TY - JOUR A1 - Hopfenmueller, Sebastian A1 - Steffan-Dewenter, Ingolf A1 - Holzschuh, Andrea T1 - Trait-Specific Responses of Wild Bee Communities to Landscape Composition, Configuration and Local Factors N2 - Land-use intensification and loss of semi-natural habitats have induced a severe decline of bee diversity in agricultural landscapes. Semi-natural habitats like calcareous grasslands are among the most important bee habitats in central Europe, but they are threatened by decreasing habitat area and quality, and by homogenization of the surrounding landscape affecting both landscape composition and configuration. In this study we tested the importance of habitat area, quality and connectivity as well as landscape composition and configuration on wild bees in calcareous grasslands. We made detailed trait-specific analyses as bees with different traits might differ in their response to the tested factors. Species richness and abundance of wild bees were surveyed on 23 calcareous grassland patches in Southern Germany with independent gradients in local and landscape factors. Total wild bee richness was positively affected by complex landscape configuration, large habitat area and high habitat quality (i.e. steep slopes). Cuckoo bee richness was positively affected by complex landscape configuration and large habitat area whereas habitat specialists were only affected by the local factors habitat area and habitat quality. Small social generalists were positively influenced by habitat area whereas large social generalists (bumblebees) were positively affected by landscape composition (high percentage of semi-natural habitats). Our results emphasize a strong dependence of habitat specialists on local habitat characteristics, whereas cuckoo bees and bumblebees are more likely affected by the surrounding landscape. We conclude that a combination of large high-quality patches and heterogeneous landscapes maintains high bee species richness and communities with diverse trait composition. Such diverse communities might stabilize pollination services provided to crops and wild plants on local and landscape scales. KW - habitats KW - bees KW - grasslands KW - species diversity KW - biodiversity KW - pollination KW - flowers KW - foraging Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-112872 ER - TY - THES A1 - Nürnberger, Fabian T1 - Timing of colony phenology and foraging activity in honey bees T1 - Zeitliche Koordination von Koloniephänologie und Sammelaktivität bei Honigbienen N2 - 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. N2 - 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. KW - Biene KW - Phänologie KW - Kommunikation KW - Soziale Insekten KW - Apis mellifera KW - foraging KW - brood rearing KW - temperate zones KW - waggle dance KW - hibernation KW - climate change KW - varroa KW - Timing Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-155105 ER - TY - THES A1 - Dornhaus, Anna T1 - The role of communication in the foraging process of social bees T1 - Die Rolle der Kommunikation beim Fouragieren von sozialen Bienen N2 - In the various groups of social bees, different systems of communication about food sources occur. These communication systems are different solutions to a common problem of social insects: efficiently allocating the necessary number of workers first to the task of foraging and second to the most profitable food sources. The solution chosen by each species depends on the particular ecological circumstances as well as the evolutionary history of that species. For example, the outstanding difference between the bumble bee and the honey bee system is that honey bees can communicate the location of profitable food sources to nestmates, which bumble bees cannot. To identify possible selection pressures that could explain this difference, I have quantified the benefits of communicating location in honey bees. I show that these strongly depend on the habitat, and that communicating location might not benefit bees in temperate habitats. This could be due to the differing spatial distributions of resources in different habitats, in particular between temperate and tropical regions. These distributions may be the reason why the mostly temperate-living bumble bees have never evolved a communication system that allows them to transfer information on location of food sources, whereas most tropical social bees (all honey bees and many stingless bees) are able to recruit nestmates to specific points in their foraging range. Nevertheless, I show that in bumble bees the allocation of workers to foraging is also regulated by communication. Successful foragers distribute in the nest a pheromone which alerts other bees to the presence of food. This pheromone stems from a tergite gland, the function of which had not been identified previously. Usage of a pheromone in the nest to alert other individuals to forage has not been described in other social