14 research outputs found

    Analysis of the dust evolution in the circumstellar disks of TTauri stars

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    We present a compositional analysis of 8-13um spectra of 32 young stellar objects (YSOs). Our sample consists of 5 intermediate-mass stars and 27 low-mass stars. While the spectra and first scientific results have already been published by Przygodda et al. (2003) and Kessler-Silacci et al. (2004) we perform a more detailed analysis of the 10um silicate feature. In our analysis we assume that this emission feature can be represented by a linear superposition of the wavelength-dependent opacity κabs(λ)\kappa_{\rm abs}(\lambda) describing the optical properties of silicate grains with different chemical composition, structure, and grain size. The determination of an adequate fitting equation is another goal of this study. Using a restricted number of fitting parameters we investigate which silicate species are necessary for the compositional fitting. Particles with radii of 0.1um- and 1.5um consisting of amorphous olivine and pyroxene, forsterite, enstatite, and quartz have been considered. Only compact, homogeneous dust grains have been used in the presented fitting procedures. In this context we show that acceptable fitting results can also be achieved if emission properties of porous silicate grains are considered instead. Although some previous studies give reasons for the similarity between the dust in circumstellar disks of TTauri stars and Herbig Ae/Be stars, a quantitative comparison has been missing, so far. Therefore, we conclude with a discussion of the results of a 10um spectroscopic survey of van Boekel et al. (2005) who focus on Herbig Ae/Be stars, the higher mass counterparts of T Tauri stars and draw comparisons to this and other studies. We find that the results of our study of T Tauri systems partly agree with previous studies of Herbig Ae/Be stars.Comment: 17 pages, 6 figure

