TY - JOUR A1 - Bakari-Soale, Majeed A1 - Ikenga, Nonso Josephat A1 - Scheibe, Marion A1 - Butter, Falk A1 - Jones, Nicola G. A1 - Kramer, Susanne A1 - Engstler, Markus T1 - The nucleolar DExD/H protein Hel66 is involved in ribosome biogenesis in Trypanosoma brucei JF - Scientific Reports N2 - The biosynthesis of ribosomes is a complex cellular process involving ribosomal RNA, ribosomal proteins and several further trans-acting factors. DExD/H box proteins constitute the largest family of trans-acting protein factors involved in this process. Several members of this protein family have been directly implicated in ribosome biogenesis in yeast. In trypanosomes, ribosome biogenesis differs in several features from the process described in yeast. Here, we have identified the DExD/H box helicase Hel66 as being involved in ribosome biogenesis. The protein is unique to Kinetoplastida, localises to the nucleolus and its depletion via RNAi caused a severe growth defect. Loss of the protein resulted in a decrease of global translation and accumulation of rRNA processing intermediates for both the small and large ribosomal subunits. Only a few factors involved in trypanosome rRNA biogenesis have been described so far and our findings contribute to gaining a more comprehensive picture of this essential process. KW - infection KW - parasite evolution KW - parasite genetics KW - RNA Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-263872 VL - 11 IS - 1 ER - TY - THES A1 - Bakari Soale, Majeed T1 - Regulation of the Variant Surface Glycoprotein (VSG) Expression and Characterisation of the Nucleolar DExD/H box Protein Hel66 in \(Trypanosoma\) \(brucei\) T1 - Regulation der Expression des variable Oberflächen- Glykoprotein (VSG) und Charakterisierung des nukleolären DExD/H box Protein Hel66 in \(Trypanosoma\) \(brucei\) N2 - The variant surface glycoprotein (VSG) of African trypanosomes plays an essential role in protecting the parasites from host immune factors. These trypanosomes undergo antigenic variation resulting in the expression of a single VSG isoform out of a repertoire of around 2000 genes. The molecular mechanism central to the expression and regulation of the VSG is however not fully understood. Gene expression in trypanosomes is unusual due to the absence of typical RNA polymerase II promoters and the polycistronic transcription of genes. The regulation of gene expression is therefore mainly post-transcriptional. Regulatory sequences, mostly present in the 3´ UTRs, often serve as key elements in the modulation of the levels of individual mRNAs. In T. brucei VSG genes, a 100 % conserved 16mer motif within the 3´ UTR has been shown to modulate the stability of VSG transcripts and hence their expression. As a stability-associated sequence element, the absence of nucleotide substitutions in the motif is however unusual. It was therefore hypothesised that the motif is involved in other essential roles/processes besides stability of the VSG transcripts. In this study, it was demonstrated that the 100 % conservation of the 16mer motif is not essential for cell viability or for the maintenance of functional VSG protein levels. It was further shown that the intact motif in the active VSG 3´ UTR is neither required to promote VSG silencing during switching nor is it needed during differentiation from bloodstream forms to procyclic forms. Crosstalk between the VSG and procyclin genes during differentiation to the insect vector stage is also unaffected in cells with a mutated 16mer motif. Ectopic overexpression of a second VSG however requires the intact motif to trigger silencing and exchange of the active VSG, suggesting a role for the motif in transcriptional VSG switching. The 16mer motif therefore plays a dual role in VSG in situ switching and stability of VSG transcripts. The additional role of the 16mer in the essential process of antigenic variation appears to be the driving force for the 100 % conservation of this RNA motif. A screen aimed at identifying candidate RNA-binding proteins interacting with the 16mer motif, led to the identification of a DExD/H box protein, Hel66. Although the protein did not appear to have a direct link to the 16mer regulation of VSG expression, the DExD/H family of proteins are important players in the process of ribosome biogenesis. This process is relatively understudied in trypanosomes and so this candidate was singled out for detailed characterisation, given that the 16mer story had reached a natural end point. Ribosome biogenesis is a major cellular process in eukaryotes involving ribosomal RNA, ribosomal proteins and several non-ribosomal trans-acting protein factors. The DExD/H box proteins are the most important trans-acting protein factors involved in the biosynthesis of ribosomes. Several DExD/H box proteins have been directly implicated in this process in yeast. In trypanosomes, very few of this family of proteins have been