TY - JOUR A1 - Römer, Daniela A1 - Aguilar, Gonzalo Pacheco A1 - Meyer, Annika A1 - Roces, Flavio T1 - Symbiont demand guides resource supply: leaf-cutting ants preferentially deliver their harvested fragments to undernourished fungus gardens JF - The Science of Nature N2 - Leaf-cutting ants are highly successful herbivores in the Neotropics. They forage large amounts of fresh plant material to nourish a symbiotic fungus that sustains the colony. It is unknown how workers organize the intra-nest distribution of resources, and whether they respond to increasing demands in some fungus gardens by adjusting the amount of delivered resources accordingly. In laboratory experiments, we analyzed the spatial distribution of collected leaf fragments among nest chambers in Acromyrmex ambiguus leaf-cutting ants, and how it changed when one of the fungus gardens experienced undernourishment. Plant fragments were evenly distributed among nest chambers when the fungal symbiont was well nourished. That pattern changed when one of the fungus gardens was undernourished and had a higher leaf demand, resulting in more leaf discs delivered to the undernourished fungus garden over at least 2 days after deprivation. Some ants bypassed nourished gardens to directly deliver their resource to the chamber with higher nutritional demand. We hypothesize that cues arising from that chamber might be used for orientation and/or that informed individuals, presumably stemming from the undernourished chamber, may preferentially orient to them. KW - insect-fungus symbiosis KW - nutrition KW - pheromone trail KW - local cues KW - decision-making KW - decentralized control Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-325080 VL - 109 IS - 3 ER - TY - THES A1 - Rüdenauer, Fabian T1 - Nutrition facts of pollen: nutritional quality and how it affects reception and perception in bees T1 - Nährwertinformationen von Pollen: Nährstoffzusammensetzung und wie diese sich auf Rezeption und Perzeption von Bienen auswirkt N2 - Nutrients belong to the key elements enabling life and influencing an organism’s fitness. The intake of nutrients in the right amounts and ratios can increase fitness; strong deviations from the optimal intake target can decrease fitness. Hence, the ability to assess the nutritional profile of food would benefit animals. To achieve this, they need the according nutrient receptors, the ability to interpret the receptor information via perceptive mechanisms, and the ability to adjust their foraging behavior accordingly. Additionally, eventually existing correlations between the nutrient groups and single nutrient compounds in food could help them to achieve this adjustment. A prominent interaction between food and consumer is the interaction between flowering plants (angiosperms) and animal pollinators. Usually both of the interacting partners benefit from this mutualistic interaction. Plants are pollinated while pollinators get a (most of the times) nutritional reward in form of nectar and/or pollen. As similar interactions between plants and animals seem to have existed even before the emergence of angiosperms, these interactions between insects and angiosperms very likely have co-evolved right from their evolutionary origin. Therefore, insect pollinators with the ability to assess the nutritional profile may have shaped the nutritional profile of plant species depending on them for their reproduction via selection pressure. In Chapter I of this thesis the pollen nutritional profile of many plant species was analyzed in the context of their phylogeny and their dependence on insect pollinators. In addition, correlations between the nutrients were investigated. While the impact of phylogeny on the pollen protein content was little, the mutual outcome of both of the studies included in this chapter is that protein content of pollen is mostly influenced by the plant’s dependence on insect pollinators. Several correlations found between nutrients within and between the nutrient groups could additionally help the pollinators to assess the nutrient profile of pollen. An important prerequisite for this assessment would be that the pollinators are able to differentiate between pollen of different plant species. Therefore, in Chapter II it was investigated whether bees have this ability. Specifically, it was investigated whether honeybees are able to differentiate between pollen of two different, but closely related plant species and whether bumblebees prefer one out of three pollen mixes, when they were fed with only one of them as larvae. Honeybees indeed were able to differentiate between the pollen species and bumblebees preferred one of the pollen mixes to the pollen mix they were fed as larvae, possibly due to its nutritional content. Therefore, the basis for pollen nutrient assessment is given in bees. However, there also was a slight preference for the pollen fed as larvae compared to another non-preferred