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Asymmetric sulfoxidation by engineering the heme pocket of a dye-decolorizing peroxidase

机译:不对称sulfoxidation工程血红素口袋dye-decolorizing过氧化物酶

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The so-called dye-decolorizing peroxidases (DyPs) constitute a new family of proteins exhibiting remarkable stability. With the aim of providing them new catalytic activities of biotechnological interest, the heme pocket of one of the few DyPs fully characterized to date (from the fungus Auricularia auricula-judae) was redesigned based on the crystal structure available, and its potential for asymmetric sulfoxidation was evaluated. Chiral sulfoxides are important targets in organic synthesis and enzyme catalysis, due to a variety of applications. Interestingly, one of the DyP variants, F359G, is highly stereoselective in sulfoxidizing methyl-phenyl sulfide and methyl-p-tolyl sulfide (95-99% conversion, with up to 99% excess of the S enantiomer in short reaction times), while the parent DyP has no sulfoxidation activity, and the L357G variant produces both R and S enantiomers. The two variants were crystallized, and their crystal structures were used in molecular simulations to provide a rational explanation for the new catalytic activities. Protein energy landscape exploration (PELE) showed more favorable protein-substrate catalytic complexes for the above variants, with a considerable number of structures near the oxygen atom of the activated heme, which is incorporated into the substrates as shown in O-18-labeling experiments, and improved affinity with respect to the parent enzyme, explaining their sulfoxidation activity. Additional quantum mechanics/molecular mechanics (QM/MM) calculations were performed to elucidate the high stereoselectivity observed for the F359G variant, which correlated with higher reactivity on the substrate molecules adopting pro-S poses at the active site. Similar computational analyses can help introduce/improve (stereoselective) sulfoxidation activity in related hemeproteins.
机译:所谓dye-decolorizing氧化物酶(多元印刷)组成一个新的家庭的蛋白质表现出非凡的稳定。生物技术的新催化活动兴趣,为数不多的多元印刷的血红素的口袋里完全是日期(从真菌木耳属auricula-judae)重新设计的基础在可用的晶体结构,和它的不对称sulfoxidation潜力评估。目标在有机合成和酶催化作用,由于各种各样的应用程序。有趣的是,多元印刷的一个变种,F359G,高度立体选择sulfoxidizing甲基苯基硫化,硫化methyl-p-tolyl转换(95 - 99%,超过99%对映体在短反应时间),父母多元印刷没有sulfoxidation活动,L357G变体产生R和S对映体。这两个变量是结晶,他们晶体结构被用于分子模拟提供一个合理的解释新催化活动。景观探索(贝利)显示有利protein-substrate催化复合物上述变异,可观附近的氧原子的结构激活血红素,纳入基质所示O-18-labeling实验,对父母和改进的亲和力酶,解释他们sulfoxidation活动。额外的量子力学、分子力学(QM / MM)计算进行了说明观察到的高立体选择性F359G变体,与更高的反应性底物分子采用前s姿势在活性位点。分析可以帮助介绍/改善(立体选择)sulfoxidation活动相关hemeproteins。

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