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首页> 外文期刊>Archives of Microbiology >Purification and characterization of benzyl alcohol- and benzaldehyde- dehydrogenase from Pseudomonas putida CSV86
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Purification and characterization of benzyl alcohol- and benzaldehyde- dehydrogenase from Pseudomonas putida CSV86

机译:恶臭假单胞菌CSV86苯甲醇-苯甲醛-脱氢酶的纯化和鉴定

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Pseudomonas putida CSV86 utilizes benzyl alcohol via catechol and methylnaphthalenes through detoxification pathway via hydroxymethylnaphthalenes and naphthaldehydes. Based on metabolic studies, benzyl alcohol dehydrogenase (BADH) and benzaldehyde dehydrogenase (BZDH) were hypothesized to be involved in the detoxification pathway. BADH and BZDH were purified to apparent homogeneity and were (1) homodimers with subunit molecular mass of 38 and 57 kDa, respectively, (2) NAD+ dependent, (3) broad substrate specific accepting mono- and di-aromatic alcohols and aldehydes but not aliphatic compounds, and (4) BADH contained iron and magnesium, while BZDH contained magnesium. BADH in the forward reaction converted alcohol to aldehyde and required NAD+, while in the reverse reaction it reduced aldehyde to alcohol in NADH-dependent manner. BZDH showed low K m value for benzaldehyde as compared to BADH reverse reaction. Chemical cross-linking studies revealed that BADH and BZDH do not form multi-enzyme complex. Thus, the conversion of aromatic alcohol to acid is due to low K m and high catalytic efficiency of BZDH. Phylogenetic analysis revealed that BADH is a novel enzyme and diverged during the evolution to gain the ability to utilize mono- and di-aromatic compounds. The wide substrate specificity of these enzymes enables strain to detoxify methylnaphthalenes to naphthoic acids efficiently.
机译:恶臭假单胞菌CSV86利用邻苯二酚和甲基萘通过羟甲基萘和萘醛的解毒途径利用苯甲醇。根据代谢研究,假设苯甲醇脱氢酶(BADH)和苯甲醛脱氢酶(BZDH)参与了解毒途径。将BADH和BZDH纯化至明显的均一性,并且是(1)亚基分子量分别为38和57 kDa的同型二聚体,(2)NAD + 依赖性,(3)广泛的底物特异性受体二芳族醇和醛,但不包括脂族化合物;(4)BADH含铁和镁,而BZDH含镁。在正反应中,BADH将醇转化为醛,并需要NAD + ;而在逆反应中,BADH则以依赖NADH的方式将醛还原为醇。与BADH逆反应相比,BZDH的苯甲醛K m 值低。化学交联研究表明,BADH和BZDH不会形成多酶复合物。因此,芳族醇向酸的转化归因于低的K m 和高的BZDH催化效率。系统发育分析表明,BADH是一种新型酶,在进化过程中会发散,从而具有利用单和双芳族化合物的能力。这些酶的广泛底物特异性使菌株能够有效地将甲基萘解毒为萘甲酸。

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