55 research outputs found

    Formalized classification of semi-dry grasslands in central and eastern Europe

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    European semi-dry grasslands are among the most species-rich vegetation types in the northern hemisphere and form an important part of the habitat mosaics in the forest-steppe zone. However. there is no comprehensive evaluation of the variation in their composition and the phytosocio-logical classification of these grasslands. For the syntaxonomic revision, we used a dataset of 34,173 vegetation plot records (releves) from central and eastern Europe. which were assigned to the class Fesiuco-Bromeiea using the diagnostic species listed in the EuroVegChecklist. To determine the diagnostic species of the orders, we used a TWINSPAN classification of the whole dataset. Of the total dataset, 15,449 releves were assigned to the order Brachypodietalia pinnati. which corresponds to semi-dry grasslands. This subset was again classified using TWINSPAN. Formal definitions of the following alliances were established: Mesobromion erecti, Cirsio-Brachypodion pinnati (incl. Fragario-Trifolion montani. Agrosiio-Avenulion schellianae, Scabioso ochroleucae-Poion angustifoliae and Adonido vernalis-Stipion iirsae), Scorzonerion villosae and Chrysopogono-Danshonion. Another alliance, Armerion elongatae (=Koelerio-Phleion phleoidis p.p.). is transitional towards the class Koelerio-Corynephoreiea and its status needs further evaluation. We also established formal definitions of all of the associations of Mesobromion and Cirsio-Brachypodion within the area studied. Associations were identified using (i) a TWINSPAN classification of the whole order, (ii) TWINSPAN classifications of regionally restricted data sets (usually all Brachypodietalia plots in one country) and (iii) existing national classification schemes. All formal definitions were written in the expert system language of the JUICE program. To obtain a more complete picture of the floristic similarities and gradients. we performed a DCA ordination of the associations. Our results revealed that meadow steppes in the forest-steppe zone in eastern Europe are very similar to semi-dry grasslands in central Europe

    Differential Interactions of Sex Pheromone and Plant Odour in the Olfactory Pathway of a Male Moth

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    Most animals rely on olfaction to find sexual partners, food or a habitat. The olfactory system faces the challenge of extracting meaningful information from a noisy odorous environment. In most moth species, males respond to sex pheromone emitted by females in an environment with abundant plant volatiles. Plant odours could either facilitate the localization of females (females calling on host plants), mask the female pheromone or they could be neutral without any effect on the pheromone. Here we studied how mixtures of a behaviourally-attractive floral odour, heptanal, and the sex pheromone are encoded at different levels of the olfactory pathway in males of the noctuid moth Agrotis ipsilon. In addition, we asked how interactions between the two odorants change as a function of the males' mating status. We investigated mixture detection in both the pheromone-specific and in the general odorant pathway. We used a) recordings from individual sensilla to study responses of olfactory receptor neurons, b) in vivo calcium imaging with a bath-applied dye to characterize the global input response in the primary olfactory centre, the antennal lobe and c) intracellular recordings of antennal lobe output neurons, projection neurons, in virgin and newly-mated males. Our results show that heptanal reduces pheromone sensitivity at the peripheral and central olfactory level independently of the mating status. Contrarily, heptanal-responding olfactory receptor neurons are not influenced by pheromone in a mixture, although some post-mating modulation occurs at the input of the sexually isomorphic ordinary glomeruli, where general odours are processed within the antennal lobe. The results are discussed in the context of mate localization

    Leishmania HASP and SHERP Genes are Required for In Vivo Differentiation, Parasite Transmission and Virulence Attenuation in the Host

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    Differentiation of extracellular Leishmania promastigotes within their sand fly vector, termed metacyclogenesis, is considered to be essential for parasites to regain mammalian host infectivity. Metacyclogenesis is accompanied by changes in the local parasite environment, including secretion of complex glycoconjugates within the promastigote secretory gel and colonization and degradation of the sand fly stomodeal valve. Deletion of the stage-regulated HASP and SHERP genes on chromosome 23 of Leishmania major is known to stall metacyclogenesis in the sand fly but not in in vitro culture. Here, parasite mutants deficient in specific genes within the HASP/SHERP chromosomal region have been used to investigate their role in metacyclogenesis, parasite transmission and establishment of infection. Metacyclogenesis was stalled in HASP/SHERP mutants in vivo and, although still capable of osmotaxis, these mutants failed to secrete promastigote secretory gel, correlating with a lack of parasite accumulation in the thoracic midgut and failure to colonise the stomodeal valve. These defects prevented parasite transmission to a new mammalian host. Sand fly midgut homogenates modulated parasite behaviour in vitro, suggesting a role for molecular interactions between parasite and vector in Leishmania development within the sand fly. For the first time, stage-regulated expression of the small HASPA proteins in Leishmania (Leishmania) has been demonstrated: HASPA2 is expressed only in extracellular promastigotes and HASPA1 only in intracellular amastigotes. Despite its lack of expression in amastigotes, replacement of HASPA2 into the null locus background delays onset of pathology in BALB/c mice. This HASPA2-dependent effect is reversed by HASPA1 gene addition, suggesting that the HASPAs may have a role in host immunomodulation

