcpB基因编码区765bp.核苷酸和推测的氨基酸序列分析表明,dcpB与已在GenBank登记的相关基因有一定的差异.dcpB基因能够在大肠杆菌转化子中成功地表达有生物活性的酶. 相似文献
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采用高速摄影技术,考察了液化四氟乙烷发生小孔泄漏时,其水平泄漏和垂直泄漏的初始云团演化行为、泄漏的质量流率、喷射速度和喷射角,并与理论计算公式进行了对比。结果表明:水平喷射两相云团尾部出现涡流,涡流大幅加快了云团向空气中扩散的速率;垂直喷射的两相云团在地面形成液池,液池大幅增加了液化气体向空气中蒸发的速率。水平泄漏试验的喷射角与容器内超压变化规律相似,泄放初期喷射角逐渐增大,经历一段平坦期,到泄放末期喷射角减小。水平泄漏和垂直泄漏的初始喷射速度分别为25 m/s和20 m/s,与理论值26.6 m/s基本吻合。水平泄漏的质量流率的试验值和理论值分别为0.0598 kg/s和0.0684 kg/s,垂直泄漏的分别为0.0472 kg/s和0.059 6 kg/s,结果对比基本吻合,推荐的泄漏质量流率和小孔喷射速度公式可以用于液化四氟乙烷小孔泄漏。 相似文献
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J.B. Mann J.J. Freal H.F. Enos J.X. Danauskas 《Journal of environmental science and health. Part. B》2013,48(5):529-543
Abstract EDB (ethylene dibromide) is of regulatory interest because it has cancer inducing properties and is a causative agent of aspermia. Previously evaluated methodology was used to determine the extent of exposure of workers to EDB in citrus fumigation stations and a warehouse used as a holding site before shipment. The purpose of this effort was to carry out environmental sampling, and to determine the exposure level of workers and related administrative personnel at two citrus fumigation centers and at a warehouse 相似文献
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Enhanced 1,2-dichloroethane degradation in heavy metal co-contaminated wastewater undergoing biostimulation and bioaugmentation 总被引:1,自引:0,他引:1
Biostimulation, bioaugmentation and dual-bioaugmentation strategies were investigated in this study for efficient bioremediation of water co-contaminated with 1,2-dichloroethane (1,2-DCA) and heavy metals, in a microcosm set-up. 1,2-DCA concentration was periodically measured in the microcosms by gas chromatographic analysis of the headspace samples, while bacterial population and diversity were determined by standard plate count technique and Polymerase chain reaction and denaturing gradient gel electrophoresis (PCR–DGGE) analysis, respectively. Dual-bioaugmentation, proved to be most effective exhibiting 22.43%, 26.54%, 19.58% and 30.49% increase in 1,2-DCA degradation in microcosms co-contaminated with As3+, Cd2+, Hg2+ and Pb2+, respectively, followed by bioaugmentation and biostimulation. Dual-bioaugmented microcosms also exhibited the highest increase in the biodegradation rate constant (k1) resulting in 1.76-, 2-, 1.7- and 2.1-fold increase in As3+, Cd2+, Hg2+ and Pb2+ co-contaminated microcosms respectively, compared to the untreated microcosms. Dominant bacterial strains obtained from the co-contaminated microcosms were found to belong to the genera Burkholderia, Pseudomonas, Bacillus, Enterobacter and Bradyrhizobium, previously reported for 1,2-DCA and other chlorinated compounds degradation. PCR–DGGE analysis revealed variation in microbial diversity over time in the different co-contaminated microcosms. Results obtained in this study have significant implications for developing innovative bioremediation strategies for treating water co-contaminated with chlorinated organics and heavy metals. 相似文献
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环戊酮和环己酮的微生物降解途径、相关酶和基因研究进展 总被引:9,自引:0,他引:9