insects, and might constitute a new mode of communicating about food sources. The signal might be modulated depending on the quality of the food source. Bees in the nest sample the nectar that has been brought into the nest. Their decision whether to go out and forage depends not only on the pheromone signal, but also on the quality of the nectar they have sampled. In this way, foraging activity of a bumble bee colony is adjusted to foraging conditions, which means most bees are allocated to foraging only if high-quality food sources are available. In addition, foraging activity is adjusted to the amount of food already stored. In a colony with full honeypots, no new bees are allocated to foraging. These results help us understand how the allocation of workers to the task of food collection is regulated according to external and internal nest conditions in bumble bees. N2 - Innerhalb der sozialen Bienen tritt eine Vielzahl verschiedender Systeme zur Kommunikation über Futterquellen auf. Diese Kommunikationssysteme sind verschiedene Lösungen eines Problems, mit dem alle sozialen Insekten konfrontiert sind: wie lässt sich regulieren, daß die benötigte Anzahl an Arbeiterinnen der Aufgabe des Futtersammelns, und dazu möglichst den besten vorhandenen Futterquellen, zugeteilt wird? Die von einer Art gewählte Lösung hängt von den speziellen ökologischen Rahmenbedingungen, aber auch von der evolutionären Vorgeschichte dieser Art ab. Ein herausragender Unterschied zwischen Honigbienen und Hummeln beispielsweise ist, daß Honigbienen den Ort einer profitablen Futterquelle ihren Nestgenossinnen mitteilen können, was Hummeln nicht tun. Um Selektionsdrücke zu identifizieren, die diesen Unterschied bewirken könnten, habe ich den Nutzen einer solchen Kommunikation quantifiziert. Es zeigt sich, daß dieser Nutzen stark vom Habitat der Bienen abhängt, und daß Kommunikation über den Ort von Futterquellen in temperaten Habitaten unter Umständen keine Vorteile für Bienen bedeutet. Das könnte daran liegen, daß sich die räumliche Verteilung der Ressourcen zwischen Habitaten, und besonders zwischen temperaten Gebieten und den Tropen, unterscheidet. Dieser Umstand könnte der Grund dafür sein, daß die hauptsächlich in temperaten Regionen lebenden Hummeln nie eine Methode zur Kommunikation von Information über den Ort von Futterquellen evolviert haben, während die meisten tropischen sozialen Bienenarten (alle Honigbienen und viele stachellose Bienen) Nestgenossinnen zu bestimmten Orten rekrutieren können. Jedoch stellte sich in meinen Experimenten heraus, daß auch bei Hummeln die Zuordnung von Arbeiterinnen zur Aufgabe des Futtersammelns über Kommunikation reguliert wird. Erfolgreiche Sammlerinnen produzieren ein Pheromon, welches andere Hummeln auf die Präsenz einer Futterquelle aufmerksam macht. Dieses Pheromon stammt aus einer Tergaldrüse am Abdomen, deren Funktion bisher nicht bekannt war. Die Benutzung eines Pheromons zur Kommunikation über Futterquellen im Nest ist von anderen sozialen Insekten bisher nicht bekannt. Das Pheromonsignal wird vermutlich abhängig von der Qualität der Futterquelle moduliert. Hummeln im Nest kosten außerdem den neu eingetragenen Nektar. Ihre Entscheidung auszufliegen und zu sammeln ist sowohl vom Pheromonsignal als auch von der Qualität des von ihnen gekosteten Nektars abhängig. Die Sammelaktivität der Hummelkolonie wird damit an die Sammelbedingungen angepasst – nur wenn profitable Futterquellen vorhanden sind, werden viele Sammlerinnen aktiviert. Zusätzlich hängt die Sammelaktivität von der Vorratssituation im Stock ab. Sind die Honigtöpfe gefüllt, werden keine neuen Arbeiterinnen zum Sammeln aktiviert. Diese Ergebnisse helfen uns zu verstehen, wie bei Hummeln die Anzahl der aktiven Sammlerinnen je nach den Bedingungen innerhalb und außerhalb der Kolonie reguliert wird. KW - Hummel KW - Bienen KW - Kommunikation KW - Nahrungserwerb KW - Evolution KW - Pheromon KW - Schwänzeltanz KW - Evolution KW - Rekrutierung KW - Hummeln KW - Bombus KW - Futtersammeln KW - foraging KW - recruitment KW - evolution KW - bumble bees KW - Bombus KW - waggle dance Y1 - 2002 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-3468 ER - TY - THES A1 - Paul, Jürgen T1 - The Mouthparts of Ants T1 - Die Mundwerkzeuge der Ameisen N2 - Ant mandible movements cover a wide range of forces, velocities and precision. The key to the versatility of mandible functions is the mandible closer muscle. In ants, this muscle is generally composed of distinct muscle fiber types that differ in morphology and contractile properties. Volume proportions of the fiber types are species-specific and correlate with feeding habits. Two biomechanical models explain how the attachment angles are optimized with respect to force and velocity output and how filament-attached fibers help to generate the largest force output from the available head capsule volume. In general, the entire mandible closer muscle