characterised and therefore little is known about the specific roles they play in RNA metabolism. Here, it was shown that Hel66 is involved in rRNA processing during ribosome biogenesis. Hel66 localises to the nucleolus and depleting the protein led to a severe growth defect. Loss of the protein also resulted in a reduced rate of global translation and accumulation of rRNA processing intermediates of both the small and large ribosomal subunits. Hel66 is therefore an essential nucleolar DExD/H protein involved in rRNA processing during ribosome biogenesis. As very few protein factors involved in the processing of rRNAs have been described in trypanosomes, this finding represents an important platform for future investigation of this topic. N2 - Das variable Oberflächen-Glykoprotein (“varaint surface glycoprotein“, VSG) der Afrikanischen Trypanosomen schützt den Parasiten vor Immunfaktoren des Wirtes. Trypanosomen beherrschen die antigene Variation und expremieren nur eine einzige VSG Isoform aus einem Repertoire von ungefähr 2000 Genen. Der molekulare Mechanismus der die Expression dieser VSG Gene reguliert ist nicht komplett bekannt. Die Genexpression ist in Trypanosomen sehr ungewöhnlich. Es gibt keine typischen Promotoren für RNA Polymerase II und Gene werden polycistronisch transkribiert. Daher ist die Regulation der Genexpression hauptsächlich posttranskriptional. Die Expression individueller mRNAs wird durch regulatorische Sequenzen reguliert, die sich häufig in den 3´ UTRs befinden. In den VSG Genen von T. brucei moduliert ein zu 100% konserviertes 16mer Motiv in der 3´ UTR die Stabilität der VSG Transkripte und damit deren Expression. Für eine Sequenz, die die Stabilität der mRNA reguliert, ist das Fehlen von Nukleotid Substitutionen sehr ungewöhnlich. Es wurde deshalb spekuliert, dass das 16mer Motiv neben der Stabilisierung des VSG Transkriptes noch an anderen essentiellen Prozessen beteiligt ist. In dieser Arbeit wurde gezeigt, dass die 100%ige Konservierung des 16mer Motives weder für das Überleben der Zellen, noch für den Erhalt der Expression des VSG Protein in funktioneller Menge notwendig ist. Außerdem wurde gezeigt dass das intakte Motiv in der 3´UTR des aktiven VSGs weder für das „VSG silencing“ während des VSG Austausches („switching“) noch für die Differenzierung von Blutbahnformen zu prozyklischen Formen benötigt wird. Auch die Interaktionen („crosstalk“), die während der Differenzierung zum Insekten Stadium zwischen den VSG und Prozyklin Genen stattfinden, sind in Zellen mit mutiertem 16mer Motiv noch funktionell. Die ektopische Überexpression eines zweiten VSGs benötigt allerdings das intakte Motiv, um das aktive VSG zu inaktivieren und auszutauschen: dies suggeriert eine Rolle des Motivs im transkriptionalen „VSG switching“. Das 16mer Motif spielt daher eine Doppelrolle bei der Regulation der Stabilität der VSG Transkripte und im VSG in situ „switching“. Letzteres, die Rolle im essentiellen Prozess der antigenen Variation, ist dabei offensichtlich die treibende Kraft hinter der 100%igen Konservierung des RNA Motives. Eine Suche nach möglichen RNA bindenden Proteinen, die mit dem 16mer interagieren, führte zur Identifikation des DExD/H box Proteins Hel66. Obwohl das Protein wohl nicht direkt an der Regulation der VSG Expression über das 16mer beteiligt ist, spielen Mitglieder der DexD/H Proteinfamilie eine wichtige Rolle in der Biogenese von Ribosomen. Dieser Prozess ist in Trypanosomen noch nicht komplett verstanden und daher wurde das Protein für eine nähere Analyse ausgewählt, auch weil die 16mer Story ohne weitere Kandidaten zu einem Ende gekommen war. Die Biogenese von Ribosomen ist ein wichtiger zellulärer Prozess in Eukaryoten und benötigt ribosomale RNA, ribosomale Proteine sowie einige nicht-ribosomale, trans-agierende Protein Faktoren. Proteine der DExD/H box Familie sind die wichtigsten trans- agierenden Proteinfaktoren, die an der Biogenese der Ribosomen beteiligt sind. In der Hefe sind mehrere DExD/H box Proteine bekannt, die eine direkte Rolle in diesem Prozess spielen. In Trypanosomen sind erst sehr wenige Proteine aus dieser Familie untersucht worden und es ist daher kaum bekannt, welche spezifische Rollen sie im RNA Metabolismus spielen. In dieser Arbeit wurde gezeigt, dass Hel66 an der rRNA Prozessierung während der Biogenese der Ribosomen beteiligt ist. Hel66 ist im Nukleolus lokalisiert und die Reduktion des Proteins durch RNAi führte zu einem schweren Wachstumsphänotyp. Reduktion von Hel66 führte auch zu einer globalen Reduktion der Translation sowie zur Akkumulation von Synthese- Zwischenstadien der rRNAs sowohl der kleinen und als auch der großen ribosomalen Untereinheit. Hel66 ist daher ein essentielles nukleoläres DExD/H Protein dass an der Prozessierung der rRNA während der Biogenese der Ribosomen beteiligt ist. Da bisher erst wenige Proteine bekannt sind, die in Trypanosomen an diesem Prozess beteiligt sind, sind diese