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<front>
<journal-meta>
<journal-id journal-id-type="publisher-id">Front. Genet.</journal-id>
<journal-title>Frontiers in Genetics</journal-title>
<abbrev-journal-title abbrev-type="pubmed">Front. Genet.</abbrev-journal-title>
<issn pub-type="epub">1664-8021</issn>
<publisher>
<publisher-name>Frontiers Media S.A.</publisher-name>
</publisher>
</journal-meta>
<article-meta>
<article-id pub-id-type="doi">10.3389/fgene.2017.00106</article-id>
<article-categories>
<subj-group subj-group-type="heading">
<subject>Genetics</subject>
<subj-group>
<subject>Mini Review</subject>
</subj-group>
</subj-group>
</article-categories>
<title-group>
<article-title>Measuring Animal Age with DNA Methylation: From Humans to Wild Animals</article-title>
</title-group>
<contrib-group>
<contrib contrib-type="author" corresp="yes">
<name><surname>De Paoli-Iseppi</surname> <given-names>Ricardo</given-names></name>
<xref ref-type="aff" rid="aff1"><sup>1</sup></xref>
<xref ref-type="aff" rid="aff2"><sup>2</sup></xref>
<xref ref-type="author-notes" rid="fn001"><sup>&#x0002A;</sup></xref>
<uri xlink:href="http://loop.frontiersin.org/people/444755/overview"/>
</contrib>
<contrib contrib-type="author">
<name><surname>Deagle</surname> <given-names>Bruce E.</given-names></name>
<xref ref-type="aff" rid="aff2"><sup>2</sup></xref>
<uri xlink:href="http://loop.frontiersin.org/people/465077/overview"/>
</contrib>
<contrib contrib-type="author">
<name><surname>McMahon</surname> <given-names>Clive R.</given-names></name>
<xref ref-type="aff" rid="aff3"><sup>3</sup></xref>
<uri xlink:href="http://loop.frontiersin.org/people/115171/overview"/>
</contrib>
<contrib contrib-type="author">
<name><surname>Hindell</surname> <given-names>Mark A.</given-names></name>
<xref ref-type="aff" rid="aff1"><sup>1</sup></xref>
<uri xlink:href="http://loop.frontiersin.org/people/13373/overview"/>
</contrib>
<contrib contrib-type="author">
<name><surname>Dickinson</surname> <given-names>Joanne L.</given-names></name>
<xref ref-type="aff" rid="aff4"><sup>4</sup></xref>
<uri xlink:href="http://loop.frontiersin.org/people/466514/overview"/>
</contrib>
<contrib contrib-type="author">
<name><surname>Jarman</surname> <given-names>Simon N.</given-names></name>
<xref ref-type="aff" rid="aff5"><sup>5</sup></xref>
<xref ref-type="aff" rid="aff6"><sup>6</sup></xref>
<uri xlink:href="http://loop.frontiersin.org/people/103863/overview"/>
</contrib>
</contrib-group>
<aff id="aff1"><sup>1</sup><institution>Institute for Marine and Antarctic Studies, University of Tasmania</institution> <country>Hobart, TAS, Australia</country></aff>
<aff id="aff2"><sup>2</sup><institution>Australian Antarctic Division</institution> <country>Hobart, TAS, Australia</country></aff>
<aff id="aff3"><sup>3</sup><institution>Sydney Institute of Marine Science</institution> <country>Sydney, NSW, Australia</country></aff>
<aff id="aff4"><sup>4</sup><institution>Cancer, Genetics and Immunology Group, Menzies Institute for Medical Research</institution> <country>Hobart, TAS, Australia</country></aff>
<aff id="aff5"><sup>5</sup><institution>Trace and Environmental DNA Laboratory, Department of Environment and Agriculture, Curtin University</institution> <country>Perth, WA, Australia</country></aff>
<aff id="aff6"><sup>6</sup><institution>CSIRO Indian Ocean Marine Research Centre, University of Western Australia</institution> <country>Perth, WA, Australia</country></aff>
<author-notes>
<fn fn-type="edited-by"><p>Edited by: Alexey Moskalev, Institute of Biology of Komi Science Center of Ural Division of RAS, Russia</p></fn>
<fn fn-type="edited-by"><p>Reviewed by: Polina Mamoshina, Insilico Medicine, Inc., United States; George A. Garinis, Institute of Molecular Biology and Biotechnology (FORTH) and University of Crete, Greece</p></fn>
<fn fn-type="corresp" id="fn001"><p>&#x0002A;Correspondence: Ricardo De Paoli-Iseppi <email>ricardo.depaoliiseppi&#x00040;utas.edu.au</email></p></fn>
<fn fn-type="other" id="fn002"><p>This article was submitted to Genetics of Aging, a section of the journal Frontiers in Genetics</p></fn>
</author-notes>
<pub-date pub-type="epub">
<day>17</day>
<month>08</month>
<year>2017</year>
</pub-date>
<pub-date pub-type="collection">
<year>2017</year>
</pub-date>
<volume>8</volume>
<elocation-id>106</elocation-id>
<history>
<date date-type="received">
<day>28</day>
<month>06</month>
<year>2017</year>
</date>
