TY - JOUR A1 - Vogel, Sebastian A1 - Prinzing, Andreas A1 - Bußler, Heinz A1 - Müller, Jörg A1 - Schmidt, Stefan A1 - Thorn, Simon T1 - Abundance, not diversity, of host beetle communities determines abundance and diversity of parasitoids in deadwood JF - Ecology and Evolution N2 - Most parasites and parasitoids are adapted to overcome defense mechanisms of their specific hosts and hence colonize a narrow range of host species. Accordingly, an increase in host functional or phylogenetic dissimilarity is expected to increase the species diversity of parasitoids. However, the local diversity of parasitoids may be driven by the accessibility and detectability of hosts, both increasing with increasing host abundance. Yet, the relative importance of these two mechanisms remains unclear. We parallelly reared communities of saproxylic beetle as potential hosts and associated parasitoid Hymenoptera from experimentally felled trees. The dissimilarity of beetle communities was inferred from distances in seven functional traits and from their evolutionary ancestry. We tested the effect of host abundance, species richness, functional, and phylogenetic dissimilarities on the abundance, species richness, and Shannon diversity of parasitoids. Our results showed an increase of abundance, species richness, and Shannon diversity of parasitoids with increasing beetle abundance. Additionally, abundance of parasitoids increased with increasing species richness of beetles. However, functional and phylogenetic dissimilarity showed no effect on the diversity of parasitoids. Our results suggest that the local diversity of parasitoids, of ephemeral and hidden resources like saproxylic beetles, is highest when resources are abundant and thereby detectable and accessible. Hence, in some cases, resources do not need to be diverse to promote parasitoid diversity. KW - barcoding KW - deadwood KW - experiment KW - host–parasitoid interaction KW - natural enemy KW - specialization Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-238892 VL - 11 IS - 11 SP - 6881 EP - 6888 ER - TY - JOUR A1 - Classen, Alice A1 - Eardley, Connal D. A1 - Hemp, Andreas A1 - Peters, Marcell K. A1 - Peters, Ralph S. A1 - Ssymank, Axel A1 - Steffan-Dewenter, Ingolf T1 - Specialization of plant-pollinator interactions increases with temperature at Mt. Kilimanjaro JF - Ecology and Evolution N2 - Aim: Species differ in their degree of specialization when interacting with other species, with significant consequences for the function and robustness of ecosystems. In order to better estimate such consequences, we need to improve our understanding of the spatial patterns and drivers of specialization in interaction networks. Methods: Here, we used the extensive environmental gradient of Mt. Kilimanjaro (Tanzania, East Africa) to study patterns and drivers of specialization, and robustness of plant–pollinator interactions against simulated species extinction with standardized sampling methods. We studied specialization, network robustness and other network indices of 67 quantitative plant–pollinator networks consisting of 268 observational hours and 4,380 plant–pollinator interactions along a 3.4 km elevational gradient. Using path analysis, we tested whether resource availability, pollinator richness, visitation rates, temperature, and/or area explain average specialization in pollinator communities. We further linked pollinator specialization to different pollinator taxa, and species traits, that is, proboscis length, body size, and species elevational ranges. Results: We found that specialization decreased with increasing elevation at different levels of biological organization. Among all variables, mean annual temperature was the best predictor of average specialization in pollinator communities. Specialization differed between pollinator taxa, but was not related to pollinator traits. Network robustness against simulated species extinctions of both plants and pollinators was lowest in the most specialized interaction networks, that is, in the lowlands. Conclusions: Our study uncovers patterns in plant–pollinator specialization along elevational gradients. Mean annual temperature was closely linked to pollinator specialization. Energetic constraints, caused by short activity timeframes in cold highlands, may force ectothermic species to broaden their dietary spectrum. Alternatively or in addition, accelerated evolutionary rates might facilitate the establishment of specialization under warm climates. Despite the mechanisms behind the patterns have yet to be fully resolved, our data suggest that temperature shifts in the course of climate change may destabilize pollination networks by affecting network architecture. KW - altitudinal gradient KW - climate change KW - ecological network KW - functional traits KW - generalization KW - mutualistic interactions KW - network specialization index (H2′) KW - pollination KW - robustness KW - specialization Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-235959 VL - 10 IS - 4 ER - TY - JOUR A1 - Basset, Yves A1 - Cizek, Lukas A1 - Cuénoud, Philippe A1 - Didham, Raphael K. A1 - Novotny, Vojtech A1 - Ødegaard, Frode A1 - Roslin, Tomas A1 - Tishechkin, Alexey K. A1 - Schmidl, Jürgen A1 - Winchester, Neville N. A1 - Roubik, David W. A1 - Aberlenc, Henri-Pierre A1 - Bail, Johannes A1 - Barrios, Hector A1 - Bridle, Jonathan R. A1 - Castaño-Meneses, Gabriela A1 - Corbara, Bruno A1 - Curletti, Gianfranco A1 - da Rocha, Wesley Duarte A1 - De Bakker, Domir A1 - Delabie, Jacques H. C. A1 - Dejean, Alain A1 - Fagan, Laura L. A1 - Floren, Andreas A1 - Kitching, Roger L. A1 - Medianero, Enrique A1 - de Oliveira, Evandro Gama A1 - Orivel, Jerome A1 - Pollet, Marc A1 - Rapp, Mathieu A1 - Ribeiro, Servio P. A1 - Roisin, Yves A1 - Schmidt, Jesper B. A1 - Sørensen, Line A1 - Lewinsohn, Thomas M. A1 - Leponce, Maurice T1 - Arthropod Distribution in a Tropical Rainforest: Tackling a Four Dimensional Puzzle JF - PLoS ONE N2 - Quantifying the spatio-temporal distribution of arthropods in tropical rainforests represents a first step towards scrutinizing the global