TY - JOUR A1 - Schuster, Andrea C. A1 - Herde, Antje A1 - Mazzoni, Camila J. A1 - Eccard, Jana A1 - Sommer, Simone T1 - Evidence for selection maintaining MHC diversity in a rodent species despite strong density fluctuations JF - Immunogenetics N2 - Strong spatiotemporal variation in population size often leads to reduced genetic diversity limiting the adaptive potential of individual populations. Key genes of adaptive variation are encoded by the immune genes of the major histocompatibility complex (MHC) playing an essential role in parasite resistance. How MHC variation persists in rodent populations that regularly experience population bottlenecks remains an important topic in evolutionary genetics. We analysed the consequences of strong population fluctuations on MHC class II DRB exon 2 diversity in two distant common vole (Microtus arvalis) populations in three consecutive years using a high-throughput sequencing approach. In 143 individuals, we detected 25 nucleotide alleles translating into 14 unique amino acid MHC alleles belonging to at least three loci. Thus, the overall allelic diversity and amino acid distance among the remaining MHC alleles, used as a surrogate for the range of pathogenic antigens that can be presented to T-cells, are still remarkably high. Both study populations did not show significant population differentiation between years, but significant differences were found between sites. We concluded that selection processes seem to be strong enough to maintain moderate levels of MHC diversity in our study populations outcompeting genetic drift, as the same MHC alleles were conserved between years. Differences in allele frequencies between populations might be the outcome of different local parasite pressures and/or genetic drift. Further understanding of how pathogens vary across space and time will be crucial to further elucidate the mechanisms maintaining MHC diversity in cyclic populations. KW - MHC diversity KW - Selection KW - High-throughput next-generation sequencing KW - Population cycle KW - Common vole KW - Microtus arvalis Y1 - 2016 U6 - https://doi.org/10.1007/s00251-016-0916-z SN - 0093-7711 SN - 1432-1211 VL - 68 SP - 429 EP - 437 PB - Springer CY - New York ER - TY - JOUR A1 - Herde, Antje A1 - Eccard, Jana T1 - Consistency in boldness, activity and exploration at different stages of life JF - BMC ecology N2 - Background: Animals show consistent individual behavioural patterns over time and over situations. This phenomenon has been referred to as animal personality or behavioural syndromes. Little is known about consistency of animal personalities over entire life times. We investigated the repeatability of behaviour in common voles (Microtus arvalis) at different life stages, with different time intervals, and in different situations. Animals were tested using four behavioural tests in three experimental groups: 1. before and after maturation over three months, 2. twice as adults during one week, and 3. twice as adult animals over three months, which resembles a substantial part of their entire adult life span of several months. Results: Different behaviours were correlated within and between tests and a cluster analysis showed three possible behavioural syndrome-axes, which we name boldness, exploration and activity. Activity and exploration behaviour in all tests was highly repeatable in adult animals tested over one week. In animals tested over maturation, exploration behaviour was consistent whereas activity was not. Voles that were tested as adults with a three-month interval showed the opposite pattern with stable activity but unstable exploration behaviour. Conclusions: The consistency in behaviour over time suggests that common voles do express stable personality over short time. Over longer periods however, behaviour is more flexible and depending on life stage (i.e. tested before/after maturation or as adults) of the tested individual. Level of boldness or activity does not differ between tested groups and maintenance of variation in behavioural traits can therefore not be explained by expected future assets as reported in other studies. KW - Animal personality KW - Behavioural type KW - Microtus arvalis KW - Common vole KW - Plasticity KW - Consistency KW - Repeatability Y1 - 2013 U6 - https://doi.org/10.1186/1472-6785-13-49 SN - 1472-6785 VL - 13 IS - 12 PB - BioMed Central CY - London ER - TY - GEN A1 - Herde, Antje A1 - Eccard, Jana T1 - Consistency in boldness, activity and exploration at different stages of life N2 - Background: Animals show consistent individual behavioural patterns over time and over situations. This phenomenon has been referred to as animal personality or behavioural syndromes. Little is known about consistency of animal personalities over entire life times. We investigated the repeatability of behaviour in common voles (Microtus arvalis) at different life stages, with different time intervals, and in different situations. Animals were tested using four behavioural tests in three experimental groups: 