A novel method for drug-target interaction prediction based on graph transformers model.

BMC Bioinformatics

School of Biomedical Engineering and Informatics, Nanjing Medical University, Nanjing, China.

Published: November 2022

AI Article Synopsis

  • Drug-target interaction (DTI) prediction is crucial for advancing drug research and repositioning but has mostly focused on either drugs or targets separately.
  • A new method is introduced that models the relationships between drugs and targets independently using their varying relationships to create a feature set.
  • This approach employs a line graph to represent drug-target interactions and utilizes a graph transformer network to enhance DTI prediction capabilities.

Article Abstract

Background: Drug-target interactions (DTIs) prediction becomes more and more important for accelerating drug research and drug repositioning. Drug-target interaction network is a typical model for DTIs prediction. As many different types of relationships exist between drug and target, drug-target interaction network can be used for modeling drug-target interaction relationship. Recent works on drug-target interaction network are mostly concentrate on drug node or target node and neglecting the relationships between drug-target.

Results: We propose a novel prediction method for modeling the relationship between drug and target independently. Firstly, we use different level relationships of drugs and targets to construct feature of drug-target interaction. Then, we use line graph to model drug-target interaction. After that, we introduce graph transformer network to predict drug-target interaction.

Conclusions: This method introduces a line graph to model the relationship between drug and target. After transforming drug-target interactions from links to nodes, a graph transformer network is used to accomplish the task of predicting drug-target interactions.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9635108PMC
http://dx.doi.org/10.1186/s12859-022-04812-wDOI Listing

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