pollen mix, at least hinting at the retention of larval memory in adult bumblebees. Chapter III looks into nutrient perception of bumblebees more in detail. Here it was shown that they are principally able to perceive amino acids and differentiate between them as well as different concentrations of the same amino acid. However, they do not seem to be able to assess the amino acid content in pollen or do not focus on it, but instead seem to focus on fatty acids, for which they could not only perceive concentration differences, but also were able to differentiate between. These findings were supported by feeding experiments in which the bumblebees did not prefer any of the pollen diets containing less or more amino acids but preferred pollen with less fatty acids. In no choice feeding experiments, bumblebees receiving a diet with high fatty acid content accepted undereating other nutrients instead of overeating fat, leading to increased mortality and the inability to reproduce. Hence, the importance of fat in pollen needs to be looked into further. In conclusion, this thesis shows that the co-evolution of flowering plants and pollinating insects could be even more pronounced than thought before. Insects do not only pressure the plants to produce high quality nectar, but also pressure those plants depending on insect pollination to produce high quality pollen. The reason could be the insects’ ability to receive and perceive certain nutrients, which enables them to forage selectively leading to a higher reproductive success of plants with a pollinator-suitable nutritional pollen profile. N2 - Nährstoffe gehören zu den zentralen Elementen, die das Leben an sich ermöglichen und die Fitness eines Organismus beeinflussen können. Nährstoffaufnahme in den richtigen Mengen und Verhältnissen kann die Fitness verbessern, starke Abweichungen von der optimalen Aufnahme können sie verschlechtern. Deshalb könnten Tiere von der Fähigkeit profitieren das Nährstoffprofil von Nahrung bewerten zu können. Dafür benötigten sie jedoch die passenden Nährstoffrezeptoren, die Fähigkeit die Rezeptorinformationen durch perzeptive Mechanismen zu interpretieren und ihr Sammelverhalten daran anzupassen. Eine zusätzliche Hilfe dabei könnten Korrelationen zwischen sowohl den Nährstoffgruppen als auch einzelnen Nährstoffen bieten. Eine bekannte Interaktion zwischen Nahrung und Konsument ist die zwischen Blühpflanzen (Angiospermen) und tierischen Bestäubern. Normalerweise profitieren beide Interaktionspartner von dieser mutualistischen Interaktion. Pflanzen werden bestäubt, während die Bestäuber eine (zumeist) nahrhafte Belohnung in Form von Nektar und/oder Pollen erhalten. Da ähnliche Interaktionen zwischen Pflanzen und Tieren vermutlich schon vor dem Auftreten der Angiospermen existierten, könnte sich diese Interaktion, im Speziellen mit Insekten, direkt vom evolutiven Startpunkt der Angiospermen aus koevolviert haben. Deshalb ist es möglich, dass Bestäuber mit der Fähigkeit das Nährstoffprofil von Pollen bewerten zu können, dieses bei von ihnen abhängigen Pflanzen durch Selektionsdruck formen konnten. Im Kapitel I dieser Thesis wurde das Nährstoffprofil von Pollen vieler Pflanzenarten im Kontext ihrer Phylogenie und ihrer Abhängigkeit von Insekten als Bestäubern analysiert. Außerdem wurden Korrelationen zwischen den Nährstoffen untersucht. Während die Phylogenie nur einen geringen Einfluss auf den Proteingehalt von Pollen haben könnte, ist der gemeinsame Nenner der beiden Studien in diesem Kapitel, dass der Proteingehalt des Pollens hauptsächlich von der Abhängigkeit der Pflanzen von Bestäubern bestimmt wird. Es wurden zudem einige Korrelationen sowohl in als auch zwischen den Nährstoffgruppen gefunden, die den Bestäubern helfen könnten das Nährstoffprofil von Pollen bewerten zu können. Eine wichtige Grundvoraussetzung für diese Bewertung wäre, dass die Bestäuber überhaupt dazu in der Lage sind zwischen Pollen von unterschiedlichen Pflanzenarten zu unterscheiden. Dies wird in Kapitel II behandelt, in dem untersucht wurde ob Honigbienen in der Lage sind zwischen Pollen zweier nah verwandter Pflanzenarten zu unterscheiden und ob Hummeln eine von drei Pollenmischungen bevorzugen, wenn sie nur mit einer davon als Larve in Kontakt kamen. Honigbienen war es tatsächlich möglich zwischen den Pollenarten zu unterscheiden und Hummeln bevorzugten eine bestimmte Pollenmischung gegenüber der, die sie als Larve erhalten hatten, möglicherweise aufgrund eines vorteilhaften Nährstoffprofils. Die Grundlage zur Nährstoffbewertung scheint bei Bienen also gegeben zu sein. Allerdings hatten die Hummeln auch eine leichte Präferenz für die Pollenmischung, die sie als Larve erhalten hatten gegenüber der dritten, nicht bevorzugten Pollenmischung, was zumindest darauf hindeuten könnte, dass Larvenerinnerungen bei erwachsenen Hummeln erhalten bleiben könnten. Kapitel III beschäftigt sich tiefergehend mit der Nährstoffwahrnehmung von