TY - THES A1 - Wagh, Dhananjay Anil T1 - "Bruchpilot" -molecular and functional characterization of a novel active zone protein at the Drosophila synapse T1 - "Bruchpilot" - Molekulare und funktionelle Charakterisierung eines neuen Proteins der aktiven Zone der Drosophila-Synapse N2 - Chemical neurotransmission is a complex process of central importance for nervous system function. It is thought to be mediated by the orchestration of hundreds of proteins for its successful execution. Several synaptic proteins have been shown to be relevant for neurotransmission and many of them are highly conserved during evolution- suggesting a universal mechanism for neurotransmission. This process has checkpoints at various places like, neurotransmitter uptake into the vesicles, relocation of the vesicles to the vicinity of calcium channels in order to facilitate Ca2+ induced release thereby modulating the fusion probability, formation of a fusion pore to release the neurotransmitter and finally reuptake of the vesicles by endocytosis. Each of these checkpoints has now become a special area of study and maintains its own importance for the understanding of the overall process. Ca2+ induced release occurs at specialized membrane structures at the synapse known as the active zones. These are highly ordered electron dense grids and are composed of several proteins which assist the synaptic vesicles in relocating in the vicinity of Ca2+ channels thereby increasing their fusion probability and then bringing about the vesicular fusion itself. All the protein modules needed for these processes are thought to be held in tight arrays at the active zones, and the functions of a few have been characterized so far at the vertebrate active zones. Our group is primarily interested in characterizing the molecular architecture of the Drosophila synapse. Due to its powerful genetics and well-established behavioural assays Drosophila is an excellent system to investigate neuronal functioning. Monoclonal antibodies (MABs) from a hybridoma library against Drosophila brain are routinely used to detect novel proteins in the brain in a reverse genetic approach. Upon identification of the protein its encoding genetic locus is characterized and a detailed investigation of its function is initiated. This approach has been particularly useful to detect synaptic proteins, which may go undetected in a forward genetic approach due to lack of an observable phenotype. Proteins like CSP, Synapsin and Sap47 have been identified and characterized using this approach so far. MAB nc82 has been one of the shortlisted antibodies from the same library and is widely used as a general neuropil marker due to the relative transparency of immunohistochemical whole mount staining obtained with this antibody. A careful observation of double stainings at the larval neuromuscular junctions with MAB nc82 and other pre and post-synaptic markers strongly suggested an active zone localization of the nc82 antigen. Synaptic architecture is well characterized in Drosophila at the ultrastructural level. However, molecular details for many synaptic components and especially for the active zone are almost entirely unknown. A possible localization at the active zone for the nc82 antigen served as the motivation to initiate its biochemical characterization and the identification of the encoding gene. In the present thesis it is shown by 2-D gel analysis and mass spectrometry that the nc82 antigen is a novel active zone protein encoded by a complex genetic locus on chromosome 2R. By RT-PCR exons from three open reading frames previously annotated as separate genes are demonstrated to give rise to a transcript of at least 5.5 kb. Northern blots produce a prominent signal of 11 kb and a weak signal of 2 kb. The protein encoded by the 5.5 kb transcript is highly conserved amongst insects and has at its N-terminus significant homology to the previously described vertebrate active zone protein ELKS/ERC/CAST. Bioinformatic analysis predicts coiled-coil domains spread all over the sequence and strongly suggest a function involved in organizing or maintaining the structure of the active zone. The large C-terminal region is highly conserved amongst the insects but has no clear homologues in veretebrates. For