简略介绍了环戊酮和环己酮的应用及危害,综述了目前国内外在环戊酮和环己酮微生物降解方面的研究进展.具体介绍了环戊酮和环己酮降解代谢的过程及其相关的酶类和编码这些酶的基因,重点阐述了环戊酮1,2-单加氧酶和环己酮1,2-单加氧酶及其编码基因.图4参19 相似文献
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Simulated and experimental evaluation of factors affecting the rate and extent of reductive dehalogenation of chloroethenes with glucose 总被引:1,自引:0,他引:1
Carbohydrates such as molasses are being added to aquifers to serve as electron donors for reductive dehalogenation of chloroethenes. Glucose, as a model carbohydrate, was studied to better understand the processes involved and to evaluate the effectiveness for dehalogenation of different approaches for carbohydrate addition. A simulation model was developed and calibrated with experimental data for the reductive dehalogenation of tetrachloroethene to ethene via cis-1,2-dichloroethene. The model included fermentors that convert the primary donor (glucose) into butyrate, acetate and hydrogen, methanogens, and two separate dehalogenator groups. The dehalogenation groups use the hydrogen intermediate as an electron donor and the different haloethenes as electron acceptors through competitive inhibition. Model simulations suggest first that the initial relative population size of dehalogenators and H(2)-utilizing methanogens greatly affects the degree of dehalogenation achieved. Second, the growth and decay of biomass from soluble carbohydrate plays a significant role in reductive dehalogenation. Finally, the carbohydrate delivery strategies used (periodic versus batch addition and the time interval between periodic addition) greatly affect the degree of dehalogenation that can be obtained with a given amount of added carbohydrate. 相似文献
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以6-羟基-2-吡啶羧酸为原料,经5步反应合成得到一种新型四齿β-二酮1,2-羟基吡啶酮衍生物。通过红外、核磁、质谱对其结构进行了表征。采用电位-光谱结合的方法,测定了四齿β-二酮1,2-羟基吡啶酮衍生物与UO2+2、Cu~(2+)、Zn~(2+)和Fe~(3+)的络合能力。结果表明,四齿β-二酮1,2-羟基吡啶酮衍生物对UO2+2和Fe3+有明显的络合能力,有望成为一种新型铀酰离子促排剂(p UO2=15.4)和铁螯合剂(p Fe=21.22)。 相似文献
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一株苯酚降解菌的筛选鉴定及响应面法优化其降解 总被引:6,自引:3,他引:3
从某化工厂污水处理车间活性污泥中分离、筛选到一株能以苯酚为唯一碳源和能源生长的菌株YH8.基于形态特征、生理生化特性、BIOLOG细菌自动鉴定系统、16S rDNA和gyrB基因序列同源性分析鉴定菌株YH8,鉴定菌株YH8为Acinetobacter guillouiae.在苯酚浓度低于1200 mg·L-1,温度为26~34℃,pH为7.0~10.0时,菌株YH8培养60 h对苯酚的降解率达70%以上.运用单因素实验初步确定苯酚降解的最适外加碳源和氮源分别为山梨醇和NaNO3,最适温度为30℃,最适初始pH为9.0,最适接种量为5%.为了提高菌株YH8的降解率,首先利用Plackett-Burman实验设计评估并筛选出影响苯酚降解的3个关键因素为初始pH、苯酚浓度、山梨醇浓度.用最陡爬坡实验逼近以上3个因子的最大响应区域,采用Box-Behnken实验设计及响应面法分析,确定其最优降解条件为初始pH 9.26、苯酚浓度1163.63 mg·L-1、山梨醇浓度7.81%、接种量5%、NaNO_3浓度2%、温度30℃、培养时间96 h,在此条件下苯酚降解率可达98.95%.苯酚降解酶活性及酶定域实验表明,菌株YH8相关降解酶为胞内酶,且苯酚可诱导苯酚羟化酶(LmPH)和邻苯二酚1,2-双加氧酶(C_(12)O)的合成.通过降解酶特异性引物从菌株YH8扩增得到LmPH和C12O基因片段,经质粒检测和消除实验发现菌株YH8相关降解基因位于质粒上.此外,菌株YH8能耐受高浓度NaCl和多种重金属离子,对多种抗生素具有抗性. 相似文献
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苯酚降解菌红球菌PNAN5菌株(Rhodococcus sp.strain PNAN5)的分离鉴定、降解特性及其开环双加氧酶性质研究 总被引:22,自引:0,他引:22
分离到一株能以苯酚、苯甲酸、对甲酚、萘为唯一碳源和能源生长、具有同时降解单环和双环芳烃能力的细菌菌株,经生理生化、16SrRNA基因序列分析等鉴定为红球菌PNAN5菌株(Rhodococcussp.strainPNAN5).在实验条件下和在温度为20~40℃、pH7 0~9 0范围内菌株PNAN5降解苯酚的效率保持在80%~100%之间,苯酚浓度在2~10mmol·L-1范围内变化对降解效率没有明显的影响.该菌株通过邻苯二酚1,2 双加氧酶催化的开环途径降解芳烃,不同于已知的浑浊红球菌(R.opacus)是通过邻苯二酚2,3 双加氧酶催化芳烃降解.以细胞裂解液测定该酶的酶促反应动力学常数Km值为35 94μmol·L-1,Vmax为0 84μmol·L-1·min-1·mg-1. 相似文献