    Zeitliche Koordination von Koloniephänologie und Sammelaktivität bei Honigbienen

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    I. Timing is a crucial feature in organisms that live within a variable and changing environment. Complex mechanisms to measure time are wide-spread and were shown to exist in many taxa. These mechanisms are expected to provide fitness benefits by enabling organisms to anticipate environmental changes and adapt accordingly. However, very few studies have addressed the adaptive value of proper timing. The objective of this PhD-project was to investigate mechanisms and fitness consequences of timing decisions concerning colony phenology and foraging activity in the honey bee (Apis mellifera), a social insect species with a high degree of social organization and one of the most important pollinators of wild plants and crops. In chapter II, a study is presented that aimed to identify the consequences of disrupted synchrony between colony phenology and the local environment by manipulating the timing of brood onset after hibernation. In a follow-up experiment, the importance of environmental factors for the timing of brood onset was investigated to assess the potential of climate change to disrupt synchronization of colony phenology (Chapter III). Chapter IV aimed to prove for the first time that honey bees can use interval time-place learning to improve foraging activity in a variable environment. Chapter V investigates the fitness benefits of information exchange between nest mates via waggle dance communication about a resource environment that is heterogeneous in space and time. II. In the study presented in chapter II, the importance of the timing of brood onset after hibernation as critical point in honey bee colony phenology in temperate zones was investigated. Honey bee colonies were overwintered at two climatically different sites. By translocating colonies from each site to the other in late winter, timing of brood onset was manipulated and consequently colony phenology was desynchronized with the local environment. Delaying colony phenology in respect to the local environment decreased the capability of colonies to exploit the abundant spring bloom. Early brood onset, on the other hand, increased the loads of the brood parasite Varroa destructor later in the season with negative impact on colony worker population size. This indicates a timing related trade-off and illustrates the importance of investigating effects of climate change on complex multi-trophic systems. It can be concluded that timing of brood onset in honey bees is an important fitness relevant step for colony phenology that is highly sensitive to climatic conditions in late winter. Further, phenology shifts and mismatches driven by climate change can have severe fitness consequences. III. In chapter III, I assess the importance of the environmental factors ambient temperature and photoperiod as well as elapsed time on the timing of brood onset. Twenty-four hibernating honey bee colonies were placed into environmental chambers and allocated to different combinations of two temperature regimes and three different light regimes. Brood onset was identified non-invasively by tracking comb temperature within the winter cluster. The experiment revealed that ambient temperature plays a major role in the timing of brood onset, but the response of honey bee colonies to temperature increases is modified by photoperiod. Further, the data indicate the involvement of an internal clock. I conclude that the timing of brood onset is complex but probably highly susceptible to climate change and especially spells of warm weather in winter. IV. In chapter IV, it was examined if honey bees are capable of interval time-place learning and if this ability improves foraging efficiency in a dynamic resource environment. In a field experiment with artificial feeders, foragers were able to learn time intervals and use this ability to anticipate time periods during which feeders were active. Further, interval time-place learning enabled foragers to increase nectar uptake rates. It was concluded that interval time-place learning can help honey bee foragers to adapt to the complex and variable temporal patterns of floral resource environments. V. The study presented in chapter V identified the importance of the honey bee waggle dance communication for the spatiotemporal coordination of honey bee foraging activity in resource environments that can vary from day to day. Consequences of disrupting the instructional component of honey bee dance communication were investigated in eight temperate zone landscapes with different levels of spatiotemporal complexity. While nectar uptake of colonies was not affected, waggle dance communication significantly benefitted pollen harvest irrespective of landscape complexity. I suggest that this is explained by the fact that honey bees prefer to forage pollen in semi-natural habitats, which provide diverse resource species but are sparse and presumably hard to find in intensively managed agricultural landscapes. I conclude that waggle dance communication helps to ensure a sufficient and diverse pollen diet which is crucial for honey bee colony health. VI. In my PhD-project, I could show that honey bee colonies are able to adapt their activities to a seasonally and daily changing environment, which affects resource uptake, colony development, colony health and ultimately colony fitness. Ongoing global change, however, puts timing in honey bee colonies at risk. Climate change has the potential to cause mismatches with the local resource environment. Intensivation of agricultural management with decreased resource diversity and short resource peaks in spring followed by distinctive gaps increases the probability of mismatches. Even the highly efficient foraging system of honey bees might not ensure a sufficiently diverse and healthy diet in such an environment. The global introduction of the parasitic mite V. destructor and the increased exposure to pesticides in intensively managed landscapes further degrades honey bee colony health. This might lead to reduced cognitive capabilities in workers and impact the communication and social organization in colonies, thereby undermining the ability of honey bee colonies to adapt to their environment.I. Zeitliche Koordination ist äußerst wichtig für Organismen, die in einer variablen und sich wandelnden Umwelt leben. Komplexe Mechanismen, die das Messen von Zeit ermöglichen, sind weit verbreitet und wurden bei vielen Taxa aufgezeigt. Es wird generell angenommen, dass diese Mechanismen Fitnessvorteile verschaffen, indem sie es Organismen ermöglichen, Umweltveränderungen vorherzusehen und sich entsprechen anzupassen. Allerdings gibt es bisher nur sehr wenige Studien zum adaptiven Wert einer guten