TY - THES A1 - Thom, Corinna T1 - Dynamics and Communication Structures of Nectar Foraging in Honey Bees (Apis mellifera) T1 - Dynamik und Kommunikation beim Nektarsammeln der Honigbiene N2 - In this thesis, I examined honey bee nectar foraging with emphasis on the communication system. To document how a honey bee colony adjusts its daily nectar foraging effort, I observed a random sample of individually marked workers during the entire day, and then estimated the number and activity of all nectar foragers in the colony. The total number of active nectar foragers in a colony changed frequently between days. Foraging activity did not usually change between days. A honey bee colony adjusts its daily foraging effort by changing the number of its nectar foragers rather than their activity. I tested whether volatiles produced by a foraging colony activated nectar foragers of a non-foraging colony by connecting with a glass tube two colonies. Each colony had access to a different green house. In 50% of all experiments, volatile substances from the foraging colony stimulated nectar foragers of the non-foraging colony to fly to an empty feeder. The results of this study show that honey bees can produce a chemical signal or cue that activates nectar foragers. However, more experiments are needed to establish the significance of the activating volatiles for the foraging communication system. The brief piping signal of nectar foragers inhibits forager recruitment by stopping waggle dances (Nieh 1993, Kirchner 1993). However, I observed that many piping signals (approximately 43%) were produced off the dance floor, a restricted area in the hive where most waggle dances are performed. If the inhibition of waggle dances would be the only function of the brief piping signal, tremble dancers should produce piping signals mainly on the dance floor, where the probability to encounter waggle dancers is highest. To therefore investigate the piping signal in more detail, I experimentally established the foraging context of the brief piping signal, characterized its acoustic properties, and documented for the first time the unique behavior of piping nectar foragers by observing foragers throughout their entire stay in the hive. Piping nectar foragers usually began to tremble dance immediately upon their return into the hive, spent more time in the hive, more time dancing, had longer unloading latencies, and were the only foragers that sometimes unloaded their nectar directly into cells instead of giving it to a nectar receiver bee. Most of the brief piping signals (approximately 99%) were produced by tremble dancers, yet not all tremble dancers (approximately 48%) piped. This suggests that piping and tremble dancing have related, but not identical functions in the foraging system. Thus, the brief piping signals may not only inhibit forager recruitment, but have an additional function both on and off the dance floor. In particular, the piping signal might function 1. to stop the recruitment of additional nectar foragers, and 2. as a modulatory signal to alter the response threshold of signal receivers to the tremble dance. The observation that piping tremble dancers often did not experience long unloading delays before they started to dance gave rise to a question. A forager’s unloading delay provides reliable information about the relative work capacities of nectar foragers and nectar receivers, because each returning forager unloads her nectar to a nectar receiver before she takes off for the next foraging trip. Queuing delays for either foragers or receivers lower foraging efficiency and can be eliminated by recruiting workers to the group in shortage. Short unloading delays indicate to the nectar forager a shortage of foragers and stimulate waggle dancing which recruits nectar foragers. Long unloading delays indicate a shortage of nectar receivers and stimulate tremble dancing which recruits nectar receivers (Seeley 1992, Seeley et al. 1996). Because the short unloading delays of piping tremble dancers indicated that tremble dancing can be elicited by other factors than long unloading delays, I tested whether a hive-external stimulus, the density of foragers at the food source, stimulated tremble dancing directly. The experiments show that