Hummeln. Es wurde gezeigt, dass diese prinzipiell befähigt sind Aminosäuren wahrzunehmen als auch zwischen ihnen und verschiedenen Konzentrationen der gleichen Aminosäure zu unterscheiden. Allerdings scheinen sie entweder nicht in der Lage zu sein oder sich zumindest nicht darauf zu fokussieren den Aminosäuregehalt von Pollen zu bewerten, sondern sich eher auf Fettsäuren zu konzentrieren. Von diesen konnten sie nicht nur Konzentrationsunterschiede feststellen, sondern auch zwischen verschiedenen Fettsäuren im Pollen unterscheiden. Diese Ergebnisse wurden von denen in Fütterungsexperimenten gestützt, in denen die Hummeln gleiche Mengen von Pollen mit mehr oder weniger Aminosäuren aufnahmen, aber Pollen mit weniger Fettsäuren bevorzugten. In Experimenten, in denen die Hummeln keine Wahl hatten, nahmen die Hummeln mit einer Diät, die eine hohe Fettsäurekonzentration hatte, lieber in Kauf, dass sie zu wenig von den anderen Nährstoffen aufnahmen, als zu viel Fett, was zu einer erhöhten Mortalitätsrate und der Unfähigkeit sich zu reproduzieren führte. Deshalb sollten zukünftige Studien sich eingehender mit dem Fettsäuregehalt von Pollen beschäftigen. Zusammenfassend zeigt diese Thesis, dass die Koevolution von Pflanzen und bestäubenden Insekten ausgeprägter sein könnte, als bisher angenommen. Insekten setzen die Pflanzen nicht nur unter Druck qualitativ hochwertigen Nektar zu produzieren, sondern setzen vor allem auch die Pflanzen unter Druck, die von ihrer Bestäubung abhängig sind, qualitativ hochwertigen Pollen zu produzieren. Der Grund dafür könnte die Fähigkeit der Insekten sein, bestimmte Nährstoffe zu rezipieren und perzipieren und dann ihr Sammelverhalten so anzupassen, dass Pflanzen mit einem passenden Nährstoffprofil einen höheren Reproduktionserfolg haben. KW - Pollen KW - bumblebee*s KW - nutrients KW - nutrition KW - pollen KW - reception KW - perception KW - proboscis extension response KW - honeybee*s Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-212548 ER - TY - JOUR A1 - Steijven, Karin A1 - Spaethe, Johannes A1 - Steffan-Dewenter, Ingolf A1 - Härtel, Stephan T1 - Learning performance and brain structure of artificially-reared honey bees fed with different quantities of food JF - PeerJ N2 - Background Artificial rearing of honey bee larvae is an established method which enables to fully standardize the rearing environment and to manipulate the supplied diet to the brood. However, there are no studies which compare learning performance or neuroanatomic differences of artificially-reared (in-lab) bees in comparison with their in-hive reared counterparts. Methods Here we tested how different quantities of food during larval development affect body size, brain morphology and learning ability of adult honey bees. We used in-lab rearing to be able to manipulate the total quantity of food consumed during larval development. After hatching, a subset of the bees was taken for which we made 3D reconstructions of the brains using confocal laser-scanning microscopy. Learning ability and memory formation of the remaining bees was tested in a differential olfactory conditioning experiment. Finally, we evaluated how bees reared with different quantities of artificial diet compared to in-hive reared bees. Results Thorax and head size of in-lab reared honey bees, when fed the standard diet of 160 µl or less, were slightly smaller than hive bees. The brain structure analyses showed that artificially reared bees had smaller mushroom body (MB) lateral calyces than their in-hive counterparts, independently of the quantity of food they received. However, they showed the same total brain size and the same associative learning ability as in-hive reared bees. In terms of mid-term memory, but not early long-term memory, they performed even better than the in-hive control. Discussion We have demonstrated that bees that are reared artificially (according to the Aupinel protocol) and kept in lab-conditions perform the same or even better than their in-hive sisters in an olfactory conditioning experiment even though their lateral calyces were consistently smaller at emergence. The applied combination of experimental manipulation during the larval phase plus subsequent behavioral and neuro-anatomic analyses is a powerful tool for basic and applied honey bee research. KW - nutrition KW - cognition KW - neuroanatomy KW - differential olfactory conditioning KW - mushroom bodies KW - proboscis extension reflex KW - confocal laser scanning microscopy KW - Apis mellifera KW - brain development KW - morphometry Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-170137 VL - 5 IS - e3858 ER - TY - JOUR A1 - Schilcher, Felix A1 - Hilsmann, Lioba A1 - Ankenbrand, Markus J. A1 - Krischke, Markus A1 - Mueller, Martin J. A1 - Steffan-Dewenter, Ingolf A1 - Scheiner, Ricarda T1 - Honeybees are buffered against undernourishment during larval stages JF - Frontiers in Insect Science N2 - The negative impact of