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1.
PLoS One ; 12(1): e0170940, 2017.
Artículo en Inglés | MEDLINE | ID: mdl-28129388

RESUMEN

Large-scale genomic analyses of ancient human populations have become feasible partly due to refined sampling methods. The inner part of petrous bones and the cementum layer in teeth roots are currently recognized as the best substrates for such research. We present a comparative analysis of DNA preservation in these two substrates obtained from the same human skulls, across a range of different ages and preservation environments. Both substrates display significantly higher endogenous DNA content (average of 16.4% and 40.0% for teeth and petrous bones, respectively) than parietal skull bone (average of 2.2%). Despite sample-to-sample variation, petrous bone overall performs better than tooth cementum (p = 0.001). This difference, however, is driven largely by a cluster of viking skeletons from one particular locality, showing relatively poor molecular tooth preservation (<10% endogenous DNA). In the remaining skeletons there is no systematic difference between the two substrates. A crude preservation (good/bad) applied to each sample prior to DNA-extraction predicted the above/below 10% endogenous DNA threshold in 80% of the cases. Interestingly, we observe signficantly higher levels of cytosine to thymine deamination damage and lower proportions of mitochondrial/nuclear DNA in petrous bone compared to tooth cementum. Lastly, we show that petrous bones from ancient cremated individuals contain no measurable levels of authentic human DNA. Based on these findings we discuss the pros and cons of sampling the different elements.


Asunto(s)
ADN Antiguo/química , ADN Mitocondrial/química , Cemento Dental/química , Hueso Petroso/química , ADN Antiguo/aislamiento & purificación , ADN Mitocondrial/genética , Humanos , Diente/química
2.
Nature ; 522(7555): 167-72, 2015 Jun 11.
Artículo en Inglés | MEDLINE | ID: mdl-26062507

RESUMEN

The Bronze Age of Eurasia (around 3000-1000 BC) was a period of major cultural changes. However, there is debate about whether these changes resulted from the circulation of ideas or from human migrations, potentially also facilitating the spread of languages and certain phenotypic traits. We investigated this by using new, improved methods to sequence low-coverage genomes from 101 ancient humans from across Eurasia. We show that the Bronze Age was a highly dynamic period involving large-scale population migrations and replacements, responsible for shaping major parts of present-day demographic structure in both Europe and Asia. Our findings are consistent with the hypothesized spread of Indo-European languages during the Early Bronze Age. We also demonstrate that light skin pigmentation in Europeans was already present at high frequency in the Bronze Age, but not lactose tolerance, indicating a more recent onset of positive selection on lactose tolerance than previously thought.


Asunto(s)
Pueblo Asiatico/genética , Evolución Cultural/historia , Fósiles , Genoma Humano/genética , Genómica , Lenguaje/historia , Población Blanca/genética , Arqueología/métodos , Asia/etnología , ADN/genética , ADN/aislamiento & purificación , Europa (Continente)/etnología , Frecuencia de los Genes/genética , Genética de Población , Historia Antigua , Migración Humana/historia , Humanos , Intolerancia a la Lactosa/genética , Polimorfismo de Nucleótido Simple/genética , Pigmentación de la Piel/genética
3.
Sci Rep ; 5: 11184, 2015 Jun 17.
Artículo en Inglés | MEDLINE | ID: mdl-26081994

RESUMEN

Poor DNA preservation is the most limiting factor in ancient genomic research. In the majority of ancient bones and teeth, endogenous DNA molecules represent a minor fraction of the whole DNA extract, rendering shot-gun sequencing inefficient for obtaining genomic data. Based on ancient human bone samples from temperate and tropical environments, we show that an EDTA-based enzymatic 'pre-digestion' of powdered bone increases the proportion of endogenous DNA several fold. By performing the pre-digestion step between 30 min and 6 hours on five bones, we observe an asymptotic increase in endogenous DNA content, with a 2.7-fold average increase reached at 1 hour. We repeat the experiment using a brief pre-digestion (15 or 30 mins) on 21 ancient bones and teeth from a variety of archaeological contexts and observe an improvement in 16 of these. We here advocate the implementation of a brief pre-digestion step as a standard procedure in ancient DNA extractions. Finally, we demonstrate on 14 ancient teeth that by targeting the outer layer of the roots we obtain up to 14 times more endogenous DNA than when using the inner dentine. Our presented methods are likely to increase the proportion of ancient samples that are suitable for genome-scale characterization.


Asunto(s)
Huesos , ADN Mitocondrial , Diente , Arqueología , Fósiles , Humanos
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