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- W2772272229 abstract "Drug side effects are one of main concerns in the drug discovery, which gains wide attentions. Investigating drug side effects is of great importance, and the computational prediction can help to guide wet experiments. As far as we known, a great number of computational methods have been proposed for the side effect predictions. The assumption that similar drugs may induce same side effects is usually employed for modeling, and how to calculate the drug-drug similarity is critical in the side effect predictions.In this paper, we present a novel measure of drug-drug similarity named linear neighborhood similarity, which is calculated in a drug feature space by exploring linear neighborhood relationship. Then, we transfer the similarity from the feature space into the side effect space, and predict drug side effects by propagating known side effect information through a similarity-based graph. Under a unified frame based on the linear neighborhood similarity, we propose method LNSM and its extension LNSM-SMI to predict side effects of new drugs, and propose the method LNSM-MSE to predict unobserved side effect of approved drugs.We evaluate the performances of LNSM and LNSM-SMI in predicting side effects of new drugs, and evaluate the performances of LNSM-MSE in predicting missing side effects of approved drugs. The results demonstrate that the linear neighborhood similarity can improve the performances of side effect prediction, and the linear neighborhood similarity-based methods can outperform existing side effect prediction methods. More importantly, the proposed methods can predict side effects of new drugs as well as unobserved side effects of approved drugs under a unified frame." @default.
- W2772272229 created "2017-12-22" @default.
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- W2772272229 date "2017-12-01" @default.
- W2772272229 modified "2023-10-12" @default.
- W2772272229 title "A unified frame of predicting side effects of drugs by using linear neighborhood similarity" @default.
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- W2772272229 doi "https://doi.org/10.1186/s12918-017-0477-2" @default.
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