1. before and after maturation over three months, 2. twice as adults during one week, and 3. twice as adult animals over three months, which resembles a substantial part of their entire adult life span of several months. Results: Different behaviours were correlated within and between tests and a cluster analysis showed three possible behavioural syndrome-axes, which we name boldness, exploration and activity. Activity and exploration behaviour in all tests was highly repeatable in adult animals tested over one week. In animals tested over maturation, exploration behaviour was consistent whereas activity was not. Voles that were tested as adults with a three-month interval showed the opposite pattern with stable activity but unstable exploration behaviour. Conclusions: The consistency in behaviour over time suggests that common voles do express stable personality over short time. Over longer periods however, behaviour is more flexible and depending on life stage (i.e. tested before/after maturation or as adults) of the tested individual. Level of boldness or activity does not differ between tested groups and maintenance of variation in behavioural traits can therefore not be explained by expected future assets as reported in other studies. T3 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe - 376 KW - animal personality KW - behavioural type KW - Microtus arvalis KW - common vole KW - plasticity KW - consistency KW - repeatability Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-401395 ER - TY - GEN A1 - Folkertsma, Remco A1 - Westbury, Michael V. A1 - Eccard, Jana A1 - Hofreiter, Michael T1 - The complete mitochondrial genome of the common vole, Microtus arvalis (Rodentia: Arvicolinae) T2 - Postprints der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe N2 - The common vole, Microtus arvalis belongs to the genus Microtus in the subfamily Arvicolinae. In this study, the complete mitochondrial genome of M. arvalis was recovered using shotgun sequencing and an iterative mapping approach using three related species. Phylogenetic analyses using the sequence of 21 arvicoline species place the common vole as a sister species to the East European vole (Microtus levis), but as opposed to previous results we find no support for the recognition of the genus Neodon within the subfamily Arvicolinae, as this is, as well as the genus Lasiopodomys, found within the Microtus genus. T3 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe - 481 KW - Microtus arvalis KW - Arvicolinae KW - mitochondrial genome KW - common vole KW - phylogeny Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-412994 SN - 1866-8372 IS - 481 ER - TY - JOUR A1 - Folkertsma, Remco A1 - Westbury, Michael V. A1 - Eccard, Jana A1 - Hofreiter, Michael T1 - The complete mitochondrial genome of the common vole, Microtus arvalis (Rodentia: Arvicolinae) JF - Mitochondrial DNA Part B N2 - The common vole, Microtus arvalis belongs to the genus Microtus in the subfamily Arvicolinae. In this study, the complete mitochondrial genome of M. arvalis was recovered using shotgun sequencing and an iterative mapping approach using three related species. Phylogenetic analyses using the sequence of 21 arvicoline species place the common vole as a sister species to the East European vole (Microtus levis), but as opposed to previous results we find no support for the recognition of the genus Neodon within the subfamily Arvicolinae, as this is, as well as the genus Lasiopodomys, found within the Microtus genus. KW - Microtus arvalis KW - Arvicolinae KW - mitochondrial genome KW - common vole KW - phylogeny Y1 - 2018 U6 - https://doi.org/10.1080/23802359.2018.1457994 SN - 2380-2359 VL - 3 IS - 1 SP - 446 EP - 447 ER - TY - THES A1 - Folkertsma, Remco T1 - Evolutionary adaptation to climate in microtine mammals N2 - Understanding how organisms adapt to their local environment is a major focus of evolutionary biology. Local adaptation occurs when the forces of divergent natural selection are strong enough compared to the action of other evolutionary forces. An improved understanding of the genetic basis of local adaptation can inform about the evolutionary processes in populations and is of major importance because of its relevance to altered selection pressures due to climate change. So far, most insights have been gained by studying model organisms, but our understanding about the genetic basis of local adaptation in wild populations of species with little genomic resources is still limited. With the work presented in this thesis I therefore set out to provide insights into the genetic basis of local adaptation in populations of two voles species: the common vole (Microtus arvalis) and the bank vole (Myodes glareolus). Both voles species are small mammals, they have a high evolutionary potential compared to their dispersal capabilities and are thus likely to show genetic responses to local conditions, moreover, they have a wide distribution in which they experience a broad range of different environmental conditions, this makes