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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Identification of the imprinted KLF14 transcription factor undergoing human-specific accelerated evolution.
PMID 17480121 · PMC1865561 · PLoS genetics · 2007 · 7 claims · 8 setups
KLF14 is a novel imprinted gene showing monoallelic maternal expression in embryonic and extra-embryonic tissues of both human and mouse
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Interspecies hybridization on DNA resequencing microarrays: efficiency of sequence recovery and accuracy of SNP detection in human, ape, and codfish mitochondrial DNA genomes sequenced on a human-specific MitoChip.
PMID 17894875 · PMC2211321 · BMC genomics · 2007 · 8 claims · 6 setups
Efficiency of sequence recovery and accuracy of SNP identification on a species-specific resequencing microarray decline as sequence divergence from the reference increases.
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Differentiating human from animal isolates of Cryptosporidium parvum.
PMID 9866750 · PMC2640237 · Emerging infectious diseases · 1998 · 7 claims · 5 setups
Two distinct genotypes of C. parvum (human/anthroponotic and bovine/zoonotic) exist, distinguishable by TRAP-C2 gene sequence differences at five nucleotide positions.
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Gene losses during human origins.
PMID 16464126 · PMC1361800 · PLoS biology · 2006 · 7 claims · 7 setups
A comparative genomic screen identified 67 new human-specific nonprocessed pseudogenes, bringing the total (with 13 from prior literature) to 80 human-specific pseudogenes.
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Human microglial cells synthesize albumin in brain.
PMID 18665237 · PMC2483733 · PloS one · 2008 · 8 claims · 8 setups
Human microglial cells synthesize albumin de novo in the brain.
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Continued colonization of the human genome by mitochondrial DNA.
PMID 15361937 · PMC515365 · PLoS biology · 2004 · 7 claims · 6 setups
NUMT insertion into nuclear chromosomes is an ongoing process shaped by double-strand-break repair (as shown in yeast) and continuing in humans.