<date date-type="accepted">
<day>02</day>
<month>08</month>
<year>2017</year>
</date>
</history>
<permissions>
<copyright-statement>Copyright &#x000A9; 2017 De Paoli-Iseppi, Deagle, McMahon, Hindell, Dickinson and Jarman.</copyright-statement>
<copyright-year>2017</copyright-year>
<copyright-holder>De Paoli-Iseppi, Deagle, McMahon, Hindell, Dickinson and Jarman</copyright-holder>
<license xlink:href="http://creativecommons.org/licenses/by/4.0/"><p>This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.</p></license>
</permissions>
<abstract>
<p>DNA methylation (DNAm) is a key mechanism for regulating gene expression in animals and levels are known to change with age. Recent studies have used DNAm changes as a biomarker to estimate chronological age in humans and these techniques are now also being applied to domestic and wild animals. Animal age is widely used to track ongoing changes in ecosystems, however chronological age information is often unavailable for wild animals. An ability to estimate age would lead to improved monitoring of (i) population trends and status and (ii) demographic properties such as age structure and reproductive performance. Recent studies have revealed new examples of DNAm age association in several new species increasing the potential for developing DNAm age biomarkers for a broad range of wild animals. Emerging technologies for measuring DNAm will also enhance our ability to study age-related DNAm changes and to develop new molecular age biomarkers.</p>
</abstract>
<kwd-group>
<kwd>epigenetics</kwd>
<kwd>ageing</kwd>
<kwd>methylation</kwd>
<kwd>wild animals</kwd>
<kwd>conservation</kwd>
<kwd>ecology</kwd>
</kwd-group>
<contract-num rid="cn001">H0024583</contract-num>
<contract-num rid="cn002">4014</contract-num>
<contract-sponsor id="cn001">Holsworth Wildlife Research Endowment<named-content content-type="fundref-id">10.13039/100008190</named-content></contract-sponsor>
<contract-sponsor id="cn002">Australian Antarctic Division<named-content content-type="fundref-id">10.13039/501100005108</named-content></contract-sponsor>
<counts>
<fig-count count="2"/>
<table-count count="0"/>
<equation-count count="0"/>
<ref-count count="85"/>
<page-count count="8"/>
<word-count count="6349"/>
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</article-meta>
</front>
<body>
<sec sec-type="intro" id="s1">
<title>Introduction</title>
<p>Biological ageing involves complex interactions of accumulating organ, cellular, and DNA damage leading to functional decline and increased risk of death (Fontana et al., <xref ref-type="bibr" rid="B12">2010</xref>). Biological functions including the age of reproductive maturity (Charpentier et al., <xref ref-type="bibr" rid="B7">2008</xref>; Jones et al., <xref ref-type="bibr" rid="B34">2014</xref>), reproductive frequency (Froy et al., <xref ref-type="bibr" rid="B14">2013</xref>), and mortality (P&#x000E9;rez-Barber&#x000ED;a et al., <xref ref-type="bibr" rid="B57">2014</xref>) can be better understood in the context of age. Estimates of chronological age are therefore useful for understanding these key ecological characteristics of wild animals. However, chronological age is difficult to estimate in individuals of most animal species (Nussey et al., <xref ref-type="bibr" rid="B50">2013</xref>). Many species lack measurable external features that change with age. Therefore, new methods that allow estimation of chronological age will enhance our understanding of ageing and population biology in wild animals.</p>
<p>DNA methylation (DNAm) at cytosine guanine dinucleotides (CpGs) is the best studied epigenetic modification and can repress gene expression when associated with gene promoters (Jones et al., <xref ref-type="bibr" rid="B33">2015</xref>). CpG methylation in mammals is regulated by DNA methyltransferases (DNMTs). DNMTs are required for the initial establishment of methylation patterns in early development (Law and Jacobsen, <xref ref-type="bibr" rid="B37">2010</xref>); and for maintaining established patterns of DNAm over the lifespan of the animal (Jones and Liang, <xref ref-type="bibr" rid="B35">2009</xref>). There are two types of age-associated DNAm in vertebrates, &#x0201C;epigenetic drift&#x0201D; and &#x0201C;clock-type&#x0201D; DNAm (Jones et al., <xref ref-type="bibr" rid="B33">2015</xref>). DNMT1 is primarily responsible for maintaining CpG methylation and its decline in activity with age is thought to contribute to a decrease in global methylation or &#x0201C;drift&#x0201D; in ageing cells (Jones et al., <xref ref-type="bibr" rid="B33">2015</xref>). However, gene-specific DNAm change with age may be regulated by other de-novo DNMTs, such as DNMT3b (Lopatina et al., <xref ref-type="bibr" rid="B40">2002</xref>). &#x0201C;Clock-type&#x0201D; age-associated DNAm is a change in methylation proportion (either an increase or decrease) at specific CpG sites. Changes at clock-type CpGs may be related to functional changes in gene expression with age (Horvath, <xref ref-type="bibr" rid="B25">2013</xref>; Steegenga et al., <xref ref-type="bibr" rid="B68">2014</xref>).</p>