a functional analysis of this protein transgenic flies expressing RNAi constructs under the control of the Gal4 regulated enhancer UAS were kindly provided by the collaborating group of S.Sigrist (Gِttingen). A strong pan-neuronal knockdown of the nc82 antigen by transgenic RNAi expression leads to embryonic lethality. A relatively weaker RNAi expression results in behavioural deficits in adult flies including unstable flight and impaired walking behavior. Due to this peculiar phenotype as observed in the first knockdown studies the gene was named “bruchpilot” (brp) encoding the protein “Bruchpilot (BRP)” (German for crash pilot). A pan-neuronal as well as retina specific downregulation of this protein results in loss of ON and OFF transients in ERG recordings indicating dysfunctional synapses. Retina specific downregulation also shows severely impaired optomotor behaviour. Finally, at an ultrastructural level BRP downregulation seems to impair the formation of the characteristic T-shaped synaptic ribbons at the active zones without significantly altering the overall synaptic architecture (in collaboration with E.Asan). Vertebrate active zone protein Bassoon is known to be involved in attaching the synaptic ribbons to the active zones as an adapter between active zone proteins RIBEYE and ERC/CAST. A mutation in Bassoon results in a floating synaptic ribbon phenotype. No protein homologous to Bassoon has been observed in Drosophila. BRP downregulation also results in absence of attached synaptic ribbons at the active zones. This invites the speculation of an adapter like function for BRP in Drosophila. However, while Bassoon mutant mice are viable, BRP deficit in addition to the structural phenotype also results in severe behavioural and physiological anomalies and even stronger downregulation causes embryonic lethality. This therefore suggests an additional and even more important role for BRP in development and normal functioning of synapses in Drosophila and also in other insects. However, how BRP regulates synaptic transmission and which other proteins are involved in this BRP dependant pathway remains to be investigated. Such studies certainly will attract prominent attention in the future. N2 - Die chemische Signalübertragung an Synapsen ist ein komplexer Prozess mit zentraler Bedeutung für die Funktion von Nervensystemen. Man nimmt an, dass er auf einem Zusammenspiel hunderter verschiedener Proteine beruht. Diverse Synopsenproteine haben sich für die Neurotransmission als relevant erwiesen und viele davon sind in der Evolution hoch konserviert, was einen universalen Mechanismus der Neurotransmission wahrscheinlich macht. Dieser Prozess ist in zahlreiche aufeinander folgende Schritte unterteilt, wie die Neurotransmitteraufnahme in Vesikel, den Transport von Vesikeln in die Nنhe von Calciumkanنlen, die Ausbildung einer Fusionspore zur Transmitterausschüttung und schlieكlich die Wiederaufnahme von Vesikeln durch Endozytose. Jeder dieser Teilschritte wird momentan gezielt erforscht und spielt für sich genommen eine zentrale Rolle für das Verstنndnis des gesamten Prozesses. Die Calcium-induzierte Transmitterausschüttung findet an spezialisierten Membranstrukturen der Synapsen statt, den aktiven Zonen. Diese sind hoch organisierte, elektronendichte Gitterstrukturen und bestehen aus verschiedenen Proteinen, die den synaptischen Vesikeln bei der Verlagerung in die Nنhe von Calciumkanنlen behilflich sind. Alle Proteinmodule, die für diese Prozesse nِtig sind, scheinen eng aneinandergereiht an den aktiven Zonen vorzuliegen. Nur von wenigen konnte bisher bei Vertebraten die Funktion an der aktiven Zone charakterisiert werden. Ein Fokus der Arbeitsgruppe, an der diese Doktorarbeit durchgeführt wurde, besteht in der Charakterisierung des molekularen Aufbaus der Synapse von Drosophila. Die Taufliege ist aufgrund eines reichen Angebots hِchsteffektiver genetischer Methoden und vielfنltiger Verhaltensparadigmen ein exzellentes Modellsystem, um die neuronale Signalübertragung zu untersuchen. Monoklonale Antikِrper (MAKs) aus einer Hybridomabank gegen das Drosophila Gehirn werden standardmنكig verwendet, um neue Gehirnproteine mittels der „reverse genetics“- Methode zu identifizieren. Dazu wird der entsprechende genetische Lokus