Wagner Gerd K, Pesnot Thomas, Palcic Monica M, Jørgensen Rene
From the Department of Chemistry, King's College London, Faculty of Natural & Mathematical Sciences, Britannia House, 7 Trinity Street, London SE1 1DB, United Kingdom.
the University of East Anglia, School of Pharmacy, Norwich NR47TJ, England, and.
J Biol Chem. 2015 Dec 25;290(52):31162-72. doi: 10.1074/jbc.M115.681262. Epub 2015 Nov 2.
Two closely related glycosyltransferases are responsible for the final step of the biosynthesis of ABO(H) human blood group A and B antigens. The two enzymes differ by only four amino acid residues, which determine whether the enzymes transfer GalNAc from UDP-GalNAc or Gal from UDP-Gal to the H-antigen acceptor. The enzymes belong to the class of GT-A folded enzymes, grouped as GT6 in the CAZy database, and are characterized by a single domain with a metal dependent retaining reaction mechanism. However, the exact role of the four amino acid residues in the specificity of the enzymes is still unresolved. In this study, we report the first structural information of a dual specificity cis-AB blood group glycosyltransferase in complex with a synthetic UDP-GalNAc derivative. Interestingly, the GalNAc moiety adopts an unusual yet catalytically productive conformation in the binding pocket, which is different from the "tucked under" conformation previously observed for the UDP-Gal donor. In addition, we show that this UDP-GalNAc derivative in complex with the H-antigen acceptor provokes the same unusual binding pocket closure as seen for the corresponding UDP-Gal derivative. Despite this, the two derivatives show vastly different kinetic properties. Our results provide a important structural insight into the donor substrate specificity and utilization in blood group biosynthesis, which can very likely be exploited for the development of new glycosyltransferase inhibitors and probes.
两种密切相关的糖基转移酶负责ABO(H)人类血型A和B抗原生物合成的最后一步。这两种酶仅相差四个氨基酸残基,这决定了酶是将UDP-GalNAc中的GalNAc还是UDP-Gal中的Gal转移到H抗原受体上。这些酶属于GT-A折叠酶类,在CAZy数据库中归类为GT6,其特征是具有一个依赖金属的保留反应机制的单一结构域。然而,这四个氨基酸残基在酶特异性中的具体作用仍未解决。在本研究中,我们报告了一种双特异性顺式AB血型糖基转移酶与合成UDP-GalNAc衍生物复合物的首个结构信息。有趣的是,GalNAc部分在结合口袋中采用了一种不寻常但具有催化活性的构象,这与之前观察到的UDP-Gal供体的“折叠在下面”的构象不同。此外,我们表明,这种与H抗原受体复合的UDP-GalNAc衍生物会引发与相应UDP-Gal衍生物相同的不寻常结合口袋闭合。尽管如此,这两种衍生物表现出截然不同的动力学性质。我们的结果为血型生物合成中供体底物特异性和利用提供了重要的结构见解,这很可能被用于开发新的糖基转移酶抑制剂和探针。