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A molecular dynamics-based algorithm for evaluating the glycosaminoglycan mimicking potential of synthetic homogenous sulfated small molecules

机译:一种基于分子动力学的算法用于评估合成的均质的硫酸化的小分子的糖胺聚糖模拟潜力

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摘要

Glycosaminoglycans (GAGs) are key natural biopolymers that exhibit a range of biological functions including growth and differentiation. Despite this multiplicity of function, natural GAG sequences have not yielded drugs because of problems of heterogeneity and synthesis. Recently, several homogenous non-saccharide glycosaminoglycan mimetics (NSGMs) have been reported as agents displaying major therapeutic promise. Yet, it remains unclear whether sulfated NSGMs structurally mimic sulfated GAGs. To address this, we developed a three-step molecular dynamics (MD)-based algorithm to compare sulfated NSGMs with GAGs. In the first step of this algorithm, parameters related to the range of conformations sampled by the two highly sulfated molecules as free entities in water were compared. The second step compared identity of binding site geometries and the final step evaluated comparable dynamics and interactions in the protein-bound state. Using a test case of interactions with fibroblast growth factor-related proteins, we show that this three-step algorithm effectively predicts the GAG structure mimicking property of NSGMs. Specifically, we show that two unique dimeric NSGMs mimic hexameric GAG sequences in the protein-bound state. In contrast, closely related monomeric and trimeric NSGMs do not mimic GAG in either the free or bound states. These results correspond well with the functional properties of NSGMs. The results show for the first time that appropriately designed sulfated NSGMs can be good structural mimetics of GAGs and the incorporation of a MD-based strategy at the NSGM library screening stage can identify promising mimetics of targeted GAG sequences.
机译:糖胺聚糖(GAG)是关键的天然生物聚合物,具有多种生物学功能,包括生长和分化。尽管具有多种功能,但由于异质性和合成问题,天然GAG序列仍未产生药物。近来,已经报道了几种均质的非糖类糖胺聚糖模拟物(NSGM)作为显示主要治疗前景的药物。但是,尚不清楚硫酸化的NSGM是否在结构上模拟硫酸化的GAG。为了解决这个问题,我们开发了一种基于三步分子动力学(MD)的算法来比较硫酸化NSGM和GAG。在该算法的第一步中,比较了与两个高度硫酸化的分子作为水中的游离实体采样的构象范围有关的参数。第二步比较了结合位点的几何形状,最后一步评估了蛋白质结合状态下的可比动力学和相互作用。使用与成纤维细胞生长因子相关蛋白相互作用的测试案例,我们表明该三步算法有效地预测了NSGMs的GAG结构模拟特性。具体来说,我们显示了两个独特的二聚体NSGM模仿蛋白结合状态下的六聚体GAG序列。相反,密切相关的单体和三聚体NSGM在自由或结合状态下均不模拟GAG。这些结果与NSGM的功能特性非常吻合。结果首次表明,经过适当设计的硫酸化NSGMs可能是GAGs的良好结构模拟物,并且在NSGM文库筛选阶段采用基于MD的策略可以鉴定出有希望的靶向GAG序列模拟物。

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