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1. Pollination services of cacao are crucial for global chocolate production, yet remain critically understudied, particularly in regions of origin of the species. Notably, uncertainties remain concerning the identity of cacao pollinators, the influence of landscape (forest distance) and management (shade cover) on flower visitation and the role of pollen deposition in limiting fruit set.
2. Here, we aimed to improve understanding of cacao pollination by studying limiting factors of fruit set in Peru, part of the centre of origin of cacao. Flower visitors were sampled with sticky insect glue in 20 cacao agroforests in two biogeographically distinct regions of Peru, across gradients of shade cover and forest distance. Further, we assessed pollen quantities and compared fruit set between naturally and manually pollinated flowers.
3. The most abundant flower visitors were aphids, ants and thrips in the north and thrips, midges and parasitoid wasps in the south of Peru. We present some evidence of increasing visitation rates from medium to high shade (40%–95% canopy closure) in the dry north, and opposite patterns in the semi-humid south, during the wet season.
4. Natural pollination resulted in remarkably low fruit set rates (2%), and very low pollen deposition. After hand pollination, fruit set more than tripled (7%), but was still low.
5. The diversity and high relative abundances of herbivore flower visitors limit our ability to draw conclusions on the functional role of different flower visitors. The remarkably low fruit set of naturally and even hand pollinated flowers indicates that other unaddressed factors limit cacao fruit production. Such factors could be, amongst others, a lack of effective pollinators, genetic incompatibility or resource limitation. Revealing efficient pollinator species and other causes of low fruit set rates is therefore key to establish location-specific management strategies and develop high yielding native cacao agroforestry systems in regions of origin of cacao
Nutrition facts of pollen: nutritional quality and how it affects reception and perception in bees
(2021)
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.
Bees receive nectar and pollen as reward for pollinating plants. Pollen of different plant species varies widely in nutritional composition. In order to select pollen of appropriate nutritional quality, bees would benefit if they could distinguish different pollen types. Whether they rely on visual, olfactory and/or chemotactile cues to distinguish between different pollen types, has however been little studied. In this study, we examined whether and how Apis mellifera workers differentiate between almond and apple pollen. We used differential proboscis extension response conditioning with olfactory and chemotactile stimulation, in light and darkness, and in summer and winter bees. We found that honeybees were only able to differentiate between different pollen types, when they could use both chemotactile and olfactory cues. Visual cues further improved learning performance. Summer bees learned faster than winter bees. Our results thus highlight the importance of multisensory information for pollen discrimination.
Delivery of crop pollination services is an insufficient argument for wild pollinator conservation
(2015)
There is compelling evidence that more diverse ecosystems deliver greater benefits to people, and these ecosystem services have become a key argument for biodiversity conservation. However, it is unclear how much biodiversity is needed to deliver ecosystem services in a cost- effective way. Here we show that, while the contribution of wild bees to crop production is significant, service delivery is restricted to a limited subset of all known bee species. Across crops, years and biogeographical regions, crop-visiting wild bee communities are dominated by a small number of common species, and threatened species are rarely observed on crops. Dominant crop pollinators persist under agricultural expansion and many are easily enhanced by simple conservation measures, suggesting that cost- effective management strategies to promote crop pollination should target a different set of species than management strategies to promote threatened bees. Conserving the biological diversity of bees therefore requires more than just ecosystem-service-based arguments.
