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QSAR Studying of Oxidation Behavior of Benzoxazines as an Important Pharmaceutical Property

In this work the electrooxidation half-wave potentials of some Benzoxazines were predicted from their structural molecular descriptors by using quantitative structure-property relationship (QSAR) approaches. The dataset consist the half-wave potential of 40 benzoxazine derivatives which were obtaine...

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Autores principales: Baher, Elham, Darzi, Naser
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Shaheed Beheshti University of Medical Sciences 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5423242/
https://www.ncbi.nlm.nih.gov/pubmed/28496470
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author Baher, Elham
Darzi, Naser
author_facet Baher, Elham
Darzi, Naser
author_sort Baher, Elham
collection PubMed
description In this work the electrooxidation half-wave potentials of some Benzoxazines were predicted from their structural molecular descriptors by using quantitative structure-property relationship (QSAR) approaches. The dataset consist the half-wave potential of 40 benzoxazine derivatives which were obtained by DC-polarography. Descriptors which were selected by stepwise multiple selection procedure are: HOMO energy, partial positive surface area, maximum valency of carbon atom, relative number of hydrogen atoms and maximum electrophilic reaction index for nitrogen atom. These descriptors were used for development of multiple linear regression (MLR) and artificial neural network (ANN) models. The statistical parameters of MLR model are standard errors of 0.016 and 0.018 for training and test sets, respectively. Also, these values are 0.012 and 0.017 for training and test sets of ANN model, respectively. The predictive power of these models was further examined by leave-eight-out cross validation procedure. The obtained statistical parameters are Q(2 )= 0.920 and SPRESS = 0.020 for MLR model and Q(2 )= 0.949 and SPRESS = 0.015 for ANN model, which reveals the superiority of ANN over MLR model. Moreover, the results of sensitivity analysis on ANN model indicate that the order of importance of descriptors is: Relative number of H atom > HOMO energy > Maximum electrophyl reaction index for N atom > Partial positive surface area (order-3) > maximum valency of C atom.
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spelling pubmed-54232422017-05-11 QSAR Studying of Oxidation Behavior of Benzoxazines as an Important Pharmaceutical Property Baher, Elham Darzi, Naser Iran J Pharm Res Original Article In this work the electrooxidation half-wave potentials of some Benzoxazines were predicted from their structural molecular descriptors by using quantitative structure-property relationship (QSAR) approaches. The dataset consist the half-wave potential of 40 benzoxazine derivatives which were obtained by DC-polarography. Descriptors which were selected by stepwise multiple selection procedure are: HOMO energy, partial positive surface area, maximum valency of carbon atom, relative number of hydrogen atoms and maximum electrophilic reaction index for nitrogen atom. These descriptors were used for development of multiple linear regression (MLR) and artificial neural network (ANN) models. The statistical parameters of MLR model are standard errors of 0.016 and 0.018 for training and test sets, respectively. Also, these values are 0.012 and 0.017 for training and test sets of ANN model, respectively. The predictive power of these models was further examined by leave-eight-out cross validation procedure. The obtained statistical parameters are Q(2 )= 0.920 and SPRESS = 0.020 for MLR model and Q(2 )= 0.949 and SPRESS = 0.015 for ANN model, which reveals the superiority of ANN over MLR model. Moreover, the results of sensitivity analysis on ANN model indicate that the order of importance of descriptors is: Relative number of H atom > HOMO energy > Maximum electrophyl reaction index for N atom > Partial positive surface area (order-3) > maximum valency of C atom. Shaheed Beheshti University of Medical Sciences 2017 /pmc/articles/PMC5423242/ /pubmed/28496470 Text en ©2017 by School of Pharmacy, Shaheed Beheshti University of Medical Sciences and Health Services This is an Open Access article distributed under the terms of the Creative Commons Attribution License, (http://creativecommons.org/licenses/by/3.0/) which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Article
Baher, Elham
Darzi, Naser
QSAR Studying of Oxidation Behavior of Benzoxazines as an Important Pharmaceutical Property
title QSAR Studying of Oxidation Behavior of Benzoxazines as an Important Pharmaceutical Property
title_full QSAR Studying of Oxidation Behavior of Benzoxazines as an Important Pharmaceutical Property
title_fullStr QSAR Studying of Oxidation Behavior of Benzoxazines as an Important Pharmaceutical Property
title_full_unstemmed QSAR Studying of Oxidation Behavior of Benzoxazines as an Important Pharmaceutical Property
title_short QSAR Studying of Oxidation Behavior of Benzoxazines as an Important Pharmaceutical Property
title_sort qsar studying of oxidation behavior of benzoxazines as an important pharmaceutical property
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5423242/
https://www.ncbi.nlm.nih.gov/pubmed/28496470
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