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Structural and Biophysical Characterization of BoxC from Burkholderia xenovorans LB400: A NOVEL RING-CLEAVING ENZYME IN THE CROTONASE SUPERFAMILY*

机译:异种伯克霍尔德氏菌LB400的BoxC的结构和生物物理特征:一种新的在环糖酶超家族中裂解环的酶*

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摘要

The mineralization of aromatic compounds by microorganisms relies on a structurally and functionally diverse group of ring-cleaving enzymes. The recently discovered benzoate oxidation pathway in Burkholderia xenovorans LB400 encodes a novel such ring-cleaving enzyme, termed BoxC, that catalyzes the conversion of 2,3-dihydro-2,3-dihydroxybenzoyl-CoA to 3,4-dehydroadipyl-CoA without the requirement for molecular oxygen. Sequence analysis indicates that BoxC is a highly divergent member of the crotonase superfamily and nearly double the size of the average superfamily member. The structure of BoxC determined to 1.5 Å resolution reveals an intriguing structural demarcation. A highly divergent region in the C terminus probably serves as a structural scaffold for the conserved N terminus that encompasses the active site and, in conjunction with a conserved C-terminal helix, mediates dimer formation. Isothermal titration calorimetry and molecular docking simulations contribute to a detailed view of the active site, resulting in a compelling mechanistic model where a pair of conserved glutamate residues (Glu146 and Glu168) work in tandem to deprotonate the dihydroxylated ring substrate, leading to cleavage. A final deformylation step incorporating a water molecule and Cys111 as a general base completes the formation of 3,4-dehydroadipyl-CoA product. Overall, this study establishes the basis for BoxC as one of the most divergent members of the crotonase superfamily and provides the first structural insight into the mechanism of this novel class of ring-cleaving enzymes.
机译:微生物使芳族化合物矿化依赖于结构和功能多样的成环酶。最近发现的异种伯克霍尔德氏菌LB400中的苯甲酸酯氧化途径编码一种称为BoxC的新型环裂解酶,该酶催化将2,3-二氢-2,3-二羟基苯甲酰基-CoA转化为3,4-脱氢己二酰-CoA。分子氧的需求。序列分析表明,BoxC是巴豆酶超家族成员的高度分化成员,几乎是平均超家族成员大小的两倍。确定为1.5Å分辨率的BoxC结构揭示了一个有趣的结构界限。 C末端的高度差异区域可能是保守的N末端的结构支架,该N末端包含活性位点,并与保守的C末端螺旋结合,介导二聚体的形成。等温滴定量热法和分子对接模拟有助于详细了解活性位点,从而形成了引人注目的机理模型,其中一对保守的谷氨酸残基(Glu146和Glu168)串联作用使二羟基化的环底物去质子化,从而导致裂解。结合水分子和Cys111作为一般碱基的最终去甲酰基化步骤完成了3,4-脱氢己二酰-CoA产物的形成。总体而言,这项研究为BoxC作为巴豆酶超家族中最趋异的成员之一奠定了基础,并为这种新型的环裂解酶机制提供了第一个结构见解。

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