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A support vector machine classification model for benzo[c]phenathridine analogues with toposiomerase-I inhibitory activity.


ABSTRACT: Benzo[c]phenanthridine (BCP) derivatives were identified as topoisomerase I (TOP-I) targeting agents with pronounced antitumor activity. In this study, a support vector machine model was performed on a series of 73 analogues to classify BCP derivatives according to TOP-I inhibitory activity. The best SVM model with total accuracy of 93% for training set was achieved using a set of 7 descriptors identified from a large set via a random forest algorithm. Overall accuracy of up to 87% and a Matthews coefficient correlation (MCC) of 0.71 were obtained after this SVM classifier was validated internally by a test set of 15 compounds. For two external test sets, 89% and 80% BCP compounds, respectively, were correctly predicted. The results indicated that our SVM model could be used as the filter for designing new BCP compounds with higher TOP-I inhibitory activity.

SUBMITTER: Thai KM 

PROVIDER: S-EPMC6268465 | biostudies-literature | 2012 Apr

REPOSITORIES: biostudies-literature

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A support vector machine classification model for benzo[c]phenathridine analogues with toposiomerase-I inhibitory activity.

Thai Khac-Minh KM   Nguyen Thuy-Quyen TQ   Ngo Trieu-Du TD   Tran Thanh-Dao TD   Huynh Thi-Ngoc-Phuong TN  

Molecules (Basel, Switzerland) 20120417 4


Benzo[c]phenanthridine (BCP) derivatives were identified as topoisomerase I (TOP-I) targeting agents with pronounced antitumor activity. In this study, a support vector machine model was performed on a series of 73 analogues to classify BCP derivatives according to TOP-I inhibitory activity. The best SVM model with total accuracy of 93% for training set was achieved using a set of 7 descriptors identified from a large set via a random forest algorithm. Overall accuracy of up to 87% and a Matthew  ...[more]

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