化学
计算模型
生物系统
分子力学
磁导率
分子描述符
膜透性
反褶积
分子动力学
极表面积
计算复杂性理论
统计物理学
算法
计算化学
数量结构-活动关系
膜
计算机科学
分子
物理
立体化学
生物
生物化学
有机化学
作者
Patric Stenberg,Ulf Norinder,Kristina Luthman,Per Artursson
摘要
The aim of this study was to devise experimental protocols and computational models for the prediction of intestinal drug permeability. Both the required experimental and computational effort and the accuracy and quality of the resulting predictions were considered. In vitro intestinal Caco-2 cell monolayer permeabilities were determined both in a highly accurate experimental setting (Pc) and in a faster, but less accurate, mode (Papp). Computational models were built using four different principles for generation of molecular descriptors (atom counts, molecular mechanics calculations, fragmental, and quantum mechanics approaches) and were evaluated for their ability to predict intestinal membrane permeability. A theoretical deconvolution of the polar molecular surface area (PSA) was also performed to facilitate the interpretation of this composite descriptor and allow the calculation of PSA in a simplified and fast mode. The results indicate that it is possible to predict intestinal drug permeability from rather simple models with little or no loss of accuracy. A new, fast computational model, based on partitioned molecular surface areas, that predicts intestinal drug permeability with an accuracy comparable to that of time-consuming quantum mechanics calculations is presented.
科研通智能强力驱动
Strongly Powered by AbleSci AI