is controlled by 10-12 motor neurons, some of which exclusively supply specific muscle fiber groups. Simultaneous recordings of muscle activity and mandible movement reveal that fast movements require rapid contractions of fast muscle fibers. Slow and accurate movements result from the activation of slow muscle fibers. Forceful movements are generated by simultaneous co-activation of all muscle fiber types. For fine control, distinct fiber bundles can be activated independently of each other. Retrograde tracing shows that most dendritic arborizations of the different sets of motor neurons share the same neuropil in the suboesophageal ganglion. In addition, some motor neurons invade specific parts of the neuropil. The labiomaxillary complex of ants is essential for food intake. I investigated the anatomical design of the labiomaxillary complex in various ant species focusing on movement mechanisms. The protraction of the glossa is a non muscular movement. Upon relaxation of the glossa retractor muscles, the glossa protracts elastically. I compared the design of the labiomaxillary complex of ants with that of the honey bee, and suggest an elastic mechanism for glossa protraction in honey bees as well. Ants employ two different techniques for liquid food intake, in which the glossa works either as a passive duct (sucking), or as an up- and downwards moving shovel (licking). For collecting fluids at ad libitum food sources, workers of a given species always use only one of both techniques. The species-specific feeding technique depends on the existence of a well developed crop and on the resulting mode of transporting the fluid food. In order to evaluate the performance of collecting liquids during foraging, I measured fluid intake rates of four ant species adapted to different ecological niches. Fluid intake rate depends on sugar concentration and the associated fluid viscosity, on the species-specific feeding technique, and on the extent of specialization on collecting liquid food. Furthermore, I compared the four ant species in terms of glossa surface characteristics and relative volumes of the muscles that control licking and sucking. Both probably reflect adaptations to the species-specific ecological niche and determine the physiological performance of liquid feeding. Despite species-specific differences, single components of the whole system are closely adjusted to each other according to a general rule. N2 - Ameisenmandibeln führen eine Vielzahl verschiedener Bewegungen bezüglich Kraft, Geschwindigkeit und Präzision aus. Der Schlüssel zu dieser Vielfalt ist der Mandibelschließmuskel. In Ameisen besteht dieser Muskel aus verschiedenen Muskelfasertypen, die sich sowohl morphologisch als auch anhand ihrer kontraktilen Eigenschaften unterscheiden. Die Anteile der Fasertypen am Gesamtvolumen des Mandibelschließers sind artspezifisch und korrelieren mit der für die Art typischen Lebensweise. Zwei biomechanische Modelle erklären, wie die Angriffswinkel der Muskelfasern am Apodem im Hinblick auf Kraft und Geschwindigkeit optimiert werden und wie Filamentfasern dazu beitragen, aus dem vorhandenen Kopfkapselvolumen die größtmögliche Kraft zu entwickeln. Der gesamte Mandibelschließmuskel wird von 10-12 Motoneuronen gesteuert, wovon manche ausschließlich bestimmte Muskelfasergruppen innervieren. Gleichzeitige Aufnahmen von Muskelaktivität und Mandibelbewegung ergeben, daß schnelle Bewegungen rasche Kontraktionen schneller Muskelfasern bedürfen. Langsame und präzise Bewegungen resultieren aus der Aktivierung langsamer Muskelfasern. Kraftvolle Bewegungen werden durch gleichzeitige Aktivierung aller Muskelfasertypen erzeugt. Für die Feinabstimmung können unterschiedliche Muskelfaserbündel unabhängig voneinander aktiviert werden. Retrograde Färbungsexperimente zeigen, daß die meisten dendritischen Verästelungen der verschiedenen Motoneuronen im gleichen Neuropil im Unterschlundganglion verlaufen. Darüberhinaus dringen einige Motoneuronen in jeweils spezifische Bereiche des Neuropils ein. Der Labiomaxillar-Komplex ist für die Nahrungsaufnahme der Ameisen essentiell. Ich untersuchte den Bauplan und die Bewegungsmechanismen des Labiomaxillar-Komplexes bei verschiedenen Ameisenarten. Das Herausklappen der Glossa beruht auf einer nicht durch Muskelkontraktion hervorgerufenen Bewegung. Bei Relaxation der Glossa-Rückziehmuskeln klappt die Glossa infolge elastischer Eigenschaften aus. Ein Vergleich des Bauplans des Labiomaxillar-Komplexes von Ameisen mit dem der Honigbiene legt nahe, daß die Glossa der Honigbiene ebenfalls mittels Elastizität in die exponierte Position gebracht wird. Um flüssige Nahrung aufzunehmen, nutzen Ameisen ihre Glossa entweder als passiven Kanal (Saugen) oder als eine sich auf- und abwärts bewegende Schaufel (Lecken). Während des Sammelns von Flüssigkeiten an ad libitum Futterquellen bedienen sich Arbeiterinnen einer Art stets nur einer von beiden Aufnahmetechniken. Die