QSAR and molecular docking studies of indole-based analogs as HIV-1 attachment inhibitors

被引:15
|
作者
Hdoufane, Ismail [1 ]
Stoycheva, Joanna [2 ]
Tadjer, Alia [2 ]
Villemin, Didier [3 ]
Najdoska-Bogdanov, Mence [4 ]
Bogdanov, Jane [4 ]
Cherqaoui, Driss [1 ]
机构
[1] Fac Sci, Dept Chem, BP 2390, Marrakech, Morocco
[2] Sofia Univ St Kliment Ohridski, Fac Chem & Pharm, 1 James Bourchier Ave, Sofia 1164, Bulgaria
[3] ENSI, ISMRA, LCMT, UMR CNRS 6507, 6 Blvd Marechal Juin, F-14050 Caen, France
[4] Ss Cyril & Methodius Univ, Fac Nat Sci & Math, Inst Chem, Skopje, North Macedonia
关键词
HIV-1 attachment inhibitors; V3; loop; gp120; QSAR; Molecular docking; ARTIFICIAL NEURAL-NETWORKS; STRUCTURE/RESPONSE CORRELATIONS; SIMILARITY/DIVERSITY ANALYSIS; GETAWAY DESCRIPTORS; DISCOVERY; MODELS; ENTRY; DERIVATIVES; VALIDATION; DESIGN;
D O I
10.1016/j.molstruc.2019.05.056
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Human immunodeficiency virus-1 (HIV-1) glycoprotein 120 (gp120) is one of the key targets for treatment of acquired immunodeficiency syndrome. A large number of inhibitors are being designed for this target in order to find safe and effective drugs. In the present study, quantitative structure activity relationship (QSAR) models established on 128 gp120 indole-based attachment inhibitors have been developed using suitable molecular descriptors. Chemometrics techniques including multiple linear regression (MLR), artificial neural network (ANN) and support vector machine (SVM) methods were used to set up QSAR models in order to explain the structural requirements of HIV-1 gp120 inhibitory activity. The prediction performance of each developed model was evaluated. The results obtained, for both the training and test sets, were encouraging. These results reveal that the predictive power of the SVM model is slightly superior to those of the MLR and ANN models. Further, the docking process was used not only to identify the most probable position and orientation of an inhibitor within the gp120 but also to assess its affinity with this target. This study could help researchers, particularly those working in the field of the pharmaceutical industry, to identify and discover more potent, active, and selective HIV-1 attachment inhibitors. Therefore, the established models could improve, diversify, and accelerate the drug development process and reduce the use of the trial and error approach in the search of new drug targets for the treatment of HIV. (C) 2019 Published by Elsevier B.V.
引用
收藏
页码:429 / 443
页数:15
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