969 resultados para leaves and Jacaratia spinosa


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Die reblausresistente Unterlagsrebsorte ’Börner’ reagiert auf einen Reblausbefall mit einer Hypersensitivitätsreaktion (HR), die sich in Form von Nekrosen an Blättern und Wurzeln zeigt. Im Rahmen dieser Dissertation wurde der Resistenzmechanismus mittels differenzieller Genexpressionsanalysen untersucht. Unter Anwendung der suppressiven subtraktiven Hybridisierung, der DNA-Microarraytechnik sowie der GeneFishingTM-Methode erfolgte ein Vergleich zwischen der Genexpression in hypersensitivem Wurzelgewebe und Normalgewebe der Unterlagsrebe ’Börner’. Neben der Reblaus induzierten HR wurde insbesondere auf die experimentelle Induktion durch das Pflanzenhormon Indol-3-Essigsäure (IES) zurückgegriffen. Damit sollten Kenntnisse über die Rolle der IES als auslösender Faktor der Resistenzreaktion gewonnen werden. Die Ergebnisse bestätigen die Annahme, dass die IES Pathogenabwehrreaktionen in ’Börner’ induziert. So konnten Hinweise auf die transkriptionelle Aktivierung Resistenz und HR assoziierter Proteine gefunden werden, wie z.B. Phytoalexine und pathogen-related (PR)-Proteine sowie Vertreter aus der hypersensitive-induced response-Familie. Es konnten weiterhin wertvolle Informationen im Hinblick auf die Transduktion des IES-Signals im Zusammenhang mit der Aktivierung von Resistenzreaktionen gewonnen werden. So wurden Hinweise auf die Beteiligung der Signalsubstanzen Ethylen, Salicylsäure, Jasmonsäure, Calcium sowie reaktiver Sauerstoffspezies gefunden. Es konnten zudem Anhaltspunkte für die Aktivierung des Auxin induzierten Ubiquitin/26S-Proteolyseweges und weiterer Signalkomponenten, wie z.B. Kinasen und Transkriptionsfaktoren, ermittelt werden. Auch auf die Beteiligung von Auxinrezeptoren konnte aufgrund der Resultate geschlossen werden. Damit war es im Rahmen der Dissertation möglich, potenzielle Signaltransduktionswege zu erarbeiten, die für weiterführende Untersuchungen des Reblausresistenzmechanismus von entscheidender Bedeutung sind.

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Dass Pflanzen gegen phytopathogene Infektionen resistent sind, ist das Ergebnis von multip-len Abwehrreaktionen. Eine solche ist auch die Hypersensitivitätsreaktion (HR). Sie ist die Folge eines Befalls von Börner mit Rebläusen und zeigt sich an Blättern und Wurzeln der resistenten Unterlagsrebe in Form von lokalen Nekrosen. Die Erzeugung von neuen, trans-genen reblausresistenten Unterlagsreben verlangt präzise Kenntnisse über die Mechanismen der Reblausresistenz. Um Resistenzgene zu identifizieren, wurden im Rahmen dieser Arbeit differenzielle Genexpressionsanalysen eingesetzt. Diese waren die Microarray Analyse mit der Geniom one Technik und die real time (RT) -PCR. Sie erlaubten eine Gegenüberstellung der Genexpression in behandeltem Wurzelgewebe mit der Expression im Normalgewebe der Unterlagsrebe Börner. Als experimenteller Induktor der HR in Börner diente die Indol-3-Essigsäure (IES), ein Bestandteil des Reblausspeichels. Frühere Untersuchungen zur Reb-lausresistenz zeigten, dass bei einer Behandlung mit IAA an Wurzeln von Börner Nekrosen entstehen, nicht jedoch an Wurzeln von der reblaustoleranten Unterlagssorte SO4 oder dem reblausanfälligem Edelreis. Das war der Grund, SO4 und Riesling als Vergleichsobjekte zu Börner für diese Studie auszuwählen. So sollte die Bedeutung der Rolle von IES als Auslö-ser der Resistenzmechanismen in Börner erklärt werden. Insgesamt konnten deutliche Unter-schiede in den Reaktionen der drei Rebsorten auf die IES Behandlung aufgedeckt werden. Während in Börner eine hohe Anzahl an Genen und diese intensiv auf den IES Reiz reagiert, fallen die Gene bei SO4 und Riesling zahlenmäßig kaum ins Gewicht und die Reaktionen der beiden Sorten auf IES zudem eher schwach aus. In der Summe waren es 27 Gene, die für die Reblausresistenz in Börner verantwortlich sein könnten. So konnte eine IES bedingte Aktivierung von Genen beobachtet werden, die bei der Produktion von Phytoalexinen be-deutsam sind, wie z.B. die phenylalanine ammonia-lyase, die lipoxygenase und die stilbene synthase. Weiter ließ sich eine Regulation von allgemein Stress assoziierten Genen und von Zellwandproteinen und eine Induktion von Signalkomponenten, etwa des Transkriptionsfak-tors ethylene response factor, nachweisen. Eine deutliche Hochregulation von Au-xintransportern in den IES behandelten Börnerwurzeln gab zudem Anhaltspunkte auf sorten-spezifische Unterschiede in der zellulären Aufnahme und Abgabe der IES. Durch die Ausar-beitung des Zusammenspiels der durch IES regulierten Gene konnten in dieser Arbeit wert-volle Hinweise auf die Mechanismen der Reblausresistenz in Börner gewonnen werden.

