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The phytohormone auxin performs important functions in the initiation of plant tissues and organs, as well as in the control of root growth in conjunction with external stimuli such as gravity, water and nutrient availability. These functions are based primarily on the auxin-dependent regulation of cell division and elongation. Important for the latter is the control of the cell turgor by the vacuole. As storage for nutrients, metabolites and toxins, vacuoles are of vital importance. Vacuolar stored metabolites and ions are exchanged across the vacuolar membrane with the cytoplasm via active transport processes as well as passively through ion channels. In their function as second messenger, calcium ions are important regulators but also subject to vacuolar transport processes. Changes in the cytosolic calcium concentration not only act locally, but are also associated with signal transduction over longer distances. In this work, electrophysiological methods were combined with imaging techniques to gain insights into the interaction between cytosolic calcium signals, vacuolar transport processes and auxin physiology in the intact plant organism.
Calcium signals are involved in the regulation of vacuolar ion channels and transporters. In order to investigate this in the intact organism, intracellular microelectrode measurements were performed in the model system of bulging Arabidopsis thaliana root hairs. By means of the two-electrode voltage-clamp technique, it could be confirmed that the vacuolar membrane is the limiting electrical resistance during intravacuolar measurements and thus measured ion currents actually represent only the currents across the vacuolar membrane. The already known time-dependent decrease of vacuolar conductivity during intravacuolar experiments could be further correlated with an impalement-related, transient increase of the cytosolic calcium concentration. Intravacuolar voltage-clamp experiments in root hair cells of calcium reporter plants confirmed this relationship between vacuolar conductivity and the cytosolic calcium concentration.
However, the vacuole is not just a recipient of cytosolic calcium signals. Since the vacuole represents the largest intracellular calcium reservoir, it has long been argued that it is also involved in the generation of such signals. This could be confirmed in intact root hair cells. Changes in the vacuolar membrane potential affected the cytosolic calcium concentration in these cells. While depolarizing potentials led to an increase of the cytosolic calcium concentration, hyperpolarization of the vacuolar membrane caused the opposite. Thermodynamic considerations of passive and active calcium transport across the vacuolar membrane suggested that the results described herein reflect the behaviour of vacuolar H+/Ca2+ exchangers whose activity is determined by the proton motive force.
In addition, cytosolic calcium has been shown to be a key regulator of a rapid auxin-induced signaling pathway that regulates polar transport of the hormone.
In the same model system of bulging root hairs it could be shown that the external application of auxin results in a very fast, auxin concentration- and pH-dependent depolarization of the plasma membrane potential. Synchronous with the depolarization of the plasma membrane potential, transient calcium signals were recorded in the cytosol. These were caused by an auxin-activated influx of calcium ions through the ion channel CNGC14. Experiments on loss-of-function mutants as well as pharmacological experiments showed that the auxin-induced activation of the calcium channel requires auxin-perception by the F-box proteins of the TIR1/AFB family.
Investigations of auxin-dependent depolarization as well as the auxin-induced influx of protons into epidermal root cells of loss-of-function mutants showed that the secondary active uptake of auxin by the high-affinity transport protein AUX1 is responsible for the rapid depolarization
Not only the cytosolic calcium signals correlated with CNGC14 function, but also the AUX1-mediated depolarization of root hairs. An unchanged expression of AUX1 in the cngc14 loss-of-function mutant suggested that the activity of AUX1 must be post-translationally regulated. This hypothesis was supported by experiments in which treatment with the calcium channel blocker lanthanum led to inactivation of AUX1 in the wild type.
The cytosolic loading of individual epidermal root cells with auxin resulted in the spread of lateral and acropetal calcium waves. These correlated with a shift of the auxin gradient at the root apex and thus supported a hypothetical calcium-dependent regulation of polar auxin transport. A model for a rapid, auxin-induced and calcium-dependent signaling pathway is presented and its importance for gravitropic root growth is discussed. Since AUX1-mediated depolarization varied with external phosphate concentration, the importance of this rapid signaling pathway is also discussed for the adaptation of root hair growth to an inadequate availability of phosphate.