jeweils artspezifische Nahrungsaufnahmetechnik hängt von dem Vorhandensein eines gut ausgeprägten Kropfes sowie der daraus resultierenden Weise des Nahrungstransportes ab. Um die Leistung der Aufnahme flüssiger Nahrung zu beurteilen, bestimmte ich die Aufnahmeraten vier verschiedener Ameisenarten, die an unterschiedliche ökologische Nischen angepaßt sind. Die Aufnahmerate hängt von der Zuckerkonzentration und der damit verbundenen Viskosität ab, außerdem von der artspezifischen Aufnahmetechnik und dem Grad der Anpassung an das Sammeln flüssiger Nahrung. Darüberhinaus verglich ich die vier Ameisenarten bezüglich der Charakteristika der Glossaoberfläche sowie der relativen Volumina der am Lecken und Saugen beteiligten Muskeln. Beide spiegeln wahrscheinlich Anpassungen an die artspezifische ökologische Nische wieder und bestimmen die physiologischen Leistungen der Aufnahme flüssiger Nahrung. Trotz artspezifischer Unterschiede sind die einzelnen Komponenten des Systems entsprechend einer allgemeineren Regel fein aufeinander abgestimmt. KW - Ameisen KW - Mundgliedmassen KW - Ameisen KW - Insekten KW - Mundwerkzeuge KW - Verhaltensphysiologie KW - Biomechanik KW - Funktionsmorphologie KW - Neurobiologie KW - Muskelfasertypen KW - ants KW - insects KW - mouthparts KW - behavioral physiology KW - biomechanics KW - functional morphology KW - neurobiology KW - muscle fiber types KW - foraging Y1 - 2001 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-1179130 ER - TY - JOUR A1 - Streinzer, Martin A1 - Brockmann, Axel A1 - Nagaraja, Narayanappa A1 - Spaethe, Johannes T1 - Sex and Caste-Specific Variation in Compound Eye Morphology of Five Honeybee Species JF - PLoS ONE N2 - Ranging from dwarfs to giants, the species of honeybees show remarkable differences in body size that have placed evolutionary constrains on the size of sensory organs and the brain. Colonies comprise three adult phenotypes, drones and two female castes, the reproductive queen and sterile workers. The phenotypes differ with respect to tasks and thus selection pressures which additionally constrain the shape of sensory systems. In a first step to explore the variability and interaction between species size-limitations and sex and caste-specific selection pressures in sensory and neural structures in honeybees, we compared eye size, ommatidia number and distribution of facet lens diameters in drones, queens and workers of five species (Apis andreniformis, A. florea, A. dorsata, A. mellifera, A. cerana). In these species, male and female eyes show a consistent sex-specific organization with respect to eye size and regional specialization of facet diameters. Drones possess distinctly enlarged eyes with large dorsal facets. Aside from these general patterns, we found signs of unique adaptations in eyes of A. florea and A. dorsata drones. In both species, drone eyes are disproportionately enlarged. In A. dorsata the increased eye size results from enlarged facets, a likely adaptation to crepuscular mating flights. In contrast, the relative enlargement of A. florea drone eyes results from an increase in ommatidia number, suggesting strong selection for high spatial resolution. Comparison of eye morphology and published mating flight times indicates a correlation between overall light sensitivity and species-specific mating flight times. The correlation suggests an important role of ambient light intensities in the regulation of species-specific mating flight times and the evolution of the visual system. Our study further deepens insights into visual adaptations within the genus Apis and opens up future perspectives for research to better understand the timing mechanisms and sensory physiology of mating related signals. KW - eyes KW - foraging KW - honey bees KW - insect flight KW - physiological parameters KW - sensory systems KW - vision KW - visual system Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-96412 ER - TY - JOUR A1 - Pielström, Steffen A1 - Roces, Flavio T1 - Sequential Soil Transport and Its Influence on the Spatial Organisation of Collective Digging in Leaf-Cutting Ants JF - PLoS ONE N2 - The Chaco leaf-cutting ant Atta vollenweideri (Forel) inhabits large and deep subterranean nests composed of a large number of fungus and refuse chambers. The ants dispose of the excavated soil by forming small pellets that are carried to the surface. For ants in general, the organisation of underground soil transport during nest building remains completely unknown. In the laboratory, we investigated how soil pellets are formed and transported, and whether their occurrence influences the spatial organisation of collective digging. Similar to leaf transport, we discovered size matching between soil pellet mass and carrier mass. Workers observed while digging excavated pellets at a rate of 26 per hour. Each excavator deposited its pellets in an individual cluster, independently of the preferred deposition