TY - THES A1 - Böhm, Jennifer T1 - Die Nährstoffresorption in den Fallen von Dionaea muscipula weist Parallelen zur Nährsalzaufnahme in Wurzeln auf T1 - Uptake of prey-derived nutrients in Dionaea muscipula traps displays similarities with the uptake of soil-derived nutrients into roots of non-carnivorous plants N2 - Die Venusfliegenfalle, Dionaea muscipula, weckte aufgrund ihrer karnivoren Lebensweise schon sehr früh das Interesse vieler Wissenschaftler. Für karnivore Pflanzen, die auf Nährstoff-armen Böden wachsen, spielen Insekten als Beute und somit als Nährstofflieferant eine entscheidende Rolle. So können die Pflanzen durch die Verdauung der Beute mit wichtigen Makro- und Mikronährstoffen, wie Stickstoff, Phosphat, Kalium oder Natrium versorgt werden. Aus diesem Grund sollte im Rahmen meiner Arbeit ein besonderes Augenmerk auf die molekularen Mechanismen der Kationenaufnahme während der Nährstoffresorption gerichtet werden. Insbesondere die aus dem Insekt stammenden Nährstoffe Kalium und Natrium waren dabei von großem Interesse. Im Allgemeinen sind Kaliumionen für Pflanzen eine essentielle anorganische Substanz und von großer physiologischer Bedeutung für die Entwicklung, den Metabolismus, die Osmoregulation, das Membranpotential und viele zelluläre Prozesse. Analysen der Kaliumaufnahme an Wurzeln von Modellpflanzen wie Arabidopsis thaliana und Reis zeigten, dass die Aufnahme von K+ ein Zusammenspiel von hoch-affinen K+-Transportern der HAK5-Familie und nieder-affinen Kaliumkanälen (AKT1/AtKC1) erfordert, die in ein komplexes (De-)Phosphorylierungsnetzwerk eingebunden sind. In der vorliegenden Arbeit war es mir möglich das Netzwerk zur Kaliumaufnahme in den Drüsen der Venusfliegenfalle zu entschlüsseln. Es konnten Orthologe zum Kaliumtransporter HAK5 aus Arabidopsis (DmHAK5) und zum Kaliumkanal AKT1 (DmKT1) identifiziert und im heterologen Expressionssystem der Xenopus laevis Oozyten elektrophysiologisch charakterisiert werden. Dabei zeigte sich, das DmKT1 durch einen Ca2+-Sensor/Kinase-Komplex aus der CBL/CIPK-Familie phosphoryliert und somit aktiviert wird. Phylogenetische Analysen von DmKT1 bestätigten die Eingruppierung dieses Kaliumkanals in die Gruppe der pflanzlichen Shaker-Kaliumkanäle des AKT1-Typs. Die Transporteigenschaften zeigten zudem, dass DmKT1 bei hyperpolarisierenden Membranpotentialen aktiviert wird und einen K+-selektiven Einwärtsstrom vermittelt. In Oozyten konnte eine Kaliumaufnahme bis zu einer externen Konzentration von ≥1 mM beobachtet werden. DmKT1 repräsentiert also einen Kaliumkanal mit einer hohen Transportkapazität, der die nieder-affine Kaliumaufnahme in die Drüsenzellen der Venusfliegenfalle vermitteln kann. Unterhalb einer externen Kaliumkonzentration von 1 mM würde der anliegende elektrochemische Kaliumgradient einen Kaliumausstrom und somit einen Verlust von Kalium favorisieren. Hoch-affine K+/H+-Symporter können durch die Ausnutzung des Protonengradienten eine Kaliumaufnahme im mikromolaren Bereich gewährleisten. In Wurzelhaaren von Arabidopsis vermittelt der Transporter AtHAK5 die Kaliumaufnahme unter Kaliummangelbedingungen. DmHAK5, ein Ortholog zu AtHAK5, ist in Dionaea Drüsen exprimiert und konnte zum ersten Mal im heterologen Expressionssystem der Xenopus Oozyten im Detail charakterisiert werden. Interessanterweise zeigte sich, dass DmHAK5 wie der K+-Kanal DmKT1 durch denselben CBL/CIPK-Komplex posttranslational reguliert und aktiviert wird. Die Transporteigenschaften von DmHAK5 wiesen auf einen Transporter mit einer breiten Substratspezifität hin, sodass sich DmHAK5 neben Kalium auch für Ammonium permeabel zeigte. Affinitätsuntersuchungen von DmHAK5 zu seinem Substrat Kalium klassifizierten das Protein als einen hoch-affinen Kaliumtransporter, der im Symport mit Protonen die Kaliumaufnahme im mikromolaren Konzentrationsbereich vermitteln kann. Das Kaliumtransportmodul besteht also aus dem K+-selektiven Kanal