tremble dancing can be caused directly by a high density of foragers at the food source and suggest that tremble dancing can be elicited by a decrease of foraging efficiency either inside (e.g. shortage of receiver bees) or outside (e.g. difficulty of loading nectar) the hive. Tremble dancing as a reaction to hive-external stimuli seems to occur under natural conditions and can thus be expected to have some adaptive significance. The results imply that if the hive-external factors that elicit tremble dancing do not indicate a shortage of nectar receiver bees in the hive, the function of the tremble dance may not be restricted to the recruitment of additional nectar receivers, but might be the inhibition or re-organization of nectar foraging. N2 - In meiner Doktorarbeit habe ich die Charakteristika des Nektarsammelns bei Honigbienen mit spezieller Betonung des zugehörigen Kommunikationssytems untersucht. Im Einzelnen habe ich die täglichen Änderungen in der Aktivität und Anzahl der Nektarsammlerinnen einer nicht- manipulierten Kolonie verfolgt, habe getestet, ob Nektarsammlerinnen durch ein chemisches Signal aktiviert werden können, und habe die Auslöser und Charakteristika zweier Signale des Nektarsammelkommunikationssytems, dem kurzen Pipingsignal und dem Zittertanz der Nektarsammlerinnen untersucht. Um die täglichen Änderungen des Sammelaufwandes einer Kolonie zu dokumentieren, habe ich an verschiedenen Tagen die Anzahl und Aktivität (Anzahl Fouragierflüge pro Tag und Biene) der Nektarsammlerinnen einer Kolonie gemessen. Dafür beobachtete ich jeweils den ganzen Tag eine zufällig ausgewählte Gruppe von individuell markierten Arbeiterinnen. Aufgrund der so gewonnen Daten konnte ich die Anzahl und Aktivität aller Nektarsammlerinnen in der Kolonie schätzen. Die Ergebnisse zeigen, dass sich die absolute Anzahl von Nektarsammelerinnen regelmässig von Tag zu Tag änderte wahrscheinlich zurückzuführen auf die täglichen Änderungen im Nektarangebot, während sich die Aktivität der Sammlerinnen gewöhnlich nicht änderte. Die Ergebnisse zeigen, dass eine Arbeiterin eher die Entscheidung trifft zu sammeln oder nicht zu sammeln, statt eine abgestufte Entscheidung über die Anzahl ihrer Sammelflüge. Für eine Honigbienenkolonie bedeutet dies, das ihre Sammeleffizienz stärker durch die Anzahl der Sammlerinnen als durch deren Aktivität reguliert wird. Möglicherweise kann eine vergängliche Nektarquelle besser von vielen Sammlerinnen, die zeitgleich arbeiten, ausgebeutet werden als von weniger Sammlerinnen die zwar ihre Aktivität steigern, aber sequentielle Sammelflüge machen müssen und damit die Quelle vor ihrem Verschwinden nicht vollständig ausbeuten können. Es ist seit langem bekannt, das der Schwänzeltanz der Honigbienen Sammlerinnen aktivieren kann. Ich habe untersucht, ob die flüchtigen Substanzen einer fouragierenden Kolonie die Sammlerinnen einer nicht-fouragierenden Kolonie aktivieren können. Um dies zu testen, verband ich die Eingangsbereiche zweier Kolonien mit einer Glasröhre, so das flüchtige Substanzen von einer zur anderen Kolonie geleitet werden konnten. Jede Kolonie hatte Zugang zu einem separaten Gewächshaus. Während eine der Kolonien gefüttert wurde, wurde die Aktivität der nicht- gefütterten Kolonie gemessen. In 50% der Experimente wurden die Sammlerinnen der Kolonie, die kein Futter zur Verfügung hatte, durch die flüchtige Substanzen aus der fouragierenden Kolonie zu dem Besuch Ihrer leeren Futterstation aktiviert. Die Ergebnisse zeigen damit, dass Honigbienen eine flüchtige Substanz produzieren können, die Sammlerinnen aktiviert. Die Fragen, ob es sich bei dieser Substanz um ein ‘signal’ (speziell für die Situation entwickelt) oder einen ‘cue’ (nicht speziell für die Situtation entwickelt, wirft aber brauchbare Information als Nebenprodukt ab) handelt, sowie die Bedeutung der Substanz für die Sammeleffizienz einer Honigbienekolonie, müssen jedoch noch etabliert werden. Das Pipingsignal der Nektarsammlerinnen stoppt Schwänzeltänze (Nieh 1993, Kirchner 1993). Ich beobachtete, dass viele der kurzen Pipingsignale (ca. 43%) unerwartet nicht auf dem Tanzboden produziert wurden. Die Beobachtungen deuten darauf hin, dass das kurze Pipingsignal nicht nur Schwänzeltänze stopt, sondern auch die Reaktionsschwelle für den Zittertanz