Ergebnisse ein sehr wichtiger Ausgangspunkt für weitere Untersuchungen in der Zukunft. KW - Trypanosoma brucei KW - Genexpression KW - Variant Surface Glycoprotein KW - VSG KW - DExD/H box protein KW - Ribosome biogenesis KW - rRNA processing KW - Ribosome Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-258090 ER - TY - THES A1 - Baier, Andrea T1 - Architektur meiotischer Chromosomen : Eigenschaften und Evolution des Synaptonemalkomplexproteins SYCP3 T1 - Molecular Architecture of Meiotic Chromosome:Properties and Evolution of Synaptonemal Complex Protein SYCP3 N2 - Die Meiose ist eine besondere Art der Zellteilung, die während der Keimzellreifung stattfindet. Sie umfasst zwei aufeinander folgende Zellteilungen mit nur einer DNA-Repli-kationsrunde, wodurch aus einer diploiden Ausgangszelle vier haploide Gameten entstehen. In der ersten meiotischen Teilung werden die homologen Chromosomen miteinander rekombiniert und voneinander getrennt, in der Meiose II findet die Trennung der Schwesterchromatiden statt. Für den korrekten Ablauf dieser Prozesse musste sich eine spezielle molekulare Architektur des meiotischen Chromosoms entwickeln welche die Synapse der homologen Chromosomen durch den Synaptonemalkomplex (SC) beinhaltet. SCs sind evolutionär hochkonservierte, meiosespezifische Proteinkomplexe, die eine zentrale Bedeutung für Synapse, Rekombination und Segregation der homologen Chromosomen haben. Ein SC besteht aus zwei lateralen Elementen (LEs), die den Achsen der homologen Chromosomen aufgelagert sind, einer zentralen Region (CR) und einem zentralen Element (CE). Eine Hauptstrukturkomponente der LEs in Vertebraten ist das Synaptonemalkomplexprotein, SYCP3. Um die molekulare Architektur des SC besser zu verstehen und die Bedeutung von SYCP3 für die Zusammenlagerung der LE aufzudecken, wurden die Polymerisationseigenschaften von SYCP3, exprimiert in somatischen Zellen, erforscht. In diesem experimentellen Ansatz polymerisierte SYCP3 autonom zu stabilen, höher geordneten, filamentösen Strukturen. Die „Coiled-Coil“-Domäne und die flankierenden, evolutionär konservierten Motive sind dabei notwenig, und nach Deletion des weniger konservierten N-terminalen Bereichs auch ausreichend für die Bildung der höher geordneten Strukturen. Der N-Terminus hingegen spielt eine Rolle in der Stabilität der Polymärstrukturen, welche durch Phosphorylierung zweier Serinreste im N-terminalen Bereich beeinflusst werden könnte. Obwohl die Struktur des SC in der Evolution hochkonserviert ist, sind die Protein-komponenten auf Aminosäuresequenzebene sehr unterschiedlich und weisen wenn überhaupt eine strukturelle Homologie in ihrer Domänenorganisation auf. Um den SC-Aufbau und dessen Funktion besser verstehen zu können, wurden die orthologen SC-Proteine zwischen taxonomisch entfernten Spezies Ratte und Medaka verglichen. Es konnte gezeigt werden, dass trotz der Unterschiede in den Aminosäuresequenzen die sich in den letzen 450 Millionen Jahren zwischen Fisch- und Säugern-SYCP3 akkumuliert haben, die Eigenschaften der Proteine vergleichbar sind, und das sie unter experimentellen Bedingungen miteinander interagieren und zu höher geordneten Strukturen kopolymerisieren können. N2 - Meiosis is a germ line specific, special type of cell division which creates haploid daughter cells from a diploid cell in a manner that ensures each daughter cell a complete haploid genome. A meiotic cell undergoes two cell divisions without an intervening DNA replication step. In the first meiotic division the homologous chromosomes get separated and recombination takes place, while the sister chromatids remain associated until the second meiotic division. To align the homologue chromosomes in meiotic prophase I, a specialized structure has evolved the so called synaptonemal complex (SC). SCs are meiosis-specific nuclear structures that are critically involved in synapsis, recombination and segregation of homologous chromosomes. SYCP3 is a major determinant of axial/lateral element assembly of the mammalian SC. To investigate the contribution of SYCP3 in the assembly of axial/lateral elements, I studied SYCP3 polymerization in a heterologous system where SC proteins are not expressed normally. Under these experimental conditions SYCP3 on its own can form higher order structures that, like SCs, are largely resistant to harsh cell fractionation procedures. I also obtained compelling evidence that the SYCP3 coiled-coil domain together with two flanking, evolutionary conserved motifs (CM) are necessary and also sufficient for higher order structure assembly. Notably, most of the SYCP3 N-terminus appears to be dispensable for polymerization, but plays a key role in the stability of polymer structure. I show that two N-terminal serine residues at positions 32 and 35 are crucial. Their mutation to glutamate residues, whereby phosphate charges are mimicked, leads to the formation of altered higher order structures showing a