<p>In this mini-review, we summarise current knowledge of observed age-related changes of CpG DNAm in mammals, reptiles, birds and fish. Recent technological advances have enabled the relatively quick analysis of large numbers of CpG loci (Parle-Mcdermott and Harrison, <xref ref-type="bibr" rid="B54">2011</xref>). This has greatly increased the number of studies that have observed age-related DNAm in humans and model organisms (Jarman et al., <xref ref-type="bibr" rid="B29">2015</xref>). We also describe how this new information can be used to develop molecular age biomarkers (MABs) for non-model animals. We explore environmental and behavioural studies of DNAm that are relevant to age estimation. We also discuss emerging technology and their potential for application in wild animals.</p>
</sec>
<sec id="s2">
<title>DNA methylation ageing signals in humans and mice</title>
<p>Age estimation models based on CpG DNAm combine information from CpG sites that have the highest correlation of DNAm levels with age. These are calibrated using tissue samples from known-age individuals. Early ageing models for humans used single tissues and small numbers of CpG sites (Bocklandt et al., <xref ref-type="bibr" rid="B4">2011</xref>). Recent more precise models predict age from multiple tissues (Horvath, <xref ref-type="bibr" rid="B25">2013</xref>). DNAm changes with age can contribute to altered gene expression levels during normal ageing (Zykovich et al., <xref ref-type="bibr" rid="B85">2014</xref>) and disease (Nilsson et al., <xref ref-type="bibr" rid="B49">2014</xref>). Therefore, the effect of CpG DNAm on transcriptional regulation of gene expression has been the focus of intense research (Goyns, <xref ref-type="bibr" rid="B18">2002</xref>; Figure <xref ref-type="fig" rid="F1">1</xref>). The first studies to identify human age-related DNAm changes studied monozygotic twins, where epigenetic drift with age was observed when comparing older and younger twins (Fraga et al., <xref ref-type="bibr" rid="B13">2005</xref>). This observation was supported by further studies of monozygotic twins and healthy controls that led to the first epigenetic age models (Boks et al., <xref ref-type="bibr" rid="B5">2009</xref>). A detailed summary of age-related DNAm studies is shown in Table <xref ref-type="supplementary-material" rid="SM1">S1</xref>.</p>
<fig id="F1" position="float">
<label>Figure 1</label>
<caption><p>Timeline of the major studies and tissues analysed for global or targeted DNA methylation in this review. Studies are age-associated except where indicated. Superscripts: <sup>&#x02227;</sup>(captive raised or model studies) and <sup>&#x0002A;</sup>(wild animal studies). (1, Gr&#x000F6;nniger et al., <xref ref-type="bibr" rid="B19">2010</xref>; 2, Teschendorff et al., <xref ref-type="bibr" rid="B71">2010</xref>; 3, Maegawa et al., <xref ref-type="bibr" rid="B43">2010</xref>; 4, Bocklandt et al., <xref ref-type="bibr" rid="B4">2011</xref>; 5, Koch and Wagner, <xref ref-type="bibr" rid="B36">2011</xref>; 6, Garagnani et al., <xref ref-type="bibr" rid="B16">2012</xref>; 7, Horvath, <xref ref-type="bibr" rid="B25">2013</xref>; 8, Hannum et al., <xref ref-type="bibr" rid="B22">2013</xref>; 9, Gryzinska et al., <xref ref-type="bibr" rid="B20">2013</xref>; 10, Polanowski et al., <xref ref-type="bibr" rid="B59">2014</xref>; 11, Shimoda et al., <xref ref-type="bibr" rid="B65">2014</xref>; 12, Sun et al., <xref ref-type="bibr" rid="B70">2014</xref>; 13, N&#x000E4;tt et al., <xref ref-type="bibr" rid="B47">2014</xref>; 14, Andraszek et al., <xref ref-type="bibr" rid="B1">2014</xref>; 15, Bekaert et al., <xref ref-type="bibr" rid="B2">2015</xref>; 16, Yan et al., <xref ref-type="bibr" rid="B79">2015</xref>; 17, Nilsen et al., <xref ref-type="bibr" rid="B48">2016</xref>; 