them an ideal species to study local adaptation. The first study focused on producing a novel mitochondrial genome to facilitate further research in M. arvalis. To this end, I generated the first mitochondrial genome of M. arvalis using shotgun sequencing and an iterative mapping approach. This was subsequently used in a phylogenetic analysis that produced novel insights into the phylogenetic relationships of the Arvicolinae. The following two studies then focused on the genetic basis of local adaptation using ddRAD-sequencing data and genome scan methods. The first of these involved sequencing the genomic DNA of individuals from three low-altitude and three high-altitude M. arvalis study sites in the Swiss Alps. High-altitude environments with their low temperatures and low levels of oxygen (hypoxia) pose considerable challenges for small mammals. With their small body size and proportional large body surface they have to sustain high rates of aerobic metabolism to support thermogenesis and locomotion, which can be restricted with only limited levels of oxygen available. To generate insights into high-altitude adaptation I identified a large number of single nucleotide polymorphisms (SNPs). These data were first used to identify high levels of differentiation between study sites and a clear pattern of population structure, in line with a signal of isolation by distance. Using genome scan methods, I then identified signals of selection associated with differences in altitude in genes with functions related to oxygen transport into tissue and genes related to aerobic metabolic pathways. This indicates that hypoxia is an important selection pressure driving local adaptation at high altitude in M. arvalis. A number of these genes were linked with high-altitude adaptation in other species before, which lead to the suggestion that high-altitude populations of several species have evolved in a similar manner as a response to the unique conditions at high altitude The next study also involved the genetic basis of local adaptation, here I provided insights into climate-related adaptation in M. glareolus across its European distribution. Climate is an important environmental factor affecting the physiology of all organisms. In this study I identified a large number of SNPs in individuals from twelve M. glareolus populations distributed across Europe. I used these, to first establish that populations are highly differentiated and found a strong pattern of population structure with signal of isolation by distance. I then employed genome scan methods to identify candidate loci showing signals of selection associated with climate, with a particular emphasis on polygenic loci. A multivariate analysis was used to determine that temperature was the most important climate variable responsible for adaptive genetic variation among all variables tested. By using novel methods and genome annotation of related species I identified the function of genes of candidate loci. This showed that genes under selection have functions related to energy homeostasis and immune processes. Suggesting that M. glareolus populations have evolved in response to local temperature and specific local pathogenic selection pressures. The studies presented in this thesis provide evidence for the genetic basis of local adaptation in two vole species across different environmental gradients, suggesting that the identified genes are involved in local adaptation. This demonstrates that with the help of novel methods the study of wild populations, which often have little genomic resources available, can provide unique insights into evolutionary processes. N2 - Ein Schwerpunkt der Evolutionsbiologie besteht darin, zu verstehen, wie sich Organismen an ihre lokale Umgebung anpassen. Lokale Anpassung tritt ein, wenn die Kräfte der divergierenden natürlichen Selektion im Vergleich zu anderen evolutionären Kräften stark genug sind. Ein verbessertes Verständnis der genetischen Grundlagen der lokalen Anpassung kann Informationen über die Evolutionsprozesse in Populationen liefern und ist durch seine Relevanz für durch den Klimawandel bedingte veränderte Selektionsdrücke von großer Bedeutung. Bisher wurden die meisten Erkenntnisse durch Untersuchungen an Modellorganismen gewonnen. Jedoch ist das Verständnis der genetischen Grundlagen der lokalen Anpassung in Wildpopulationen von Arten mit geringen genomischen Ressourcen noch immer begrenzt. Mit den in dieser Doktorarbeit vorgestellten Untersuchungen war es daher mein Ziel, Einblicke in die genetischen Grundlagen der lokalen Anpassung in Populationen von zwei Wühlmausarten zu geben: der Feldmaus (Microtus arvalis) und der Rötelmaus (Myodes glareolus). Bei beiden handelt es sich um kleine Säugetiere mit einem, im Vergleich zu ihrer Ausbreitungsfähigkeit, hohen Evolutionspotential. Daher ist anzunehmen, dass sie genetische Reaktionen auf lokale Bedingungen zeigen. Hinzu kommt, dass sie aufgrund ihrer großen Verbreitung ein großes Spektrum an verschiedenen Umweltbedingungen erfahren, was sie