significantly reduced binding strength. The results are compatible with the notion that SYCP3 provides mechanical stability to SC axial/lateral elements that can be regulated by phosphorylation events. Although the SC structure is conserved in evolution this is not the case for its protein components. To provide information on SC proteins which would be important for our understanding of the conserved SC structure and function, here I compared ortholog SYCP3 proteins of two evolutionary distant vertebrate species, namely rat and medaka fish. To this end I have investigated the polymerization properties of both proteins by immunocytochemistry, electron microscopy and cell fractionation. I found that despite of the sequence differences that have accumulated over the last 450 million years mammalian and fish SYCP3 have similar properties that allow them to co-assemble higher order structures under experimental conditions. KW - Meiose KW - Chromosomen KW - Synaptonemalkomplex KW - Vertebraten KW - Evolution KW - Meiosis KW - Chromosomes KW - Synaptonemal complex KW - Vertebrates KW - Evolution Y1 - 2007 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-25995 ER - TY - JOUR A1 - Bahena, Paulina A1 - Daftarian, Narsis A1 - Maroofian, Reza A1 - Linares, Paola A1 - Villalobos, Daniel A1 - Mirrahimi, Mehraban A1 - Rad, Aboulfazl A1 - Doll, Julia A1 - Hofrichter, Michaela A. H. A1 - Koparir, Asuman A1 - Röder, Tabea A1 - Han, Seungbin A1 - Sabbaghi, Hamideh A1 - Ahmadieh, Hamid A1 - Behboudi, Hassan A1 - Villanueva-Mendoza, Cristina A1 - Cortés-Gonzalez, Vianney A1 - Zamora-Ortiz, Rocio A1 - Kohl, Susanne A1 - Kuehlewein, Laura A1 - Darvish, Hossein A1 - Alehabib, Elham A1 - La Arenas-Sordo, Maria de Luz A1 - Suri, Fatemeh A1 - Vona, Barbara A1 - Haaf, Thomas T1 - Unraveling the genetic complexities of combined retinal dystrophy and hearing impairment JF - Human Genetics N2 - Usher syndrome, the most prevalent cause of combined hereditary vision and hearing impairment, is clinically and genetically heterogeneous. Moreover, several conditions with phenotypes overlapping Usher syndrome have been described. This makes the molecular diagnosis of hereditary deaf-blindness challenging. Here, we performed exome sequencing and analysis on 7 Mexican and 52 Iranian probands with combined retinal degeneration and hearing impairment (without intellectual disability). Clinical assessment involved ophthalmological examination and hearing loss questionnaire. Usher syndrome, most frequently due to biallelic variants in MYO7A (USH1B in 16 probands), USH2A (17 probands), and ADGRV1 (USH2C in 7 probands), was diagnosed in 44 of 59 (75%) unrelated probands. Almost half of the identified variants were novel. Nine of 59 (15%) probands displayed other genetic entities with dual sensory impairment, including Alström syndrome (3 patients), cone-rod dystrophy and hearing loss 1 (2 probands), and Heimler syndrome (1 patient). Unexpected findings included one proband each with Scheie syndrome, coenzyme Q10 deficiency, and pseudoxanthoma elasticum. In four probands, including three Usher cases, dual sensory impairment was either modified/aggravated or caused by variants in distinct genes associated with retinal degeneration and/or hearing loss. The overall diagnostic yield of whole exome analysis in our deaf-blind cohort was 92%. Two (3%) probands were partially solved and only 3 (5%) remained without any molecular diagnosis. In many cases, the molecular diagnosis is important to guide genetic counseling, to support prognostic outcomes and decisions with currently available and evolving treatment modalities. KW - Usher syndrome KW - hearing impairment KW - combined retinal dystrophy Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-267750 SN - 1432-1203 VL - 141 IS - 3-4 ER - TY - JOUR A1 - Bae, Soyeon A1 - Müller, Jörg A1 - Förster, Bernhard A1 - Hilmers, Torben A1 - Hochrein, Sophia A1 - Jacobs, Martin A1 - Leroy, Benjamin M. L. A1 - Pretzsch, Hans A1 - Weisser, Wolfgang W. A1 - Mitesser, Oliver T1 - Tracking the temporal dynamics of insect defoliation by high‐resolution radar satellite data JF - Methods in Ecology and Evolution N2 - Quantifying tree defoliation by insects over large areas is a major challenge in forest management, but it is essential in ecosystem assessments of disturbance and resistance against herbivory. However, the trajectory from leaf-flush to insect defoliation to refoliation in broadleaf trees is highly variable. Its tracking requires high temporal- and spatial-resolution data, particularly in fragmented forests. In a unique replicated field experiment manipulating gypsy moth Lymantria dispar densities in mixed-oak forests, we examined the utility of publicly accessible satellite-borne radar (Sentinel-1) to track the fine-scale temporal trajectory of defoliation. The ratio of backscatter intensity between two polarizations from radar data of the growing season constituted