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Density separation of petrous bone powders for optimized ancient DNA yields

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    0572346 - ARÚ 2024 RIV US eng J - Journal Article
    Fernandes, D. M. - Sirak, K. A. - Cheronet, O. - Novak, M. - Brück, F. - Zelger, E. - Llanos-Lizcano, A. - Wagner, A. - Zettl, A. - Mandl, K. - Duffet Carlson, K. S. - Oberreiter, V. - Özdoğan, K. T. - Sawyer, S. - La Pastina, F. - Borgia, E. - Coppa, A. - Dobeš, Miroslav - Velemínský, P. - Reich, D. - Bell, L. S. - Pinhasi, R.
    Density separation of petrous bone powders for optimized ancient DNA yields.
    Genome Research. Roč. 33, č. 4 (2023), s. 622-631. ISSN 1088-9051. E-ISSN 1549-5469
    Institutional support: RVO:67985912
    Keywords : ancient DNA * DNA extraction * density separation
    OECD category: Archaeology
    Impact factor: 7, year: 2022
    Method of publishing: Open access with time embargo
    https://genome.cshlp.org/content/33/4/622

    Density separation is a process routinely used to segregate minerals, organic matter, and even microplastics, from soils and sediments. Here we apply density separation to archaeological bone powders before DNA extraction to increase endogenous DNA recovery relative to a standard control extraction of the same powders. Using nontoxic heavy liquid solutions, we separated powders from the petrous bones of 10 individuals of similar archaeological preservation into eight density intervals (2.15 to 2.45 g/cm3, in 0.05 increments). We found that the 2.30 to 2.35 g/cm3 and 2.35 to 2.40 g/cm3 intervals yielded up to 5.28-fold more endogenous unique DNA than the corresponding standard extraction (and up to 8.53-fold before duplicate read removal), while maintaining signals of ancient DNA authenticity and not reducing library complexity. Although small 0.05 g/cm3 intervals may maximally optimize yields, a single separation to remove materials with a density above 2.40 g/cm3 yielded up to 2.57-fold more endogenous DNA on average, which enables the simultaneous separation of samples that vary in preservation or in the type of material analyzed. While requiring no new ancient DNA laboratory equipment and fewer than 30 min of extra laboratory work, the implementation of density separation before DNA extraction can substantially boost endogenous DNA yields without decreasing library complexity. Although subsequent studies are required, we present theoretical and practical foundations that may prove useful when applied to other ancient DNA substrates such as teeth, other bones, and sediments.
    Permanent Link: https://hdl.handle.net/11104/0343081

     
     
Number of the records: 1  

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