zu einer idealen Spezies, für die Untersuchung lokaler Anpassung macht. Die erste Studie dieser Arbeit konzentrierte sich auf die Erstellung eines bisher nicht verfügbaren mitochondriellen Genoms, um die weitere Forschung an M. arvalis zu erleichtern. Dies wurde mittels Shotgun-Sequenzierung und eines iterativen Kartierungsansatzes erreicht. Anschließend wurde es in einer phylogenetischen Analyse verwendet, die neue Erkenntnisse über die phylogenetischen Beziehungen der Arvicolinae lieferte. Die folgenden zwei Studien konzentrierten sich auf die genetische Basis der lokalen Anpassung unter Verwendung von ddRAD-Sequenzierungsdaten und Genom-Scan-Methoden. Die erste umfasste die Sequenzierung der genomischen DNA von Individuen aus drei M. arvalis-Untersuchungsgebieten in geringer Höhe und drei in großer Höhe in den Schweizer Alpen. Umgebungen in großer Höhe mit niedrigen Temperaturen und niedrigem Sauerstoffgehalt (Hypoxie) stellen kleine Säugetiere vor erhebliche Herausforderungen. Aufgrund ihrer geringen Körpergröße und proportional großen Körperoberfläche müssen sie hohe aerobe Stoffwechselraten aufrechterhalten, um die Thermogenese und Fortbewegung zu unterstützen, die mit begrenzter Sauerstoffverfügbarkeit eingeschränkt sein können. Um Einblicke in die Höhenanpassung zu erhalten, habe ich eine große Anzahl von Einzelnukleotidpolymorphismen (SNPs) identifiziert. Mit Hilfe dieser Daten wurden ein hohes Maß an Differenzierung zwischen den Untersuchungsorten und ein klares Muster der Populationsstruktur zusammen mit einem isolation-by-distance Signal identifiziert. Unter Verwendung von Genom-Scan-Methoden identifizierte ich Selektionssignale in Genen, die mit Höhenunterschieden verbunden werden. Diese besitzen Funktionen, die mit dem Sauerstofftransport in das Gewebe sowie mit aeroben Stoffwechselwegen zusammenhängen. Dies weist darauf hin, dass Hypoxie ein wichtiger Selektionsdruck für die lokale Anpassung in großer Höhe für M. arvalis ist. Einige dieser Gene sind bereits früher mit der Höhenanpassung bei anderen Arten in Verbindung gebracht worden. Dies führte zu der Annahme, dass sich Populationen in großer Höhe lebender verschiedener Arten in Anpassung an die einzigartigen Bedingungen in großer Höhe auf ähnliche Weise entwickelt haben. Die nächste Studie befasste sich ebenfalls mit den genetischen Grundlagen der lokalen Anpassung. Hier stellte ich Erkenntnisse über die klimabedingte Anpassung von M. glareolus in ihrem europäischen Verbreitungsgebiet vor. Das Klima ist ein wichtiger Umweltfaktor, der die Physiologie aller Organismen beeinflusst. In dieser Studie identifizierte ich zehntausende SNPs bei Individuen aus zwölf in ganz Europa verteilten M. glareolus-Populationen. Diese ergaben eine starke Differenzierung der Populationen mit deutlicher Populationsstruktur und einem Signal für isolation-by-distance. Anschließend verwendete ich Genom-Scan-Methoden, um mögliche Loci zu identifizieren, die mit dem Klima verbundene Selektionssignale aufweisen, wobei der Schwerpunkt dabei auf polygenen Loci lag. Eine Multivariaten Analysemethode ermittelte, dass die Temperatur die wichtigste Klimavariable unter allen getesteten Variablen ist, die für die adaptive genetische Variation verantwortlich ist. Mit Hilfe neuartiger Methoden und der Annotation von Genomen verwandter Spezies identifizierte ich die Funktion von Genen an Kandidatenloci. Diese zeigten, dass die unter Selektion stehenden Gene Funktionen im Zusammenhang mit der Energiehomöostase und den Immunprozessen ausüben. Dies wiederum deutet darauf hin, dass sich die Populationen von M. glareolus in Reaktion auf die lokale Temperatur und den spezifischen lokalen Selektionsdruck für Krankheitserreger entwickelt haben. Die in dieser Arbeit vorgestellten Studien liefern Belege für die genetische Basis der lokalen Anpassung auf verschiedene Umweltgradienten in zwei Wühlmausarten. Dies deutet darauf hin, dass die identifizierten Gene an der lokalen Anpassung beteiligt sind. Darüber hinaus zeigt dies, dass Untersuchungen wildlebender Populationen mit geringen genomischen Ressourcen durch den Einsatz neuartiger Methoden einzigartige Einblicke in evolutionäre Prozesse ermöglichen können. T2 - Evolutionäre Klimaanpassungen bei Wühlmausarten KW - Genomics KW - Local adaptation KW - Altitude KW - Climate KW - Microtus arvalis KW - Myodus glareolus KW - Höhe KW - Klima KW - Genomik KW - lokale Anpassung KW - Feldmaus KW - Rötelmaus Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-476807 ER - TY - GEN A1 - Eccard, Jana A1 - Herde, Antje A1 - Schuster, Andrea C. A1 - Liesenjohann, Thilo A1 - Knopp, Tatjana A1 - Heckel, Gerald A1 - Dammhahn, Melanie T1 - Fitness, risk taking, and spatial behavior covary with boldness in experimental vole populations T2 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe N2 - Individuals of a population may vary along a pace-of-life syndrome from highly fecund, short-lived, bold, dispersive “fast” types at one end of the spectrum to less fecund, long-lived, shy, plastic “slow” types at the other end. Risk-taking