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与底物类似物的 3-巯基丙酸双加氧酶的结构揭示了铁中心的双齿底物结合。

Structure of 3-mercaptopropionic acid dioxygenase with a substrate analog reveals bidentate substrate binding at the iron center.

机构信息

Department of Chemistry & Biochemistry, University of Alabama, Tuscaloosa, Alabama, USA.

Department of Chemistry & Biochemistry, The University of Texas at Arlington, Arlington, Texas, USA.

出版信息

J Biol Chem. 2021 Jan-Jun;296:100492. doi: 10.1016/j.jbc.2021.100492. Epub 2021 Mar 1.

Abstract

Thiol dioxygenases are a subset of nonheme iron oxygenases that catalyze the formation of sulfinic acids from sulfhydryl-containing substrates and dioxygen. Among this class, cysteine dioxygenases (CDOs) and 3-mercaptopropionic acid dioxygenases (3MDOs) are the best characterized, and the mode of substrate binding for CDOs is well understood. However, the manner in which 3-mercaptopropionic acid (3MPA) coordinates to the nonheme iron site in 3MDO remains a matter of debate. A model for bidentate 3MPA coordination at the 3MDO Fe-site has been proposed on the basis of computational docking, whereas steady-state kinetics and EPR spectroscopic measurements suggest a thiolate-only coordination of the substrate. To address this gap in knowledge, we determined the structure of Azobacter vinelandii 3MDO (Av3MDO) in complex with the substrate analog and competitive inhibitor, 3-hydroxypropionic acid (3HPA). The structure together with DFT computational modeling demonstrates that 3HPA and 3MPA associate with iron as chelate complexes with the substrate-carboxylate group forming an additional interaction with Arg168 and the thiol bound at the same position as in CDO. A chloride ligand was bound to iron in the coordination site assigned as the O-binding site. Supporting HYSCORE spectroscopic experiments were performed on the (3MPA/NO)-bound Av3MDO iron nitrosyl (S = 3/2) site. In combination with spectroscopic simulations and optimized DFT models, this work provides an experimentally verified model of the Av3MDO enzyme-substrate complex, effectively resolving a debate in the literature regarding the preferred substrate-binding denticity. These results elegantly explain the observed 3MDO substrate specificity, but leave unanswered questions regarding the mechanism of substrate-gated reactivity with dioxygen.

摘要

硫醇双加氧酶是一类非血红素铁加氧酶,可催化含巯基的底物与分子氧形成亚磺酸。在该家族中,半胱氨酸双加氧酶(CDO)和 3-巯基丙酸双加氧酶(3MDO)的特征最为明显,并且 CDO 的底物结合模式已得到很好的理解。然而,3-巯基丙酸(3MPA)在 3MDO 中非血红素铁结合位点的配位方式仍存在争议。基于计算对接,提出了 3MDO Fe 位双齿 3MPA 配位的模型,而稳态动力学和 EPR 光谱测量表明底物仅通过硫醇配位。为了解决这一知识空白,我们确定了与底物类似物和竞争性抑制剂 3-羟基丙酸(3HPA)复合的 Azobacter vinelandii 3MDO(Av3MDO)的结构。该结构以及 DFT 计算模型表明,3HPA 和 3MPA 与铁形成螯合配合物,与 Arg168 形成额外的相互作用,与 CDO 中相同位置的巯基结合。在配体结合位点上结合了一个氯离子,该位点被指定为 O 结合位点。对 Av3MDO 铁亚硝酰(S=3/2)结合(3MPA/NO)的配合物进行了 HYSCORE 光谱实验。与光谱模拟和优化的 DFT 模型相结合,这项工作提供了一个经过实验验证的 Av3MDO 酶-底物复合物模型,有效地解决了文献中关于首选底物结合齿密度的争论。这些结果巧妙地解释了观察到的 3MDO 底物特异性,但仍未回答关于与分子氧反应的底物门控机制的问题。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/10c0/8050391/baaeec3b27f3/gr1.jpg

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