    Der duale olfaktorische Weg im Gehirn der Honigbiene: Sensorischer Eingang und elektrophysiologische Eigenschaften

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    The olfactory sense is of utmost importance for honeybees, Apis mellifera. Honeybees use olfaction for communication within the hive, for the identification of nest mates and non-nest mates, the localization of food sources, and in case of drones (males), for the detection of the queen and mating. Honeybees, therefore, can serve as excellent model systems for an integrative analysis of an elaborated olfactory system. To efficiently filter odorants out of the air with their antennae, honeybees possess a multitude of sensilla that contain the olfactory sensory neurons (OSN). Three types of olfactory sensilla are known from honeybee worker antennae: Sensilla trichoidea, Sensilla basiconica and Sensilla placodea. In the sensilla, odorant receptors that are located in the dendritic arborizations of the OSNs transduce the odorant information into electrical information. Approximately 60.000 OSN axons project in two parallel bundles along the antenna into the brain. Before they enter the primary olfactory brain center, the antennal lobe (AL), they diverge into four distinct tracts (T1-T4). OSNs relay onto ~3.000-4.000 local interneurons (LN) and ~900 projection neurons (PN), the output neurons of the AL. The axons of the OSNs together with neurites from LNs and PNs form spheroidal neuropil units, the so-called glomeruli. OSN axons from the four AL input tracts (T1-T4) project into four glomerular clusters. LNs interconnect the AL glomeruli, whereas PNs relay the information to the next brain centers, the mushroom body (MB) - associated with sensory integration, learning and memory - and the lateral horn (LH). In honeybees, PNs project to the MBs and the LH via two separate tracts, the medial and the lateral antennal-lobe tract (m/lALT) which run in parallel in opposing directions. The mALT runs first to the MB and then to the LH, the lALT runs first to the LH and then to the MB. This dual olfactory pathway represents a feature unique to Hymenoptera. Interestingly, both tracts were shown to process information about similar sets of odorants by extracting different features. Individual mALT PNs are more odor specific than lALT PNs. On the other hand, lALT PNs have higher spontaneous and higher odor response action potential (AP) frequencies than mALT PNs. In the MBs, PNs form synapses with ~184.000 Kenyon cells (KC), which are the MB intrinsic neurons. KCs, in contrast to PNs, show almost no spontaneous activity and employ a spatially and temporally sparse code for odor coding. In manuscript I of my thesis, I investigated whether the differences in specificity of odor responses between m- and lALT are due to differences in the synaptic input. Therefore, I investigated the axonal projection patterns of OSNs housed in S. basiconica in honeybee workers and compared them with S. trichoidea and S. placodea using selective anterograde labeling with fluorescent tracers and confocal- microscopy analyses of axonal projections in AL glomeruli. Axons of S. basiconica-associated OSNs preferentially projected into the T3 input-tract cluster in the AL, whereas the two other types of sensilla did not show a preference for a specific glomerular cluster. T3- associated glomeruli had previously been shown to be innervated by mALT PNs. Interestingly, S. basiconica as well as a number of T3 glomeruli lack in drones. Therefore I set out to determine whether this was associated with the reduction of glomeruli innervated by mALT PNs. Retrograde tracing of mALT PNs in drones and counting of innervated glomeruli showed that the number of mALT-associated glomeruli was strongly reduced in drones compared to workers. The preferential projections of S. basiconica-associated OSNs into T3 glomeruli in female workers together with the reduction of mALT-associated glomeruli in drones support the presence of a female-specific olfactory subsystem that is partly innervated by OSNs from S. basiconica and is associated with mALT projection neurons. As mALT PNs were shown to be more odor