charakterisiert und eine detaillierte Untersuchung der Proteinfunktion initiiert. Diese Vorgehensweise war besonders hilfreich bei der Identifizierung von Synapsenproteinen, die bei der „forward genetics“-Methode aufgrund des Fehlens eines beobachtbaren Phنnotyps übersehen würden. Proteine wie CSP, Synapsin und Sap47 wurden so gefunden und charakterisiert. I MAK nc82 stammt aus dieser Hybridomabank und wird in vielen Labors als allgemeiner Neuropilmarker aufgrund seiner hervorragenden Fنrbungseigenschaften in Gehirnprنparaten verwendet. Doppelfنrbungen der larvalen neuromuskulنren Synapse mit dem Antikِrper nc82 in Kombination mit anderen prن- und postsynaptischen Markern deuteten stark auf eine Lokalisierung des Antigens an der aktiven Zone hin. Die Synapsenarchitektur von Drosophila ist auf der ultrastrukturellen Ebene gut verstanden. Jedoch sind die molekularen Details vieler Synapsenkomponenten, besonders die der aktiven Zone, nicht bekannt. Die vermutete Lokalisierung des nc82 Antigens an der aktiven Zone war daher der Ansatzpunkt, eine biochemische Charakterisierung zu initiieren und das entsprechende Gen zu identifizieren. In der vorliegenden Arbeit wird durch 2-D Gelelektrophorese und Massenspektrometrie gezeigt, das das nc82 Antigen ein neues Protein der aktiven Zone ist, welches von einem komplexen Genlokus auf Chromosom 2R kodiert wird. Durch RT-PCR wurde gezeigt, dass die Exons von drei offenen Leserastern, die bisher als getrennte Gene annotiert wurden, ein Transkript von mindestens 5,5 kb Lنnge kodieren. Northern Blots ergaben ein deutliches Signal bei 11 kb und ein schwنcheres bei 2 kb. Das von dem 5,5 kb Transkript resultierende Protein ist hoch konserviert in der Gruppe der Insekten und weist an seiner N-terminalen Domنne eine signifikante Homologie zu den bisher beschriebenen Vertebratenproteinen der aktiven Zone ELKS/ERC/CAST auf. Bioinformatische Analysen sagen „coiled-coil“ Domنnen vorher, die über die gesamte Sequenz verteilt sind. Dies deutet stark auf eine Funktion bei der Organisation oder der Aufrechterhaltung der prنsynaptischen Struktur hin. Die groكe C-terminale Region ist zwar bei Insekten hoch konserviert, zeigt aber keine eindeutige Homologie zu Proteinen von Vertebraten. Für die Funktionsanalyse dieses Proteins wurden transgene Fliegen, die UAS-RNAi Konstrukte in ihrem Genom tragen und durch entsprechende GAL4-Linien getrieben werden kِnnen, freundlicherweise von der kollaborierenden Arbeitsgruppe von S. Sigrist (Gِttingen) zur Verfügung gestellt. Der pan-neuronale „knock-down“ des nc82 Antigens durch transgene RNAi-Expression führt zu embryonaler Letalitنt. Eine schwنchere RNAi-Expression führt bei adulten Fliegen zu Verhaltensdefekten, wie instabilem Flug und beeintrنchtigtem Laufverhalten. Aufgrund dieser Phنnotypen, die in den ersten „knock-down“ Studien beobachtet wurden, wurde das Gen „bruchpilot“ (brp) und das zugehِrige Protein „Bruchpilot“ (BRP) genannt. Die pan-neuronale, sowie die retinaspezifische Reduktion des Proteins führt zu einem Verlust der ON und OFF Transienten des Elektroretinogramms, was auf nichtfunktionelle Synapsen hindeutet. Die retinaspezifische Reduktion des Proteins hat eine Beeintrنchtigung der optomotorischen Reaktion zur Folge. Auكerdem scheint auf der ultrastrukturellen Ebene die Bildung der charakteristischen T-fِrmigen „ribbons“ der aktiven Zonen beeintrنchtigt zu sein, jedoch ohne signifikante Verنnderungen der Gesamtarchitektur der Synapse (in Kollaboration mit E. Asan). Von Basson, einem Protein der aktiven Zone bei Vertebraten, ist bekannt, dass es an der Anheftung der synaptischen „ribbons“ an den aktiven Zonen beteiligt ist. Es fungiert als Adapter zwischen RIBEYE und ELKS/ERC/CAST, zwei weiteren Proteinen der aktiven Zone. Die Mutation von Bassoon hat zur Folge, dass die synaptischen „ribbons“ frei im Zytoplasma treiben. Für Bassoon ist kein homologes Drosophila-Protein bekannt. Die Reduktion von BRP bedingt ebenfalls ein Fehlen befestigter „ribbons“ an der aktiven Zone. Dies kِnnte auf eine Art Adapterfunktion von BRP hindeuten. Jedoch hat das Fehlen von BRP zusنtzlich zum strukturellen Phنnotyp auch deutliche Verhaltensabnormalitنten und starke physiologische Beeintrنchtigungen zur Folge. Eine noch stنrkere Reduktion bedingt auكerdem embryonale