distribution of biodiversity on Earth. To date most studies have focused on narrow taxonomic groups or lack a design that allows partitioning of the components of diversity. Here, we consider an exceptionally large dataset (113,952 individuals representing 5,858 species), obtained from the San Lorenzo forest in Panama, where the phylogenetic breadth of arthropod taxa was surveyed using 14 protocols targeting the soil, litter, understory, lower and upper canopy habitats, replicated across seasons in 2003 and 2004. This dataset is used to explore the relative influence of horizontal, vertical and seasonal drivers of arthropod distribution in this forest. We considered arthropod abundance, observed and estimated species richness, additive decomposition of species richness, multiplicative partitioning of species diversity, variation in species composition, species turnover and guild structure as components of diversity. At the scale of our study (2km of distance, 40m in height and 400 days), the effects related to the vertical and seasonal dimensions were most important. Most adult arthropods were collected from the soil/litter or the upper canopy and species richness was highest in the canopy. We compared the distribution of arthropods and trees within our study system. Effects related to the seasonal dimension were stronger for arthropods than for trees. We conclude that: (1) models of beta diversity developed for tropical trees are unlikely to be applicable to tropical arthropods; (2) it is imperative that estimates of global biodiversity derived from mass collecting of arthropods in tropical rainforests embrace the strong vertical and seasonal partitioning observed here; and (3) given the high species turnover observed between seasons, global climate change may have severe consequences for rainforest arthropods. KW - trees KW - species richness KW - beta-diveristy KW - strategy KW - turnover KW - similarity KW - biodiversity KW - specialization KW - herbivorous insects KW - assemblages Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-136393 VL - 10 IS - 12 ER - TY - THES A1 - Chaianunporn, Thotsapol T1 - Evolution of dispersal and specialization in systems of interacting species T1 - Evolution von Ausbreitung und Spezialisierung von interagierenden Arten N2 - A metacommunity approach will be a useful framework to assess and predict changes in biodiversity in spatially structured landscapes and changing environments. However, the relationship between two core elements of metacommunity dynamics, dispersal and species interaction are not well understood. Most theoretical studies on dispersal evolution assume that target species are in isolation and do not interact with other species although the species interactions and community structure should have strong interdependence with dispersal. On the one hand, a species interaction can change the cost and benefit structure of dispersing in relation to non-dispersing individuals. On the other hand, with dispersal, an individual can follow respectively avoid species partners. Moreover, it is also important to explore the interdependence between dispersal and species interaction with spatial and temporal heterogeneity of environment because it would allow us to gain more understanding about responses of community to disturbances such as habitat destruction or global climate change, and this aspect is up to now not well-studied. In this thesis, I focus on the interactive and evolutionary feedback effects between dispersal and various types of interspecific interactions in different environmental settings. More specifically, I contrast dispersal evolution in scenarios with different types of interactions (chapter 2), explore the concurrent evolution of dispersal and habitat niche width (specialization) in spatial heterogeneous landscape (chapter 3) and consider (potential) multidimensional evolutionary responses under climate change (chapter 4). Moreover, I investigate consequences of different dispersal probability and group tolerance on group formation respectively group composition and the coexistence of ‘marker types’ (chapter 5). For all studies, I utilize individual-based models of single or multiple species within spatially explicit (grid-based) landscapes. In chapter 5, I also use an analytical model in addition to an individual-based model to predict phenomenon in group recognition and group formation. ... N2 - Ein „Multi-Arten“ Ansatz („metacommunity approach“; im Weiteren als Meta-Gemeinschaften bezeichnet) ist eine immer noch neue und wichtige Methode zur Einschätzung und Vorhersage von Änderungen der Biodiversität in räumlich strukturierten Habitaten. Dabei werden denkbare Reaktionen von Arten nicht isoliert betrachtet, sondern auch im Kontext von Interaktionen mit anderen Arten. Bisher wurde dabei die Beziehung zwischen zwei essentiellen Mechanismen, die in Meta-Gemeinschaften eine große Rolle spielen – Ausbreitung („dispersal“) und interspezifische Interaktion – wenig untersucht. Die meisten theoretischen Untersuchungen zur Ausbreitung erfolgen mit der Annahme, dass Arten in keinen Interaktionen mit anderen Arten stehen – in natürlichen Systemen interagieren die meisten Arten jedoch mit anderen. Interspezifische Interaktionen können außerdem die Kosten-Nutzen-Bilanz von Ausbreitenden im Vergleich zu Nicht-Ausbreitenden ändern. Andererseits kann ein Individuum durch Ausbreitung Interaktionspartnern folgen beziehungsweise sie vermeiden. Es ist deshalb zu erwarten, dass die interspezifischen Interaktionen und Ausbreitung stark interagieren. Weiter ist es wichtig, die gegenseitige Abhängigkeit der interspezifischen Interaktionen und Ausbreitung unter unterschiedlicher räumlicher und zeitlicher Heterogenität der Umwelt zu untersuchen, damit wir die Antwort einer Lebensgemeinschaft auf Umweltstörung, z.B. Habitatzerstörung und Klimawandel, besser verstehen können. ... KW - Tiergesellschaft KW - Ausbreitung KW - Spezialisierung KW - Evolution KW - interaktive Arten KW - dispersal KW - specialization KW - interacting species Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-76779 ER -