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A collection of research papers, datasets and software related to knowledge graphs suitable for drug discovery.

Home Page: https://arxiv.org/abs/2102.10062

License: Apache License 2.0

awesome-drug-discovery-knowledge-graphs's Introduction

Awesome Drug Discovery Knowledge Graphs

Awesome PRs Welcome Maturity level-Prototype Arxiv License

A collection of datasets and associated research papers related to knowledge graphs suitable for use in drug discovery.

The Survey Paper

This repository accompanies our survey paper A Review of Biomedical Datasets Relating to Drug Discovery: A Knowledge Graph Perspective.

Please consider citing the paper for this repo if you find it useful:

@article{bonner2021review,
  title={A review of biomedical datasets relating to drug discovery: A knowledge graph perspective},
  author={Bonner, Stephen and Barrett, Ian P and Ye, Cheng and Swiers, Rowan and Engkvist, Ola and Bender, Andreas and Hoyt, Charles Tapley and Hamilton, William},
  journal={arXiv preprint arXiv:2102.10062},
  year={2021}
}

Overview

Drug discovery and development is a complex and costly process. Machine learning approaches are being investigated to help improve the effectiveness and speed of multiple stages of the drug discovery pipeline. Of these, those that use Knowledge Graphs (KG) have promise in many tasks, including drug repurposing, drug toxicity prediction and target gene-disease prioritisation. In a drug discovery KG, crucial elements including genes, diseases and drugs are represented as entities, whilst relationships between them indicate an interaction. However, to construct high-quality KGs, suitable data is required. In this review, we detail publicly available sources suitable for use in constructing drug discovery focused KGs. We aim to help guide machine learning and KG practitioners who are interested in applying new techniques to the drug discovery field, but who may be unfamiliar with the relevant data sources. The datasets are selected via strict criteria, categorised according to the primary type of information contained within and are considered based upon what information could be extracted to build a KG. We then present a comparative analysis of existing public drug discovery KGs and a evaluation of selected motivating case studies from the literature. Additionally, we raise numerous and unique challenges and issues associated with the domain and its datasets, whilst also highlighting key future research directions. We hope this review will motivate KGs use in solving key and emerging questions in the drug discovery domain.


Contents

  1. Source Datasets
  2. Biomedical Ontologies
  3. Drug Discovery Knowledge Graphs
  4. Applications

License


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Contributors

ethanknights avatar sbonner0 avatar

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