Janoš Pavel, Kozmon Stanislav, Tvaroška Igor, Koca Jaroslav
Central European Institute of Technology (CEITEC).
Faculty of Science-National Centre for Biomolecular Research, Masaryk University, Brno, Czech Republic.
Glycobiology. 2016 Jul;26(7):757-771. doi: 10.1093/glycob/cww010. Epub 2016 Jan 27.
The enzyme UDP-N-acetylglucosamine: α-d-mannoside β-1-6 N-acetylglucosaminyltransferase V (GnT-V) catalyzes the transfer of GlcNAc from the UDP-GlcNAc donor to the α-1-6-linked mannose of the trimannosyl core structure of glycoproteins to produce the β-1-6-linked branching of N-linked oligosaccharides. β-1-6-GlcNAc-branched N-glycans are associated with cancer growth and metastasis. Therefore, the inhibition of GnT-V represents a key target for anti-cancer drug development. However, the development of potent and specific inhibitors of GnT-V is hampered by the lack of information on the three-dimensional structure of the enzyme and on the binding characteristics of its substrates. Here we present the first 3D structure of GnT-V as a result of homology modeling. Various alignment methods, docking the donor and acceptor substrates, and molecular dynamics simulation were used to construct seven homology models of GnT-V and characterize the binding of its substrates. The best homology model is consistent with available experimental data. The three-dimensional model, the structure of the enzyme catalytic site and binding information obtained for the donor and acceptor can be useful in studies of the catalytic mechanism and design of inhibitors of GnT-V.
酶UDP-N-乙酰葡糖胺:α-D-甘露糖苷β-1-6 N-乙酰葡糖胺基转移酶V(GnT-V)催化将来自UDP-GlcNAc供体的GlcNAc转移至糖蛋白三甘露糖核心结构的α-1-6连接的甘露糖上,以产生N-连接寡糖的β-1-6连接分支。β-1-6-GlcNAc分支的N-聚糖与癌症生长和转移相关。因此,抑制GnT-V是抗癌药物开发的关键靶点。然而,由于缺乏关于该酶三维结构及其底物结合特性的信息,阻碍了强效且特异性的GnT-V抑制剂的开发。在此,我们通过同源建模给出了GnT-V的首个三维结构。使用了各种比对方法、对接供体和受体底物以及分子动力学模拟来构建七个GnT-V的同源模型,并表征其底物的结合情况。最佳同源模型与现有实验数据一致。该三维模型、酶催化位点的结构以及供体和受体的结合信息可用于GnT-V催化机制的研究和抑制剂的设计。