18, Spiers et al., <xref ref-type="bibr" rid="B67">2016</xref>; 19, Gryzinska et al., <xref ref-type="bibr" rid="B21">2016</xref>; 20, Penner et al., <xref ref-type="bibr" rid="B56">2016</xref>; 21, Christiansen et al., <xref ref-type="bibr" rid="B8">2016</xref>; 22, Eipel et al., <xref ref-type="bibr" rid="B10">2016</xref>; 23, Mawlood et al., <xref ref-type="bibr" rid="B46">2016</xref>; 24, Bentz et al., <xref ref-type="bibr" rid="B3">2016</xref>; 25, Verhulst et al., <xref ref-type="bibr" rid="B75">2016</xref>; 26, Caracappa et al., <xref ref-type="bibr" rid="B6">2016</xref>; 27, Matsumoto et al., <xref ref-type="bibr" rid="B45">2016</xref>; 28, Romano et al., <xref ref-type="bibr" rid="B64">2017</xref>; 29, Stubbs et al., <xref ref-type="bibr" rid="B69">2017</xref>).</p></caption>
<graphic xlink:href="fgene-08-00106-g0001.tif"/>
</fig>
<p>Age-related DNAm changes have been identified in several human and mouse tissues. Analysis of human skin samples for DNAm changes identified a set of CpG sites that were affected by chronological age. Thirty sun-exposed and sun-protected skin biopsy samples were analysed using the Infinium HumanMethylation27 (27 K) BeadChip (Illumina). The study identified 104 CpG sites that had a DNAm relationship with age, but not by sun exposure (Gr&#x000F6;nniger et al., <xref ref-type="bibr" rid="B19">2010</xref>). Another example of age-related CpG DNAm was found in the saliva samples of 34 identical twins (21&#x02013;55 years old). This study identified 88 CpG sites where DNAm levels were significantly correlated with chronological age (27 K BeadChip) (Bocklandt et al., <xref ref-type="bibr" rid="B4">2011</xref>). The genes identified were involved in age-related cardiovascular and neurological diseases (Park et al., <xref ref-type="bibr" rid="B53">2007</xref>; Bocklandt et al., <xref ref-type="bibr" rid="B4">2011</xref>). In mice, linear age-related methylation was identified in multiple CpG sites from 12 different genes measured in intestine, lung, liver, and spleen. This indicated that similar age-related changes in DNAm levels can be found in humans and other mammals (Maegawa et al., <xref ref-type="bibr" rid="B43">2010</xref>).</p>
<p>Most clock-type DNAm changes are tissue specific, however several studies have investigated age-associated changes in multiple tissues. Non cell-type dependent DNAm changes were identified in a study that combined several published CpG DNAm data sets to predict age using multiple tissues (Koch and Wagner, <xref ref-type="bibr" rid="B36">2011</xref>). Four CpG sites in <italic>TRIM58, KCNQ1DN, NPTX2</italic>, and <italic>GRIA2</italic> were identified from a set of 431 hypermethylated CpGs. Multiple linear regression of the DNAm levels for each CpG site against the known donor age resulted in a model with a mean absolute difference (MAD) of &#x000B1;10.3 years (Koch and Wagner, <xref ref-type="bibr" rid="B36">2011</xref>). Another multi-tissue model based on 353 CpGs was developed from 82 publicly available data sets of 8,000 healthy tissue and cell types and had a median absolute difference of &#x000B1;3.6 years (Horvath, <xref ref-type="bibr" rid="B25">2013</xref>). This study predicted age using a greater range of tissue types and show that cancer can lead to an increased age as measured by DNAm. The model was more accurate in heterogeneous tissues such as blood and saliva compared to breast tissue, dermal fibroblasts, and skeletal muscle. The author suggested hormonal or cancer effects as possible causes of this variation. Horvath (<xref ref-type="bibr" rid="B25">2013</xref>) proposed that this model measures the cumulative work of an epigenetic maintenance system that likely functions over the entire mammalian lifespan. The DNA methylome and human ageing rates were also compared using a far greater number of CpG sites, the HumanMethylation450 (450K) BeadChip (Hannum et al., <xref ref-type="bibr" rid="B22">2013</xref>). Here, a MAB using 71 CpGs predicted chronological age with a MAD of &#x000B1;3.9 years. In mice, a multi-tissue age predictor has been developed using 329 CpG sites, giving a median absolute error of &#x000B1;3.3 weeks (Stubbs et al., <xref ref-type="bibr" rid="B69">2017</xref>). Together, these three models show that methods based on large numbers of markers can improve precision of age estimates in model organisms or humans.</p>