behavior might mediate the underlying life history trade-off, but empirical evidence supporting this hypothesis is still ambiguous. Using experimentally created populations of common voles (Microtus arvalis)—a species with distinct seasonal life history trajectories—we aimed to test whether individual differences in boldness behavior covary with risk taking, space use, and fitness. We quantified risk taking, space use (via automated tracking), survival, and reproductive success (via genetic parentage analysis) in 8 to 14 experimental, mixed-sex populations of 113 common voles of known boldness type in large grassland enclosures over a significant part of their adult life span and two reproductive events. Populations were assorted to contain extreme boldness types (bold or shy) of both sexes. Bolder individuals took more risks than shyer ones, which did not affect survival. Bolder males but not females produced more offspring than shy conspecifics. Daily home range and core area sizes, based on 95% and 50% Kernel density estimates (20 ± 10 per individual, n = 54 individuals), were highly repeatable over time. Individual space use unfolded differently for sex-boldness type combinations over the course of the experiment. While day ranges decreased for shy females, they increased for bold females and all males. Space use trajectories may, hence, indicate differences in coping styles when confronted with a novel social and physical environment. Thus, interindividual differences in boldness predict risk taking under near-natural conditions and have consequences for fitness in males, which have a higher reproductive potential than females. Given extreme inter- and intra-annual fluctuations in population density in the study species and its short life span, density-dependent fluctuating selection operating differently on the sexes might maintain (co)variation in boldness, risk taking, and pace-of-life. T3 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe - 1258 KW - animal personality KW - automated radio telemetry KW - behavioral type KW - fitness KW - home range KW - Microtus arvalis KW - parentage KW - reproductive success Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-558866 SN - 1866-8372 SP - 1 EP - 15 PB - Universitätsverlag Potsdam CY - Potsdam ER - TY - JOUR A1 - Eccard, Jana A1 - Herde, Antje A1 - Schuster, Andrea C. A1 - Liesenjohann, Thilo A1 - Knopp, Tatjana A1 - Heckel, Gerald A1 - Dammhahn, Melanie T1 - Fitness, risk taking, and spatial behavior covary with boldness in experimental vole populations JF - Ecology And Evolution N2 - Individuals of a population may vary along a pace-of-life syndrome from highly fecund, short-lived, bold, dispersive “fast” types at one end of the spectrum to less fecund, long-lived, shy, plastic “slow” types at the other end. Risk-taking behavior might mediate the underlying life history trade-off, but empirical evidence supporting this hypothesis is still ambiguous. Using experimentally created populations of common voles (Microtus arvalis)—a species with distinct seasonal life history trajectories—we aimed to test whether individual differences in boldness behavior covary with risk taking, space use, and fitness. We quantified risk taking, space use (via automated tracking), survival, and reproductive success (via genetic parentage analysis) in 8 to 14 experimental, mixed-sex populations of 113 common voles of known boldness type in large grassland enclosures over a significant part of their adult life span and two reproductive events. Populations were assorted to contain extreme boldness types (bold or shy) of both sexes. Bolder individuals took more risks than shyer ones, which did not affect survival. Bolder males but not females produced more offspring than shy conspecifics. Daily home range and core area sizes, based on 95% and 50% Kernel density estimates (20 ± 10 per individual, n = 54 individuals), were highly repeatable over time. Individual space use unfolded differently for sex-boldness type combinations over the course of the experiment. While day ranges decreased for shy females, they increased for bold females and all males. Space use trajectories may, hence, indicate differences in coping styles when confronted with a novel social and physical environment. Thus, interindividual differences in boldness predict risk taking under near-natural conditions and have consequences for fitness in males, which have a higher reproductive potential than females. Given extreme inter- and intra-annual fluctuations in population density in the study species and its short life span, density-dependent fluctuating selection operating differently on the sexes might maintain (co)variation in boldness, risk taking, and pace-of-life. KW - animal personality KW - automated radio telemetry KW - behavioral type KW - fitness KW - home range KW - Microtus arvalis KW - parentage KW - reproductive success Y1 - 2022 U6 - https://doi.org/10.1002/ece3.8521 SN - 2045-7758 SP - 1 EP - 15 PB - John Wiley & Sons, Inc. CY - Vereinigte Staaten ER -