A knowledge graph to interpret clinical proteomics data

Author:

Santos AlbertoORCID,Colaço Ana R.,Nielsen Annelaura B.,Niu Lili,Strauss Maximilian,Geyer Philipp E.,Coscia FabianORCID,Albrechtsen Nicolai J. WewerORCID,Mundt Filip,Jensen Lars JuhlORCID,Mann MatthiasORCID

Abstract

AbstractImplementing precision medicine hinges on the integration of omics data, such as proteomics, into the clinical decision-making process, but the quantity and diversity of biomedical data, and the spread of clinically relevant knowledge across multiple biomedical databases and publications, pose a challenge to data integration. Here we present the Clinical Knowledge Graph (CKG), an open-source platform currently comprising close to 20 million nodes and 220 million relationships that represent relevant experimental data, public databases and literature. The graph structure provides a flexible data model that is easily extendable to new nodes and relationships as new databases become available. The CKG incorporates statistical and machine learning algorithms that accelerate the analysis and interpretation of typical proteomics workflows. Using a set of proof-of-concept biomarker studies, we show how the CKG might augment and enrich proteomics data and help inform clinical decision-making.

Funder

Novo Nordisk Fonden

Max-Planck-Gesellschaft

EC | Horizon 2020 Framework Programme

Publisher

Springer Science and Business Media LLC

Subject

Biomedical Engineering,Molecular Medicine,Applied Microbiology and Biotechnology,Bioengineering,Biotechnology

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