Abstract
Although ancient DNA (aDNA) miscoding lesions have been studied since the earliest days of the field, their nature remains a source of debate. A variety of conflicting hypotheses exist about which miscoding lesions constitute true aDNA damage as opposed to PCR polymerase amplification error. Furthermore, considerable disagreement and speculation exists on which specific damage events underlie observed miscoding lesions. The root of the problem is that it has previously been difficult to assemble sufficient data to test the hypotheses, and near-impossible to accurately determine the specific strand of origin of observed damage events. With the advent of emulsion-based clonal amplification (emPCR) and the sequencing-by-synthesis technology this has changed. In this paper we demonstrate how data produced on the Roche GS20 genome sequencer can determine miscoding lesion strands of origin, and subsequently be interpreted to enable characterization of the aDNA damage behind the observed phenotypes. Through comparative analyses on 390,965 bp of modern chloroplast and 131,474 bp of ancient woolly mammoth GS20 sequence data we conclusively demonstrate that in this sample at least, a permafrost preserved specimen, Type 2 (cytosine-->thymine/guanine-->adenine) miscoding lesions represent the overwhelming majority of damage-derived miscoding lesions. Additionally, we show that an as yet unidentified guanine-->adenine analogue modification, not the conventionally argued cytosine-->uracil deamination, underpins a significant proportion of Type 2 damage. How widespread these implications are for aDNA will become apparent as future studies analyse data recovered from a wider range of substrates.
MeSH Terms
Animals
DNA Damage
DNA, Chloroplast/chemistry
DNA-Directed DNA Polymerase
Data Interpretation, Statistical
Elephants/genetics
Fossils
Genomics/methods
Polymerase Chain Reaction
Templates, Genetic
Chemicals
DNA, Chloroplast
DNA-Directed DNA Polymerase
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
Gilbert M Thomas P
Center for Ancient Genetics, Niels Bohr Institute and Biological Institutes, The University of Copenhagen, Juliane Maries vej 30, DK-2100 Copenhagen Ø, Denmark. mtpgilbert@gmail.com
Binladen Jonas
Miller Webb
Wiuf Carsten
Willerslev Eske
Poinar Hendrik
Carlson John E
Leebens-Mack James H
Schuster Stephan C
References (23)
23 references, click to expand
-
Statistical evidence for miscoding lesions in ancient DNA templates.
Mol Biol Evol. 2001 Feb;18(2):262-5
PMID: 11158385
-
Crosslinks rather than strand breaks determine access to ancient DNA sequences from frozen sediments.
Genetics. 2006 Jun;173(2):1175-9
PMID: 16582426
-
DNA sequences from multiple amplifications reveal artifacts induced by cytosine deamination in ancient DNA.
Nucleic Acids Res. 2001 Dec 1;29(23):4793-9
PMID: 11726688
-
Distribution patterns of postmortem damage in human mitochondrial DNA.
Am J Hum Genet. 2003 Jan;72(1):32-47
PMID: 12489041
-
Characterization of genetic miscoding lesions caused by postmortem damage.
Am J Hum Genet. 2003 Jan;72(1):48-61
PMID: 12489042
-
Human-mouse alignments with BLASTZ.
Genome Res. 2003 Jan;13(1):103-7
PMID: 12529312
-
Diverse plant and animal genetic records from Holocene and Pleistocene sediments.
Science. 2003 May 2;300(5620):791-5
PMID: 12702808
-
An analysis of the mutagenicity of 1,2-dibromoethane to Escherichia coli: influence of DNA repair activities and metabolic pathways.
Mutat Res. 1988 Nov;194(3):171-81
PMID: 3054522
-
Ancient DNA: extraction, characterization, molecular cloning, and enzymatic amplification.
Proc Natl Acad Sci U S A. 1989 Mar;86(6):1939-43
PMID: 2928314
-
DNA damage promotes jumping between templates during enzymatic amplification.
J Biol Chem. 1990 Mar 15;265(8):4718-21
PMID: 2307682
-
Rapid and simple method for purification of nucleic acids.
J Clin Microbiol. 1990 Mar;28(3):495-503
PMID: 1691208
-
MutT protein specifically hydrolyses a potent mutagenic substrate for DNA synthesis.
Nature. 1992 Jan 16;355(6357):273-5
PMID: 1309939
-
Instability and decay of the primary structure of DNA.
Nature. 1993 Apr 22;362(6422):709-15
PMID: 8469282
-
DNA damage and DNA sequence retrieval from ancient tissues.
Nucleic Acids Res. 1996 Apr 1;24(7):1304-7
PMID: 8614634
-
Synthesis and miscoding specificity of oligodeoxynucleotide containing 8-phenyl-2'-deoxyguanosine.
Chem Res Toxicol. 1997 Dec;10(12):1351-8
PMID: 9437525
-
Rise and fall of the Beringian steppe bison.
Science. 2004 Nov 26;306(5701):1561-5
PMID: 15567864
-
Genetic analyses from ancient DNA.
Annu Rev Genet. 2004;38:645-79
PMID: 15568989
-
Prehistoric contacts over the Straits of Gibraltar indicated by genetic analysis of Iberian Bronze Age cattle.
Proc Natl Acad Sci U S A. 2005 Jun 14;102(24):8431-5
PMID: 15941827
-
Genome sequencing in microfabricated high-density picolitre reactors.
Nature. 2005 Sep 15;437(7057):376-80
PMID: 16056220
-
Phantom mutation hotspots in human mitochondrial DNA.
Electrophoresis. 2005 Sep;26(18):3414-29
PMID: 16167362
-
Metagenomics to paleogenomics: large-scale sequencing of mammoth DNA.
Science. 2006 Jan 20;311(5759):392-4
PMID: 16368896
-
Assessing the fidelity of ancient DNA sequences amplified from nuclear genes.
Genetics. 2006 Feb;172(2):733-41
PMID: 16299392
-
Phylogenetic and familial estimates of mitochondrial substitution rates: study of control region mutations in deep-rooting pedigrees.
Am J Hum Genet. 2001 Nov;69(5):1113-26
PMID: 11582570