a canopy development index (CDI) and a normalized CDI (NCDI), which were validated by optical (Sentinel-2) and terrestrial laser scanning (TLS) data as well by intensive caterpillar sampling from canopy fogging. The CDI and NCDI strongly correlated with optical and TLS data (Spearman's ρ = 0.79 and 0.84, respectively). The ΔNCDII\(_{Defoliation(A−C)}\) significantly explained caterpillar abundance (R\(^{2}\) = 0.52). The NCDI at critical timesteps and ΔNCDI related to defoliation and refoliation well discriminated between heavily and lightly defoliated forests. We demonstrate that the high spatial and temporal resolution and the cloud independence of Sentinel-1 radar potentially enable spatially unrestricted measurements of the highly dynamic canopy herbivory. This can help monitor insect pests, improve the prediction of outbreaks and facilitate the monitoring of forest disturbance, one of the high priority Essential Biodiversity Variables, in the near future. KW - Sentinel-1 KW - canopy herbivory KW - defoliation severity KW - gypsy moth KW - insect disturbance KW - intra-annual time-series KW - Lymantria dispar KW - remote sensing Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-258222 VL - 13 IS - 1 ER - TY - JOUR A1 - Bae, Soyeon A1 - Heidrich, Lea A1 - Levick, Shaun R. A1 - Gossner, Martin M. A1 - Seibold, Sebastian A1 - Weisser, Wolfgang W. A1 - Magdon, Paul A1 - Serebryanyk, Alla A1 - Bässler, Claus A1 - Schäfer, Deborah A1 - Schulze, Ernst-Detlef A1 - Doerfler, Inken A1 - Müller, Jörg A1 - Jung, Kirsten A1 - Heurich, Marco A1 - Fischer, Markus A1 - Roth, Nicolas A1 - Schall, Peter A1 - Boch, Steffen A1 - Wöllauer, Stephan A1 - Renner, Swen C. A1 - Müller, Jörg T1 - Dispersal ability, trophic position and body size mediate species turnover processes: Insights from a multi-taxa and multi-scale approach JF - Diversity and Distribution N2 - Aim: Despite increasing interest in β-diversity, that is the spatial and temporal turnover of species, the mechanisms underlying species turnover at different spatial scales are not fully understood, although they likely differ among different functional groups. We investigated the relative importance of dispersal limitations and the environmental filtering caused by vegetation for local, multi-taxa forest communities differing in their dispersal ability, trophic position and body size. Location: Temperate forests in five regions across Germany. Methods: In the inter-region analysis, the independent and shared effects of the regional spatial structure (regional species pool), landscape spatial structure (dispersal limitation) and environmental factors on species turnover were quantified with a 1-ha grain across 11 functional groups in up to 495 plots by variation partitioning. In the intra-region analysis, the relative importance of three environmental factors related to vegetation (herb and tree layer composition and forest physiognomy) and spatial structure for species turnover was determined. Results: In the inter-region analysis, over half of the explained variation in community composition (23% of the total explained 35%) was explained by the shared effects of several factors, indicative of spatially structured environmental filtering. Among the independent effects, environmental factors were the strongest on average over 11 groups, but the importance of landscape spatial structure increased for less dispersive functional groups. In the intra-region analysis, the independent effect of plant species composition had a stronger influence on species turnover than forest physiognomy, but the relative importance of the latter increased with increasing trophic position and body size. Main conclusions: Our study revealed that the mechanisms structuring assemblage composition are associated with the traits of functional groups. Hence, conservation frameworks targeting biodiversity of multiple groups should cover both environmental and biogeographical gradients. Within regions, forest management can enhance β-diversity particularly by diversifying tree species composition and forest physiognomy. KW - body size KW - dispersal ability KW - environmental filtering KW - forest physiognomy KW - neutral processes KW - plant composition KW - regional species pool KW - species turnover KW - trophic position KW - β-diversity Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-236117 VL - 27 IS - 3 ER - TY - JOUR A1 - Bachert, Antonia A1 - Scheiner, Ricarda T1 - The ant’s weapon improves honey bee learning performance JF - Scientific Reports N2 - Formic acid is the main component of the ant’s major weapon against enemies. Being mainly used as a chemical defense, the acid is also exploited for recruitment and trail marking. The repelling effect of the organic acid is used by some mammals and birds which rub themselves in the acid to eliminate ectoparasites. Beekeepers across the world rely on this effect to control the parasitic mite