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In a majority of species, leaf development is thought to proceed in a bilaterally symmetric fashion without systematic asymmetries. This is despite the left and right sides of an initiating primordium occupying niches that differ in their distance from sinks and sources of auxin. Here, we revisit an existing model of auxin transport sufficient to recreate spiral phyllotactic patterns and find previously overlooked asymmetries between auxin distribution and the centers of leaf primordia. We show that it is the direction of the phyllotactic spiral that determines the side of the leaf these asymmetries fall on. We empirically confirm the presence of an asymmetric auxin response using a DR5 reporter and observe morphological asymmetries in young leaf primordia. Notably, these morphological asymmetries persist in mature leaves, and we observe left-right asymmetries in the superficially bilaterally symmetric leaves of tomato (Solanum lycopersicum) and Arabidopsis thaliana that are consistent with modeled predictions. We further demonstrate that auxin application to a single side of a leaf primordium is sufficient to recapitulate the asymmetries we observe. Our results provide a framework to study a previously overlooked developmental axis and provide insights into the developmental constraints imposed upon leaf morphology by auxin-dependent phyllotactic patterning.

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Phyllotaxis, the regular arrangement of leaves and flowers around the stem, is a key feature of plant architecture. Current models propose that the spatiotemporal regulation of organ initiation is controlled by a positive feedback loop between the plant hormone auxin and its efflux carrier PIN-FORMED1 (PIN1). Consequently, pin1 mutants give rise to naked inflorescence stalks with few or no flowers, indicating that PIN1 plays a crucial role in organ initiation. However, pin1 mutants do produce leaves. In order to understand the regulatory mechanisms controlling leaf initiation in Arabidopsis (Arabidopsis thaliana) rosettes, we have characterized the vegetative pin1 phenotype in detail. We show that although the timing of leaf initiation in vegetative pin1 mutants is variable and divergence angles clearly deviate from the canonical 137° value, leaves are not positioned at random during early developmental stages. Our data further indicate that other PIN proteins are unlikely to explain the persistence of leaf initiation and positioning during pin1 vegetative development. Thus, phyllotaxis appears to be more complex than suggested by current mechanistic models.

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According to climate models, drier summers must be expected more frequently in Central Europe during the next decades, which may influence plant performance and competition in grassland. The overall source–sink relations in plants, especially allocation of solutes to above- and below-ground parts, may be affected by drought. To investigate solute export from a given leaf of broadleaf dock, a solution containing 57Co and 65Zn was introduced through a leaf flap. The export from this leaf was detected by analysing radionuclide contents in various plant parts. Less label was allocated to new leaves and more to roots under drought. The observed alterations of source–sink relations in broadleaf dock were reversible during a subsequent short period of rewatering. These findings suggest an increased resource allocation to roots under drought improving the functionality of the plants.

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Cold acclimation is important for crop survival in environments undergoing seasonal low temperatures. It involves the induction of defensive mechanisms including the accumulation of different cryoprotective molecules among which are dehydrins (DHN). Recently several sequences coding for dehydrins were identified in white clover (Trifolium repens). This work aimed to select the most responsive to cold stress DHN analogues in search for cold stress diagnostic markers. The assessment of dehydrin transcript accumulation via RT-PCR and immunodetection performed with three antibodies against the conserved K-, Y-, and S-segment allowed to outline different dehydrin types presented in the tested samples. Both analyses confirmed that YnKn dehydrins were underrepresented in the controls but exposure to low temperature specifically induced their accumulation. Strong immunosignals corresponding to 37–40 kDa with antibodies against Y- and K-segment were revealed in cold-stressed leaves. Another ‘cold-specific’ band at position 52–55 kDa was documented on membranes probed with antibodies against K-segment. Real time RT-qPCR confirmed that low temperatures induced the accumulation of SKn and YnSKn transcripts in leaves and reduced their expression in roots. Results suggest that a YnKn dehydrin transcript with GenBank ID: KC247805 and the immunosignal at 37–40 kDa, obtained with antibodies against Y- and K-segment are reliable markers for cold stress in white clover. The assessment of SKn (GenBank ID: EU846208) and YnSKn (GenBank ID: KC247804) transcript levels in leaves could serve as additional diagnostic tools.

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The regular arrangement of leaves around a plant's stem, called phyllotaxis, has for centuries attracted the attention of philosophers, mathematicians and natural scientists; however, to date, studies of phyllotaxis have been largely theoretical. Leaves and flowers are formed from the shoot apical meristem, triggered by the plant hormone auxin. Auxin is transported through plant tissues by specific cellular influx and efflux carrier proteins. Here we show that proteins involved in auxin transport regulate phyllotaxis. Our data indicate that auxin is transported upwards into the meristem through the epidermis and the outermost meristem cell layer. Existing leaf primordia act as sinks, redistributing auxin and creating its heterogeneous distribution in the meristem. Auxin accumulation occurs only at certain minimal distances from existing primordia, defining the position of future primordia. This model for phyllotaxis accounts for its reiterative nature, as well as its regularity and stability.

