J Chem Inf Model. 2019 Nov 25;59(11):4855-4867. doi: 10.1021/acs.jcim.9b00666. Epub 2019 Oct 22.
Computational description of conformational and dynamic properties of anticoagulant heparin analogue pentasaccharides is of crucial importance in understanding their biological activities. We designed and synthesized idraparinux derivatives modified with sulfonatomethyl moieties at the D, F, and H glucose units that display varied potencies depending on the exact nature of the substitution. In this report we examined the capability of molecular dynamics (MD) simulations to describe the conformational behavior of these novel idraparinux derivatives. We used Gaussian accelerated MD (GAMD) simulations on the parent compound, idraparinux, to choose the most suitable carbohydrate force field for these type of compounds. GAMD provided significant acceleration of conformational transitions compared to classical MD. We compared descriptors obtained from GAMD with NMR spectroscopic parameters related to geometrical descriptors such as scalar couplings and nuclear Overhauser effects (NOE) measured on idraparinux. We found that the experimental data of idraparinux is best reproduced by the CHARMM carbohydrate force field. Furthermore, we propose a torsion angle parameter for the sulfonato-methyl group, which was developed for the chosen CHARMM force field using quantum chemical calculations and validated by comparison with NMR data. The work lays down the foundation of using MD simulations to gain insight into the conformational properties of sulfonato-methyl group modified idraparinux derivatives and to understand their structure-activity relationship thus enabling rational design of further modifications.
计算描述抗凝肝素类似物戊糖的构象和动态特性对于理解它们的生物学活性至关重要。我们设计并合成了在 D、F 和 H 葡萄糖单元上带有磺甲氧基取代基的 idraparinux 衍生物,这些取代基的性质不同,其活性也不同。在本报告中,我们研究了分子动力学(MD)模拟在描述这些新型 idraparinux 衍生物构象行为方面的能力。我们使用高斯加速 MD(GAMD)模拟对母体化合物 idraparinux 进行了模拟,以选择最适合这些类型化合物的碳水化合物力场。与经典 MD 相比,GAMD 提供了构象转变的显著加速。我们将 GAMD 得到的描述符与 NMR 光谱参数进行了比较,这些参数与几何描述符(如在 idraparinux 上测量的标量耦合和核 Overhauser 效应(NOE))有关。我们发现,idraparinux 的实验数据最好由 CHARMM 碳水化合物力场再现。此外,我们提出了磺甲氧基基团的扭转角参数,该参数是使用量子化学计算为所选 CHARMM 力场开发的,并通过与 NMR 数据的比较进行了验证。这项工作为使用 MD 模拟深入了解磺甲氧基基团修饰的 idraparinux 衍生物的构象特性以及理解它们的结构-活性关系奠定了基础,从而能够合理设计进一步的修饰。