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首页> 外文期刊>Journal of Molecular Modeling >3D-QSAR based pharmacophore modeling and virtual screening for identification of novel pteridine reductase inhibitors
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3D-QSAR based pharmacophore modeling and virtual screening for identification of novel pteridine reductase inhibitors

机译:基于3D-QSAR的药效团建模和虚拟筛选,用于鉴定新型蝶啶还原酶抑制剂

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摘要

Pteridine reductase is a promising target for development of novel therapeutic agents against Trypanosomatid parasites. A 3D-QSAR pharmacophore hypothesis has been generated for a series of L. major pteridine reductase inhibitors using Catalyst/HypoGen algorithm for identification of the chemical features that are responsible for the inhibitory activity. Four pharmacophore features, namely: two H-bond donors (D), one Hydrophobic aromatic (H) and one Ring aromatic (R) have been identified as key features involved in inhibitor-PTR1 interaction. These features are able to predict the activity of external test set of pteridine reductase inhibitors with a correlation coefficient (r) of 0.80. Based on the analysis of the best hypotheses, some potent Pteridine reductase inhibitors were screened out and predicted with anti-PTR1 activity. It turned out that the newly identified inhibitory molecules are at least 300 fold more potent than the current crop of existing inhibitors. Overall the current SAR study is an effort for elucidating quantitative structure-activity relationship for the PTR1 inhibitors. The results from the combined 3D-QSAR modeling and molecular docking approach have led to the prediction of new potent inhibitory scaffolds.
机译:蝶啶还原酶是开发新型抗锥虫寄生虫治疗剂的有希望的靶标。使用Catalyst / HypoGen算法鉴定了一系列抑制活性的化学特征,已为一系列主要的L.主要蝶啶还原酶抑制剂生成了3D-QSAR药效团假说。四个药效基团特征,即:两个H键供体(D),一个疏水性芳族(H)和一个环芳族(R)被确定为抑制剂-PTR1相互作用的关键特征。这些特征能够预测相关系数(r)为0.80的蝶啶还原酶抑制剂外部测试组的活性。根据最佳假设的分析,筛选出了一些有效的蝶啶还原酶抑制剂,并预测它们具有抗PTR1活性。事实证明,新发现的抑制分子的效力至少比现有抑制剂高出300倍。总体而言,当前的SAR研究是为阐明PTR1抑制剂的定量构效关系而做出的努力。 3D-QSAR建模和分子对接方法相结合的结果导致了新的有效抑制支架的预测。

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