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Updates in Rhea—a manually curated resource of biochemical reactions
Author(s) -
Anne Morgat,
Kristian B. Axelsen,
Thierry Lombardot,
Rafael Alcántara,
Lucila Aimo,
Mohamed Zerara,
Anne Niknejad,
Eugeni Belda,
Nevila HykaNouspikel,
Elisabeth Coudert,
Nicole Redaschi,
Lydie Bougueleret,
Christoph Steinbeck,
Ioannis Xénarios,
Alan Bridge
Publication year - 2014
Publication title -
nucleic acids research
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 9.008
H-Index - 537
eISSN - 1362-4954
pISSN - 0305-1048
DOI - 10.1093/nar/gku961
Subject(s) - biology , scope (computer science) , kegg , computational biology , genome , annotation , computer science , bioinformatics , gene ontology , biochemistry , gene , gene expression , programming language
Rhea (http://www.ebi.ac.uk/rhea) is a comprehensive and non-redundant resource of expert-curated biochemical reactions described using species from the ChEBI (Chemical Entities of Biological Interest) ontology of small molecules. Rhea has been designed for the functional annotation of enzymes and the description of genome-scale metabolic networks, providing stoichiometrically balanced enzyme-catalyzed reactions (covering the IUBMB Enzyme Nomenclature list and additional reactions), transport reactions and spontaneously occurring reactions. Rhea reactions are extensively curated with links to source literature and are mapped to other publicly available enzyme and pathway databases such as Reactome, BioCyc, KEGG and UniPathway, through manual curation and computational methods. Here we describe developments in Rhea since our last report in the 2012 database issue of Nucleic Acids Research. These include significant growth in the number of Rhea reactions and the inclusion of reactions involving complex macromolecules such as proteins, nucleic acids and other polymers that lie outside the scope of ChEBI. Together these developments will significantly increase the utility of Rhea as a tool for the description, analysis and reconciliation of genome-scale metabolic models.

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