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Aluminum phytotoxicity frequently occurs in acid soils (pH < 5.5) and was therefore discussed to affect ecosystem functioning of tropical montane forests. The susceptibility to Al toxicity depends on the sensitivity of the plant species and the Al speciation in soil solution, which can vary highly depending e.g., on pH, ionic strength, and dissolved organic matter. An acidification of the ecosystem and periodic base metal deposition from Saharan dust may control plant available Al concentrations in the soil solutions of tropical montane rainforests in south Ecuador. The overall objective of my study was to assess a potential Al phytotoxicity in the tropical montane forests in south Ecuador. For this purpose, I exposed three native Al non-accumulating tree species (Cedrela odorata L., Heliocarpus americanus L., and Tabebuia chrysantha (Jacq.) G. Nicholson) to increased Al concentrations (0 – 2400 μM Al) in a hydroponic experiment, I established dose-response curves to estimate the sensitivity of the tree species to increased Al concentrations, and I investigated the mechanisms behind the observed effects induced by elevated Al concentrations. Furthermore, the response of Al concentrations and the speciation in soil solution to Ca amendment in the study area were determined. In a final step, I assessed all major Al fluxes, drivers of Al concentrations in ecosystem solutions, and indicators of Al toxicity in the tropical montane rainforest in Ecuador in order to test for indications of Al toxicity. In the hydroponic experiment, a 10 % reduction in aboveground biomass production occurred at 126 to 376 μM Al (EC10 values), probably attributable to decreased Mg concentrations in leaves and reduced potosynthesis. At 300 μM Al, increased root biomass production of T. chrysantha was observed. Phosphorus concentrations in roots of C. odorata and T. chrysantha were significantly highest in the treatment with 300 μM Al and correlated significantly with root biomass, being a likely reason for stimulated root biomass production. The degree of organic complexation of Al in the organic layer leachate, which is central to plant nutrition because of the high root density, and soil solution from the study area was very high (mean > 99 %). The resulting low free Al concentrations are not likely to affect plant growth, although the concentrations of potentially toxic Al3+ increased with soil depth due to higher total Al and lower dissolved organic matter concentrations in soil solutions. The Ca additions caused an increase of Al in the organic layer leachate, probably because Al3+ was exchanged against the added Ca2+ ions while pH remained constant. The free ion molar ratios of Ca2+:Al3+ (mean ratio ca. 400) were far above the threshold (≤ 1) for Al toxicity, because of a much higher degree of organo-complexation of Al than Ca. High Al fluxes in litterfall (8.8 – 14.2 kg ha−1 yr−1) indicate a high Al circulation through the ecosystem. The Al concentrations in the organic layer leachate were driven by the acidification of the ecosystem and increased significantly between 1999 and 2008. However, the Ca:Al molar ratios in organic layer leachate and all aboveground ecosystem solutions were above the threshold for Al toxicity. Except for two Al accumulating and one non-accumulating tree species, the Ca:Al molar ratios in tree leaves from the study area were above the Al toxicity threshold of 12.5. I conclude that toxic effects in the hydroponic experiment occurred at Al concentrations far above those in native organic layer leachate, shoot biomass production was likely inhibited by reduced Mg uptake, impairing photosynthesis, and the stimulation of root growth at low Al concentrations can be possibly attributed to improved P uptake. Dissolved organic matter in soil solutions detoxifies Al in acidic tropical forest soils and a wide distribution of Al accumulating tree species and high Al fluxes in the ecosystem do not necessarily imply a general Al phytotoxicity.

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The spatial arrangement of leaves and flowers around the stem, known as phyllotaxis, is controlled by an auxin-dependent reiterative mechanism that leads to regular spacing of the organs and thereby to remarkably precise phyllotactic patterns. The mechanism is based on the active cellular transport of the phytohormone auxin by cellular influx and efflux carriers, such as AUX1 and PIN1. Their important role in phyllotaxis is evident from mutant phenotypes, but their exact roles in space and time are difficult to address due to the strong pleiotropic phenotypes of most mutants in phyllotaxis. Models of phyllotaxis invoke the accumulation of auxin at leaf initials and removal of auxin through their developing vascular strand, the midvein. We have developed a precise microsurgical tool to ablate the midvein at high spatial and temporal resolution in order to test its function in leaf formation and phyllotaxis. Using amplified femtosecond laser pulses, we ablated the internal tissues in young leaf primordia of tomato (Solanum lycopersicum) without damaging the overlying L1 and L2 layers. Our results show that ablation of the future midvein leads to a transient accumulation of auxin in the primordia and to an increase in their width. Phyllotaxis was transiently affected after midvein ablations, but readjusted after two plastochrons. These results indicate that the developing midvein is involved in the basipetal transport of auxin through young primordia, which contributes to phyllotactic spacing and stability.