Lethalitنt, wohingegen Mausmutanten ohne Bassoon lebensfنhig sind. Daraus ergibt sich, dass BRP eine weitere, wichtige Rolle wنhrend der Entwicklung und für die Funktion von Synapsen bei Drosophila und mِglicherweise auch bei anderen Insekten einnimmt. Es muss aber noch geklنrt werden, auf welche Weise BRP die synaptische Signalübertragung reguliert und welche anderen Proteine in diesem BRP-abhنngigen Pfad involviert sind. Derartige Studien werden mit Sicherheit in der Zukunft eine bedeutende Rolle spielen. KW - Taufliege KW - Synapse KW - Proteine KW - Molekulargenetik KW - Bruchpilot KW - Drosophila-Synapse KW - Bruchpilot KW - Drosophila synapse Y1 - 2005 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-14989 ER - TY - JOUR A1 - Plieger, Tanja A1 - Wolf, Matthias T1 - 18S and ITS2 rDNA sequence-structure phylogeny of Prototheca (Chlorophyta, Trebouxiophyceae) JF - Biologia N2 - Protothecosis is an infectious disease caused by organisms currently classified within the green algal genus Prototheca. The disease can manifest as cutaneous lesions, olecranon bursitis or disseminated or systemic infections in both immunocompetent and immunosuppressed patients. Concerning diagnostics, taxonomic validity is important. Prototheca, closely related to the Chlorella species complex, is known to be polyphyletic, branching with Auxenochlorella and Helicosporidium. The phylogeny of Prototheca was discussed and revisited several times in the last decade; new species have been described. Phylogenetic analyses were performed using ribosomal DNA (rDNA) and partial mitochondrial cytochrome b (cytb) sequence data. In this work we use Internal Transcribed Spacer 2 (ITS2) as well as 18S rDNA data. However, for the first time, we reconstruct phylogenetic relationships of Prototheca using primary sequence and RNA secondary structure information simultaneously, a concept shown to increase robustness and accuracy of phylogenetic tree estimation. Using encoded sequence-structure data, Neighbor-Joining, Maximum-Parsimony and Maximum-Likelihood methods yielded well-supported trees in agreement with other trees calculated on rDNA; but differ in several aspects from trees using cytb as a phylogenetic marker. ITS2 secondary structures of Prototheca sequences are in agreement with the well-known common core structure of eukaryotes but show unusual differences in their helix lengths. An elongation of the fourth helix of some species seems to have occurred independently in the course of evolution. KW - secondary structure KW - 18S KW - ITS2 KW - phylogeny KW - prototheca Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-269897 SN - 1336-9563 VL - 77 IS - 2 ER - TY - JOUR A1 - Rackevei, Antonia S. A1 - Karnkowska, Anna A1 - Wolf, Matthias T1 - 18S rDNA sequence–structure phylogeny of the Euglenophyceae (Euglenozoa, Euglenida) JF - Journal of Eukaryotic Microbiology N2 - The phylogeny of Euglenophyceae (Euglenozoa, Euglenida) has been discussed for decades with new genera being described in the last few years. In this study, we reconstruct a phylogeny using 18S rDNA sequence and structural data simultaneously. Using homology modeling, individual secondary structures were predicted. Sequence–structure data are encoded and automatically aligned. Here, we present a sequence–structure neighbor‐joining tree of more than 300 taxa classified as Euglenophyceae. Profile neighbor‐joining was used to resolve the basal branching pattern. Neighbor‐joining, maximum parsimony, and maximum likelihood analyses were performed using sequence–structure information for manually chosen subsets. All analyses supported the monophyly of Eutreptiella, Discoplastis, Lepocinclis, Strombomonas, Cryptoglena, Monomorphina, Euglenaria, and Colacium. Well‐supported topologies were generally consistent with previous studies using a combined dataset of genetic markers. Our study supports the simultaneous use of sequence and structural data to reconstruct more accurate and robust trees. The average bootstrap value is significantly higher than the average bootstrap value obtained from sequence‐only analyses, which is promising for resolving relationships between more closely related taxa. KW - euglena KW - euglenids KW - phylogenetics KW - secondary structure Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-311896 VL - 70 IS - 2 ER - TY - JOUR A1 - Gilmore, Michael S. A1 - Cruz-Rodz, Armando L. A1 - Leimeister-Wächter, Michaela A1 - Kreft, Jürgen A1 - Goebel, Werner T1 - A Bacillus cereus cytolytic determinant, cereolysin AB, which comprises the phospholipase C and sphingomyelinase genes: nucleotide sequence and genetic linkage N2 - A cloned cytolytic determinant from the genome of Bacillus cereus GP-4 has been characterized at the molecular Ievel. Nucleotide sequence determination revealed the presence of two open reading frames. 