Exploring Biomolecular Literature with EVEX: Connecting Genes through Events, Homology, and Indirect Associations
Author(s) -
Sofie Van Landeghem,
Kai Hakala,
Samuel Rönnqvist,
Tapio Salakoski,
Yves Van de Peer,
Filip Ginter
Publication year - 2012
Publication title -
advances in bioinformatics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.33
H-Index - 20
eISSN - 1687-8035
pISSN - 1687-8027
DOI - 10.1155/2012/582765
Subject(s) - computer science , homology (biology) , computational biology , function (biology) , field (mathematics) , resource (disambiguation) , information retrieval , gene , data science , bioinformatics , biology , genetics , mathematics , computer network , pure mathematics
Technological advancements in the field of genetics have led not only to an abundance of experimental data, but also caused an exponential increase of the number of published biomolecular studies. Text mining is widely accepted as a promising technique to help researchers in the life sciences deal with the amount of available literature. This paper presents a freely available web application built on top of 21.3 million detailed biomolecular events extracted from all PubMed abstracts. These text mining results were generated by a state-of-the-art event extraction system and enriched with gene family associations and abstract generalizations, accounting for lexical variants and synonymy. The EVEX resource locates relevant literature on phosphorylation, regulation targets, binding partners, and several other biomolecular events and assigns confidence values to these events. The search function accepts official gene/protein symbols as well as common names from all species. Finally, the web application is a powerful tool for generating homology-based hypotheses as well as novel, indirect associations between genes and proteins such as coregulators.
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