Center for Biotechnology and Interdisciplinary Studies, Rensselaer Polytechnic Institute, Troy, New York 12180, United States.
Department of BioMolecular Sciences, University of Mississippi, Oxford, Mississippi 38677, United States.
J Chem Theory Comput. 2022 Mar 8;18(3):1894-1904. doi: 10.1021/acs.jctc.1c00760. Epub 2022 Feb 2.
Heparin is a highly charged, polysulfated polysaccharide and serves as an anticoagulant. Heparin binds to multiple proteins throughout the body, suggesting a large range of potential therapeutic applications. Although its function has been characterized in multiple physiological contexts, heparin's solution conformational dynamics and structure-function relationships are not fully understood. Molecular dynamics (MD) simulations facilitate the analysis of a molecule's underlying conformational ensemble, which then provides important information necessary for understanding structure-function relationships. However, for MD simulations to afford meaningful results, they must both provide adequate sampling and accurately represent the energy properties of a molecule. The aim of this study is to compare heparin's conformational ensemble using two well-developed force fields for carbohydrates, known as GLYCAM06 and CHARMM36, using replica exchange molecular dynamics (REMD) simulations, and to validate these results with NMR experiments. The anticoagulant sequence, an ultra-low-molecular-weight heparin, known as Arixtra (fondaparinux, sodium), was simulated with both parameter sets. The results suggest that GLYCAM06 matches experimental nuclear magnetic resonance three-bond -coupling values measured for Arixtra better than CHARMM36. In addition, NOESY and ROESY experiments suggest that Arixtra is very flexible in the sub-millisecond time scale and does not adopt a unique structure at 25 C. Moreover, GLYCAM06 affords a much more dynamic conformational ensemble for Arixtra than CHARMM36.
肝素是一种带高电荷、多硫酸化的多糖,具有抗凝血作用。肝素在全身与多种蛋白质结合,这表明它可能具有广泛的潜在治疗应用。尽管其功能已在多种生理环境中得到了描述,但肝素的溶液构象动力学和结构-功能关系尚未完全了解。分子动力学(MD)模拟有助于分析分子的基础构象集合,从而为理解结构-功能关系提供必要的重要信息。然而,为了使 MD 模拟能够产生有意义的结果,它们必须既提供足够的采样,又要准确地表示分子的能量特性。本研究的目的是使用两种经过充分开发的碳水化合物力场,即 GLYCAM06 和 CHARMM36,通过 replica exchange 分子动力学(REMD)模拟来比较肝素的构象集合,并通过 NMR 实验验证这些结果。使用这两种参数集对具有抗凝作用的超低分子量肝素(阿利西尤单抗,钠)进行了模拟。结果表明,GLYCAM06 比 CHARMM36 更能匹配 Arixtra 的实验核磁共振三键耦合值。此外,NOESY 和 ROESY 实验表明,Arixtra 在亚毫秒时间尺度上非常灵活,在 25°C 时不会采用独特的结构。此外,GLYCAM06 为 Arixtra 提供了比 CHARMM36 更具动态的构象集合。