DmKT1 und dem K+/H+-Symporter DmHAK5, die die hoch- und nieder-affine Kaliumaufnahme in den Drüsenzellen während der Beuteverdauung in Dionaea muscipula Fallen ermöglichen. Beide Transportmodule werden Kalzium-abhängig durch die Kinase CIPK23 und den Ca2+-Sensor CBL9 auf posttranslationaler Ebene reguliert. Zusammenfassend gelang es in dieser Arbeit Einblicke in die Kationenaufnahme während der Nährstoffresorptionsphase der Venusfliegenfalle, Dionaea muscipula, zu gewinnen. Dabei wurde klar, dass Dionaea muscipula im Laufe ihrer Evolution zu einer karnivoren Pflanze, nicht neue Transportmodule zur Nährstoffresorption aus der Beute entwickelte, sondern bekannte aus Wurzeln stammende Transportmodule umfunktionierte. Auf molekularer Ebene konnten die biophysikalischen Charakteristika der K+- und Na+-Transportproteine, sowie ihre Regulation entschlüsselt werden. Diese Erkenntnisse wurden schließlich in den Kontext des Beutefangs der Venusfliegenfalle gebracht und diskutiert. N2 - The Venus flytrap, Dionaea muscipula, is one of the most exciting carnivorous plants. Since the time of Charles Darwin, scientists are interested in the highly specialized mechanisms, which enable Dionaea plants to grow on nutrient-poor habitats. These Dionaea plants have the possibility to catch insects and to purchase the necessary nutrients from their prey. For catching the prey, the Venus flytrap evolved morphological adaptions in form of bilobed leaf traps. Trigger hairs are arranged inside the traps and by touching these mechano-sensory organs an electrical signal spreading over the lobes leads to the fast trap-closure. By continual mechanical stimulation of the trigger hairs by the caught insect, the edges of the lobes are sealed hermetically and an “external stomach” is formed. The prey digestion starts with the secretion of lytic enzymes from the glands. These glands, which are covering the inner surface of the trap-lobes, are also responsible for the nutrient-uptake. Insects represent an important nutrient-provider for carnivorous plants. The capture of prey mainly contributes to the nutrient-supply like nitrogen, phosphorous, potassium and sodium. Within the scope of this work, my focus was on the molecular uptake mechanism of prey-derived cations, such as potassium and sodium. Potassium is an essential macronutrient for plants in general. Studies on the K+ uptake systems in roots revealed a complex potassium uptake network consisting of high-affinity uptake carriers such as HAK5 and low-affinity potassium channels such as the AKT1/AtKC1 module. In glands of Dionaea muscipula a HAK5-like potassium transporter (DmHAK5) and an orthologue of AKT1 (DmKT1) were identified within the framework of my Ph.D.-thesis. Following the heterologous expression in Xenopus laevis oocytes, electrophysiological measurements revealed that DmKT1 is activated by phosphorylation through a Ca2+-sensor-protein kinase complex of the CBL/CIPK family. Its transport properties and structural homology to the Arabidopsis AKT1 K+ channel classified DmKT1 as a member of the hyperpolarisation-activated, inwardly rectifying plant Shaker potassium channel family. Due to the electrochemical gradient for K+ ions across the gland plasma membrane, the K+ selective channel DmKT1 can acquire external K+ down to concentrations of 1 mM. Thus, the peculiar electrophysiological properties assigned the low-affinity high-capacity potassium uptake system in Dionaea gland to DmKT1. Below 1 mM, K+ fluxes reverse their direction and the plant would lose the essential macronutrient. In root hairs of Arabidopsis high-affinity transporters (HAK5) are expressed which are believed to facilitate K+ accumulation from potassium depleted soils. Interestingly an orthologue of HAK5 was shown to be expressed also in the trap lobes of Dionaea. Thus, DmHAK5 was cloned and for the first time a HAK5-like protein could be analysed in Xenopus