specific, I suppose that already the OSNs in this subsystem are more odor specific than lALT associated OSNs. I conclude that this female-specific subsystem allows the worker honeybees to respond adequately to the enormous variety of odorants they experience during their lifetime. In manuscript II, I investigated the ion channel composition of mALT and lALT PNs and KCs in situ. This approach represents the first study dealing with the honeybee PN and KC ion channel composition under standard conditions in an intact brain preparation. With these recordings I set out to investigate the potential impact of intrinsic neuronal properties on the differences between m- and lALT PNs and on the sparse odor coding properties of KCs. In PNs, I identified a set of Na+ currents and diverse K+ currents depending on voltage and Na+ or Ca2+ that support relatively high spontaneous and odor response AP frequencies. This set of currents did not significantly differ between mALT and lALT PNs, but targets for potential modulation of currents leading to differences in AP frequencies were found between both types of PNs. In contrast to PNs, KCs have very prominent K+ currents, which are likely to contribute to the sparse response fashion observed in KCs. Furthermore, Ca2+ dependent K+ currents were found, which may be of importance for coincidence detection, learning and memory formation. Finally, I conclude that the differences in odor specificity between m- and lALT PNs are due to their synaptic input from different sets of OSNs and potential processing by LNs. The differences in spontaneous activity between the two tracts may be caused by different neuronal modulation or, in addition, also by interaction with LNs. The temporally sparse representation of odors in KCs is very likely based on the intrinsic KC properties, whereas general excitability and spatial sparseness are likely to be regulated through GABAergic feedback neurons.Der Geruchssinn ist für die Honigbiene, Apis mellifera, von größter Bedeutung. Honigbienen kommunizieren olfaktorisch, sie können Nestgenossinnen und koloniefremde Honigbienen aufgrund des Geruchs unterscheiden, sie suchen und erkennen Nahrungsquellen olfaktorisch, und Drohnen (männliche Honigbienen) finden die Königin mit Hilfe des Geruchssinns. Deshalb dient die Honigbiene als exzellentes Modell für die Untersuchung hochentwickelter olfaktorischer Systeme. Honigbienen filtern Duftmoleküle mit ihren Antennen aus der Luft. Auf diesen Antennen sitzen Sensillen, die die olfaktorischen sensorischen Neurone (OSN) beinhalten. Drei verschiedene olfaktorische Sensillen existieren bei Arbeiterinnen: Sensilla trichoidea, Sensilla basiconica und Sensilla placodea. In diesen Sensillen sind olfaktorische Rezeptorproteine auf den Dendriten der OSN lokalisiert. Diese Duftrezeptoren wandeln die Duftinformationen in elektrische Informationen um. Die Axone von ca. 60.000 OSN ziehen in zwei Bündeln entlang der Antenne in das Gehirn. Bevor sie das erste olfaktorische Gehirnzentrum, den Antennallobus (AL), erreichen, spalten sie sich in vier distinkte Trakte (T1-T4) auf. Im AL verschalten sie auf 3.000-4.000 lokale Interneurone (LN) und auf etwa 900 Ausgangsneurone des AL, die Projektionsneurone (PN). Die axonalen Endigungen der OSN bilden mit Neuriten der PN und LN kugelförmige Strukturen, die so genannten Glomeruli. Die OSN aus den vier Trakten T1-T4 ziehen in vier zugehörige glomeruläre Cluster. LN verschalten die Information unter den AL Glomeruli, PN leiten olfaktorische Informationen zu den nächsten Gehirnstrukturen, den Pilzkörpern und dem lateralen Horn, weiter. Die Pilzkörper werden als Zentrum für sensorische Integration, Lernen und Gedächtnis gesehen. Die PN, die den AL mit dem Pilzkörper und dem lateralen Horn verbinden, verlaufen in Honigbienen parallel über zwei Bahnen, den medialen und den lateralen Antennallobustrakt (mALT/lALT), aber in entgegengesetzter Richtung. Dieser duale olfaktorische Signalweg wurde in dieser Ausprägung bisher nur in Hymenopteren gefunden. Interessanterweise prozessieren beide Trakte Informationen über die gleichen Düfte. Dabei sind mALT PN duftspezifischer und lALT PN haben höhere spontane Aktionspotentialfrequenzen sowie höhere Aktionspotentialfrequenzen in Antwort auf einen Duftreiz. Im Pilzkörper verschalten PN auf Kenyon Zellen (KC), die intrinsischen Neurone des Pilzkörpers. KC sind im Gegensatz zu PN fast nicht spontan aktiv und kodieren Informationen auf räumlicher und zeitlicher Ebene mit geringer Aktivität. Man spricht von einem so genannten "sparse code". Im ersten Manuskript meiner Doktorarbeit habe ich untersucht, ob die Unterschiede in der Spezifität der Duftantworten zwischen mALT und lALT PN zumindest zum Teil auf Unterschieden im sensorischen Eingang beruhen. Ich habe die axonalen Projektionen der OSN der S. basiconica in Honigbienen untersucht und mit den Projektionen von OSN in S. trichoidea und S. placodea verglichen. Dazu wurden die OSN in den S. basiconica anterograd mit Fluoreszenzmarkern gefärbt und mit mittels konfokaler Mikroskopie untersucht und quantifiziert. Die Axone von OSN aus S. basiconica ziehen präferentiell in das T3 Glomerulus Cluster, die Axone der anderen beiden Sensillentypen zeigen keine Präferenz für ein spezielles Cluster. Es wurde bereits gezeigt, dass die Glomeruli des T3 Clusters von mALT PN innerviert werden. Interessanterweise fehlen S. basiconica und Teile der T3 Glomeruli in Drohnen. Deshalb habe ich untersucht, ob die T3 Reduzierung in Drohnen mit einer Reduzierung der mALT Glomeruli einhergeht. Retrograde Färbungen der mALT PN in Drohnen zeigten, daß die Zahl der mALT Glomeruli in Drohnen gegenüber Arbeiterinnen deutlich reduziert ist. Die Präferenz der OSN der S. basiconica für das T3 Cluster und die reduzierte Anzahl von mALT Glomeruli in Drohnen weisen auf ein arbeiterinnenspezifisches olfaktorisches Subsystem hin, welches aus S. basiconica, T3 Glomeruli und einer Gruppe von mALT PN besteht. Da die mALT PN duftspezifischer als lALT PN sind, vermute ich, dass auch die OSN, die auf mALT PN verschalten, duftspezifischer antworten als OSN die auf lALT PN verschalten. Daraus schließe ich, daß dieses Subsystem den Arbeiterinnen ermöglicht, passend auf die enorme Breite an Duftstoffen zu reagieren, die diese im Laufe ihres arbeitsteiligen Lebens wahrnehmen müssen. Im zweiten Manuskript meiner Doktorarbeit habe ich die Ionenkanalzusammensetzung der mALT PN, der lALT PN und der KC in situ untersucht. Mein Ansatz stellt die erste Studie dar, die die Ionenkanäle von Neuronen in der Honigbiene unter Standardbedingungen an einer intakten Gehirnpräparation untersucht. Mit diesen Messungen versuche ich die potentiellen bioelektrischen Grundlagen für Unterschiede in der Informationskodierung in mALT PN, lALT PN und Kenyon Zellen zu ergründen. In PN konnte ich eine Gruppe von Na+ Ionenkanälen und Na+ abhängigen, Ca2+ abhängigen sowie spannungsabhängigen K+ Ionenkanälen identifizieren, die die Grundlagen für hohe, spontane Aktionspotentialfrequenzen und hohe Duftantwortfrequenzen schaffen. Diese Ströme unterschieden sich nicht grundsätzlich zwischen m- und lALT PN. Jedoch wurden potentielle Ziele für neuronale Modulation gefunden, welche zu unterschiedlichen Aktionspotentialfrequenzen zwischen PN der beiden Trakte führen könnten. Im Gegensatz zu den PN wurden in Kenyon Zellen in der Relation sehr starke K+ Ionenströme gemessen. Diese dienen sehr wahrscheinlich der schnellen Terminierung von Duftantworten, also dem Erzeugen des zeitlichen "sparse code". Außerdem wurden Ca2+ abhängige K+ Kanäle gefunden, die für Koinzidenzdetektion, Lernen und Gedächtnis von Bedeutung sein können. In der Gesamtsicht folgere ich aus meinen Ergebnissen, dass die Unterschiede in der Duftspezifizität zwischen m- und lALT PN überwiegend auf deren sensorischen Eingängen von unterschiedlichen Populationen von OSN und der Verarbeitung über lokale Interneuronen im AL beruht. Die Unterschiede in der Spontanaktivität zwischen mALT und lALT basieren sehr wahrscheinlich auf neuronaler Modulation und/oder Interaktion mit LN. Die zeitliche Komponente des "sparse code" in KC entsteht höchstwahrscheinlich durch die intrinsischen elektrischen Eigenschaften der KC, wohingegen die generelle Erregbarkeit und der räumliche "sparse code" mit großer Wahrscheinlichkeit auf der Regulation durch GABAerge Neurone beruht

