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Absorption classification of oral drugs based on molecular surface properties.

机译:基于分子表面性质的口服药物吸收分类。

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The aim of this study was to investigate whether easily calculated and comprehended molecular surface properties can predict drug solubility and permeability with sufficient accuracy to allow theoretical absorption classification of drug molecules. For this purpose, structurally diverse, orally administered model drugs were selected from the World Health Organization (WHO)'s list of essential drugs. The solubility and permeability of the drugs were determined using well-established in vitro methods in highly accurate experimental settings. Descriptors for molecular surface area were generated from low-energy conformations obtained by conformational analysis using molecular mechanics calculations. Correlations between the calculated molecular surface area descriptors, on one hand, and solubility and permeability, on the other, were established with multivariate data analysis (partial least squares projection to latent structures (PLS)) using training and test sets. The obtained models were challenged with external test sets. Both solubility and permeability of the druglike molecules could be predicted with high accuracy from the calculated molecular surface properties alone. The established correlations were used to perform a theoretical biopharmaceutical classification of the WHO-listed drugs into six classes, resulting in a correct prediction for 87% of the essential drugs. An external test set consisting of Food and Drug Administration (FDA) standard compounds for biopharmaceutical classification was predicted with 77% accuracy. We conclude that PLS models of easily comprehended molecular surface properties can be used to rapidly provide absorption profiles of druglike molecules early on in drug discovery.
机译:这项研究的目的是调查容易计算和理解的分子表面性质是否可以足够准确地预测药物溶解度和渗透性,从而对药物分子进行理论上的吸收分类。为此,从世界卫生组织(WHO)的基本药物清单中选择了结构多样,口服给药的模型药物。使用成熟的体外方法在高度精确的实验环境中确定药物的溶解度和渗透性。分子表面积的描述是通过使用分子力学计算通过构象分析获得的低能构象生成的。一方面,使用训练和测试集,通过多变量数据分析(偏最小二乘法投影到潜在结构(PLS))建立了计算出的分子表面积描述符与溶解度和渗透率之间的相关性。获得的模型受到外部测试集的挑战。仅从计算出的分子表面性质就可以高精度地预测药物样分子的溶解性和渗透性。建立的相关性用于对WHO列出的药物进行理论上的生物制药分类,分为六类,从而正确预测了87%的基本药物。预测由食品药品管理局(FDA)标准化合物组成的用于生物制药分类的外部测试集的准确性为77%。我们得出的结论是,易于理解的分子表面性质的PLS模型可用于在药物发现早期迅速提供类药物分子的吸收曲线。

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