Molecular Basis of C–S Bond Cleavage in the Glycyl Radical Enzyme Isethionate Sulfite-Lyase

C. D. Dawson, Stephania M. Irwin, L. Backman, C. Drennan, E. Balskus
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引用次数: 1

Abstract

Desulfonation of isethionate by the bacterial glycyl radical enzyme (GRE) isethionate sulfite-lyase (IslA) generates sulfite, a substrate for sulfite respiration that in turn produces the disease-associated metabolite hydrogen sulfide. Here, we present a 2.7 A resolution X-ray structure of wild-type IslA from Bilophila wadsworthia with isethionate bound. In comparison to other GREs, alternate positioning of the active site β strands allows for distinct residue positions to contribute to substrate binding. These structural differences combined with sequence variations create a highly tailored active site for the binding of the negatively charged isethionate substrate. Through the kinetic analysis of fourteen IslA variants, we probe the mechanism by which radical chemistry is used for C–S bond cleavage. This work further elucidates the structural basis of chemistry within the GRE superfamily and will inform structure-based inhibitor design of IsIA and thus of microbial hydrogen sulfide production.
甘酰基自由基酶异硫酸亚裂解酶C-S键裂解的分子基础
细菌甘酰基自由基酶(GRE)异硫代酸亚裂解酶(IslA)对异硫代酸进行脱硫,产生亚硫酸盐,亚硫酸盐呼吸的底物,进而产生与疾病相关的代谢物硫化氢。在这里,我们展示了来自Bilophila wadsworthia的野生型IslA的2.7 a分辨率x射线结构。与其他GREs相比,活性位点β链的交替定位允许不同的残基位置有助于底物结合。这些结构差异与序列变化相结合,为带负电荷的异乙硫酸盐底物的结合创造了一个高度定制的活性位点。通过对14个IslA变体的动力学分析,我们探讨了自由基化学用于C-S键裂解的机理。这项工作进一步阐明了GRE超家族的化学结构基础,并将为基于结构的IsIA抑制剂设计提供信息,从而为微生物硫化氢生产提供信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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