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来自氯异戊霉素生物合成途径的TDP-表万古糖胺基转移酶GtfA的结构

Structure of the TDP-epi-vancosaminyltransferase GtfA from the chloroeremomycin biosynthetic pathway.

作者信息

Mulichak Anne M, Losey Heather C, Lu Wei, Wawrzak Zdzislaw, Walsh Christopher T, Garavito R Michael

机构信息

Department of Biochemistry and Molecular Biology, Michigan State University, East Lansing, MI 48824, USA.

出版信息

Proc Natl Acad Sci U S A. 2003 Aug 5;100(16):9238-43. doi: 10.1073/pnas.1233577100. Epub 2003 Jul 21.

Abstract

During the biosynthesis of the vancomycin-class antibiotic chloroeremomycin, TDP-epi-vancosaminyltransferase GtfA catalyzes the attachment of 4-epi-vancosamine from a TDP donor to the beta-OHTyr-6 of the aglycone cosubstrate. Glycosyltransferases from this pathway are potential tools for the combinatorial design of new antibiotics that are effective against vancomycin-resistant bacterial strains. These enzymes are members of the GT-B glycosyltransferase superfamily, which share a homologous bidomain topology. We present the 2.8-A crystal structures of GtfA complexes with vancomycin and the natural monoglycosylated peptide substrate, representing the first direct observation of acceptor substrate binding among closely related glycosyltransferases. The acceptor substrates bind to the N-terminal domain such that the aglycone substrate's reactive hydroxyl group hydrogen bonds to the side chains of Ser-10 and Asp-13, thus identifying these as residues of potential catalytic importance. As well as an open form of the enzyme, the crystal structures have revealed a closed form in which a TDP ligand is bound at a donor substrate site in the interdomain cleft, thereby illustrating not only binding interactions, but the conformational changes in the enzyme that accompany substrate binding.

摘要

在万古霉素类抗生素氯埃瑞莫霉素的生物合成过程中,TDP-表万古糖胺基转移酶GtfA催化将来自TDP供体的4-表万古糖胺连接到苷元共底物的β-OHTyr-6上。该途径中的糖基转移酶是用于组合设计对耐万古霉素细菌菌株有效的新型抗生素的潜在工具。这些酶是GT-B糖基转移酶超家族的成员,它们具有同源的双结构域拓扑结构。我们展示了GtfA与万古霉素和天然单糖基化肽底物的2.8埃晶体结构,这是首次直接观察到密切相关的糖基转移酶之间受体底物的结合情况。受体底物与N端结构域结合,使得苷元底物的反应性羟基与Ser-10和Asp-13的侧链形成氢键,从而确定这些为具有潜在催化重要性的残基。除了酶的开放形式外,晶体结构还揭示了一种封闭形式,其中一个TDP配体结合在结构域间裂隙中的供体底物位点,从而不仅说明了结合相互作用,还展示了底物结合时酶的构象变化。

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