8oth open reading frames were found by deletion and complementation analysis to be necessary for expression of the hemolytic phenotype by Bacillus subtilis and Escherichia coli hosts. The 5' open reading frame was found to be nearly identical to a recently reported phospholipase C gene derived from a mutant B. cereus strain which overexpresses the respective protein, and it conferred a lecithinase-positive phenotype to the B. subtilis host. The 3' open reading frame encoded a sphingomyelinase. The two tandemly encoded activities, phospholipase C and sphingomyelinase, constitute a biologically functional cytolytic determinant of B. cereus termed cereolysin AB. KW - Biologie Y1 - 1989 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-60588 ER - TY - JOUR A1 - Dütting, Sebastian A1 - Gaits-Iacovoni, Frederique A1 - Stegner, David A1 - Popp, Michael A1 - Antkowiak, Adrien A1 - van Eeuwijk, Judith M.M. A1 - Nurden, Paquita A1 - Stritt, Simon A1 - Heib, Tobias A1 - Aurbach, Katja A1 - Angay, Oguzhan A1 - Cherpokova, Deya A1 - Heinz, Niels A1 - Baig, Ayesha A. A1 - Gorelashvili, Maximilian G. A1 - Gerner, Frank A1 - Heinze, Katrin G. A1 - Ware, Jerry A1 - Krohne, Georg A1 - Ruggeri, Zaverio M. A1 - Nurden, Alan T. A1 - Schulze, Harald A1 - Modlich, Ute A1 - Pleines, Irina A1 - Brakebusch, Cord A1 - Nieswandt, Bernhard T1 - A Cdc42/RhoA regulatory circuit downstream of glycoprotein Ib guides transendothelial platelet biogenesis JF - Nature Communications N2 - Blood platelets are produced by large bone marrow (BM) precursor cells, megakaryocytes (MKs), which extend cytoplasmic protrusions (proplatelets) into BM sinusoids. The molecular cues that control MK polarization towards sinusoids and limit transendothelial crossing to proplatelets remain unknown. Here, we show that the small GTPases Cdc42 and RhoA act as a regulatory circuit downstream of the MK-specific mechanoreceptor GPIb to coordinate polarized transendothelial platelet biogenesis. Functional deficiency of either GPIb or Cdc42 impairs transendothelial proplatelet formation. In the absence of RhoA, increased Cdc42 activity and MK hyperpolarization triggers GPIb-dependent transmigration of entire MKs into BM sinusoids. These findings position Cdc42 (go-signal) and RhoA (stop-signal) at the centre of a molecular checkpoint downstream of GPIb that controls transendothelial platelet biogenesis. Our results may open new avenues for the treatment of platelet production disorders and help to explain the thrombocytopenia in patients with Bernard–Soulier syndrome, a bleeding disorder caused by defects in GPIb-IX-V. KW - megakaryocytes KW - blood platelets KW - regulatory circuit downstream KW - glycoprotein Ib Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-170797 VL - 8 IS - 15838 ER - TY - JOUR A1 - Drescher, Nora A1 - Klein, Alexandra-Maria A1 - Schmitt, Thomas A1 - Leonhardt, Sara Diana T1 - A clue on bee glue: New insight into the sources and factors driving resin intake in honeybees (Apis mellifera) JF - PLoS ONE N2 - Honeybees (Apis mellifera) are threatened by numerous pathogens and parasites. To prevent infections they apply cooperative behavioral defenses, such as allo-grooming and hygiene, or they use antimicrobial plant resin. Resin is a chemically complex and highly variable mixture of many bioactive compounds. Bees collect the sticky material from different plant species and use it for nest construction and protection. Despite its importance for colony health, comparatively little is known about the precise origins and variability in resin spectra collected by honeybees. To identify the botanical resin sources of A. mellifera in Western Europe we chemically compared resin loads of individual foragers and tree