首页> 外文期刊>Applied Microbiology >The Vanadium Iodoperoxidase from the Marine Flavobacteriaceae Species Zobellia galactanivorans Reveals Novel Molecular and Evolutionary Features of Halide Specificity in the Vanadium Haloperoxidase Enzyme Family
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The Vanadium Iodoperoxidase from the Marine Flavobacteriaceae Species Zobellia galactanivorans Reveals Novel Molecular and Evolutionary Features of Halide Specificity in the Vanadium Haloperoxidase Enzyme Family

机译:来自海洋黄杆菌科物种半边形藻(Zobellia galactanivorans)的钒碘过氧化物酶揭示了钒卤代过氧化物酶家族中卤化物特异性的新分子和进化特征。

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Vanadium haloperoxidases (VHPO) are key enzymes that oxidize halides and are involved in the biosynthesis of organo-halogens. Until now, only chloroperoxidases (VCPO) and bromoperoxidases (VBPO) have been characterized structurally, mainly from eukaryotic species. Three putative VHPO genes were predicted in the genome of the flavobacterium Zobellia galactanivorans , a marine bacterium associated with macroalgae. In a phylogenetic analysis, these putative bacterial VHPO were closely related to other VHPO from diverse bacterial phyla but clustered independently from eukaryotic algal VBPO and fungal VCPO. Two of these bacterial VHPO, heterogeneously produced in Escherichia coli , were found to be strictly specific for iodide oxidation. The crystal structure of one of these vanadium-dependent iodoperoxidases, Zg-VIPO1, was solved by multiwavelength anomalous diffraction at 1.8 ?, revealing a monomeric structure mainly folded into α-helices. This three-dimensional structure is relatively similar to those of VCPO of the fungus Curvularia inaequalis and of Streptomyces sp. and is superimposable onto the dimeric structure of algal VBPO. Surprisingly, the vanadate binding site of Zg-VIPO1 is strictly conserved with the fungal VCPO active site. Using site-directed mutagenesis, we showed that specific amino acids and the associated hydrogen bonding network around the vanadate center are essential for the catalytic properties and also the iodide specificity of Zg-VIPO1. Altogether, phylogeny and structure-function data support the finding that iodoperoxidase activities evolved independently in bacterial and algal lineages, and this sheds light on the evolution of the VHPO enzyme family.
机译:钒卤代过氧化物酶(VHPO)是氧化卤化物的关键酶,参与有机卤素的生物合成。到目前为止,只有氯过氧化物酶(VCPO)和溴过氧化物酶(VBPO)在结构上得到了表征,主要来自真核生物。在与大藻相关的海洋细菌黄细菌Zobellia galactanivorans的基因组中预测了三个推定的VHPO基因。在系统发育分析中,这些推定的细菌VHPO与来自不同细菌门的其他VHPO密切相关,但独立于真核藻类VBPO和真菌VCPO聚集。发现在大肠杆菌中异源产生的这些细菌VHPO中的两种对碘化物氧化具有严格的特异性。这些钒依赖性碘过氧化物酶之一Zg-VIPO1的晶体结构通过在1.8?处的多波长异常衍射解析,显示出主要折叠成α-螺旋的单体结构。这种三维结构与真菌弯孢霉和链霉菌属的VCPO的结构相对相似。并且可以叠加在藻类VBPO的二聚体结构上。令人惊讶的是,Zg-VIPO1的钒酸盐结合位点与真菌VCPO活性位点严格保守。使用定点诱变,我们显示了特定氨基酸和钒酸盐中心周围的相关氢键网络对于Zg-VIPO1的催化性能和碘化物特异性至关重要。总的来说,系统发育和结构功能数据支持了碘过氧化物酶活性在细菌和藻类谱系中独立进化的发现,这为VHPO酶家族的进化提供了启示。

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