oocytes. Interestingly, DmHAK5 K+/H+-co-transporter was post translationally activated by the same CBL/CIPK complex just like the DmKT1 Shaker channel. Compared to DmKT1, DmHAK5 is of low selectivity and against all assumptions, the transporter is permeable for and not inhibited by NH4+. A Km value of 127 μM, describes DmHAK5 as a high-affinity transporter that is apparently the only system capable of operating at micromolar K+ concentrations. To overcome the outward-directed chemical gradient at low external K+ concentrations, DmHAK5 utilises the electrochemical gradient of protons and acts as a K+/H+-co-transporter. The reported findings demonstrate the contribution of DmKT1 and DmHAK5 in the highly regulated potassium uptake network utilizing K+ from captured insects. The high-capacity of DmKT1 and the high-affinity of DmHAK5 enable Dionaea glands to acquire potassium from high to very low levels during the digestion and resorption process. Taken together, these studies elucidated the molecular origin and regulation of cation uptake during prey digestion and nutrient resorption of the Venus flytrap. For efficient potassium and sodium uptake into gland cells Dionaea muscipula co-opted root-derived transport modules and the associated regulatory components rather than inventing new uptake systems during its evolution to a carnivorous plant. KW - Venusfliegenfalle KW - Dionaea muscipula KW - HAK5-like KW - AKT1-like KW - HKT1-like KW - Falle KW - Nährstoffaufnahme KW - Molekularbiologie Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-123958 ER - TY - JOUR A1 - Böhm, Jennifer A1 - Scherzer, Sönke A1 - Krol, Elzbieta A1 - Kreuzer, Ines A1 - von Meyer, Katharina A1 - Lorey, Christian A1 - Mueller, Thomas D. A1 - Shabala, Lana A1 - Monte, Isabel A1 - Salano, Roberto A1 - Al-Rasheid, Khaled A. S. A1 - Rennenberg, Heinz A1 - Shabala, Sergey A1 - Neher, Erwin A1 - Hedrich, Rainer T1 - The Venus Flytrap Dionaea muscipula Counts Prey-Induced Action Potentials to Induce Sodium Uptake JF - Current Biology N2 - Carnivorous plants, such as the Venus flytrap (Dionaea muscipula), depend on an animal diet when grown in nutrient-poor soils. When an insect visits the trap and tilts the mechanosensors on the inner surface, action potentials (APs) are fired. After a moving object elicits two APs, the trap snaps shut, encaging the victim. Panicking preys repeatedly touch the trigger hairs over the subsequent hours, leading to a hermetically closed trap, which via the gland-based endocrine system is flooded by a prey-decomposing acidic enzyme cocktail. Here, we asked the question as to how many times trigger hairs have to be stimulated (e.g., now many APs are required) for the flytrap to recognize an encaged object as potential food, thus making it worthwhile activating the glands. By applying a series of trigger-hair stimulations, we found that the touch hormone jasmonic acid (JA) signaling pathway is activated after the second stimulus, while more than three APs are required to trigger an expression of genes encoding prey-degrading hydrolases, and that this expression is proportional to the number of mechanical stimulations. A decomposing animal contains a sodium load, and we have found that these sodium ions enter the capture organ via glands. We identified a flytrap sodium channel DmHKT1 as responsible for this sodium acquisition, with the number of transcripts expressed being dependent on the number of mechano-electric stimulations. Hence, the number of APs a victim triggers while trying to break out of the trap identifies the moving prey as a struggling Na+-rich animal and nutrition for the plant. KW - Venusfliegenfalle KW - Dionaea muscipula Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-128054 VL - 26 IS - 3 ER - TY - JOUR A1 - Böhm, Jennifer A1 - Scherzer, Sönke A1 - Krol, Elzbieta A1 - Kreuzer, Ines A1 - von Meyer, Katharina A1 - Lorey, Christian A1 - Mueller, