TeM-DTBA: time-efficient drug target binding affinity prediction using multiple modalities with Lasso feature selection

被引:0
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作者
Tanya Liyaqat
Tanvir Ahmad
Chandni Saxena
机构
[1] Jamia Millia Islamia,Department of Computer Engineering
[2] The Chinese University of Hong Kong,undefined
关键词
Deep learning; Convolutional neural network; Drug target binding affinity prediction; Multiple modalities; Drug discovery;
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学科分类号
摘要
Drug discovery, especially virtual screening and drug repositioning, can be accelerated through deeper understanding and prediction of Drug Target Interactions (DTIs). The advancement of deep learning as well as the time and financial costs associated with conventional wet-lab experiments have made computational methods for DTI prediction more popular. However, the majority of these computational methods handle the DTI problem as a binary classification task, ignoring the quantitative binding affinity that determines the drug efficacy to their target proteins. Moreover, computational space as well as execution time of the model is often ignored over accuracy. To address these challenges, we introduce a novel method, called Time-efficient Multimodal Drug Target Binding Affinity (TeM-DTBA), which predicts the binding affinity between drugs and targets by fusing different modalities based on compound structures and target sequences. We employ the Lasso feature selection method, which lowers the dimensionality of feature vectors and speeds up the proposed model training time by more than 50%. The results from two benchmark datasets demonstrate that our method outperforms state-of-the-art methods in terms of performance. The mean squared errors of 18.8% and 23.19%, achieved on the KIBA and Davis datasets, respectively, suggest that our method is more accurate in predicting drug-target binding affinity.
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页码:573 / 584
页数:11
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