zeitlichen Koordination. Ziel dieses Dissertations-Projekts war es, Mechanismen der zeitlichen Koordination bei Honigbienen (Apis mellifera) zu erforschen und deren Bedeutung für die Fitness des Honigbienenvolks zu identifizieren. In Kapitel II präsentiere ich meine Studie über die Konsequenzen eines falsch gewählten Zeitpunkts für den Brutbeginn am Ende des Winters und der daraus folgenden gestörten Synchronisation zwischen der Phänologie von Honigbienenvölkern und der lokalen Umwelt. In einem Folgeexperiment wurde die Bedeutung von Umweltfaktoren für das Timing des Brutbeginns untersucht (Kapitel III). Die Studie in Kapitel IV zielt darauf ab, erstmalig den Beweis zu erbringen, dass Honigbienen das „Intervall time-place learning“, d.h. die Fähigkeit, Zeitintervalle zwischen Ereignissen zu lernen und mit deren räumlichen Lage zu assoziieren, beherrschen und, dass diese Fähigkeit beim Sammeln von Ressourcen vorteilhaft ist. Kapitel V untersucht die Fitnessvorteile, die aus dem Austausch von Informationen über ein raumzeitlich heterogenes Ressourcenumfeld zwischen Stockgenossinnen mit Hilfe des Schwänzeltanzes gezogen werden. II. In der Studie, die in Kapitel II präsentiert wird, wurde die Bedeutung des Brutbeginns als entscheidender Punkt für die Phänologie von Honigbienenvölkern in den gemäßigten Breiten untersucht. Honigbienenvölker wurden an zwei klimatisch unterschiedlichen Standorten überwintert. Indem ein Teil der Völker im Spätwinter zwischen den Standorten ausgetauscht wurde, wurde deren Brutbeginn manipuliert und dadurch die Phänologie bezüglich der lokalen Umwelt desynchronisiert. Das verzögern der Phänologie der Völker verminderte deren Fähigkeit die üppige Frühjahrsblüte zu nutzen. Ein früher Brutbeginn andererseits erhöhte die Belastung der Völker durch den Brutparasiten Varroa destructor im Verlauf der Saison, was sich negativ auf die Menge der Arbeiterinnen im Volk auswirkte. Es gibt also entscheidende gegensätzlich wirkende Faktoren, die den optimalen Zeitpunkt des Brutbeginns bestimmen. Die Studie zeigt zudem warum es wichtig ist, die möglichen Folgen des Klimawandels in einem multitrophischen System zu betrachten statt sich auf einfache Interaktionen zu beschränken. Man kann allgemein folgern, dass das Timing des Brutbeginns einen bedeutenden fitnessrelevanten Schritt in der Phänologie von Honigbienenvölkern darstellt, der stark von klimatischen Bedingungen im Spätwinter beeinflusst wird. Verschiebungen und Fehlanpassungen des Brutbeginns, und damit der Phänologie, durch den Klimawandel können ernsthafte negative Konsequenzen für die Fitness von Honigbienenvölkern haben. III. In Kapitel III beleuchte ich die Bedeutung der Umweltfaktoren Umgebungstemperatur und Photoperiode sowie der verstrichenen Zeit auf das Timing des Brutbeginns. Vierundzwanzig überwinternde Honigbienenvölker wurden in Klimakammern untergebracht und auf sechs unterschiedliche Kombinationen von Temperatur- und Lichtregimes verteilt. Der Brutbeginn wurde nicht-invasiv über den Temperaturverlauf auf der Wabe innerhalb der Wintertraube festgestellt. Das Experiment hat gezeigt, dass die Umgebungstemperatur eine entscheidende Rolle beim Timing des Brutbeginns spielt. Allerdings wurde die Reaktion der Völker auf einen Temperaturanstieg vom jeweils vorherrschenden Lichtregime beeinflusst. Zudem deuten die Daten auf die Beteiligung einer inneren Uhr hin. Ich folgere, dass das Timing des Brutbeginns durch ein komplexes System geregelt wird, das wahrscheinlich anfällig für Einflüsse durch den Klimawandel und insbesondere durch Warmwetterphasen im Winter ist. IV. In Kapitel IV meiner Dissertation wird eine Studie präsentiert, die untersucht ob Bienen die Befähigung zum „Intervall time-place learning“ besitzen und ob diese Fähigkeit die Sammeleffizienz in einem dynamischen Ressourcenumfeld verbessert. In einer Feldstudie mit künstlichen Futterquellen zeigten Sammelbienen, dass sie in der Lage waren, Zeitintervalle zu lernen und das Wissen zu nutzen, um die Zeiten vorherzusehen zu denen die Futterquellen aktiv waren. Dieses Lernverhalten ermöglichte es den Sammelbienen, ihre Nektaraufnahmerate zu steigern. Es wurde gefolgert, dass „Intervall time-place learning“ Sammelbienen dabei helfen kann, sich in einem Blühressourcenumfeld mit komplexen und variablen Zeitmustern zurechtzufinden. V. Diese Studie, die in Kapitel V präsentiert wird, untersuchte die Bedeutung der Schwänzeltanzkommunikation der Honigbienen für die raumzeitliche Koordination der Sammelaktivität des Volkes innerhalb eines Ressourcenumfelds, das täglich variieren kann. Die Folgen der Störung der instruktiven Komponenten des Schwänzeltanzes wurden in acht unterschiedlich komplex strukturierten Landschaften innerhalb der gemäßigten Breiten ermessen. Während kein Einfluss auf den Nektarsammelerfolg festgestellt werden konnte, wurde jedoch gezeigt, dass der Pollensammelerfolg, unabhängig von der raumzeitlichen Komplexität der Landschaft, stark von der Schwänzeltanzkommunikation profitiert. Der Grund dafür liegt vermutlich darin, dass Honigbienen vorzugsweise Pollen in halbnatürlichen Habitaten sammeln, die eine hohe Ressourcenvielfalt bieten, aber in intensiv agrarwirtschaftlich genutzten Landschaften eher selten und relativ schwer zu finden sind. Die Studie lässt schließen, dass die Schwänzeltanzkommunikation dabei hilft, eine ausreichende und diverse Pollenernährung zu gewährleisten und damit eine große Rolle für die Gesundheit von Honigbienenvölkern spielt. VI. Ich konnte in meinem Dissertationsprojekt zeigen, dass Honigbienen in der Lage sind ihre Aktivitäten an eine sich jahreszeitlich und täglich verändernde Umwelt anzupassen. Eine gute zeitliche Koordination hat Einfluss auf Sammelerfolg, Volksentwicklung, Gesundheit und letztlich auf die Fitness des Volkes. Allerdings gefährdet der voranschreitende globale Wandel die zeitliche Koordination der Honigbienenvölker. Der Klimawandel hat das Potenzial, zeitliche Anpassungen an die lokale Umwelt zu stören. Die Intensivierung der Landwirtschaft und der damit einhergehende Verlust von Pflanzenvielfalt sowie die kurzen Zeiträume von extrem hohem Ressourcenangebot, gefolgt von einer ausgeprägten Blühlücke, erhöht die Wahrscheinlichkeit, dass zeitlich Fehlanpassungen auftreten. In einer derartigen Umwelt könnte selbst das höchst effiziente Ressourcensammelsystem der Honigbienen nicht mehr genügen, um eine ausreichende, vielfältige und gesunde Ernährung zu gewährleisten. Die globale Verbreitung der parasitischen Varroamilbe durch den Menschen und die erhöhte Belastung durch Pestizide verschlechtert zusätzlich den Gesundheitszustand der Honigbienen. Das wiederum kann sich negativ auf das Lernvermögen und des Weiteren auf die Kommunikation und soziale Organisation der Völker auswirken und dadurch deren Fähigkeit, sich an eine veränderliche Umwelt anzupassen unterwandern