resins. We further examined the resin intake of 25 colonies from five different apiaries to assess the effect of location on variation in the spectra of collected resin. Across all colonies and apiaries, seven distinct resin types were categorized according to their color and chemical composition. Matches between bee-collected resin and tree resin indicated that bees used poplar (Populus balsamifera, P. x canadensis), birch (Betula alba), horse chestnut (Aesculus hippocastanum) and coniferous trees (either Picea abies or Pinus sylvestris) as resin sources. Our data reveal that honeybees collect a comparatively broad and variable spectrum of resin sources, thus assuring protection against a variety of antagonists sensitive to different resins and/or compounds. We further unravel distinct preferences for specific resins and resin chemotypes, indicating that honeybees selectively search for bioactive resin compounds. KW - Honey bees KW - Poplars KW - Trees KW - Forests KW - Chemical composition KW - Bees KW - Conifers KW - Phenols Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-200935 VL - 14 IS - 2 ER - TY - JOUR A1 - Schuhmann, Antonia A1 - Scheiner, Ricarda T1 - A combination of the frequent fungicides boscalid and dimoxystrobin with the neonicotinoid acetamiprid in field-realistic concentrations does not affect sucrose responsiveness and learning behavior of honeybees JF - Ecotoxicology and Environmental Safety N2 - The increasing loss of pollinators over the last decades has become more and more evident. Intensive use of plant protection products is one key factor contributing to this decline. Especially the mixture of different plant protection products can pose an increased risk for pollinators as synergistic effects may occur. In this study we investigated the effect of the fungicide Cantus® Gold (boscalid/dimoxystrobin), the neonicotinoid insecticide Mospilan® (acetamiprid) and their mixture on honeybees. Since both plant protection products are frequently applied sequentially to the same plants (e.g. oilseed rape), their combination is a realistic scenario for honeybees. We investigated the mortality, the sucrose responsiveness and the differential olfactory learning performance of honeybees under controlled conditions in the laboratory to reduce environmental noise. Intact sucrose responsiveness and learning performance are of pivotal importance for the survival of individual honeybees as well as for the functioning of the entire colony. Treatment with two sublethal and field relevant concentrations of each plant protection product did not lead to any significant effects on these behaviors but affected the mortality rate. However, our study cannot exclude possible negative sublethal effects of these substances in higher concentrations. In addition, the honeybee seems to be quite robust when it comes to effects of plant protection products, while wild bees might be more sensitive. Highlights • Mix of SBI fungicides and neonicotinoids can lead to synergistic effects for bees. • Combination of non-SBI fungicide and neonicotinoid in field-realistic doses tested. • Synergistic effect on mortality of honeybees. • No effects on sucrose responsiveness and learning performance of honeybees. • Synergistic effects by other pesticide mixtures or on wild bees cannot be excluded. KW - Apis mellifera KW - non-SBI fungicide KW - insecticide KW - pesticide mixture KW - synergistic effect KW - sublethal effect Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-350047 VL - 256 ER - TY - JOUR A1 - Niewalda, Thomas A1 - Völler, Thomas A1 - Eschbach, Claire A1 - Ehmer, Julia A1 - Wen-Chuang, Chou A1 - Timme, Marc A1 - Fiala, André A1 - Gerber, Bertram T1 - A Combined Perceptual, Physico-Chemical, and Imaging Approach to 'Odour-Distances' Suggests a Categorizing Function of the Drosophila Antennal Lobe JF - PLoS One N2 - How do physico-chemical stimulus features, perception, and physiology relate? Given the multi-layered and parallel architecture of brains, the question specifically is where physiological activity patterns correspond to stimulus features and/or perception. Perceived distances between six odour pairs are defined behaviourally from four independent odour recognition tasks. We find that, in register with the physico-chemical