A machine learning framework for discovery and enrichment of metagenomics metadata from open access publications

Author:

Nassar Maaly12ORCID,Rogers Alexander B1ORCID,Talo' Francesco1ORCID,Sanchez Santiago1ORCID,Shafique Zunaira1ORCID,Finn Robert D1ORCID,McEntyre Johanna1ORCID

Affiliation:

1. European Molecular Biology Laboratory, European Bioinformatics Institute (EMBL-EBI) , Wellcome Trust Genome Campus, Hinxton, Cambridge CB10 1SD, UK

2. Current affiliation: SciBite - an Elsevier Company, Wellcome Genome Campus, Hinxton , Cambridge CB10 1DR, UK

Abstract

AbstractMetagenomics is a culture-independent method for studying the microbes inhabiting a particular environment. Comparing the composition of samples (functionally/taxonomically), either from a longitudinal study or cross-sectional studies, can provide clues into how the microbiota has adapted to the environment. However, a recurring challenge, especially when comparing results between independent studies, is that key metadata about the sample and molecular methods used to extract and sequence the genetic material are often missing from sequence records, making it difficult to account for confounding factors. Nevertheless, these missing metadata may be found in the narrative of publications describing the research. Here, we describe a machine learning framework that automatically extracts essential metadata for a wide range of metagenomics studies from the literature contained in Europe PMC. This framework has enabled the extraction of metadata from 114,099 publications in Europe PMC, including 19,900 publications describing metagenomics studies in European Nucleotide Archive (ENA) and MGnify. Using this framework, a new metagenomics annotations pipeline was developed and integrated into Europe PMC to regularly enrich up-to-date ENA and MGnify metagenomics studies with metadata extracted from research articles. These metadata are now available for researchers to explore and retrieve in the MGnify and Europe PMC websites, as well as Europe PMC annotations API.

Funder

Wellcome Trust

Biotechnology and Biological Sciences Research Council

Publisher

Oxford University Press (OUP)

Subject

Computer Science Applications,Health Informatics

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