<p>Lifestyle factors can influence DNAm levels in humans and mice and could impact chronological age estimation if not corrected for. A positive difference between estimated DNAm age and known age suggests that an individual is biologically older than their chronological age. Described epigenetic clocks have been used to show decreased age acceleration dependent on diet (Quach et al., <xref ref-type="bibr" rid="B62">2017</xref>) and increased age acceleration associated with smoking (Zaghlool et al., <xref ref-type="bibr" rid="B81">2015</xref>; Gao et al., <xref ref-type="bibr" rid="B17">2016</xref>) and body mass index (Horvath et al., <xref ref-type="bibr" rid="B26">2014</xref>). Recent research has also highlighted the differences between human and murine DNAm clocks (Wagner, <xref ref-type="bibr" rid="B77">2017</xref>) and the effects of calorie restriction on mouse biological age (Petkovich et al., <xref ref-type="bibr" rid="B58">2017</xref>).</p>
<p>The use of DNAm biomarkers for specialised forensic applications generally involves using fewer CpG sites in simpler assays. A model based on three CpG sites in human blood yielded a MAD from known-age samples of &#x000B1;5.4 years, which was an improvement over other non-epigenetic molecular ageing techniques (Weidner et al., <xref ref-type="bibr" rid="B78">2014</xref>). In two studies, a small number of CpG sites in one gene region (<italic>ELOVL2</italic>) allowed simplification of technical analyses while maintaining prediction accuracy (MAD &#x000B1; 3.9 years) (Zbie&#x00107;-Piekarska et al., <xref ref-type="bibr" rid="B82">2015a</xref>,<xref ref-type="bibr" rid="B83">b</xref>). Single multiplex reactions such as methylation-sensitive single-nucleotide primer extension can be used to make age biomarkers that are cheaper to run than pyrosequencing or microarray assays. For example, one study using this method with eight CpG sites led to age predictions with a MAD of &#x000B1;6.07 years (Vidal-Bralo et al., <xref ref-type="bibr" rid="B76">2016</xref>). While this approach had lower precision than previous studies it is still a feasible tool for estimating age using adult blood. One study implemented the models published by both Horvath (<xref ref-type="bibr" rid="B25">2013</xref>) and Hannum et al. (<xref ref-type="bibr" rid="B22">2013</xref>). Here, buffy coat was isolated from twins (30&#x02013;82 years) and age was predicted (Christiansen et al., <xref ref-type="bibr" rid="B8">2016</xref>). This resulted in MADs of &#x000B1;5.6 years for the 353 CpG Horvath model and &#x000B1;5.4 years for the 71 CpG Hannum model demonstrating the benefit of using a higher number of CpG sites.</p>
<p>Methylation changes in mitochondrial DNA (mtDNA) associated with age have been identified in humans. An epigenetic model based on two CpGs with a MAD of &#x000B1;9.3 years was developed from the blood of 82 individuals (18&#x02013;91 years). Age was correlated with mtDNAm at two sites, M1215 and M1313, in the 12s <italic>MT-RNR1</italic> gene (Mawlood et al., <xref ref-type="bibr" rid="B46">2016</xref>). mtDNA overall has a low level of CpG methylation (2&#x02013;6%), so detection of age-related CpG levels required high assay precision. This is the only study of age-related mtDNA methylation and it is still uncertain whether mtDNAm-based models will match the accuracy of models using genomic biomarkers.</p>
</sec>
<sec id="s3">
<title>Quantifying DNA methylation, environmental effects and age in model and wild animals</title>
<sec>
<title>Mammals</title>
<p>DNAm age biomarkers have only been developed for a small number of wild mammal species. In long-lived species, obtaining known-age calibration sample sets that cover the entire lifespan is a significant obstacle. DNAm age estimation is most advanced in species closely related to humans. The age of chimpanzees (<italic>Pan troglodytes</italic>), bonobos (<italic>Pan paniscus</italic>), and gorillas (<italic>Gorilla gorilla</italic>) were estimated using the 353 CpG clock MAB created for humans (Pai et al., <xref ref-type="bibr" rid="B52">2011</xref>; Hernando-Herraez et al., <xref ref-type="bibr" rid="B24">2013</xref>; Horvath, <xref ref-type="bibr" rid="B25">2013</xref>). Results from blood samples showed that in both chimpanzees and bonobos the model had an accuracy similar to that found in humans; however, accuracy was reduced in gorillas (Horvath, <xref ref-type="bibr" rid="B25">2013</xref>).</p>
