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恶臭假单胞菌的代谢工程用于同时生物降解苯、甲苯和对二甲苯混合物。

Metabolic engineering of Pseudomonas putida for the simultaneous biodegradation of benzene, toluene, and p-xylene mixture.

作者信息

Lee J Y, Roh J R, Kim H S

机构信息

Department of Biotechnology, Korea Advanced Institute of Science and Technology, 373-1, Kusung-Dong, Yusung-Gu, Taejon 305-701, Korea.

出版信息

Biotechnol Bioeng. 1994 May;43(11):1146-52. doi: 10.1002/bit.260431120.

Abstract

For the complete biodegradation of a mixture of benzene, toluene, and p-xylene (BTX), a critical metabolic step that can connect two existing metabolic pathways of aromatic compounds (the tod and the tol pathways) was determined. Toluate-cis-glycol dehydrogenase in the tol pathway was found to attack benzene-cis-glycol, toluene-cis-glycol, and p-xylene-cis-glycol, which are metabolic intermediates of the tod pathway. Based on this observation, a hybrid strain, Pseudomonase putida TB101, was constructed by introduction of the TOL plasmid pWW0 into P. putida F39/D, a derivative of P. putida F1, which is unable to transform cis-glycol compounds to corresponding catechols. The metabolic flux of BTX into the tod pathway was redirected to the tol pathway at the level of cis-glycol compounds by the action of toluate-cis-glycol dehydrogenase in P. putida TB101, resulting in the simultaneous mineralization of BTX mixture without accumulation of any metabolic intermediates. The profile of specific degradation rates showed a similar pattern as that of the specific growth rate of the microorganism, and the maximum specific degradation rates of benzene, toluene, and p-xylene were determined to be about 0.27, 0.86, and 2.89 mg/mg biomass/h, respectively. P. putida TB101 is the first reported microorganism that mineralizes BTX mixture simultaneously. (c) 1994 John Wiley & Sons, Inc.

摘要

为实现苯、甲苯和对二甲苯(BTX)混合物的完全生物降解,确定了一个关键的代谢步骤,该步骤可连接芳香族化合物的两条现有代谢途径(tod途径和tol途径)。发现tol途径中的甲苯酸 - 顺式二醇脱氢酶可作用于苯 - 顺式二醇、甲苯 - 顺式二醇和对二甲苯 - 顺式二醇,这些都是tod途径的代谢中间体。基于这一观察结果,通过将TOL质粒pWW0导入恶臭假单胞菌F39/D构建了一株杂交菌株恶臭假单胞菌TB101,F39/D是恶臭假单胞菌F1的衍生物,它无法将顺式二醇化合物转化为相应的儿茶酚。在恶臭假单胞菌TB101中,甲苯酸 - 顺式二醇脱氢酶的作用使BTX进入tod途径的代谢通量在顺式二醇化合物水平上重定向至tol途径,从而实现了BTX混合物的同时矿化,且无任何代谢中间体积累。比降解速率曲线显示出与微生物比生长速率相似的模式,苯、甲苯和对二甲苯的最大比降解速率分别测定为约0.27、0.86和2.89 mg/mg生物量/小时。恶臭假单胞菌TB101是首个被报道能同时矿化BTX混合物的微生物。(c)1994约翰威立国际出版公司

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