首页> 美国卫生研究院文献>Applied and Environmental Microbiology >Constitutive Expression of the Cytochrome P450 EthABCD Monooxygenase System Enables Degradation of Synthetic Dialkyl Ethers in Aquincola tertiaricarbonis L108
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Constitutive Expression of the Cytochrome P450 EthABCD Monooxygenase System Enables Degradation of Synthetic Dialkyl Ethers in Aquincola tertiaricarbonis L108

机译:细胞色素P450 EthABCD单加氧酶系统的组成型表达能够使合成的二烷基醚在Aquincola tertiaricarbonis L108中降解

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摘要

In Rhodococcus ruber IFP 2001, Rhodococcus zopfii IFP 2005, and Gordonia sp. strain IFP 2009, the cytochrome P450 monooxygenase EthABCD catalyzes hydroxylation of methoxy and ethoxy residues in the fuel oxygenates methyl tert-butyl ether (MTBE), ethyl tert-butyl ether (ETBE), and tert-amyl methyl ether (TAME). The expression of the IS3-type transposase-flanked eth genes is ETBE dependent and controlled by the regulator EthR (C. Malandain et al., FEMS Microbiol. Ecol. 72:289–296, 2010). In contrast, we demonstrated by reverse transcription-quantitative PCR (RT-qPCR) that the betaproteobacterium Aquincola tertiaricarbonis L108, which possesses the ethABCD genes but lacks ethR, constitutively expresses the P450 system at high levels even when growing on nonether substrates, such as glucose. The mutant strain A. tertiaricarbonis L10, which is unable to degrade dialkyl ethers, resulted from a transposition event mediated by a rolling-circle IS91-type element flanking the eth gene cluster in the wild-type strain L108. The constitutive expression of Eth monooxygenase is likely initiated by the housekeeping sigma factor σ70, as indicated by the presence in strain L108 of characteristic −10 and −35 binding sites upstream of ethA which are lacking in strain IFP 2001. This enables efficient degradation of diethyl ether, diisopropyl ether, MTBE, ETBE, TAME, and tert-amyl ethyl ether (TAEE) without any lag phase in strain L108. However, ethers with larger residues, n-hexyl methyl ether, tetrahydrofuran, and alkyl aryl ethers, were not attacked by the Eth system at significant rates in resting-cell experiments, indicating that the residue in the ether molecule which is not hydroxylated also contributes to the determination of substrate specificity.
机译:在红球菌IFP 2001,Rhodococcus zopfii IFP 2005和Gordonia sp。细胞色素P450单加氧酶EthABCD菌株IFP 2009催化燃料含氧化合物甲基叔丁基醚(MTBE),乙基叔丁基醚(ETBE)和叔戊基甲基醚(TAME)中甲氧基和乙氧基残基的羟基化。 IS3型转座酶侧翼的eth基因的表达是ETBE依赖性的,并由调节剂EthR控制(C. Malandain等人,FEMS Microbiol。Ecol。72:289-296,2010)。相反,我们通过逆转录定量PCR(RT-qPCR)证明,拥有ethABCD基因但缺乏ethR的β变形杆菌Aquincola tertiaricarbonis L108即使在非醚底物(例如葡萄糖)上生长时,也可以高水平组成性表达P450系统。 。不能降解二烷基醚的突变菌株A. tertiaricarbonis L10,是由野生型菌株L108中eth基因簇侧翼的IS91型元件的圆环介导的转座事件引起的。 Eth单加氧酶的组成型表达很可能是由管家sigma因子σ 70 引发的,这表明L108菌株中存在ethA的特征性-10和-35结合位点,而该位点缺乏IFP菌株2001。这使二乙基醚,二异丙基醚,MTBE,ETBE,TAME和叔戊基乙基醚(TAEE)有效降解,而菌株L108中没有任何滞后相。然而,具有较大残基的醚, n -己基甲基醚,四氢呋喃和烷基芳基醚在静息细胞实验中并未受到Eth系统的明显攻击,这表明醚中的残基未羟基化的分子也有助于确定底物特异性。

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