sites of other excavators. Soil pellets were transported sequentially over 2 m, and the transport involved up to 12 workers belonging to three functionally distinct groups: excavators, several short-distance carriers that dropped the collected pellets after a few centimetres, and long-distance, last carriers that reached the final deposition site. When initiating a new excavation, the proportion of long-distance carriers increased from 18% to 45% within the first five hours, and remained unchanged over more than 20 hours. Accumulated, freshly-excavated pellets significantly influenced the workers' decision where to start digging in a choice experiment. Thus, pellets temporarily accumulated as a result of their sequential transport provide cues that spatially organise collective nest excavation. KW - animal behavior KW - ants KW - confidence interval KW - decision making KW - foraging KW - fungal structure KW - fungi KW - hormone transport Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-96275 ER - TY - JOUR A1 - Mildner, Stephanie A1 - Roces, Flavio T1 - Plasticity of Daily Behavioral Rhythms in Foragers and Nurses of the Ant Camponotus rufipes: Influence of Social Context and Feeding Times JF - PLoS One N2 - Daily activities within an ant colony need precise temporal organization, and an endogenous clock appears to be essential for such timing processes. A clock drives locomotor rhythms in isolated workers in a number of ant species, but its involvement in activities displayed in the social context is unknown. We compared locomotor rhythms in isolated individuals and behavioral rhythms in the social context of workers of the ant Camponotus rufipes. Both forager and nurse workers exhibited circadian rhythms in locomotor activity under constant conditions, indicating the involvement of an endogenous clock. Activity was mostly nocturnal and synchronized with the 12:12h light-dark-cycle. To evaluate whether rhythmicity was maintained in the social context and could be synchronized with non-photic zeitgebers such as feeding times, daily behavioral activities of single workers inside and outside the nest were quantified continuously over 24 hours in 1656 hours of video recordings. Food availability was limited to a short time window either at day or at night, thus mimicking natural conditions of temporally restricted food access. Most foragers showed circadian foraging behavior synchronized with food availability, either at day or nighttime. When isolated thereafter in single locomotor activity monitors, foragers mainly displayed arrhythmicity. Here, high mortality suggested potential stressful effects of the former restriction of food availability. In contrast, nurse workers showed high overall activity levels in the social context and performed their tasks all around the clock with no circadian pattern, likely to meet the needs of the brood. In isolation, the same individuals exhibited in turn strong rhythmic activity and nocturnality. Thus, endogenous activity rhythms were inhibited in the social context, and timing of daily behaviors was flexibly adapted to cope with task demands. As a similar socially-mediated plasticity in circadian rhythms was already shown in honey bees, the temporal organization in C. rufipes and honey bees appear to share similar basic features. KW - honey bees KW - biological locomotion KW - foraging KW - circadian rhythms KW - chronobiology KW - insects KW - nurses KW - ants Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-148010 VL - 12 IS - 1 ER - TY - JOUR A1 - Römer, Daniela A1 - Roces, Flavio T1 - Nest Enlargement in Leaf-Cutting Ants: Relocated Brood and Fungus Trigger the Excavation of New Chambers N2 - During colony growth, leaf-cutting ants enlarge their nests by excavating tunnels and chambers housing their fungus gardens and brood. Workers are expected to excavate new nest chambers at locations across the soil profile that offer suitable environmental conditions for brood and fungus rearing. It is an open question whether new chambers are excavated in advance, or will emerge around brood or fungus initially relocated to a suitable site in a previously-excavated tunnel. In the laboratory, we investigated the mechanisms underlying the excavation of new nest chambers in the leaf-cutting ant Acromyrmex lundi. Specifically, we asked whether workers relocate brood and fungus to suitable nest locations, and to what extent the relocated items trigger the excavation of a nest chamber and influence its shape. When brood and fungus were exposed to unfavorable environmental conditions, either low temperatures or low humidity, both were relocated, but ants clearly preferred to relocate the brood first. Workers relocated fungus to places containing brood, demonstrating that subsequent fungus relocation spatially follows the brood deposition. In addition, more ants aggregated at sites containing brood. When presented with a choice between two