distances of these odours, perceived distances for 3octanol and n-amylacetate are consistently smallest in all four tasks, while the other five odour pairs are about equally distinct. Optical imaging in the antennal lobe, using a calcium sensor transgenically expressed in only first-order sensory or only second-order olfactory projection neurons, reveals that 3-octanol and n-amylacetate are distinctly represented in sensory neurons, but appear merged in projection neurons. These results may suggest that within-antennal lobe processing funnels sensory signals into behaviourally meaningful categories, in register with the physico-chemical relatedness of the odours. KW - organization KW - cameleon KW - honeybee KW - map KW - neurons KW - reveals KW - melanogaster KW - mushroom body KW - spatial representation KW - olfactory information Y1 - 2011 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-133510 VL - 6 IS - 9 ER - TY - JOUR A1 - Niewalda, Thomas A1 - Völler, Thomas A1 - Eschbach, Claire A1 - Ehmer, Julia A1 - Chou, Wen-Chuang A1 - Timme, Marc A1 - Fiala, André A1 - Gerber, Bertram T1 - A Combined Perceptual, Physico-Chemical, and ImagingApproach to ‘Odour-Distances’ Suggests a CategorizingFunction of the Drosophila Antennal Lobe N2 - How do physico-chemical stimulus features, perception, and physiology relate? Given the multi-layered and parallel architecture of brains, the question specifically is where physiological activity patterns correspond to stimulus features and/ or perception. Perceived distances between six odour pairs are defined behaviourally from four independent odour recognition tasks. We find that, in register with the physico-chemical distances of these odours, perceived distances for 3-octanol and n-amylacetate are consistently smallest in all four tasks, while the other five odour pairs are about equally distinct. Optical imaging in the antennal lobe, using a calcium sensor transgenically expressed in only first-order sensory or only second-order olfactory projection neurons, reveals that 3-octanol and n-amylacetate are distinctly represented in sensory neurons, but appear merged in projection neurons. These results may suggest that within-antennal lobe processing funnels sensory signals into behaviourally meaningful categories, in register with the physico-chemical relatedness of the odours. KW - Drosophila Antennal Lobe Y1 - 2011 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-74769 ER - TY - JOUR A1 - Biscotti, Maria Assunta A1 - Adolfi, Mateus Contar A1 - Barucca, Marco A1 - Forconi, Mariko A1 - Pallavicini, Alberto A1 - Gerdol, Marco A1 - Canapa, Adriana A1 - Schartl, Manfred T1 - A comparative view on sex differentiation and gametogenesis genes in lungfish and coelacanths JF - Genome Biology and Evolution N2 - Gonadal sex differentiation and reproduction are the keys to the perpetuation of favorable gene combinations and positively selected traits. In vertebrates, several gonad development features that differentiate tetrapods and fishes are likely to be, at least in part, related to the water-to-land transition. The collection of information from basal sarcopterygians, coelacanths, and lungfishes, is crucial to improve our understanding of the molecular evolution of pathways involved in reproductive functions, since these organisms are generally regarded as “living fossils” and as the direct ancestors of tetrapods. Here, we report for the first time the characterization of >50 genes related to sex differentiation and gametogenesis in Latimeria menadoensis and Protopterus annectens. Although the expression profiles of most genes is consistent with the intermediate position of basal sarcopterygians between actinopterygian fish and tetrapods, their phylogenetic placement and presence/absence patterns often reveal a closer affinity to the tetrapod orthologs. On the other hand, particular genes, for example, the male gonad factor gsdf (Gonadal Soma-Derived Factor), provide examples of ancestral traits shared with actinopterygians, which disappeared in the tetrapod lineage. KW - sex differentiation KW - Latimeria menadoensis KW - Protopterus annectens KW - evolution KW - testis KW - gametogenesis KW - ovary Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-176774 VL - 10 IS - 6 ER -