<p>Humpback whales (<italic>Megaptera novaeangliae</italic>) have successfully been used as a test case for applying knowledge of human age-related clock type DNAm change to estimate age in a long-lived wild mammal. Forty-five known-age samples were used to calibrate a DNAm age model. Seven of 37 CpG loci screened by pyrosequencing showed significant age-related DNAm. The three sites with the strongest relationship with age were used to predict whale age from skin with a MAD of 3.75 years. This model also predicted the correct order of ages in samples with known kinship in more than 93% of cases (Polanowski et al., <xref ref-type="bibr" rid="B59">2014</xref>).</p>
<p>Global DNAm levels in dogs change with age as a result of epigenetic drift. Significant differences in relative global DNAm levels have been found amongst pups (43.5%), adolescents (53.6%), adults (61.5%), and old dogs (81.2%) (Gryzinska et al., <xref ref-type="bibr" rid="B21">2016</xref>). Clock-type DNAm age biomarkers based on multiple CpG sites have been developed for dogs. These models were calibrated using blood from multiple known-age animals and could predict age with a minimum MAD of 23.1 months (Ito et al., <xref ref-type="bibr" rid="B27">2017</xref>).</p>
</sec>
<sec>
<title>Birds</title>
<p>DNAm patterns in birds are relatively unexplored compared to mammals (Head, <xref ref-type="bibr" rid="B23">2014</xref>). Most avian DNAm research focuses on chickens (<italic>Gallus gallus</italic>) and quails (<italic>Coturnix japonica</italic>). Observation in <italic>G. gallus</italic> of unmethylated CpG islands in gene promoters (Li et al., <xref ref-type="bibr" rid="B39">2011</xref>) and altered CD4 gene transcription due to increased DNAm of the promoter, indicates a similar regulatory function to that in mammals (Luo et al., <xref ref-type="bibr" rid="B41">2011</xref>; Figure <xref ref-type="fig" rid="F2">2</xref>). An age-related decrease in percentage DNAm of six CpG sites in the <italic>PPAR</italic>&#x003B3; promoter in 2, 3, and 7-week-old <italic>G. gallus</italic> has also been reported (Sun et al., <xref ref-type="bibr" rid="B70">2014</xref>). Global DNAm levels have been shown by immunoenzymatic assay to decrease with age in <italic>G. gallus</italic> (Gryzinska et al., <xref ref-type="bibr" rid="B20">2013</xref>). Higher global DNAm levels of 55-week-old hens (<italic>G. gallus</italic>) compared to 20-week-old individuals have recently been shown in breast tissue using whole-genome bisulphite sequencing. Of 2,714 identified differentially methylated regions, 378 were mapped to gene promoters including <italic>ABCA1, COL6A1</italic>, and <italic>GSTT1L</italic>. CpG sites in these genes were hypermethylated with age and could be used for future age biomarker studies (Zhang et al., <xref ref-type="bibr" rid="B84">2017</xref>). DNAm analysis of <italic>C. japonica</italic> DNA by gel imagery showed that 15-week-old quails had increased DNAm of the <italic>RN28S</italic> gene compared to 52-week-old individuals (Andraszek et al., <xref ref-type="bibr" rid="B1">2014</xref>).</p>
<fig id="F2" position="float">
<label>Figure 2</label>
<caption><p>Variable global methylation in vertebrates. <sup>&#x0002A;</sup>Current genome on NCBI (if available). <sup>&#x02227;</sup>Average 5 mC for classes (Jabbari et al., <xref ref-type="bibr" rid="B28">1997</xref>). (1, Ehrlich et al., <xref ref-type="bibr" rid="B9">1982</xref>; 2, Gama-Sosa et al., <xref ref-type="bibr" rid="B15">1983</xref>; 3, Yokomine et al., <xref ref-type="bibr" rid="B80">2006</xref>; 4, Jabbari et al., <xref ref-type="bibr" rid="B28">1997</xref>; 5, Vanyushin et al., <xref ref-type="bibr" rid="B73">1970</xref>, <xref ref-type="bibr" rid="B72">1973</xref>; 6, Varriale and Bernardi, <xref ref-type="bibr" rid="B74">2006</xref>; 7, Shimoda et al., <xref ref-type="bibr" rid="B65">2014</xref>; 8, Ponger and Li, <xref ref-type="bibr" rid="B60">2005</xref>; 9, Okamura et al., <xref ref-type="bibr" rid="B51">2010</xref>; Tree, Letunic and Bork, <xref ref-type="bibr" rid="B38">2006</xref>).</p></caption>
<graphic xlink:href="fgene-08-00106-g0002.tif"/>
</fig>