senkt. Pipende Zittertänzerinnen fingen sehr frueh nach ihrer Rückehr in den Stock an zu tanzen. Daher untersuchte ich, ob die Zustände an der Futterstelle Zittertänze auslösen kann. Die Experimente zeigen, dass Zittertänze eine direkte Reaktion auf eine hohe Dichte von Sammlerinnen an der Futterstelle sein können. Dies lässt vermuten, dass Zittertänze eine generelle Reaktion sind auf Faktoren, die entweder innerhalb (z.B. durch lange Wartezeit) oder ausserhalb (z.B. durch Schwierigkeiten beim Trinken) des Stockes die Sammeleffizienz senken. Unter natürlichen Umständen scheinen Zittertänze regelmässig eine direkte Reaktion auf Stock-externe Faktoren zu sein, und werden daher einige Bedeutung im Sammelkommunikationssytem haben. Sofern die Stock-externen Faktoren nicht einen Mangel an Nektarabnehmerinnen im Stock anzeigen, könnte es sein, dass der Zittertanz nicht nur Nektarabnehmerinnen rekruitiert, sondern, ähnlich wie die kurzen Pipingsignale der Zittertänzerinnen, der Hemmung oder Re-organisation der Sammelaktivität einer Honigbienen Kolonie dient. KW - Bienen KW - Kommunikation KW - Nahrungserwerb KW - Bienensprache KW - Biene KW - Nektar KW - Sammeln KW - Honigbiene KW - Kommunikation KW - Piping Signal KW - Flexibilität KW - Zittertanz KW - Honeybee KW - Nectar Foraging KW - tremble dance KW - worker piping KW - dynamics Y1 - 2002 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-3601 ER - TY - JOUR A1 - Poethke, Hans J. A1 - Pfenning, Brenda A1 - Hovestadt, Thomas T1 - The relative contribution of individual and kin selection to the evolution of density-dependent dispersal rates N2 - Questions: What are the relative contributions of kin selection and individual selection to the evolution of dispersal rates in fragmented landscapes? How do environmental parameters influence the relative contributions of both evolutionary forces? Features of the model: Individual-based simulation model of a metapopulation. Logistic local growth dynamics and density-dependent dispersal. An optional shuffling algorithm allows the continuous destruction of any genetic structure in the metapopulation. Ranges of key variables: Depending on dispersal mortality (0.05-0.4) and the strength of environmental fluctuations, mean dispersal probability varied between 0.05 and 0.5. Conclusions: For local population sizes of 100 individuals, kin selection alone could account for dispersal probabilities of up to 0.1. It may result in a ten-fold increase of optimal dispersal rates compared with those predicted on the basis of individual selection alone. Such a substantial contribution of kin selection to dispersal is restricted to cases where the overall dispersal probabilities are small (textless 0.1). In the latter case, as much as 30% of the total fitness of dispersing individuals could arise from the increased reproduction of kin left in the natal patch. KW - dispersal rate KW - dynamics KW - environmental correlation KW - evolutionary modelling KW - genetics KW - individual-based model KW - kin competition Y1 - 2007 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-48225 ER - TY - JOUR A1 - Aso, Yoshinori A1 - Herb, Andrea A1 - Ogueta, Maite A1 - Siwanowicz, Igor A1 - Templier, Thomas A1 - Friedrich, Anja B. A1 - Ito, Kei A1 - Scholz, Henrike A1 - Tanimoto, Hiromu T1 - Three Dopamine Pathways Induce Aversive Odor Memories with Different Stability JF - PLoS Genetics N2 - Animals acquire predictive values of sensory stimuli through reinforcement. In the brain of Drosophila melanogaster, activation of two types of dopamine neurons in the PAM and PPL1 clusters has been shown to induce aversive odor memory. Here, we identified the third cell type and characterized aversive memories induced by these dopamine neurons. These three dopamine pathways all project to the mushroom body but terminate in the spatially segregated subdomains. To understand the functional difference of these dopamine pathways in electric shock reinforcement, we blocked each one of them during memory acquisition. We found that all three pathways partially contribute to electric shock memory. Notably, the memories mediated by these neurons differed in temporal stability. Furthermore, combinatorial activation of two of these pathways revealed significant interaction of