    The influence of temperature and photoperiod on the timing of brood onset in hibernating honey bee colonies

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    In order to save resources, honey bee (Apis mellifera) colonies in the temperate zones stop brood rearing during winter. Brood rearing is resumed in late winter to build up a sufficient worker force that allows to exploit floral resources in upcoming spring. The timing of brood onset in hibernating colonies is crucial and a premature brood onset could lead to an early depletion of energy reservoirs. However, the mechanisms underlying the timing of brood onset and potential risks of mistiming in the course of ongoing climate change are not well understood. To assess the relative importance of ambient temperature and photoperiod as potential regulating factors for brood rearing activity in hibernating colonies, we overwintered 24 honey bee colonies within environmental chambers. The colonies were assigned to two different temperature treatments and three different photoperiod treatments to disentangle the individual and interacting effects of temperature and photoperiod. Tracking in-hive temperature as indicator for brood rearing activity revealed that increasing ambient temperature triggered brood onset. Under cold conditions, photoperiod alone did not affect brood onset, but the light regime altered the impact of higher ambient temperature on brood rearing activity. Further the number of brood rearing colonies increased with elapsed time which suggests the involvement of an internal clock. We conclude that timing of brood onset in late winter is mainly driven by temperature but modulated by photoperiod. Climate warming might change the interplay of these factors and result in mismatches of brood phenology and environmental conditions

