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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Ancient adaptive evolution of the primate antiviral DNA-editing enzyme APOBEC3G.
PMID 15269786 · PMC479043 · PLoS biology · 2004 · 7 claims · 6 setups
APOBEC3G has been under strong, recurrent positive selection throughout primate evolution (~33 million years)
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The evolution and genomic landscape of CGB1 and CGB2 genes.
PMID 17055150 · PMC2599907 · Molecular and cellular endocrinology · 2007 · 8 claims · 5 setups
CGB1 and CGB2 arose via insertion of a DNA fragment (736/724 bp) replacing part of the ancestral hCGβ promoter and 5'-UTR, creating a novel exon 1 and causing a frameshift that produces a completely different 132-aa protein unrelated to hCGβ
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Genomic rearrangements by LINE-1 insertion-mediated deletion in the human and chimpanzee lineages.
PMID 16034026 · PMC1179734 · Nucleic acids research · 2005 · 8 claims · 6 setups
L1 insertions are directly responsible for genomic deletions (L1IMDs) confirmed in both human and chimpanzee genomes
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Genome-wide analysis of the human Alu Yb-lineage.
PMID 15588477 · PMC3525081 · Human genomics · 2004 · 8 claims · 6 setups
1,733 Alu Yb-lineage elements are present on human autosomal chromosomes
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Increased constraints on MC4R during primate and human evolution.
PMID 19011902 · PMC9947067 · Human genetics · 2009 · 6 claims · 7 setups
There is a significant paucity of genetic diversity at MC4R in humans but not in chimpanzees.
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Nucleotide-resolution analysis of structural variants using BreakSeq and a breakpoint library.
PMID 20037582 · PMC2951730 · Nature biotechnology · 2010 · 8 claims · 7 setups
A standardized, non-redundant library of 1,889 breakpoint-resolved SVs was assembled from eight published surveys
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Analysis of the human Alu Ye lineage.
PMID 15725352 · PMC554112 · BMC evolutionary biology · 2005 · 8 claims · 6 setups
Two new Alu subfamilies, Ye4 and Ye6, were discovered, complementing the previously described Ye5 subfamily.
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Comparative analysis of cancer genes in the human and chimpanzee genomes.
PMID 16438707 · PMC1382208 · BMC genomics · 2006 · 7 claims · 6 setups
All 333 examined human cancer genes have intact, highly conserved orthologs in the chimpanzee genome (99.38% protein identity).
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Evolutionary analysis of the highly dynamic CHEK2 duplicon in anthropoids.
PMID 18831734 · PMC2566985 · BMC evolutionary biology · 2008 · 8 claims · 6 setups
CHEK2 is present as a single copy in New World monkeys, Old World monkeys, and gibbons
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Analysis of chimpanzee history based on genome sequence alignments.
PMID 18421364 · PMC2278377 · PLoS genetics · 2008 · 8 claims · 6 setups
Bonobos and common chimpanzees separated approximately 1.29 million years ago
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Identification of a novel functional deletion variant in the 5'-UTR of the DJ-1 gene.
PMID 19825160 · PMC2767350 · BMC medical genetics · 2009 · 8 claims · 6 setups
A novel 16 bp deletion variant (g.-6_+10del) was identified in the DJ-1 5'-UTR, spanning the transcription start site, 93 bp downstream of a known Sp1 site.
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Discovery of human inversion polymorphisms by comparative analysis of human and chimpanzee DNA sequence assemblies.
PMID 16254605 · PMC1270012 · PLoS genetics · 2005 · 8 claims · 6 setups
Comparative net alignment of human and chimpanzee genome assemblies identifies 1,576 putative inverted regions covering more than 154 Mb of DNA
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Identification, characterization and comparative genomics of chimpanzee endogenous retroviruses.
PMID 16805923 · PMC1779541 · Genome biology · 2006 · 8 claims · 6 setups
The chimpanzee genome contains at least 42 separate families of endogenous retroviruses, 9 newly identified
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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.