A new model for ancient DNA decay based on paleogenomic meta-analysis

Новая модель деградации древней ДНК на основе палеогеномного метаанализа
Logan Kistler, Roselyn Ware, Oliver Smith, Matthew J. Collins, Robin G. Allaby
2017-04-20

DNA fragmentationancient DNA decaybulk diffusioncytosine deaminationpaleogenomic meta-analysis
The persistence of DNA over archaeological and paleontological timescales in diverse environments has led to a revolutionary body of paleogenomic research, yet the dynamics of DNA degradation are still poorly understood. We analyzed 185 paleogenomic datasets and compared DNA survival with environmental variables and sample ages. We find cytosine deamination follows a conventional thermal age model, but we find no correlation between DNA fragmentation and sample age over the timespans analyzed, even when controlling for environmental variables. We propose a model for ancient DNA decay wherein fragmentation rapidly reaches a threshold, then subsequently slows. The observed loss of DNA over time may be due to a bulk diffusion process in many cases, highlighting the importance of tissues and environments creating effectively closed systems for DNA preservation. This model of DNA degradation is largely based on mammal bone samples due to published genomic dataset availability. Continued refinement to the model to reflect diverse biological systems and tissue types will further improve our understanding of ancient DNA breakdown dynamics.
1
Cytosine deamination follows a conventional thermal age model across the analyzed archaeological and paleontological timescales.
2
DNA fragmentation showed no correlation with sample age, even after controlling for environmental variables.
3
Meta-analysis of 185 paleogenomic datasets compared DNA survival with sample age and environmental variables.
4
Observed DNA loss may often reflect bulk diffusion, emphasizing effectively closed tissues and environments for preservation.
5
The model is primarily based on mammalian bone datasets and requires refinement across diverse biological systems and tissue types.
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The proposed decay model suggests fragmentation rapidly reaches a threshold and then slows over time.

ancient DNA in archaeological and paleontological samples, predominantly mammal bones

DNA degradation dynamics, including cytosine deamination, fragmentation, and time-dependent decay under environmental conditions

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2017-04-20
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Authors
Logan Kistler
Roselyn Ware
Oliver Smith
Matthew J. Collins
Robin G. Allaby
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