Varroa destructor. Varroa mites are considered the most destructive pest of honey bees worldwide and can lead to the loss of entire colonies. Formic acid is highly effective against Varroa mites but can also kill the honeybee queen and worker brood. Whether formic acid can also affect the behavior of honey bees is unknown. We here study the effect of formic acid on sucrose responsiveness and cognition of honey bees treated at different live stages in field-relevant doses. Both behaviors are essential for survival of the honey bee colony. Rather unexpectedly, formic acid clearly improved the learning performance of the bees in appetitive olfactory conditioning, while not affecting sucrose responsiveness. This exciting side effect of formic acid certainly deserves further detailed investigations. KW - animal behaviour KW - animal physiology Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-358064 VL - 13 ER - TY - JOUR A1 - Baalbergen, Els A1 - Helwerda, Renate A1 - Schelfhorst, Rense A1 - Castillo Cajas, Ruth F. A1 - van Moorsel, Coline H. M. A1 - Kundrata, Robin A1 - Welter-Schultes, Francisco W. A1 - Giokas, Sinos A1 - Schilthuizen, Menno T1 - Predator-Prey Interactions between Shell-Boring Beetle Larvae and Rock-Dwelling Land Snails JF - PLOS ONE N2 - Drilus beetle larvae (Coleoptera: Elateridae) are specialized predators of land snails. Here, we describe various aspects of the predator-prey interactions between multiple Drilus species attacking multiple Albinaria (Gastropoda: Clausiliidae) species in Greece. We observe that Drilus species may be facultative or obligate Albinaria-specialists. We map geographically varying predation rates in Crete, where on average 24% of empty shells carry fatal Drilus bore holes. We also provide first-hand observations and video-footage of prey entry and exit strategies of the Drilus larvae, and evaluate the potential mutual evolutionary impacts. We find limited evidence for an effect of shell features and snail behavioral traits on inter-and intraspecifically differing predation rates. We also find that Drilus predators adjust their predation behavior based on specific shell traits of the prey. In conclusion, we suggest that, with these baseline data, this interesting predator-prey system will be available for further, detailed more evolutionary ecology studies. KW - clausiliidae KW - evolution KW - pulmonata KW - albinaria KW - behavior KW - species gastropoda Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-115963 SN - 1932-6203 VL - 9 IS - 6 ER - TY - JOUR A1 - Azzami, Klara A1 - Ritter, Wolfgang A1 - Tautz, Jürgen A1 - Beier, Hildburg T1 - Infection of honey bees with acute bee paralysis virus does not trigger humoral or cellular immune responses JF - Archives of Virology N2 - We have studied the responses of honey bees at different life stages (Apis mellifera) to controlled infection with acute bee paralysis virus and have identified the haemolymph of infected larvae and adult worker bees as the compartment where massive propagation of ABPV occurs. Insects respond with a broad spectrum of induced innate immune reactions to bacterial infections, whereas defence mechanisms based on RNA interference play a major role in antiviral immunity. In this study, we have determined that honey bee larvae and adult workers do not produce a humoral immune reaction upon artificial infection with ABPV, in contrast to control individuals challenged with Escherichia coli. ABPV-infected bees produced neither elevated levels of specific antimicrobial peptides (AMPs), such as hymenoptaecin and defensin, nor any general antimicrobial activity, as revealed by inhibition-zone assays. Additionally, adult bees did not generate melanised nodules upon ABPV infection, an important cellular immune function activated by bacteria and viruses in some insects. Challenge of bees with both ABPV and E. coli showed that innate humoral and cellular immune reactions are induced in mixed infections, albeit at a reduced level. KW - chemosensory protein KW - bee larva KW - adult bee KW - honey bee KW - larva KW - work bee KW - infected bee KW - immune response KW - young work bee KW - capsid protein KW - abdominal KW - tergite KW - haemolymph KW - sample KW - Imd pathway KW - worker bee larva KW - antimicrobial KW - peptide Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-126863 VL - 157 IS - 4 ER - TY - THES A1 - Azzami, Klara T1 - Antibakterielle und antivirale Abwehrreaktionen in unterschiedlichen Entwicklungsstadien der Honigbiene (Apis mellifera) T1 - Antibacterial and antiviral defence reactions in different developmental stages of the honey bee (Apis mellifera) N2 - Das angeborene Immunsystem von Insekten besteht aus einer humoralen Komponente, einer zellulären Komponente und dem Prophenoloxidase-aktivierenden System. Fast alle Erkenntnisse über das angeborene Immunsystem stammen von Arbeiten mit Modellorganismen wie z.B. Drosophila oder Anopheles