juvenile undernourishment on adult behavior has been well reported for vertebrates, but relatively little is known about invertebrates. In honeybees, nutrition has long been known to affect task performance and timing of behavioral transitions. Whether and how a dietary restriction during larval development affects the task performance of adult honeybees is largely unknown. We raised honeybees in-vitro, varying the amount of a standardized diet (150 µl, 160 µl, 180 µl in total). Emerging adults were marked and inserted into established colonies. Behavioral performance of nurse bees and foragers was investigated and physiological factors known to be involved in the regulation of social organization were quantified. Surprisingly, adult honeybees raised under different feeding regimes did not differ in any of the behaviors observed. No differences were observed in physiological parameters apart from weight. Honeybees were lighter when undernourished (150 µl), while they were heavier under the overfed treatment (180 µl) compared to the control group raised under a normal diet (160 µl). These data suggest that dietary restrictions during larval development do not affect task performance or physiology in this social insect despite producing clear effects on adult weight. We speculate that possible effects of larval undernourishment might be compensated during the early period of adult life. KW - nutrition KW - juvenile hormone KW - nurse bees KW - foragers KW - triglycerides KW - undernourishment KW - task allocation Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-304646 SN - 2673-8600 VL - 2 ER - TY - JOUR A1 - Trinkl, Moritz A1 - Kaluza, Benjamin F. A1 - Wallace, Helen A1 - Heard, Tim A. A1 - Keller, Alexander A1 - Leonhardt, Sara D. T1 - Floral Species Richness Correlates with Changes in the Nutritional Quality of Larval Diets in a Stingless Bee JF - Insects N2 - Bees need food of appropriate nutritional quality to maintain their metabolic functions. They largely obtain all required nutrients from floral resources, i.e., pollen and nectar. However, the diversity, composition and nutritional quality of floral resources varies with the surrounding environment and can be strongly altered in human-impacted habitats. We investigated whether differences in plant species richness as found in the surrounding environment correlated with variation in the floral diversity and nutritional quality of larval provisions (i.e., mixtures of pollen, nectar and salivary secretions) composed by the mass-provisioning stingless bee Tetragonula carbonaria (Apidae: Meliponini). We found that the floral diversity of larval provisions increased with increasing plant species richness. The sucrose and fat (total fatty acid) content and the proportion and concentration of the omega-6 fatty acid linoleic acid decreased, whereas the proportion of the omega-3 fatty acid linolenic acid increased with increasing plant species richness. Protein (total amino acid) content and amino acid composition did not change. The protein to fat (P:F) ratio, known to affect bee foraging, increased on average by more than 40% from plantations to forests and gardens, while the omega-6:3 ratio, known to negatively affect cognitive performance, decreased with increasing plant species richness. Our results suggest that plant species richness may support T. carbonaria colonies by providing not only a continuous resource supply (as shown in a previous study), but also floral resources of high nutritional quality. KW - floral resources KW - plant-insect interactions KW - nutrition KW - biodiversity KW - bee decline Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-200605 SN - 2075-4450 VL - 11 IS - 2 ER - TY - JOUR A1 - Sprenger, Philipp P. A1 - Müsse, Christian A1 - Hartke, Juliane A1 - Feldmeyer, Barbara A1 - Schmitt, Thomas A1 - Gebauer, Gerhard A1 - Menzel, Florian T1 - Dinner with the roommates: trophic niche differentiation and competition in a mutualistic ant‐ant association JF - Ecological Entomology N2 - 1. The potential for competition is highest among species in close association. Despite net benefits for both parties, mutualisms can involve costs, including food competition. This might be true for the two neotropical ants Camponotus femoratus and Crematogaster levior, which share the same nest in a presumably mutualistic association (parabiosis). 2. While each nest involves one Crematogaster and one Camponotus partner, both taxa were recently found to comprise two cryptic species that show no partner preferences and seem ecologically similar. Since these cryptic species often occur in close sympatry, they might need to partition their niches to avoid competitive exclusion. 3. Here, we investigated first, is there interference competition between parabiotic Camponotus and Crematogaster, and do they prefer different food sources under competition? And second, is there trophic niche partitioning between the cryptic species of either genus? 