    Combined effects of waggle dance communication and landscape heterogeneity on nectar and pollen uptake in honey bee colonies

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    The instructive component of waggle dance communication has been shown to increase resource uptake of Apis mellifera colonies in highly heterogeneous resource environments, but an assessment of its relevance in temperate landscapes with different levels of resource heterogeneity is currently lacking. We hypothesized that the advertisement of resource locations via dance communication would be most relevant in highly heterogeneous landscapes with large spatial variation of floral resources. To test our hypothesis, we placed 24 Apis mellifera colonies with either disrupted or unimpaired instructive component of dance communication in eight Central European agricultural landscapes that differed in heterogeneity and resource availability. We monitored colony weight change and pollen harvest as measure of foraging success. Dance disruption did not significantly alter colony weight change, but decreased pollen harvest compared to the communicating colonies by 40%. There was no general effect of resource availability on nectar or pollen foraging success, but the effect of landscape heterogeneity on nectar uptake was stronger when resource availability was high. In contrast to our hypothesis, the effects of disrupted bee communication on nectar and pollen foraging success were not stronger in landscapes with heterogeneous compared to homogenous resource environments. Our results indicate that in temperate regions intra-colonial communication of resource locations benefits pollen foraging more than nectar foraging, irrespective of landscape heterogeneity. We conclude that the so far largely unexplored role of dance communication in pollen foraging requires further consideration as pollen is a crucial resource for colony development and health

    ATP-AgriLandLab: a tool for Analysis of Transformation Processes within Landscape Labs

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    Agriculture is one of the main drivers of biodiversity loss. Several studies concluded that minor changes within the current framework conditions would not be enough to solve the problem, a societal transformation is needed (IPBES, 2019). Transformation means fundamental changes in structural, functional, relational, and cognitive aspects of socio-technical-ecological systems that lead to new patterns of interactions and outcomes (Patterson et al., 2017). several projects, initiatives, and innovative research strategies are being developed to transform agriculture systems, however, how to monitor (for reporting) and analyse (for learning) transformative performance of these initiatives is still unclear. The aim of this document is to present a concept to analyse and monitor the level of transformative change on Agriculture within Landscape Laboratories oriented to enhance insect biodiversity in Germany. The concept “ATP-AgriLandLab” (Analysis of Transformation Processes within Agriculture Landscape Laboratories) is based on theoretical frameworks of transformation and transdisciplinary research combined with cases studies, used to identify, and summarize key elements of transformative change. ATP-AgriLandLab is based on the three dimensions of transformative change: changes in the way of thinking, acting, and organizing, where a set of components are linked to each dimension and are used to describe, monitor, and evaluate the performance of transformation processes. Components as technological and social innovations, social values, knowledge, social inclusion, and natural resources management are proposed to monitoring outputs and outcomes of process of change, meanwhile, components as dynamic, flexibility, timing, transparency, and communication allows to monitor the behaviour of the process on-going. This concept seeks to provide a methodology to facilitate the understanding and evaluation of complexity of transformation processes accessible to researchers, practitioners, and advisory agents, working within a Landscape Laboratories in agricultural sector

    Répartition spatiale du risque apicole lié à Vespa velutina en France et en Allemagne

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    International audienceThe Yellow-legged hornet (Vespa velutina nigrithorax) was accidentally introduced into south-western of France in 2004 and rapidly spread throughout France and neighbouring countries. This insect predator hunts honey bees leading to a hornetmediated beekeeping risk (HBR) with potential mortality of honey bee colonies and important economic costs. However, the spatial distribution of HBR is not yet assessed and is urgently required to formulate suitable management plans in Western Europe. We conducted a two-year citizen science survey in France and Germany to assess the spatial distribution of (1) the hornet and (2) HBR, and to (3) determine the environmental factors involved. A total of 1678 beekeepers participated in the survey. As expected, the hornet was established throughout the French territory, and was mainly detected near the French border in Germany. We found that HBR was substantially lower in Germany than in France. Temperature had a positive effect on both hornet presence and HBR, whereas distance to the introduction point had a negative effect in both France and Germany. These results suggest that the impact of V. velutina on beekeeping is not homogenous across the invasion range and could be reduced on the eastern front due to the continental climate. Taking into account the spatial variability of HBR could help to formulate regionally adapted management plans to limit the impact of V. velutina on biodiversity, human health and economic sectors