gambiae. Wie genau das Immunsystem der Honigbiene (Apis mellifera) funktioniert, ist jedoch noch relativ unbekannt. In der vorliegenden Arbeit wurden die unterschiedlichen Immunreaktionen aller drei Entwicklungsstadien der Honigbiene nach artifizieller Infektion mit Gram-negativen und Gram-positiven Bakterien (Escherichia coli und Micrococcus flavus) und dem Akuten Bienen Paralyse Virus (ABPV) untersucht und verglichen. Eine E. coli-Injektion zeigt bei Larven und adulten Arbeiterinnen nur wenig Auswirkung auf das äußere Erscheinungsbild und die Überlebensrate. In beiden Entwicklungsstadien wird die humorale Immunantwort stark induziert, erkennbar an der Expression der antimikrobiellen Peptide (AMPs) Hymenoptaecin, Defensin1 und Abaecin. Zusätzlich werden allein in Jungbienen nach bakterieller Infektion vier weitere immunspezifische Proteine exprimiert. Unter anderem eine Carboxylesterase (CE1) und das Immune-Responsive Protein 30 (IRp30). Die Expression von CE1 und IRp30 zeigt dabei den gleichen zeitlichen Verlauf wie die der AMPs. In Jungbienen kommt es zudem nach E. coli-Injektion zu einer raschen Abnahme an lebenden Bakterien in der Hämolymphe, was auf eine Aktivierung der zellulären Immunantwort schließen lässt. Ältere Bienen und Winterbienen zeigen eine stärkere Immunkompetenz als Jungbienen. Selbst nicht-infizierte Winterbienen exprimieren geringe Mengen der immunspezifischen Proteine IRp30 und CE1. Die Expression von IRp30 kann dabei durch Verwundung oder Injektion von E. coli noch gesteigert werden. Eine weitere Besonderheit ist die im Vergleich zu Jungbienen raschere Abnahme an lebenden Bakterien in der Hämolymphe bis hin zur vollständigen Eliminierung. Die Reaktion von Puppen auf eine bakterielle Infektion war völlig unerwartet. Nach Injektion von E. coli-Zellen kommt es innerhalb von 24 h p.i. zu einem tödlichen Kollaps, der sich in einer Graufärbung des gesamten Puppenkörpers äußert. Da keine Expression von AMPs nachzuweisen war, wird die humorale Immunantwort offensichtlich nicht induziert. Auch die zelluläre Immunantwort scheint nicht aktiviert zu werden, denn es konnte keine Abnahme an lebenden E. coli-Zellen beobachtet werden. Aufgrund dieser fehlenden Immunreaktionen vermehrt sich E. coli im Hämocoel infizierter Puppen und scheint damit deren Tod herbeizuführen. Nach viraler Infektion wurden in allen drei Entwicklungsstadien der Honigbiene gänzlich andere Reaktionen beobachtet als nach bakterieller Infektion. Bei dem verwendeten Akuten Bienen Paralyse Virus (ABPV) handelt es sich um ein Picorna-ähnliches Virus, dessen Vermehrung in der Hämolymphe über die massive Synthese der Capsidproteine verfolgt werden kann. Eine Injektion von sehr wenigen ABPV-Partikeln ins Hämocoel hat dramatische Auswirkungen auf Larven. Nach Virusinjektion kommt es innerhalb weniger Stunden zu einer raschen Virusvermehrung und schon 24 h p.i. zum Tod, häufig begleitet von einer Schwarzfärbung der gesamten Larve. Kurz vor dem Ableben kommt es neben dem Abbau hochmolekularer Speicherproteine zur Expression zahlreicher Proteine, die u.a. an der Translation oder dem Schutz vor oxidativem Stress beteiligt sind. Auf Jungbienen hat eine ABPV-Infektion keine so dramatischen Auswirkungen wie auf Larven. Sie zeigen lediglich Zeichen von Paralyse, zudem überleben sie länger bei höheren injizierten Partikelzahlen, die Virusvermehrung ist langsamer und es kommt zu keiner starken Veränderung des Hämolymph-Proteinmusters. Es konnte gezeigt werden, dass es in ABPV-infizierten Larven oder adulten Bienen zu keiner erkennbaren Aktivierung des humoralen Immunsystems in Form von exprimierten AMPs kommt. Zudem scheint die humorale Immunantwort auch nicht unterdrückt zu werden, denn nach gleichzeitiger Injektion von E. coli und ABPV kommt es neben der Expression viraler Capsidproteine auch zur Expression von AMPs. Zusätzlich konnte in Jungbienen nach Infektion mit ABPV eine zelluläre Immunantwort in Form von Nodulation ausgeschlossen werden. Ältere Bienen scheinen nicht nur mit bakteriellen Infektionen, sondern auch mit einer ABPV-Infektion besser zurechtzukommen. Bei einer Menge an ABPV-Partikeln, die in Jungbienen spätestens 72 h p.i. zum Tod führt, ist in Winterbienen eine Virusvermehrung erst ab 96 h p.i. erkennbar und diese beeinträchtigt die Überlebensrate kaum. Puppen sind einer Virusinfektion genauso schutzlos ausgeliefert wie einer Bakterieninfektion. Es kommt zwar zu keiner starken Änderung des äußeren Erscheinungsbildes, jedoch bleiben Puppen in ihrer Entwicklung komplett stehen. Das Virus muss sich daher stark vermehren, allerdings nicht überwiegend - wie bei Larven und adulten Bienen - in der Hämolymphe. N2 - The innate immune system of insects comprises of a humoral component, a cellular component and the prophenoloxidase-activating system. Almost all knowledge about the innate immune system derives from model organisms like Drosophila or Anopheles gambiae. The exact mechanisms of the