Department of Biochemistry and Biotechnology, University of Thessaly, 26 Ploutonos Str., Larissa, Greece.
Chem Biol Drug Des. 2012 May;79(5):663-73. doi: 10.1111/j.1747-0285.2012.01349.x. Epub 2012 Mar 7.
Glycogen phosphorylase is a molecular target for the design of potential hypoglycemic agents. Structure-based design pinpointed that the 3'-position of glucopyranose equipped with a suitable group has the potential to form interactions with enzyme's cofactor, pyridoxal 5'-phosphate (PLP), thus enhancing the inhibitory potency. Hence, we have investigated the binding of two ligands, 1-(β-d-glucopyranosyl)5-fluorouracil (GlcFU) and its 3'-CH(2) OH glucopyranose derivative. Both ligands were found to be low micromolar inhibitors with K(i) values of 7.9 and 27.1 μm, respectively. X-ray crystallography revealed that the 3'-CH(2) OH glucopyranose substituent is indeed involved in additional molecular interactions with the PLP γ-phosphate compared with GlcFU. However, it is 3.4 times less potent. To elucidate this discovery, docking followed by postdocking Quantum Mechanics/Molecular Mechanics - Poisson-Boltzmann Surface Area (QM/MM-PBSA) binding affinity calculations were performed. While the docking predictions failed to reflect the kinetic results, the QM/MM-PBSA revealed that the desolvation energy cost for binding of the 3'-CH(2) OH-substituted glucopyranose derivative out-weigh the enthalpy gains from the extra contacts formed. The benefits of performing postdocking calculations employing a more accurate solvation model and the QM/MM-PBSA methodology in lead optimization are therefore highlighted, specifically when the role of a highly polar/charged binding interface is significant.
糖原磷酸化酶是设计潜在降血糖药物的分子靶标。基于结构的设计指出,葡萄糖吡喃糖的 3'-位带有合适的基团,有可能与酶辅因子吡哆醛 5'-磷酸(PLP)形成相互作用,从而增强抑制效力。因此,我们研究了两种配体,1-(β-d-葡萄糖基)-5-氟尿嘧啶(GlcFU)及其 3'-CH(2)OH 葡萄糖吡喃糖衍生物的结合情况。这两种配体均被发现为低微摩尔抑制剂,其 K(i)值分别为 7.9 和 27.1 μm。X 射线晶体学揭示,与 GlcFU 相比,3'-CH(2)OH 葡萄糖吡喃糖取代基确实与 PLP γ-磷酸盐发生了额外的分子相互作用。然而,其效力降低了 3.4 倍。为了阐明这一发现,我们进行了对接,然后进行了对接后量子力学/分子力学-泊松-玻尔兹曼表面面积(QM/MM-PBSA)结合亲和力计算。虽然对接预测未能反映出动力学结果,但 QM/MM-PBSA 表明,结合 3'-CH(2)OH 取代的葡萄糖吡喃糖衍生物的去溶剂化能成本超过了额外形成的氢键所带来的焓变。因此,强调了在进行对接后计算时使用更准确的溶剂模型和 QM/MM-PBSA 方法学在先导优化中的优势,特别是在高度极性/带电结合界面的作用显著时。