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The 95 pages that link to Ancient DNA, each with the reason it gives.
Molecular phylogeneticsRelated: Ancient sequences can directly test relationships among extinct and living populations.
PleistoceneRelated: It reveals past population histories that fossils alone cannot resolve.
Polymerase chain reactionRelated: PCR enabled analysis of scarce DNA from preserved remains, though contamination is a major risk.
Human evolutionRelated: It reveals relationships and interbreeding that skeletal evidence alone cannot establish.
Black DeathRelated: DNA from plague victims identified Yersinia pestis as the Black Death’s cause.
PaleoanthropologyRelated: Where preservation allows, genomes test relationships inferred from skeletal anatomy.
HomininRelated: It has revealed interbreeding and relationships that fossil anatomy alone could not establish.
MaizeRelated: Ancient maize genomes help reconstruct how domestication and later dispersal changed the crop.
Pleistocene megafaunaRelated: It reveals relationships and population histories that bones alone cannot resolve.
Animal domesticationRelated: Genomes from old animal remains help trace ancestry and domestication histories.
Archaeological cultureRelated: Ancient DNA can test population histories that artifact-based cultural maps cannot resolve alone.
Indo-European migrationsRelated: It documents ancestry changes that can be compared with archaeological and linguistic chronologies.
BeringiaRelated: It helps test relationships among ancient Beringian populations and animals.
Domestication of the horseRelated: Genomes from archaeological horses changed the picture of domestication's origins and spread.
Proto-Indo-EuropeansRelated: It has documented major steppe ancestry movements relevant to proposed Indo-European dispersals.
ArchaeobotanyRelated: Ancient plant DNA can identify taxa and trace crop histories beyond morphology.
Pontic–Caspian steppeRelated: Genome studies have traced ancestry shifts involving steppe communities.
MegafaunaRelated: Genetic records help trace population decline and range change before species vanished.
Yamnaya cultureRelated: Ancient genomes have clarified Yamnaya ancestry and the scale of later movements from the steppe.
PaleopathologyRelated: Pathogen and host DNA can test diagnoses based on visible remains.
Human genetic variationRelated: Ancient genomes reveal population changes that living genomes alone cannot date.
Kurgan hypothesisRelated: Genomic evidence has tested whether steppe ancestry accompanied proposed dispersals.
De-extinctionRelated: Its degradation and contamination constrain which extinct genomes can be studied.
Dog domesticationRelated: Ancient genomes can trace dog ancestry more directly than modern breeds alone.
La Brea Tar PitsRelated: Preserved genetic evidence can complement the site’s exceptionally abundant bones.
Bering Land BridgeRelated: Ancient genomes help test hypotheses about isolation and movement through Beringia.
Genetic ancestryRelated: Direct ancient genomes can test ancestry models built from living populations.
Indo-Aryan migrationRelated: Ancient genomes from Central and South Asia test whether population movements accompanied language change.
PrehistoryRelated: It reveals ancestry and population movement that artifacts alone cannot establish.
Anatolian hypothesisRelated: It reveals population movements relevant to competing accounts, but cannot directly identify spoken languages.
LeprosyRelated: Ancient pathogen genomes help reconstruct leprosy’s historical diversity and spread.
ÖtziRelated: Ötzi's genome has been used to study his ancestry, traits, and health.
ThylacineRelated: Museum specimens have supplied DNA for reconstructing thylacine evolutionary history.
Woolly mammothRelated: Preserved mammoth DNA has revealed relationships and population changes beyond fossil anatomy.
KurganRelated: DNA from kurgan burials helps investigate kinship, ancestry, and population movement.
Neanderthal admixtureRelated: Ancient genomes let researchers compare Neanderthals directly with early modern humans.
Overkill hypothesisRelated: Population histories can reveal megafaunal declines that bones and kill sites alone cannot resolve.
Hominin taxonomyRelated: It has exposed interbreeding and lineages absent from morphology-based classifications.
Mammoth SteppeRelated: Environmental DNA records show that the steppe’s plant communities changed over time.
Meromictic lakeRelated: Anoxic, undisturbed sediments can preserve biological traces useful for reconstructing past ecosystems.
Denisova CaveRelated: DNA preservation in cave fossils enabled the identification of Denisovans.
Denisovan admixtureRelated: Denisovan genomes provide the reference for identifying inherited Denisovan segments.
La Tène cultureRelated: Genomic evidence can test population histories but cannot identify archaeological culture by itself.
MummyRelated: Mummies can preserve DNA that helps investigate ancestry, kinship, and past populations.
Tarim mummiesRelated: Genomes from some Tarim individuals reshape claims about their ancestry.
AurochsRelated: Ancient DNA helps reconstruct aurochs populations and their relationship to cattle.
Corded Ware cultureRelated: Genomic evidence revealed major ancestry shifts associated with Corded Ware expansion.
DoggerlandRelated: Sediment DNA can identify species that lived in the submerged landscape.
GravettianRelated: Ancient genomes help test how Gravettian-associated populations relate to other prehistoric Europeans.
Greek colonisationRelated: Genetic evidence may clarify mobility and ancestry, though it cannot alone identify ancient cultural identities.