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Role of physicochemical properties in the estimation of skin permeability: in vitro data assessment by Partial Least-Squares Regression

机译:理化性质在皮肤渗透性评估中的作用:通过偏最小二乘回归进行体外数据评估

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摘要

Skin provides passage for the delivery of drugs. The in vitro and in vivo testing of chemicals for estimation of dermal absorption is very time consuming, costly and has many ethical difficulties related to human and animal testing. The solution to the problem is Quantitative structure-permeability relationships. This method relates dermal penetration properties of a range of chemical compounds to their physicochemical parameters. In the present study, an effort has been made to develop models for the accurate prediction of skin permeability using a large, diverse dataset through the combination of various regression methods coupled with the Genetic Algorithm (GA)/Interval Partial Least-Squares Algorithm (iPLS). The descriptors were calculated using e-DRAGON and ADME Pharma Algorithms-Abrahams descriptors. The original dataset was divided into a training set and a testing set using the Kennard-Stone Algorithm. The selection of descriptors was made by the GA and iPLS. The model applicability domain was determined. The results showed that a three-parameter model built through Partial Least-squares Regression was most accurate with r2 of 0.936.
机译:皮肤为药物输送提供了通道。用于估计皮肤吸收的化学物质的体外和体内测试非常耗时,昂贵并且具有与人和动物测试有关的许多道德困难。解决该问题的方法是定量结构-渗透率关系。该方法将一系列化合物的皮肤渗透特性与其理化参数相关联。在本研究中,通过将各种回归方法与遗传算法(GA)/区间偏最小二乘算法(iPLS)结合使用,人们努力开发使用大型多样数据集准确预测皮肤渗透性的模型。 )。使用e-DRAGON和ADME Pharma Algorithms-Abrahams描述符计算描述符。使用Kennard-Stone算法将原始数据集分为训练集和测试集。描述符的选择由GA和iPLS进行。确定了模型的适用范围。结果表明,通过偏最小二乘回归建立的三参数模型最准确,r2为0.936。

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