Entwicklung und Anwendung von Methoden zur Erfassung von Pyrrolizidinalkaloiden in Honig und Pollen
(2009)
In jüngster Vergangenheit hat die potentielle Belastung von Lebens- und Futtermitteln mit PA wiederholt Aufmerksamkeit erregt. Eine Exposition des Menschen mit PA kann über den Genuss von Tees, Phytopharmaka, pflanzlichen Lebensmitteln (z.B. Salatmischungen) oder, im Fall einer Verfütterung von PA-Pflanzen an Tiere, als sekundäre Kontamination über tierische Lebensmittel erfolgen. Im ‚International Programme on Chemical Safety (IPCS)’ der WHO ist die grundsätzliche Gefährdung der menschlichen Gesundheit durch PA dokumentiert. Aus Gründen des vorbeugenden Verbraucherschutzes gibt es demzufolge Rechtsvorschriften zur Regulierung PA-haltiger Phytopharmaka. Für diese gilt in Deutschland seit 1992 ein Grenzwert von 1 µg PA/Tag für 1,2-ungesättigte PA und deren N-Oxide bei oraler Aufnahme und einer Anwendungsdauer von max. 6 Wochen. Geht die Anwendung darüber hinaus, beträgt der Grenzwert 0,1 µg PA/Tag. Im ersten Teil der Arbeit wurde eine robuste, reproduzierbare und selektive analytische Methode basierend auf Zink-Staub-Reduktion, Festphasenextraktion (SCX-SPE), LiAlH4 Reduktion mit anschließender Silylierung sowie Kapillargaschromatographie-Massenspektrometrie (HRGC-MS)-Analytik erarbeitet. Durch ein solches Vorgehen werden die PA-N-Oxide in tertiäre PA überführt, so dass alle PA in ihrer tertiären Form vorliegen. Durch die anschließende chemische Reduktion werden alle Mono- und Diester-PA in die jeweiligen Necinbasen überführt. Durch die anschließende Derivatisierung zum di-TMS-Derivat, konnten über den Summenparameter Retronecin PA-Kontaminationen mit 1,2-ungesättigten PA-Strukturen verlässlich detektiert und hochselektiv mittels HRGC-MS im SIM-Modus angezeigt werden. Die Validierung der Methode erfolgte durch die Verwendung von Senecio vernalis-Extrakt sowie authentischen PA-Standards und deren N-Oxiden. Unter Modifikationen der Probenaufarbeitung war diese Methode sowohl für Honig und Pollen, als auch für honighaltige Lebensmittel einsetzbar. Im weiteren Verlauf der Arbeit wurde die Methode durch die Synthese des deuterierten Standards di-Butyroyl-[9,9-2H2]-Retronecin zur Stabilisotopen-Verdünnungsanalyse (SIVA) erweitert und optimiert. Die entwickelte Methode erlaubt erstmals, anders als bei bereits vorliegenden Arbeiten zur Bestimmung von PA in Pflanzenteilen, eine exakte und selektive Bestimmung von PA im Spurenbereich, unabhängig von deren botanischem Ursprung oder chemischer Struktur (tertiäres PA, N-Oxide). In einem breit aufgestellten Screening von 216 Honighandelsproben und 35 Forschungshonigen – letztere umfassten 27 Senecio- und 8 Echium-Honige - konnten zum Teil erhebliche Mengen an PA nachgewiesen werden. Die Belastungsrate der einzelnen Probensets reichte von 9 bis zu 100%. Die hierbei ermittelten Gehalte lagen, berechnet als Retronecin-Äquivalente, zwischen 0,019 µg/g und 4,66 µg/g. Ergänzt wurden die analytischen Daten durch die Erhebung von mellisopalynologischen Daten. Hierbei zeigte sich, dass eine Bestimmung von PA-Pflanzenpollen über die relative Pollenhäufigkeit nach DIN 10760 nur eine geringe Aussagekraft bei der Riskioabschätzung besitzt. Zwar war die Anwesenheit von PA-Pflanzenpollen immer ein Indikator für das Vorkommen von PA, jedoch konnten über den relativen Pollengehalt keine Aussagen über die Höhe der PA-Belastung getroffen werden. In einer weiteren Studie zu PA-Gehalten in Pollen und Pollenerzeugnissen sind in den nativen Pollen die erwartet hohen PA-Gehalte bestätigt worden. Aber auch die in Vollsortimentsupermärkten und Reformhäusern häufig vertretenen Pollenprodukte wiesen PA-Gehalte auf, die im Mittel weit über den bei Honig festgestellten Werten lagen. So ergaben sich für die nativen Pollen aller bedeutenden, PA-produzierenden Pflanzenfamilien PA-Gehalte von 0,57-4,07 mg/g, während sich für die Pollenprodukte Gehalte von 1,08-16,35 µg/g feststellen ließen. Eine zusätzliche Erhebung von mellisopalynologischen Daten bestätigte deren bereits bei den Honigproben festgestellte, eingeschränkte Aussagekraft hinsichtlich des PA-Gehaltes. Durch ein Screening von 60 honighaltigen Lebensmitteln mit unterschiedlichen Honiganteilen konnte eine potentielle Downstream-Kontamination durch den Einsatz von hoch PA-belasteten Honigen im Herstellungsprozess nachgewiesen werden. Bei einer Belastungshäufigkeit von 13% lagen die hierbei ermittelten PA-Gehalte, berechnet als Retronecin-Äquivalente, bei 0,010-0,484 µg/g. Abschließend ist in modellhaft durchgeführten Filtrationsversuchen gezeigt worden, dass PA-Pflanzenpollen erheblichen Einfluss auf den PA-Gehalt des Honigs ausüben. Dennoch stellt eine Honigfiltration, wie sie in Anlage 1 der Honigverordnung zulässig ist, keine Möglichkeit dar, hoch mit PA belasteten Honig im PA-Gehalt zu senken. Vielmehr ließ sich mit den durchgeführten Versuchen eine Diffusion der PA aus Pollen in den Honig nachweisen.
