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Updated: Jan 10, 2026

Pattern-based Search of Epigenomic Data Using GeNemo
Published on: October 8, 2017
Public Omics Explorer (POE): Enabling integrative semantic search across GEO omics datasets based on PubMed
Dimitris Grigoriadis1, Margaritis Tsifintaris2, Antonis Giannakakis2
1Department of Bioinformatics, Genekor Medical S.A, Athens 15344, Greece.
None:
The exponential growth of publicly available omics datasets and biomedical literature has created both opportunities and challenges for data-driven discovery in life sciences. While the Gene Expression Omnibus (GEO) hosts millions of high-throughput experimental datasets, the European Nucleotide Archive (ENA) stores the corresponding raw sequencing data, and PubMed contains an extensive body of related scientific publications, integrated exploration of these resources remains limited. We present Public Omics Explorer (POE), a web-based platform that performs literature‑informed dataset retrieval, semantically linking GEO datasets and ENA records through their associated PubMed publications. POE automatically collects and indexes GEO metadata, ENA cross‑references, and PubMed abstracts on a daily basis. For semantic embedding, POE employs the biomedical-specialized SBioBERT model, which generates dense vector representations from publication text. These embeddings are indexed using Facebook AI Similarity Search (FAISS) to enable high-precision, context-aware retrieval. Users can search using free‑text natural language queries, which are processed through semantic search to identify conceptually relevant datasets based on linked publication content. Structured filters allow refinement by organism, experiment type, library strategy, sample type, extracted molecule, and publication year. In addition to semantic queries, POE supports direct retrieval of datasets via accession identifiers (GSE IDs, PubMed IDs, DOIs) and offers a programmatic RESTful API for integration into computational pipelines and automated workflows. By linking processed data in GEO with raw data in ENA through shared publication context, POE facilitates hypothesis generation, meta‑analysis, and exploratory research. The application is freely available at https://nplab.gr/poe.
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