<p>DNAm studies of behavioural traits in several bird species could yield potential targets for age biomarker development if the identified genes are linked to behavioural change during an animal&#x00027;s life. The DNAm level in the dopamine receptor D4 (<italic>DRD4</italic>) gene in great tits (<italic>Parus major</italic>) was shown to be associated with variations in exploratory behaviour (Verhulst et al., <xref ref-type="bibr" rid="B75">2016</xref>). Methylation tiling arrays have linked the promoters of the zinc finger RNA binding protein (<italic>ZFR</italic>) gene and male hypermethylated region (<italic>MHM</italic>) with sex dependent gene expression in chicken brain samples (N&#x000E4;tt et al., <xref ref-type="bibr" rid="B47">2014</xref>). Several of the differentially expressed genes were known to affect behaviours including exploration and fearfulness.</p>
<p>Age-associated global DNAm could be affected by environmentally altered DNMT expression in birds. Increases in mRNA for DNMT1, DNMT3A, and methyl binding protein MBD5 were found after a 1&#x000B0;C increase in incubation temperature in several tissues of embryonic Peking ducks (<italic>Anas platyrhynchos domestica</italic>). These changes in expression levels of methylation-interacting enzymes could lead to overall changes in DNAm of bird genomes with age (Yan et al., <xref ref-type="bibr" rid="B79">2015</xref>). A single CpG in the <italic>ER</italic>&#x003B1; promoter in wild eastern bluebirds (<italic>Sialia sialis</italic>) was positively correlated with yolk testosterone concentration and nestling growth rate. While DNAm at this CpG appears to depend on maternal and environmental conditions, it may help to better estimate age in pre-fledgling chicks (Bentz et al., <xref ref-type="bibr" rid="B3">2016</xref>).</p>
<p>The epigenetic effect of adverse environmental conditions has recently been analysed in a wild barn swallow (<italic>Hirundo rustica</italic>) population. After particulate matter exposure, DNAm levels in two <italic>Clock</italic> gene loci were significantly increased in chicks (7 to 5 days old) and mothers. This study is a good example of a targeted DNAm approach and is the first study to show that DNAm levels can change in response to anthropogenic pollutants in wild birds (Romano et al., <xref ref-type="bibr" rid="B64">2017</xref>). Exposure to DNAm altering compounds could be used to produce DNAm age biomarkers if exposure is consistent over time and among individuals in a population.</p>
</sec>
<sec>
<title>Reptiles</title>
<p>Reptile DNAm has not been well studied in general and there is little data on age-related DNAm. Reptilian CpG island positions relative to promoters are similar to those found in mammals and birds, indicating that DNAm has a similar regulatory function (Varriale and Bernardi, <xref ref-type="bibr" rid="B74">2006</xref>; Head, <xref ref-type="bibr" rid="B23">2014</xref>). Adult American alligators (<italic>Alligator mississippiensis</italic>) have consistently lower global DNAm than sub-adults and captive juveniles (Parrott et al., <xref ref-type="bibr" rid="B55">2014</xref>). The decrease in global DNAm through epigenetic drift is consistent with that found in all other studies to date (Nilsen et al., <xref ref-type="bibr" rid="B48">2016</xref>). While there are no age-related clock-type reptilian studies, some have measured changes in DNAm due to environmental influences. Reduced global DNAm due to phenotypic differences was found in the loggerhead sea turtle (<italic>Caretta caretta</italic>) (Caracappa et al., <xref ref-type="bibr" rid="B6">2016</xref>). In the red-eared slider turtle (<italic>Trachemys scripta</italic>) CpG DNAm levels of the <italic>aromatase</italic> gene were associated with shifts in egg incubation temperature (Matsumoto et al., <xref ref-type="bibr" rid="B44">2013</xref>, <xref ref-type="bibr" rid="B45">2016</xref>).</p>
</sec>
<sec>
<title>Fish</title>
<p>Fish DNAm is better studied compared to birds and reptiles, with the majority of research on the zebrafish model (<italic>Danio rerio</italic>). Zebrafish embryos show high levels of global CpG methylation (80%), which is similar to mouse (74%), and also have depletion of methylation around transcriptional start sites similar to mammals (Feng et al., <xref ref-type="bibr" rid="B11">2010</xref>). However, there are important differences in epigenetic reprogramming during early embryogenesis that are reviewed elsewhere (Potok et al., <xref ref-type="bibr" rid="B61">2013</xref>; Head, <xref ref-type="bibr" rid="B23">2014</xref>; Figure <xref ref-type="fig" rid="F2">2</xref>). A gradual and clear loss of CpG DNAm using methylation-sensitive enzymes and cloning was shown in 3, 18, and 30-month-old zebrafish (Shimoda et al., <xref ref-type="bibr" rid="B65">2014</xref>). As with other non-model animal groups, there is little DNAm age data for wild fish.</p>
