Journal of Southern Medical University ›› 2016, Vol. 36 ›› Issue (02): 170-.
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Abstract: Objective To construct a breast cancer gene-drug network model for extracting and predicting the correlationsbetween breast cancer-related genes and drugs. Methods We developed an algorithm based on the ABC principle and theassociation rules to obtain the correlations between the biological entities. For breast cancer, we constructed 3 differentcorrelations (gene-gene, drug-drug and gene-drug) and used the R language to implement the associated network model. Thereliability of the algorithm was verified by ROC curve. Results We identified 185 breast cancer-associated genes and 98associations between them, 97 drugs and 170 associations between them. The breast cancer genes-drugs network contained 127genes and 77 drugs with 384 associations between them. Conclusion We identified a large number of different correlationsbetween the breast cancer-related genes and drugs and close correlations between some biological entity pairs that have notyet been reported, which may provide a new strategy for experimental design for testing personalized breast cancer treatment.
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https://www.j-smu.com/EN/Y2016/V36/I02/170