otherwise identical digging sites, but one containing brood, ants' excavation activity was higher at this site, and the shape of the excavated cavity was more rounded and chamber-like. The presence of fungus also led to the excavation of rounder shapes, with higher excavation activity at the site that also contained brood. We argue that during colony growth, workers preferentially relocate brood to suitable locations along a tunnel, and that relocated brood spatially guides fungus relocation and leads to increased digging activity around them. We suggest that nest chambers are not excavated in advance, but emerge through a self-organized process resulting from the aggregation of workers and their density-dependent digging behavior around the relocated brood and fungus. KW - fungi KW - ants KW - fungal structure KW - fungal pathogens KW - foraging KW - humidity KW - pupae KW - fungal diseases Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-112860 ER - TY - JOUR A1 - Schilcher, Felix A1 - Hilsmann, Lioba A1 - Rauscher, Lisa A1 - Değirmenci, Laura A1 - Krischke, Markus A1 - Krischke, Beate A1 - Ankenbrand, Markus A1 - Rutschmann, Benjamin A1 - Mueller, Martin J. A1 - Steffan-Dewenter, Ingolf A1 - Scheiner, Ricarda T1 - In vitro rearing changes social task performance and physiology in honeybees JF - Insects N2 - In vitro rearing of honeybee larvae is an established method that enables exact control and monitoring of developmental factors and allows controlled application of pesticides or pathogens. However, only a few studies have investigated how the rearing method itself affects the behavior of the resulting adult honeybees. We raised honeybees in vitro according to a standardized protocol: marking the emerging honeybees individually and inserting them into established colonies. Subsequently, we investigated the behavioral performance of nurse bees and foragers and quantified the physiological factors underlying the social organization. Adult honeybees raised in vitro differed from naturally reared honeybees in their probability of performing social tasks. Further, in vitro-reared bees foraged for a shorter duration in their life and performed fewer foraging trips. Nursing behavior appeared to be unaffected by rearing condition. Weight was also unaffected by rearing condition. Interestingly, juvenile hormone titers, which normally increase strongly around the time when a honeybee becomes a forager, were significantly lower in three- and four-week-old in vitro bees. The effects of the rearing environment on individual sucrose responsiveness and lipid levels were rather minor. These data suggest that larval rearing conditions can affect the task performance and physiology of adult bees despite equal weight, pointing to an important role of the colony environment for these factors. Our observations of behavior and metabolic pathways offer important novel insight into how the rearing environment affects adult honeybees. KW - honeybee KW - artificial rearing KW - behavior KW - in vitro KW - juvenile hormone KW - triglycerides KW - PER KW - foraging KW - nursing Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-252305 SN - 2075-4450 VL - 13 IS - 1 ER - TY - JOUR A1 - Danner, Nadja A1 - Keller, Alexander A1 - Härtel, Stephan A1 - Steffan-Dewenter, Ingolf T1 - Honey bee foraging ecology: Season but not landscape diversity shapes the amount and diversity of collected pollen JF - PLoS ONE N2 - The availability of pollen in agricultural landscapes is essential for the successful growth and reproduction of honey bee colonies (Apis mellifera L.). The quantity and diversity of collected pollen can influence the growth and health of honey bee colonies, but little is known about the influence of landscape structure on pollen diet. In a field experiment, we rotated 16 honey bee colonies across 16 agricultural landscapes, used traps to collect samples of collected pollen and observed intra-colonial dance communication to gain information about foraging distances. DNA metabarcoding was applied to analyze mixed pollen samples. Neither the amount of collected pollen nor pollen diversity was related to landscape diversity. However, we found a strong seasonal variation in the amount and diversity of collected pollen in all sites independent of landscape diversity. The observed increase in foraging distances with decreasing landscape diversity suggests that honey bees compensated for lower landscape diversity by increasing their pollen foraging range in order to maintain pollen amount and diversity. Our results underscore the importance of a diverse pollen diet for honey bee colonies. Agri-environmental schemes aiming to support pollinators should focus on possible spatial and temporal gaps in pollen availability and diversity in agricultural landscapes. KW - honey bees KW - pollen KW - season KW - foraging Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-170424 VL - 12 IS - 8 ER -