</sec>
</sec>
<sec id="s4">
<title>Future directions</title>
<p>Changes to DNAm patterns have been established as biomarkers of chronological and biological ageing in humans and have great potential for age estimation in wild animals. Global DNAm hypomethylation correlating with age has been found in a range of wild animals, suggesting that epigenetic drift occurs in most vertebrates. Numerous clock-type age-related CpG sites have also been identified, several of which appear to be well conserved in mammals (Table <xref ref-type="supplementary-material" rid="SM1">S1</xref>). Both epigenetic drift and clock-type DNAm changes could be used for age estimation in vertebrates.</p>
<p>New technologies for measuring changes in DNAm relating to age will improve our ability to generate age biomarkers. Nanopore technology has recently improved so that it is possible to identify cytosine and adenosine methylation variants in <italic>E. coli</italic> (Rand et al., <xref ref-type="bibr" rid="B63">2017</xref>). An advantage of nanopore technology is that relatively small amounts of non-treated DNA are required to produce long sequence reads compared to bisulphite treated DNA. This may be advantageous for animal studies where DNA yield from the target tissue is low, such as feather quill ends (Simpson et al., <xref ref-type="bibr" rid="B66">2017</xref>). Digital restriction enzyme analysis of methylation (DREAM) allows the precise measurement of CpG sites in a global context (Jelinek et al., <xref ref-type="bibr" rid="B31">2012</xref>; Maegawa et al., <xref ref-type="bibr" rid="B42">2014</xref>). Preparation of samples for both methods is relatively simple and does not require a reference sequence to identify age related signals (Jelinek and Madzo, <xref ref-type="bibr" rid="B32">2016</xref>).</p>
<p>Measuring wild animal age with DNAm has diverse applications in ecological and environmental research. Populations of known-age wild animals will be particularly important for this type of research. Age estimates generated from a robust DNAm model could be used to understand survival, reproductive potential, and biological ageing (Jarman et al., <xref ref-type="bibr" rid="B29">2015</xref>; Jazwinski and Kim, <xref ref-type="bibr" rid="B30">2017</xref>). Development of age biomarkers in new species will benefit immensely from information on age-related DNAm change gathered from humans and model organisms. This field is poised to change the way that the age of wild animals is determined.</p>
</sec>
<sec id="s5">
<title>Author contributions</title>
<p>Conception: RD, JD, SJ; Design: RD, SJ, BD, MH, CM; Drafting original: RD, SJ, BD; Critical revision: JD, MH, CM; Final approval and accountability, all authors.</p>
<sec>
<title>Conflict of interest statement</title>
<p>The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.</p>
</sec>
</sec>
</body>
<back>
<sec sec-type="supplementary-material" id="s6">
<title>Supplementary material</title>
<p>The Supplementary Material for this article can be found online at: <ext-link ext-link-type="uri" xlink:href="http://journal.frontiersin.org/article/10.3389/fgene.2017.00106/full#supplementary-material">http://journal.frontiersin.org/article/10.3389/fgene.2017.00106/full#supplementary-material</ext-link></p>
<supplementary-material xlink:href="Table1.XLSX" id="SM1" mimetype="application/vnd.openxmlformats-officedocument.spreadsheetml.sheet" xmlns:xlink="http://www.w3.org/1999/xlink"/>
</sec>
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<fn fn-type="financial-disclosure"><p><bold>Funding.</bold> This work was funded by Australian Antarctic Science project number: 4014 (BD, SJ), the Australian Government Research Training Program (RD), the Holsworth Wildlife Research Endowment (H0024583)&#x02014;ANZ Trustees Foundation (RD) (<ext-link ext-link-type="uri" xlink:href="http://www.eqt.com.au/charities-and-not-for-profits/grants/animals-and-environmentgrants">http://www.eqt.com.au/charities-and-not-for-profits/grants/animals-and-environmentgrants</ext-link>) and the Joyce W. Vickery Scientific Research Fund (H0024181)&#x02014;The Linnean Society of New South Wales (RD) (<ext-link ext-link-type="uri" xlink:href="http://linneansocietynsw.org.au/">http://linneansocietynsw.org.au/</ext-link>).</p>
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