Computational chemistry approach for the early detection of drug-induced idiosyncratic liver toxicity

被引:41
作者
Cruz-Monteagudo, Maykel [1 ,2 ,3 ]
Cordeiro, M. Natalia D. S. [4 ]
Borges, Fernanda [1 ]
机构
[1] Univ Porto, Fac Pharm, Dept Organ Chem, Phys Chem Mol Res Unit, P-4150047 Oporto, Portugal
[2] Cent Univ Las Villas, CEQA, Santa Clara 54830, Cuba
[3] Cent Univ Las Villas, CBQ, Santa Clara 54830, Cuba
[4] Univ Porto, Fac Sci, Dept Chem, REQUIMTE, P-4169007 Oporto, Portugal
关键词
chemoinformatics; computational prediction; drug development; early detection; idiosyncratic hepatotoxicity; quantitative structure-toxicity relationships;
D O I
10.1002/jcc.20812
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Idiosyncratic drug toxicity (IDT), considered as a toxic host-dependent event, with an apparent lack of dose response relationship, is usually not predictable from early phases of clinical trials, representing a particularly confounding complication in drug development. Albeit a rare event (usually <1/5000), IDT is often life threatening and is one of the major reasons new drugs never reach the market or are withdrawn post marketing. Computational methodologies, like the computer-based approach proposed in the present study, can play an important role in addressing IDT in early drug discovery. We report for the first time a systematic evaluation of classification models to predict idiosyncratic hepatotoxicity based on linear discriminant analysis (LDA), artificial neural networks (ANN), and machine learning algorithms (OneR) in conjunction with a 3D molecular structure representation and feature selection methods. These modeling techniques (LDA, feature selection to prevent over-fitting and multicollinearity, ANN to capture nonlinear relationships in the data, as well as the simple OneR classifier) were found to produce QSTR models with satisfactory internal cross-validation statistics and predictivity on an external subset of chemicals. More specifically, the models reached values of accuracy/sensitivity/specificity over 84%/78%/90%, respectively in the training series along with predictivity values ranging from ca. 78 to 86% of correctly classified drugs. An LDA-based desirability analysis was carried out in order to select the levels of the predictor variables needed to trigger the more desirable drug, i.e. the drug with lower potential for idiosyncratic hepatotoxicity. Finally, two external test sets were used to evaluate the ability of the models in discriminating toxic from nontoxic structurally and phannacologically related drugs and the ability of the best model (LDA) in detecting potential idiosyncratic hepatotoxic drugs, respectively. The computational approach proposed here can be considered as a useful tool in early IDT prognosis. (c) 2007 Wiley Periodicals, Inc.
引用
收藏
页码:533 / 549
页数:17
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