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假单胞菌属菌株HR199中阿魏酸分解代谢的生化与遗传分析

Biochemical and genetic analyses of ferulic acid catabolism in Pseudomonas sp. Strain HR199.

作者信息

Overhage J, Priefert H, Steinbüchel A

机构信息

Institut für Mikrobiologie der Westfälischen Wilhelms-Universität Münster, D-48149 Münster, Germany.

出版信息

Appl Environ Microbiol. 1999 Nov;65(11):4837-47. doi: 10.1128/AEM.65.11.4837-4847.1999.

Abstract

The gene loci fcs, encoding feruloyl coenzyme A (feruloyl-CoA) synthetase, ech, encoding enoyl-CoA hydratase/aldolase, and aat, encoding beta-ketothiolase, which are involved in the catabolism of ferulic acid and eugenol in Pseudomonas sp. strain HR199 (DSM7063), were localized on a DNA region covered by two EcoRI fragments (E230 and E94), which were recently cloned from a Pseudomonas sp. strain HR199 genomic library in the cosmid pVK100. The nucleotide sequences of parts of fragments E230 and E94 were determined, revealing the arrangement of the aforementioned genes. To confirm the function of the structural genes fcs and ech, they were cloned and expressed in Escherichia coli. Recombinant strains harboring both genes were able to transform ferulic acid to vanillin. The feruloyl-CoA synthetase and enoyl-CoA hydratase/aldolase activities of the fcs and ech gene products, respectively, were confirmed by photometric assays and by high-pressure liquid chromatography analysis. To prove the essential involvement of the fcs, ech, and aat genes in the catabolism of ferulic acid and eugenol in Pseudomonas sp. strain HR199, these genes were inactivated separately by the insertion of omega elements. The corresponding mutants Pseudomonas sp. strain HRfcsOmegaGm and Pseudomonas sp. strain HRechOmegaKm were not able to grow on ferulic acid or on eugenol, whereas the mutant Pseudomonas sp. strain HRaatOmegaKm exhibited a ferulic acid- and eugenol-positive phenotype like the wild type. In conclusion, the degradation pathway of eugenol via ferulic acid and the necessity of the activation of ferulic acid to the corresponding CoA ester was confirmed. The aat gene product was shown not to be involved in this catabolism, thus excluding a beta-oxidation analogous degradation pathway for ferulic acid. Moreover, the function of the ech gene product as an enoyl-CoA hydratase/aldolase suggests that ferulic acid degradation in Pseudomonas sp. strain HR199 proceeds via a similar pathway to that recently described for Pseudomonas fluorescens AN103.

摘要

编码阿魏酸辅酶A(阿魏酰辅酶A)合成酶的基因位点fcs、编码烯酰辅酶A水合酶/醛缩酶的ech以及编码β-酮硫解酶的aat,参与了假单胞菌属菌株HR199(DSM7063)中阿魏酸和丁香酚的分解代谢,它们定位在由两个EcoRI片段(E230和E94)覆盖的DNA区域上,这两个片段最近从黏粒pVK100中的假单胞菌属菌株HR199基因组文库中克隆得到。测定了片段E230和E94部分的核苷酸序列,揭示了上述基因的排列。为了证实结构基因fcs和ech的功能,将它们克隆并在大肠杆菌中表达。携带这两个基因的重组菌株能够将阿魏酸转化为香草醛。通过光度测定法和高压液相色谱分析分别证实了fcs和ech基因产物的阿魏酰辅酶A合成酶和烯酰辅酶A水合酶/醛缩酶活性。为了证明fcs、ech和aat基因在假单胞菌属菌株HR199中阿魏酸和丁香酚分解代谢中的重要作用分别通过插入ω元件使其失活。相应的突变体假单胞菌属菌株HRfcsOmegaGm和假单胞菌属菌株HRechOmegaKm不能在阿魏酸或丁香酚上生长,而突变体假单胞菌属菌株HRaatOmegaKm表现出与野生型一样的阿魏酸和丁香酚阳性表型。总之证实了丁香酚经阿魏酸的降解途径以及将阿魏酸激活为相应辅酶A酯的必要性。结果表明aat基因产物不参与这种分解代谢因此排除了阿魏酸类似β-氧化途径降解途径。此外ech基因产物作为烯酰辅酶A水合酶/醛缩酶的功能表明假单胞菌属菌株HR199中阿魏酸降解途径与最近描述荧光假单胞菌AN103的途径相似。

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