High‐Throughput <scp>DNA</scp> sequencing of ancient wood

Высокопроизводительное секвенирование ДНК древней древесины
Stefanie Wagner, Frédéric Lagane, Andaine Seguin‐Orlando, Mikkel Schubert, Thibault Leroy, Erwan Guichoux, Émilie Chancerel, Inger Bech-Hebelstrup, Bernard Vincent, Cyrille Billard, Yves Billaud, Matthias Bolliger, Christophe Croutsch, Katarina Čufar, Frédérique Eynaud, Karl Uwe Heussner, Joachim Köninger, Fabien Langenegger, Frédéric Leroy, Christine Lima, Nicoletta Martinelli, Garry Momber, André Billamboz, Oliver Nelle, Antoni Palomo, Raquel Piqué, Marianne Ramstein, Roswitha Schweichel, Harald Stäuble, Willy Tegel, Xavier Terradas-Batlle, Florence Verdin, Christophe Plomion, Antoine Kremer, Ludovic Orlando
2018-02-07

DNA preservationancient woodchloroplast haplotypeshigh-throughput DNA sequencingwood archaeological remains
Reconstructing the colonization and demographic dynamics that gave rise to extant forests is essential to forecasts of forest responses to environmental changes. Classical approaches to map how population of trees changed through space and time largely rely on pollen distribution patterns, with only a limited number of studies exploiting DNA molecules preserved in wooden tree archaeological and subfossil remains. Here, we advance such analyses by applying high-throughput (HTS) DNA sequencing to wood archaeological and subfossil material for the first time, using a comprehensive sample of 167 European white oak waterlogged remains spanning a large temporal (from 550 to 9,800 years) and geographical range across Europe. The successful characterization of the endogenous DNA and exogenous microbial DNA of 140 (~83%) samples helped the identification of environmental conditions favouring long-term DNA preservation in wood remains, and started to unveil the first trends in the DNA decay process in wood material. Additionally, the maternally inherited chloroplast haplotypes of 21 samples from three periods of forest human-induced use (Neolithic, Bronze Age and Middle Ages) were found to be consistent with those of modern populations growing in the same geographic areas. Our work paves the way for further studies aiming at using ancient DNA preserved in wood to reconstruct the micro-evolutionary response of trees to climate change and human forest management.
1
Chloroplast haplotypes from 21 samples across Neolithic, Bronze Age, and Medieval periods matched modern populations from the same regions, supporting ancient wood DNA for reconstructing forest history and tree responses.
2
Endogenous and exogenous microbial DNA were successfully characterized in 140 of 167 European white oak remains, approximately 83% of samples.
3
High-throughput DNA sequencing was applied for the first time to archaeological and subfossil wood material.
4
The 167 oak remains spanned 550–9,800 years and a broad European geographic range, enabling investigation of long-term DNA preservation in wood.
5
The study identified environmental conditions associated with DNA preservation and provided initial evidence about DNA decay in wood remains.

European white oak archaeological and subfossil wood remains spanning 550–9,800 years across Europe

The preservation, decay, and phylogeographic patterns of endogenous and microbial DNA in ancient wood, including maternally inherited chloroplast haplotypes

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2018-02-07
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Authors
Stefanie Wagner
Frédéric Lagane
Andaine Seguin‐Orlando
Mikkel Schubert
Thibault Leroy
Erwan Guichoux
Émilie Chancerel
Inger Bech-Hebelstrup
Bernard Vincent
Cyrille Billard
Yves Billaud
Matthias Bolliger
Christophe Croutsch
Katarina Čufar
Frédérique Eynaud
Karl Uwe Heussner
Joachim Köninger
Fabien Langenegger
Frédéric Leroy
Christine Lima
Nicoletta Martinelli
Garry Momber
André Billamboz
Oliver Nelle
Antoni Palomo
Raquel Piqué
Marianne Ramstein
Roswitha Schweichel
Harald Stäuble
Willy Tegel
Xavier Terradas-Batlle
Florence Verdin
Christophe Plomion
Antoine Kremer
Ludovic Orlando
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