    Data from: In-situ recording of ionic currents in projection neurons and Kenyon cells in the olfactory pathway of the honeybee

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    The honeybee olfactory pathway comprises an intriguing pattern of convergence and divergence: ~60.000 olfactory sensory neurons (OSN) convey olfactory information on ~900 projection neurons (PN) in the antennal lobe (AL). To transmit this information reliably, PNs employ relatively high spiking frequencies with complex patterns. PNs project via a dual olfactory pathway to the mushroom bodies (MB). This pathway comprises the medial (m-ALT) and the lateral antennal lobe tract (l-ALT). PNs from both tracts transmit information from a wide range of similar odors, but with distinct differences in coding properties. In the MBs, PNs form synapses with many Kenyon cells (KC) that encode odors in a spatially and temporally sparse way. The transformation from complex information coding to sparse coding is a well-known phenomenon in insect olfactory coding. Intrinsic neuronal properties as well as GABAergic inhibition are thought to contribute to this change in odor representation. In the present study, we identified intrinsic neuronal properties promoting coding differences between PNs and KCs using in-situ patch-clamp recordings in the intact brain. We found very prominent K+ currents in KCs clearly differing from the PN currents. This suggests that odor coding differences between PNs and KCs may be caused by differences in their specific ion channel properties. Comparison of ionic currents of m- and l-ALT PNs did not reveal any differences at a qualitative level

    In-situ recording of ionic currents in projection neurons and Kenyon cells in the olfactory pathway of the honeybee

    No full text
    The honeybee olfactory pathway comprises an intriguing pattern of convergence and divergence: ~60.000 olfactory sensory neurons (OSN) convey olfactory information on ~900 projection neurons (PN) in the antennal lobe (AL). To transmit this information reliably, PNs employ relatively high spiking frequencies with complex patterns. PNs project via a dual olfactory pathway to the mushroom bodies (MB). This pathway comprises the medial (m-ALT) and the lateral antennal lobe tract (l-ALT). PNs from both tracts transmit information from a wide range of similar odors, but with distinct differences in coding properties. In the MBs, PNs form synapses with many Kenyon cells (KC) that encode odors in a spatially and temporally sparse way. The transformation from complex information coding to sparse coding is a well-known phenomenon in insect olfactory coding. Intrinsic neuronal properties as well as GABAergic inhibition are thought to contribute to this change in odor representation. In the present study, we identified intrinsic neuronal properties promoting coding differences between PNs and KCs using in-situ patch-clamp recordings in the intact brain. We found very prominent K+ currents in KCs clearly differing from the PN currents. This suggests that odor coding differences between PNs and KCs may be caused by differences in their specific ion channel properties. Comparison of ionic currents of m- and l-ALT PNs did not reveal any differences at a qualitative level

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    Excelfile with all membrane voltages, cell capacitances, current values and time points used for the graphs in the manuscrip

    Pre-experimental identification of antennal lobe projection neurons.

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    <p>r = rostral, c = caudal, m = medial, l = lateral. A: Confocal microscopy stack showing the neurons stained in the mushroom body (MB) with Microruby<sup>TM</sup> prior to <i>in situ</i> patch clamp recordings. The medial and the lateral antennal-lobe tract (m-ALT/l-ALT) of projection neurons as well as their arborizations in the lateral horn (LH) are clearly visible. Furthermore, Kenyon cell (KC) axons were stained. Bar 100 ÎĽm. B: Substack of the ventral part of the antennal lobe (AL). Cell bodies from l-ALT neurons and their glomerular branching patterns are clearly visible. Bar 100 ÎĽm. C: A cluster of stained cell bodies (CBs) viewed with a fluorescence microscope. Only stained cell bodies were used for PN recordings. The patch-clamp electrode is attached to a stained l-ALT projection neuron cell body.</p
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