4. Using cafeteria experiments, neutral lipid fatty acid and stable isotope analyses, we found evidence for interference competition, but also trophic niche partitioning between Camponotus and Crematogaster. Both preferred protein‐ and carbohydrate‐rich baits, but at protein‐rich baits Ca. femoratus displaced Cr. levior over time, suggesting a potential discovery‐dominance trade‐off between parabiotic partners. Only limited evidence was found for trophic differentiation between the cryptic species of each genus. 5. Although we cannot exclude differentiation in other niche dimensions, we argue that neutral dynamics might mediate the coexistence of cryptic species. This model system is highly suitable for further studies of the maintenance of species diversity and the role of mutualisms in promoting species coexistence. KW - Cryptic species KW - Formicidae KW - neutral theory KW - niche partitioning KW - nutrition KW - parabiosis KW - species coexistence mechanism KW - trade‐offs Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-228215 VL - 46 IS - 3 SP - 562 EP - 572 ER - TY - JOUR A1 - Ruedenauer, Fabian A. A1 - Raubenheimer, David A1 - Kessner-Beierlein, Daniela A1 - Grund-Mueller, Nils A1 - Noack, Lisa A1 - Spaethe, Johannes A1 - Leonhardt, Sara D. T1 - Best be(e) on low fat: linking nutrient perception, regulation and fitness JF - Ecology Letters N2 - Preventing malnutrition through consuming nutritionally appropriate resources represents a challenge for foraging animals. This is due to often high variation in the nutritional quality of available resources. Foragers consequently need to evaluate different food sources. However, even the same food source can provide a plethora of nutritional and non‐nutritional cues, which could serve for quality assessment. We show that bumblebees, Bombus terrestris , overcome this challenge by relying on lipids as nutritional cue when selecting pollen. The bees ‘prioritised’ lipid perception in learning experiments and avoided lipid consumption in feeding experiments, which supported survival and reproduction. In contrast, survival and reproduction were severely reduced by increased lipid contents. Our study highlights the importance of fat regulation for pollen foraging bumblebees. It also reveals that nutrient perception, nutrient regulation and reproductive fitness can be linked, which represents an effective strategy enabling quick foraging decisions that prevent malnutrition and maximise fitness. KW - bee decline KW - foraging KW - nutrition KW - plant-insect interactions KW - pollen quality KW - PER KW - resource use Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-208709 VL - 23 IS - 3 ER - TY - JOUR A1 - Grund-Mueller, Nils A1 - Ruedenauer, Fabian A. A1 - Spaethe, Johannes A1 - Leonhardt, Sara D. T1 - Adding amino acids to a sucrose diet is not sufficient to support longevity of adult bumble bees JF - Insects N2 - Dietary macro-nutrients (i.e., carbohydrates, protein, and fat) are important for bee larval development and, thus, colony health and fitness. To which extent different diets (varying in macro-nutrient composition) affect adult bees and whether they can thrive on nectar as the sole amino acid source has, however, been little investigated. We investigated how diets varying in protein concentration and overall nutrient composition affected consumption, longevity, and breeding behavior of the buff-tailed bumble bee, Bombus terrestris (Hymenoptera: Apidae). Queenless micro-colonies were fed either natural nutrient sources (pollen), nearly pure protein (i.e., the milk protein casein), or sucrose solutions with low and with high essential amino acid content in concentrations as can be found in nectar. We observed micro-colonies for 110 days. We found that longevity was highest for pure pollen and lowest for pure sucrose solution and sucrose solution supplemented with amino acids in concentrations as found in the nectar of several plant species. Adding higher concentrations of amino acids to sucrose solution did only slightly increase longevity compared to sucrose alone. Consequently, sucrose solution with the applied concentrations and proportions of amino acids or other protein sources (e.g., casein) alone did not meet the nutritional needs of healthy adult bumble bees. In fact, longevity was highest and reproduction only successful in micro-colonies fed pollen. These results indicate that, in addition to carbohydrates and protein, adult bumble bees, like larvae, need further nutrients (e.g., lipids and micro-nutrients) for their well-being. An appropriate nutritional composition seemed to be best provided by floral pollen, suggesting that pollen is an essential dietary component not only for larvae but also for adult bees. KW - nutrition KW - nutrients KW - foraging KW - pollen KW - resources KW - adult bees Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-203866 SN - 2075-4450 VL - 11 IS - 4 ER -