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Published on: August 15, 2019
GENEasso: a curated resource of credible disease-gene associations across complex diseases from GWAS summary
Tao Jiang1, Mengting Shao1, Junjie Wang2
1Jiangsu Key Laboratory for Biomedical Electromagnetic Precision Theranostics, School of Biomedical Engineering and Informatics, Nanjing Medical University, Nanjing, Jiangsu 211166, China.
Abstract:
Gene-based association analysis has become a powerful strategy to improve the biological interpretability of genome-wide association studies (GWAS) by aggregating variant-level signals at the gene level. Although several transcriptome-wide association study (TWAS)-specific databases have been developed, TWAS represents only one class of gene-based association methods and relies primarily on expression-mediated effects, whereas other gene-based approaches also play critical roles in identifying disease-associated genes. To address this limitation, we present GENEasso, a comprehensive platform that integrates multiple gene-level statistical frameworks to enable robust exploration of disease-gene associations across complex diseases. GENEasso systematically applies seven representative methods to 8226 curated GWAS summary statistics, generating 716 122 high-confidence disease-gene associations. The platform supports cross-method consensus scoring, tissue-specific enrichment prioritization, and ancestry-stratified analyses across five populations. Results can be interactively explored through Manhattan plots and ontology-based navigation, with full transparency and unrestricted access to data. A web server module allows users to upload their own GWAS summary statistics, select gene-based methods, and benchmark their findings against the GENEasso reference database. Concordance across methods increases the credibility of associations, improving reproducibility and supporting user-defined gene prioritization workflows. GENEasso is freely available as an open-access resource at https://www.geneasso.net.
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