individual memory components rather than their simple summation. These results cast light on a cellular mechanism by which a noxious event induces different dopamine signals to a single brain structure to synthesize an aversive memory. KW - dynamics KW - serotonin KW - expression KW - melanogaster KW - neurons form KW - olfactory memory KW - long-term-memory KW - drosophila mushroom body KW - sensitization KW - localization Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-130631 VL - 8 IS - 7 ER - TY - JOUR A1 - Klein, Barett Anthony A1 - Stiegler, Martin A1 - Klein, Arno A1 - Tautz, Jürgen T1 - Mapping Sleeping Bees within Their Nest: Spatial and Temporal Analysis of Worker Honey Bee Sleep JF - PLOS ONE N2 - Patterns of behavior within societies have long been visualized and interpreted using maps. Mapping the occurrence of sleep across individuals within a society could offer clues as to functional aspects of sleep. In spite of this, a detailed spatial analysis of sleep has never been conducted on an invertebrate society. We introduce the concept of mapping sleep across an insect society, and provide an empirical example, mapping sleep patterns within colonies of European honey bees (Apis mellifera L.). Honey bees face variables such as temperature and position of resources within their colony's nest that may impact their sleep. We mapped sleep behavior and temperature of worker bees and produced maps of their nest's comb contents as the colony grew and contents changed. By following marked bees, we discovered that individuals slept in many locations, but bees of different worker castes slept in different areas of the nest relative to position of the brood and surrounding temperature. Older worker bees generally slept outside cells, closer to the perimeter of the nest, in colder regions, and away from uncapped brood. Younger worker bees generally slept inside cells and closer to the center of the nest, and spent more time asleep than awake when surrounded by uncapped brood. The average surface temperature of sleeping foragers was lower than the surface temperature of their surroundings, offering a possible indicator of sleep for this caste. We propose mechanisms that could generate caste-dependent sleep patterns and discuss functional significance of these patterns. KW - apis mellifera KW - age polyethism KW - waggle dance KW - colony KW - hive KW - thermoregulation KW - deprivation KW - dynamics KW - rhythms KW - comb Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-115857 SN - 1932-6203 VL - 9 IS - 7 ER - TY - JOUR A1 - Wäldchen, Sina A1 - Lehmann, Julian A1 - Klein, Teresa A1 - van de Linde, Sebastian A1 - Sauer, Markus T1 - Light-induced cell damage in live-cell super-resolution microscopy JF - Scientific Reports N2 - Super-resolution microscopy can unravel previously hidden details of cellular structures but requires high irradiation intensities to use the limited photon budget efficiently. Such high photon densities are likely to induce cellular damage in live-cell experiments. We applied single-molecule localization microscopy conditions and tested the influence of irradiation intensity, illumination-mode, wavelength, light-dose, temperature and fluorescence labeling on the survival probability of different cell lines 20-24 hours after irradiation. In addition, we measured the microtubule growth speed after irradiation. The photo-sensitivity is dramatically increased at lower irradiation wavelength. We observed fixation, plasma membrane permeabilization and cytoskeleton destruction upon irradiation with shorter wavelengths. While cells stand light intensities of similar to 1 kW cm\(^{-2}\) at 640 nm for several minutes, the maximum dose at 405 nm is only similar to 50 J cm\(^{-2}\), emphasizing red fluorophores for live-cell localization microscopy. We also present strategies to minimize phototoxic factors and maximize the cells ability to cope with higher irradiation intensities. KW - optical reconstruction microscopy KW - tag fusion proteins KW - localization microscopy KW - photodynamic therapy KW - diffraction limit KW - illumination microscopy KW - structured illumination KW - fluorescent probes KW - in vitro KW - dynamics Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-145207 VL - 5 IS - 15348 ER -