Activation of mitogen-activated protein (MAP) kinases is a common reaction of plant cells in defense-related signal transduction pathways. Since the downstream events after the activation of MAP kinases are largely unknown in plants, the role of MAP kinases in the co-ordinate regulation of defense reactions and primary carbon metabolism by stress related stimuli has been analyzed in tomato. Thus, the relationship between mitogen activated protein kinases (LpMPK2 and LpMPK3) and extracellular invertases Lin6, as the key enzyme of an apoplasmic phloem unloading pathway, has been analyzed. The results showed that the mRNAs of LpMPK3 and Lin6 are sequentially induced by the same set of stress related stimuli (E-Fol, PGA,wounding, and KCl). The induction of the Lin6 promotor, as revealed by an increase in β-glucuronidase activity after 2 hours, was dependent both on the expression and activation of LpMPK3. These data suggest that the induction of extracellular invertase Lin6 by stress related stimuli requires LpMPK3. Glucose, metabolic molecule, was shown to result in the simultaneous induction of AtMPK4 and AtMPK6 activities that could be separated by anion-exchange chromatography, and characterized by differential cross-reaction with MAP kinase antibodies. Taken together, these data suggest that the activation of MAP inases play central roles in the regulation of sugar signaling. Stomatal movement is controlled by environmental signals including light intensity,humidity and atmospheric CO2 level. In Arabidopsis, a complete MAP kinase signaling cascade regulates stomatal development and patterning. However, the movement of stomata mediated by CO2 induced signaling pathways is not fully studied in higher plants. Here, we show that elevated levels of CO2 induce rapid and transient activation of SIPK and NtMPK4. The activation of both MAP kinases may regulate the anion channel activation for stomatal movement by the elevated level CO2. Up to now, the non-antioxidant function of tocopherol is not clear in higher plant,whereas the ability of tocopherol to modulate the stress tolerance mediated by function of antioxidant has been described in numerous studies. Thus, the function of α-tocopherol in stimuli-induced signal transduction pathways mediated by MAP kinase has been analyzed in tobacco. It has been shown that the activation of MAP kinase was induced by treatment of fungal elicitor and α-tocopherol phosphate but not α-tocopherol. Interestingly, α-tocopherol showed the transient inhibitory effect on the activation of stimuli-induced MAP Kinases in BY2 cells and tobacco plants, whereas ascorbate did not inhibit the activation of MAP kinases. The inhibitory activity test indicated that current application may indirectly affect the activity of MAP kinases. These results suggest that α-tocopherol can negatively regulate stimuliinduced signal transduction pathways via inactivation of MAP kinases. The purine-analogues have been tested and reported to be specific inhibitors of protein kinases mediated by structural-based selectivity in mammalian. Here, we tested C2, N6, N9-trisubstituted purines to determine basic relationship between their chemical structure and inhibitory activity using a particular plant MAP kinase. The modification of substitution in position C2 and N9 caused the increased inhibitory activity of 6-(benzylamino) purine analogue. In addition, 6-(isopentenylamino) purine analogues suggested that addition of a methyl group to position N9 caused at least 2-fold increased inhibitory activity compared with the addition of isopropyl group.Taken together, our study suggests that the selectivity and potency of inhibitors can be improved by structure modification. In addition, we have characterized the physiological function of Arabidopsis thaliana PLAT domain protein 1 (AtPDP1) in modulating the interaction of defense pathways mediated by biotic and abiotic factors. Interestingly, overexpression of AtPDP1 resulted in increasing susceptibility of virulent pathogens and necrotrophic fungus, and developing necrosis induced by unknown biotic factors. However, these overexperssion lines showed the significantly delayed senescence and higher level of phosystem II quantum yield compared with control plants against high salt stress. Our results strongly indicate that AtPDP1 positively regulate with salt tolerance, and enhances the sensitivity to biotic stresses. We propose that the AtPDP1 might be regulated with the complex pathways of interplay among various signaling during stress adaptation.
Plants have evolved an elaborate system to cope with a variety of biotic and abiotic stresses. Typically, under stress conditions an appropriate defense response is invoked which is accompanied by changes in the metabolic status of the plant. Photosynthesis is downregulated and sucrose is imported into the tissue, which provides a faster and more constant flux of energy and carbon skeletons to perform the defense response. Interestingly, these processes are co-ordinately regulated and the signal transduction chains underlying these cellular programs appear to share at least some common elements. Both the induction of sink metabolism and defense response is dependent on signal transduction pathways involving protein phosphorylation. Furthermore, regulation of extracellular invertase (INV) and phenylalanine ammonia lyase (PAL) which are markers for sink metabolism and defense response is preceded by the transient activation of MAP kinases. In depth analysis of MAP kinase activation by partial purification led to the discovery that, depending on the stimulus, different subsets of MAP kinases are activated. This differential MAPK activation is likely to possess a signal encoding function. In addition, the partial purification of MAP kinases was found to be suitable to address specific cellular functions to individual MAP kinase isoenzymes. By this way, LpWIPK was identified as the major MAP kinase activity induced after stimulation of tomato cells with different elicitors. LpWIPK is thus considered as a key regulator of defense response together with sink induction in tomato. A study using nonmetabolisable sucrose analogs revealed that the regulation of photosynthesis is not directly coupled to this signal transduction pathway since it is independent of MAP kinase activation. Nonetheless, downregulation is induced by the same stimuli that induce the defense response and sink metabolism and it will therefore be interesting to uncover the branch points of this signalling network in the future. MAP kinases are not only central components regulating the response to biotic stresses. In addition to e.g. pathogens, MAP kinases are as well involved in signal transduction events invoked by abiotic stresses like cold and drought. In a recent study, we could show that a MAP kinase is activated by heat stress, under conditions a plant will encounter in nature. This previously unknown MAP kinase is able to specifically recognise the heat stress transcription factor HsfA3 as a substrate, which supports a role of this MAP kinase in the regulation of the heat stress response. Moreover, the observation that HsfA3 is phosphorylated by the heat activated MAP kinase in vitro provides a promising basis to identify HsfA3 as the first physiological substrate of a plant MAP kinase. Intracellular protons have been implicated in the signal transduction of defense related signals. In a study using Chenopodium rubrum cells, we could show that cytosolic changes in pH values do not precede the regulation of the marker genes INV and PAL. Depending on the stimulus applied, cytosolic acidification or alkalinisation can be observed, which excludes a role for protons as signals in this pathway. Together with the concomitant changes of the pH value of the extracellular space, these variations can thus be considered as terminal part of the defense response itself rather than as a second messenger. WRKY transcription factors have only recently been identified as indirect targets of a central plant MAP kinase cascade. In addition, the identification of cognate binding sites in the promoters of INV and PAL supports a role for these proteins in the co-ordinate regulation of defense response and sink induction. A novel elicitor responsive WRKY transcription factor, LpWRKY1, was cloned from tomato and characterised with respect to its posttranslational modification. This immediate early transcription factor is transiently induced upon pathogen attack and the induction is dependent on phosphorylation. Furthermore, it was shown for the first time with respect to WRKY transcription factors, that LpWRKY1 is phosphorylated in vivo. Analysis of the role of this phosphorylation by in gel assays using recombinant WRKY protein as the substrate revealed two protein kinases that are transiently activated during the defense response to phosphorylate LpWRKY1. This data demonstrates that WRKY proteins require phosphorylation to modulate their DNA binding or transactivating activity.