Institute of Biocomputation and Physics of Complex Systems (BIFI), University of Zaragoza, BIFI-IQFR (CSIC) Joint Unit, Mariano Esquillor s/n, Campus Rio Ebro, Edificio I+D, Fundacion ARAID, Edificio Pignatelli 36 (Spain).
Angew Chem Int Ed Engl. 2014 Jul 28;53(31):8206-10. doi: 10.1002/anie.201402781. Epub 2014 Jun 20.
The retaining glycosyltransferase GalNAc-T2 is a member of a large family of human polypeptide GalNAc-transferases that is responsible for the post-translational modification of many cell-surface proteins. By the use of combined structural and computational approaches, we provide the first set of structural snapshots of the enzyme during the catalytic cycle and combine these with quantum-mechanics/molecular-mechanics (QM/MM) metadynamics to unravel the catalytic mechanism of this retaining enzyme at the atomic-electronic level of detail. Our study provides a detailed structural rationale for an ordered bi-bi kinetic mechanism and reveals critical aspects of substrate recognition, which dictate the specificity for acceptor Thr versus Ser residues and enforce a front-face SN i-type reaction in which the substrate N-acetyl sugar substituent coordinates efficient glycosyl transfer.
保留性糖基转移酶 GalNAc-T2 是一个庞大的人类多肽 GalNAc 转移酶家族的成员,负责许多细胞表面蛋白的翻译后修饰。通过使用组合结构和计算方法,我们提供了该酶在催化循环过程中的第一组结构快照,并将其与量子力学/分子力学 (QM/MM) 元动力学相结合,从原子电子细节水平上揭示了这种保留酶的催化机制。我们的研究为有序的双酶促机制提供了详细的结构基础,并揭示了底物识别的关键方面,这些方面决定了对受体 Thr 与 Ser 残基的特异性,并强制进行前位 SN i 型反应,其中底物 N-乙酰糖取代基协调有效的糖基转移。