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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Distribution and effects of nonsense polymorphisms in human genes.
PMID 18852891 · PMC2561068 · PloS one · 2008 · 8 claims · 8 setups
Nonsense SNPs occur at a lower density than nonsynonymous SNPs, indicating stronger purifying selection against premature stop codons than amino acid changes.
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Intricate targeting of immunoglobulin somatic hypermutation maximizes the efficiency of affinity maturation.
PMID 15867095 · PMC2213188 · The Journal of experimental medicine · 2005 · 7 claims · 6 setups
IgVH genes have evolved precise placement of coding-strand Cs so that AID-induced C-to-T mutations are predominantly silent, especially in the CDRs.
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F-SNP: computationally predicted functional SNPs for disease association studies.
PMID 17986460 · PMC2238878 · Nucleic acids research · 2008 · 6 claims · 8 setups
F-SNP is a database integrating functional effect predictions for SNPs from 16 bioinformatics tools/databases across four categories: splicing, transcription, translation, and post-translation
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From microarrays to genome duplications.
PMID 12914655 · PMC193639 · Genome biology · 2003 · 8 claims · 8 setups
Gene3D shows that most genes across sequenced genomes can be assigned to known structural domain families, many of which are shared across kingdoms of life
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Prediction and assessment of splicing alterations: implications for clinical testing.
PMID 18951448 · PMC2832470 · Human mutation · 2008 · 8 claims · 5 setups
Bioinformatic prediction alone is insufficient; in vitro analysis is needed to confirm or establish splicing aberrations for clinical variant classification
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Comparative genomics search for losses of long-established genes on the human lineage.
PMID 18085818 · PMC2134963 · PLoS computational biology · 2007 · 8 claims · 6 setups
A novel comparative genomics method (TransMap-based syntenic mapping of gene structures between human, mouse, and dog) can detect losses of well-established single-copy genes without relying on sequence homology to a parental gene, distinguishing them from typical duplication- or retrotransposition-derived pseudogenes.