| URL: | https://groov.bio |
| Full name: | A Database of Ligand-Inducible Transcription Factors |
| Description: | GroovDB is a collection of prokaryotic transcription factors that can be repurposed for synthetic chemical-measurement applications. The goal of this database is to facilitate the development of biology-based analytical tools, which may find use for high-throughput screening, diagnostics, or feedback-regulated pathway design. Currently, this database is confined to prokaryotic repressors and activators. |
| Year founded: | 2022 |
| Last update: | 2025 |
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| Accessibility: |
Accessible
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| Country/Region: | United States |
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| University/Institution: | University of Texas at Austin |
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| Country/Region: | United States |
| Contact name (PI/Team): | Simon d'Oelsnitz |
| Contact email (PI/Helpdesk): | simonsnitz@gmail.com |
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groovDB in 2026: a community-editable database of small molecule biosensors. [PMID: 41171132]
The groovDB database (https://groov.bio) was launched in 2022 with the goal of organizing information on prokaryotic ligand-inducible transcription factors (TFs). This class of proteins is important in fundamental areas of microbiology research and for biotechnological applications that develop biosensors for diagnostics, enzyme screening, and real-time metabolite tracking. Uniquely, groovDB contains stringently curated, literature-referenced data on both TF:DNA and TF:ligand interactions. Here, we describe a major technical update to groovDB, making the database community-editable and adding several advanced features. Users can now add new TF entries and update existing entries using a simple online form. New user interface elements display interactive protein structures and DNA-binding motifs. Updated query methods enable database searches via text, chemical similarity, and attribute filtering. A new data architecture reduces page load time by five-fold. Finally, the number of TF entries has more than doubled and all source code is now open-access. |
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GroovDB: A Database of Ligand-Inducible Transcription Factors. [PMID: 36178800]
Genetic biosensors are integral to synthetic biology. In particular, ligand-inducible prokaryotic transcription factors are frequently used in high-throughput screening, for dynamic feedback regulation, as multilayer logic gates, and in diagnostic applications. In order to provide a curated source that users can rely on for engineering applications, we have developed GroovDB (available at https://groov.bio), a Web-accessible database of ligand-inducible transcription factors that contains all information necessary to build chemically responsive genetic circuits, including biosensor sequence, ligand, and operator data. Ligand and DNA interaction data have been verified against the literature, while an automated data curation pipeline is used to programmatically fetch metadata, structural information, and references for every entry. A custom tool to visualize the natural genetic context of biosensor entries provides potential insights into alternative ligands and systems biology. |