    Effects of temperature and photoperiod on the seasonal timing of Western honey bee colonies and an early spring flowering plant

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    Temperature and photoperiod are important Zeitgebers for plants and pollinators to synchronize growth and reproduction with suitable environmental conditions and their mutualistic interaction partners. Global warming can disturb this temporal synchronization since interacting species may respond differently to new combinations of photoperiod and temperature under future climates, but experimental studies on the potential phenological responses of plants and pollinators are lacking. We simulated current and future combinations of temperature and photoperiod to assess effects on the overwintering and spring phenology of an early flowering plant species (Crocus sieberi) and the Western honey bee (Apis mellifera). We could show that increased mean temperatures in winter and early spring advanced the flowering phenology of C. sieberi and intensified brood rearing activity of A. mellifera but did not advance their brood rearing activity. Flowering phenology of C. sieberi also relied on photoperiod, while brood rearing activity of A. mellifera did not. The results confirm that increases in temperature can induce changes in phenological responses and suggest that photoperiod can also play a critical role in these responses, with currently unknown consequences for real-world ecosystems in a warming climate

    <b>Data from: </b><b>Expansion limits of the Yellow-legged hornet-mediated beekeeping risk in Western Europe</b>

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    This dataset result from the large-scale citizen science program aiming at accurately mapping the distribution of V. velutina in apiaries across France and Germany. Overall, a total of 1697 responses from beekeepers on the presence or absence of V. velutina predating in the apiaries across France (n=1368 responses) and Germany (n=329 responses). The responses were widely distributed throughout France and Germany. The hornet was established throughout the French territory as expected, and mostly detected near the French border in Germany. We found that HBR was substantially lower in Germany than in France. Temperature had a positive effect on both the hornet presence and HBR whereas the distance to the introduction point had a negative effect, both in France and Germany. These results suggest that the expansion of V. velutina in Western Europe could be reduced on the eastern front due to continental climate. The spatial variability in HBR suggests that the impact of V. velutina on beekeeping is not homogenous throughout the invasion range, in particular in Germany. Considering HBR spatial variability could help formulating regionally adapted management plans to limit V. velutina impacts on biodiversity, human health and economic sectors. The data are related to the scientific paper "Requier, F., et al. (under review) Expansion limits of the Yellow-legged hornet-mediated beekeeping risk in Western Europe. NeoBiota ».Data are available as a csv file titled "Requier et al._data Yellow-legged hornet in France and Germany.csv". To keep the data anonymous, we removes the Latitude and Longitude informations. # METADATA#'data.frame':1697 obs. of 8 variables:# ID : Factor variable ; a unique identity for the reponse to the survey# Year : Factor variable ; two factors are available, representing the year when the response was collected, with "2018" for the first year of the survey and "2019" for the second year of the survey # Country : Factor variable ; two factors are available (France and Germany), representing the country name were the response was collected# Presence : Numeric variable; the absence (0) or the presence (1) of V. velutina at the observation point# Number : Numeric variable; the maximum number of hornet individuals observed at the same time predating in front of a beehive# Distance : Numeric variable; the distance (in km) to the introduction site as an euclidean distance in kilometers considering the location of accidental introduction in 2004 in the south-western France in the Lot et Garonne department # Temperature : Numeric variable; the annual ambient mean temperature (in °C) at the observation point# Urban_habitat : Numeric variable; the proportion of urbanized areas around the observation point in an area of 10 km2 around the GPS coordinates </p
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