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Published on: June 21, 2018
A review of machine learning-based methods for predicting drug-target interactions.
Wen Shi1,2, Hong Yang1, Linhai Xie3
1Cyberspace Institute of Advanced Technology, Guangzhou University, Guangzhou, 510006 China.
Predicting drug-target interactions (DTI) using machine learning accelerates drug discovery. This review categorizes DTI prediction methods, focusing on data representation, traditional and deep learning approaches, and future research directions.
Area of Science:
- Computational chemistry
- Bioinformatics
- Drug discovery
Background:
- Drug-target interaction (DTI) prediction is vital for efficient drug discovery, mitigating risks and costs of experimental validation.
- Machine learning (ML) methods are increasingly crucial for accurate DTI prediction.
- Current DTI prediction relies on diverse data representations for drugs and proteins.
Purpose of the Study:
- To review and categorize machine learning-based DTI prediction methods.
- To emphasize the role of data representation in DTI prediction.
- To provide a taxonomy for deep neural network models in DTI prediction and discuss datasets and metrics.
Main Methods:
- Categorization of DTI prediction methods into traditional ML and deep learning (DL) approaches.
- Delineation of five drug and four protein data representations.
- Introduction of a novel taxonomy for deep neural network models in DTI prediction.
Main Results:
- A comprehensive overview of ML-based DTI prediction strategies.
- Analysis of data representation techniques for drugs and proteins.
- Synthesis of commonly used datasets and evaluation metrics for practical application.
Conclusions:
- Machine learning, particularly deep learning, offers powerful tools for DTI prediction.
- Standardized data representation and evaluation metrics are essential for advancing the field.
- Future research should address current challenges and explore novel methodologies in DTI prediction.
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