Experiments
Searchable full-text extractions: founding hypothesis, core claims, experimental setups, key results and statistics — pulled out of each paper as structure. Search a cell line, an assay or an entity (e.g. HUH7) and find every paper that worked with it. This corpus stands on its own: most entries carry no reproduction assessment (yet).
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Predicting deleterious nsSNPs: an analysis of sequence and structural attributes.
PMID 16630345 · PMC1489951 · BMC bioinformatics · 2006 · 8 claims · 7 setups
Sequence conservation (PSIC score difference) at the nsSNP position is the single most useful attribute for predicting deleterious vs neutral status.
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Functional coverage of the human genome by existing structures, structural genomics targets, and homology models.
PMID 16118666 · PMC1188274 · PLoS computational biology · 2005 · 8 claims · 5 setups
Existing PDB structures provide single-domain coverage for 37% of functional classes in the human genome and complete (whole-protein) structure coverage for 25%.
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Structural evolution of the protein kinase-like superfamily.
PMID 16244704 · PMC1261164 · PLoS computational biology · 2005 · 8 claims · 5 setups
All kinases in the superfamily share a 'universal core' domain consisting only of the regions required for ATP binding and the phosphotransfer reaction.
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SGCEdb: a flexible database and web interface integrating experimental results and analysis for structural genomics focusing on Caenorhabditis elegans.
PMID 16381914 · PMC1347399 · Nucleic acids research · 2006 · 8 claims · 8 setups
SGCEdb is a flexible, reusable database and web interface for reporting and analyzing structural genomics experiment results, focused on C. elegans
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MODBASE: a database of annotated comparative protein structure models and associated resources.
PMID 16381869 · PMC1347422 · Nucleic acids research · 2006 · 8 claims · 7 setups
MODBASE is a database of automatically calculated comparative protein structure models covering all UniProt sequences matchable to a known structure
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Random amino acid mutations and protein misfolding lead to Shannon limit in sequence-structure communication.
PMID 18769673 · PMC2518838 · PloS one · 2008 · 8 claims · 6 setups
The protein sequence-structure map behaves as a noisy digital communication channel whose capacity C exceeds the transmission rate R for native structures, satisfying Shannon's noisy channel theorem