Electronic-Topological and Neural Network Approaches to the Structure-Antimycobacterial Activity Relationships Study on Hydrazones Derivatives

被引:0
|
作者
Kandemirli, Fatma [1 ]
Vurdu, Can Dogan [1 ]
Basaran, Murat Alper [2 ]
Sayiner, Hakan Sezgin [3 ]
Shvets, Nathaly [4 ]
Dimoglo, Anatholy [5 ]
Kovalish, Vasyl [6 ]
Polat, Turgay [7 ]
机构
[1] Kastamonu Univ, Fac Engn & Architecture, Dept Biomed Engn, TR-37200 Kastamonu, Turkey
[2] Akdeniz Univ, Fac Engn Alanya, Dept Engn Management, TR-07425 Antalya, Turkey
[3] Adiyaman Univ, Fac Med, TR-02040 Adiyaman, Turkey
[4] Gebze Inst Technol, Dept Math, TR-41400 Kocaeli, Turkey
[5] Gebze Inst Technol, Dept Environm Engn, TR-41400 Kocaeli, Turkey
[6] Inst Bioorgan Chem & Petrochem Chem, Biomed Dept, UA-25302660 Kiev, Ukraine
[7] Kastamonu Univ, Fac Sci, Dept Phys, TR-37200 Kastamonu, Turkey
关键词
Antimycobacterial activity; associative neural network; DFT; electronic topological method; hydrazide-hydrazones; QSAR; ANTITUBERCULOSIS ACTIVITY; ACID; SERIES; INHIBITORS; QSAR; 3D-QSAR;
D O I
暂无
中图分类号
R914 [药物化学];
学科分类号
100701 ;
摘要
That the implementation of Electronic-Topological Method and a variant of Feed Forward Neural Network (FFNN) called as the Associative Neural Network are applied to the compounds of Hydrazones derivatives have been employed in order to construct model which can be used in the prediction of antituberculosis activity. The supervised learning has been performed using (ASNN) and categorized correctly 84.4% of them, namely, 38 out of 45. Ph1 pharmacophore and Ph2 pharmacophore consisting of 6 and 7 atoms, respectively were found. Anti-pharmacophore features so-called "break of activity" have also been revealed, which means that APh1 is found in 22 inactive molecules. Statistical analyses have been carried out by using the descriptors, such as E-HOMO, E-LUMO, Delta E, hardness, softness, chemical potential, electrophilicity index, exact polarizibility, total of electronic and zero point energies, dipole moment as independent variables in order to account for the dependent variable called inhibition efficiency. Observing several complexities, namely, linearity, nonlinearity and multi-co linearity at the same time leads data to be modeled using two different techniques called multiple regression and Artificial Neural Networks (ANNs) after computing correlations among descriptors in order to compute QSAR. Computations resulting in determining some compounds with relatively high values of inhibition are presented.
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页码:77 / 85
页数:9
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