The scalable precision medicine open knowledge engine (SPOKE): a massive knowledge graph of biomedical information

Author:

Morris John H1,Soman Karthik2,Akbas Rabia E2,Zhou Xiaoyuan2,Smith Brett3,Meng Elaine C1,Huang Conrad C1,Cerono Gabriel2,Schenk Gundolf4,Rizk-Jackson Angela4,Harroud Adil2,Sanders Lauren5,Costes Sylvain V5ORCID,Bharat Krish2,Chakraborty Arjun2,Pico Alexander R6,Mardirossian Taline7,Keiser Michael7,Tang Alice8,Hardi Josef9,Shi Yongmei4,Musen Mark9,Israni Sharat4,Huang Sui3,Rose Peter W10,Nelson Charlotte A2,Baranzini Sergio E2ORCID

Affiliation:

1. Department of Pharmaceutical Chemistry, School of Pharmacy, University of California, San Francisco , San Francisco, CA 94158, USA

2. Department of Neurology, Weill Institute for Neurosciences, University of California, San Francisco , San Francisco, CA 94158, USA

3. Institute for Systems Biology , Seattle, WA 98109, USA

4. Bakar Computational Health Sciences Institute, University of California, San Francisco , San Francisco, CA 94158, USA

5. Space Biosciences Division, NASA Ames Research Center , Moffett Field, CA 94035, USA

6. Data Science and Biotechnology, Gladstone Institutes, University of California, San Francisco , San Francisco, CA 94158, USA

7. Department of Pharmaceutical Chemistry, University of California, San Francisco , San Francisco, CA 94143-2550, USA

8. UCSF-UC Berkeley Bioengineering Graduate Program, University of California, San Francisco , San Francisco, CA 94158, USA

9. Stanford Center for Biomedical Informatics Research, Stanford University , Stanford, CA 94305-5479, USA

10. San Diego Supercomputer Center, University of California, San Diego , La Jolla, CA 92093, USA

Abstract

AbstractMotivationKnowledge graphs (KGs) are being adopted in industry, commerce and academia. Biomedical KG presents a challenge due to the complexity, size and heterogeneity of the underlying information.ResultsIn this work, we present the Scalable Precision Medicine Open Knowledge Engine (SPOKE), a biomedical KG connecting millions of concepts via semantically meaningful relationships. SPOKE contains 27 million nodes of 21 different types and 53 million edges of 55 types downloaded from 41 databases. The graph is built on the framework of 11 ontologies that maintain its structure, enable mappings and facilitate navigation. SPOKE is built weekly by python scripts which download each resource, check for integrity and completeness, and then create a ‘parent table’ of nodes and edges. Graph queries are translated by a REST API and users can submit searches directly via an API or a graphical user interface. Conclusions/Significance: SPOKE enables the integration of seemingly disparate information to support precision medicine efforts.Availability and implementationThe SPOKE neighborhood explorer is available at https://spoke.rbvi.ucsf.edu.Supplementary informationSupplementary data are available at Bioinformatics online.

Funder

National Science Foundation

Publisher

Oxford University Press (OUP)

Subject

Computational Mathematics,Computational Theory and Mathematics,Computer Science Applications,Molecular Biology,Biochemistry,Statistics and Probability

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