Although agricultural habitats can provide enormous amounts of food resources for pollinator species, links between agricultural and (semi-)natural habitats through dispersal and foraging movements have hardly been studied. In 67 study sites, we assessed the interactions between mass-flowering oilseed rape fields and semi-natural grasslands at different spatial scales, and their effects on the number of brood cells of a solitary cavity-nesting bee. The probability that the bee Osmia bicornis colonized trap nests in oilseed rape fields increased from 12 to 59 % when grassland was nearby, compared to fields isolated from grassland. In grasslands, the number of brood cells of O. bicornis in trap nests was 55 % higher when adjacent to oilseed rape compared to isolated grasslands. The percentage of oilseed rape pollen in the larval food was higher in oilseed rape fields and grasslands adjacent to oilseed rape than in isolated grasslands. In both oilseed rape fields and grasslands, the number of brood cells was positively correlated with the percentage of oilseed rape pollen in the larval food. We show that mass-flowering agricultural habitats—even when they are intensively managed—can strongly enhance the abundance of a solitary bee species nesting in nearby semi-natural habitats. Our results suggest that positive effects of agricultural habitats have been underestimated and might be very common (at least) for generalist species in landscapes consisting of a mixture of agricultural and semi-natural habitats. These effects might also have—so far overlooked—implications for interspecific competition and mutualistic interactions in semi-natural habitats.
Although agricultural habitats can provide enormous amounts of food resources for pollinator species, links between agricultural and (semi-)natural habitats through dispersal and foraging movements have hardly been studied. In 67 study sites, we assessed the interactions between mass-flowering oilseed rape fields and semi-natural grasslands at different spatial scales, and their effects on the number of brood cells of a solitary cavity-nesting bee. The probability that the bee Osmia bicornis colonized trap nests in oilseed rape fields increased from 12 to 59 % when grassland was nearby, compared to fields isolated from grassland. In grasslands, the number of brood cells of O. bicornis in trap nests was 55 % higher when adjacent to oilseed rape compared to isolated grasslands. The percentage of oilseed rape pollen in the larval food was higher in oilseed rape fields and grasslands adjacent to oilseed rape than in isolated grasslands. In both oilseed rape fields and grasslands, the number of brood cells was positively correlated with the percentage of oilseed rape pollen in the larval food. We show that mass-flowering agricultural habitats—even when they are intensively managed—can strongly enhance the abundance of a solitary bee species nesting in nearby semi-natural habitats. Our results suggest that positive effects of agricultural habitats have been underestimated and might be very common (at least) for generalist species in landscapes consisting of a mixture of agricultural and semi-natural habitats. These effects might also have—so far overlooked—implications for interspecific competition and mutualistic interactions in semi-natural habitats.
Testing Pollen of Single and Stacked Insect-Resistant Bt-Maize on In vitro Reared Honey Bee Larvae
(2011)
The ecologically and economic important honey bee (Apis mellifera) is a key non-target arthropod species in environmental risk assessment (ERA) of genetically modified (GM) crops. Honey bee larvae are directly exposed to transgenic products by the consumption of GM pollen. But most ERA studies only consider responses of adult bees, although Bt-proteins primarily affect the larval phases of target organisms. We adopted an in vitro larvae rearing system, to assess lethal and sublethal effects of Bt-pollen consumption in a standardized eco-toxicological bioassay. The effects of pollen from two Bt-maize cultivars, one expressing a single and the other a total of three Bt-proteins, on the survival and prepupae weight of honey bee larvae were analyzed. The control treatments included pollen from three non-transgenic maize varieties and of Heliconia rostrata. Three days old larvae were fed the realistic exposure dose of 2 mg pollen within the semi-artificial diet. The larvae were monitored over 120 h, until the prepupal stage, where larvae terminate feeding and growing. Neither single nor stacked Bt-maize pollen showed an adverse effect on larval survival and the prepupal weight. In contrast, feeding of H. rostrata pollen caused significant toxic effects. The results of this study indicate that pollen of the tested Bt-varieties does not harm the development of in vitro reared A. mellifera larvae. To sustain the ecosystem service of pollination, Bt-impact on A. mellifera should always be a crucial part of regulatory biosafety assessments. We suggest that our approach of feeding GM pollen on in vitro reared honey bee larvae is well suited of becoming a standard bioassay in regulatory risk assessments schemes of GM crops.
Adding amino acids to a sucrose diet is not sufficient to support longevity of adult bumble bees
(2020)
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.
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.