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苯并噻吩与二苯并噻吩脱硫酶功能相关性研究
摘要点击 2093  全文点击 1603  投稿时间:2007-11-07  修订日期:2008-01-03
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中文关键词  生物脱硫  dszABC  二苯并噻吩  苯并噻吩
英文关键词  biodesulfurization  dszABC  dibenzothiophene  benzothiophene
作者单位
李珊珊 南开大学生命科学学院分子微生物与技术教育部重点实验室天津300071 
李国强 南开大学环境科学与工程学院天津300071 
马挺 南开大学生命科学学院分子微生物与技术教育部重点实验室天津300071 
梁凤来 南开大学生命科学学院分子微生物与技术教育部重点实验室天津300071 
刘如林 南开大学生命科学学院分子微生物与技术教育部重点实验室天津300071 
中文摘要
      苯并噻吩(BT)专一性降解菌株Gordonia sp. C-6的脱硫途径类似于二苯并噻吩(DBT)的“4S”脱硫途径,能以BT为唯一硫源生长,但不能以DBT为唯一硫源生长.目前,还没有BT专一性脱硫基因的相关报道.本研究将Rhodocossus erythropolis DS-3中DBT脱硫途径的相关基因dszA、dszB、dszCdszABC分别转入Gordonia sp. C-6中构建工程菌株Gordonia sp. CRA、Gordonia sp. CRB、Gordonia sp. CRC和Gordonia sp. CRABC;其DBT相关脱硫酶活性(以DCW计)分别为76.8 μmol·(g·h)-1、 51.6 μmol·(g·h)-1和62.4 μmol·(g·h)-1,比原始菌株Rhodocossus erythropolis DS-3的35.2 μmol·(g·h)-1、 21.3 μmol·(g·h)-1和25.5 μmol·(g·h)-1提高了1.5倍左右.其中Gordonia sp. CRA和Gordonia sp. CRB在以DBT为唯一硫源的培养基中几乎不生长,无法降解DBT;而Gordonia sp. CRC同表达完整DBT脱硫酶的Gordonia sp. CRABC一样,在以DBT为唯一硫源的培养基中生长良好,亦能降解大部分DBT(84%).这表明催化BT和DBT前两步脱硫反应的BT单加氧酶和DBT单加氧酶是负责底物识别的关键酶,催化BT和DBT后两步脱硫反应的酶功能相似,通过比较这2种单加氧酶的氨基酸序列差异,即可预测其作用的活性位点.
英文摘要
      Gordonia sp. C-6 can desulfurize benzothiophene (BT) as the pathway similar to the “4S” pathway of dibenzothiophene (DBT)-desulfurizing, but the strain can not grow with DBT as the sole sulfur source. At current, there were not related reports on BT-desulfurizing genes at home or abroad. The DBT-desulfurizing genes of Rhodocossus erythropolis DS-3, dszA, dszB, dszC and dszABCwere introduced into Gordonia sp. C-6 respectively using a Rhodococcus-E. coli shuttle vector, to construct new recombinant strains Gordonia sp. CRA, Gordonia sp. CRB, Gordonia sp. CRC and Gordonia sp. CRABC, the enzyme activities of which was respectively 76.8 μmol·(g·h)-1, 51.6 μmol·(g·h)-1 and 62.4 μmol·(g·h)-1, increasing by 1.5 times compared with 35.2 μmol·(g·h)-1, 21.3 μmol·(g·h)-1 and 25.5 μmol·(g·h)-1 of wild strain Rhodocossus erythropolis DS-3. Of the recombinant strains, only recombinant strains Gordonia sp. CRC with DszC and Gordonia sp. CRABC with DszABC exhibite significant growth with DBT as the sole sulfur source, Gordonia sp. CRA with DszA and Gordonia sp. CRB with DszB could not live with DBT as the sole sulfur source. The results show that, DBT monoxygenase and BT monoxygenase, catalyzed the first two steps of DBT and BT oxidation, respectively, are the key enzymes responsible for substrate-recognition, however, the enzymes catalyzed the last two steps have the similar substrate specificity. The active sites of the two monoxygenase could be predicted by comparing with the sequence differences of their amino acids.

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