innate immune system of the honey bee (Apis mellifera) have yet to be discovered. This work investigates and compares the immune reactions of all three developmental stages of the honey bee after artificial infection with Gram-negative (Escherichia coli) and the Acute bee paralysis virus (ABPV). After injection of E. coli neither a change in the outer appearance nor a significant reduction of the survival rate of larvae or adult worker bees can be observed. In both developmental stages, a strong induction of the humoral immune response visible by the expression of the antimicrobial peptides (AMPs) hymenoptaecin, defensin1 and abaecin occurs. However, bacterial challenge of young adult worker bees leads to the expression of additional immune-specific proteins: a carboxylesterase (CE1) and the immune-responsive protein (IRp30). The expressions of CE1 and IRp30 show the same time course as the expression of AMPs. Furthermore, after injection of E. coli-cells into the haemocoel of young adult worker bees a fast decrease of living bacteria in the haemolymph could be observed. Older bees show a stronger immune competence in many ways. In winter bees even non-infected individuals express constitutively low amounts of the immune-responsive proteins IRp30 and CE1. The expression of IRp30 can still be enhanced by wounding or injection of E. coli. Moreover, older bees display a drastic reduction of living bacteria in the haemolymph as compared to young adult worker bees resulting in an almost complete elimination. Pupae in contrast react surprisingly different to a bacterial challenge. Injection of living E. coli-cells leads to a deadly collapse within 24 h p.i. accompanied by a colour change of the whole pupal body from white to grey. Since no visible expression of AMPs could be detected, the humoral immune response obviously was not induced. The same appears to be true for the cellular immune response, as no decrease in living E. coli-cells was observed upon infection. Because of this lack of humoral and cellular immune reactions, E. coli can proliferate in the haemocoel of infected pupae and potentially cause their death. All three developmental stages of the honey bee show completely different reactions to a viral infection than to a bacterial challenge. The Acute bee paralysis virus (ABPV) used in this study is a picorna-like virus with a positive, single-stranded RNA-genome and a non-enveloped protein capsid. Its proliferation in the haemocoel can be monitored by a massive synthesis of capsid proteins in the haemolymph. In contrast to a bacterial challenge, injection of only a few ABPV-particles into the haemocoel has tremendous effects on larvae. Injection of viral particles leads to a strong viral multiplication within hours and to death 24 h p.i. often accompanied by a colour change of the whole larva from pale-white to black. In addition to a visible degradation of high-molecular storage proteins shortly before the larvae die, the expression of proteins involved in translation or protection against oxidative stress can be observed. Young adult worker bees do not show such a tremendous reaction as larvae to a viral infection. They just display signs of paralysis. In contrast to larvae, young adult worker bees show better survival rates for higher numbers of injected virus-particles, the viral multiplication proceeds slower and there is no strong visible change of the haemolymph protein pattern. It could be demonstrated that no expression of AMPs and therefore no detectable activation of the humoral immune system by the virus occurs. But the humoral immune reponse also does not seem to be suppressed, since a simultaneous injection of E. coli and ABPV leads to the expression of viral capsid proteins in concert with the expression of AMPs. Additionally, nodulation, a prominent cellular immune response of young adult worker bees to bacterial infection, is likewise not initiated by ABPV-infection. Older bees apparently are not only capable of better fighting a bacterial infection, but also in surviving an ABPV-infection. Injection of an amount of viral particles leading to death of young adult worker bees within 72 h p.i., only leads to just detectable amounts of virus in winter bees 96 h p.i.. At the same time, the survival rate is not more impaired than after E. coli-injection. Pupae are as susceptible to a viral infection as to bacterial challenge. Although there is no strong visible change in the outer appearance, the pupaes’ development ceases within 3 d p.i.. This is possibly due to a strong multiplication of the virus, but obviously not mainly in the haemolymph, as it can be observed in larvae and adult bees as well. KW - Biene KW - Akute Paralyse KW - Immunsystem KW - Akutes Bienen Paralyse Virus KW - angeborenes Immunsystem KW - honey bee KW - Acute bee paralysis virus KW - innate immune system Y1 - 2011 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-66452 ER -