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Structure and Mechanism of Ferulic Acid Decarboxylase (FDC1) from Saccharomyces cerevisiae

机译:酿酒酵母中阿魏酸脱羧酶(FDC1)的结构和机理

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摘要

The nonoxidative decarboxylation of aromatic acids occurs in a range of microbes and is of interest for bioprocessing and metabolic engineering. Although phenolic acid decarboxylases provide useful tools for bioindustrial applications, the molecular bases for how these enzymes function are only beginning to be examined. Here we present the 2.35-Å-resolution X-ray crystal structure of the ferulic acid decarboxylase (FDC1; UbiD) from Saccharomyces cerevisiae. FDC1 shares structural similarity with the UbiD family of enzymes that are involved in ubiquinone biosynthesis. The position of 4-vinylphenol, the product of p-coumaric acid decarboxylation, in the structure identifies a large hydrophobic cavity as the active site. Differences in the β2e-α5 loop of chains in the crystal structure suggest that the conformational flexibility of this loop allows access to the active site. The structure also implicates Glu285 as the general base in the nonoxidative decarboxylation reaction catalyzed by FDC1. Biochemical analysis showed a loss of enzymatic activity in the E285A mutant. Modeling of 3-methoxy-4-hydroxy-5-decaprenylbenzoate, a partial structure of the physiological UbiD substrate, in the binding site suggests that an ∼30-Å-long pocket adjacent to the catalytic site may accommodate the isoprenoid tail of the substrate needed for ubiquinone biosynthesis in yeast. The three-dimensional structure of yeast FDC1 provides a template for guiding protein engineering studies aimed at optimizing the efficiency of aromatic acid decarboxylation reactions in bioindustrial applications.
机译:芳香族酸的非氧化脱羧作用发生在许多微生物中,这对于生物加工和代谢工程很重要。尽管酚酸脱羧酶为生物工业应用提供了有用的工具,但这些酶如何发挥作用的分子基础才刚刚开始被研究。在这里,我们介绍了来自酿酒酵母的阿魏酸脱羧酶(FDC1; UbiD)的2.35分辨率X射线晶体结构。 FDC1与涉及泛醌生物合成的UbiD酶家族具有结构相似性。对香豆酸脱羧产物4-乙烯基苯酚在结构中的位置确定了一个较大的疏水腔为活性位点。晶体结构中链的β2e-α5环的差异表明,该环的构象柔韧性允许其进入活性位点。该结构还暗示Glu285是FDC1催化的非氧化脱羧反应中的通用碱。生化分析显示E285A突变体的酶活性丧失。对结合位点中生理UbiD底物的部分结构3-甲氧基-4-羟基-5-去癸烯基苯甲酸酯的建模表明,靠近催化位点的〜30Å长的口袋可容纳底物的类异戊二烯尾酵母中泛醌生物合成所需的。酵母FDC1的三维结构为指导蛋白质工程研究提供了模板,该研究旨在优化生物工业应用中芳香酸脱羧反应的效率。

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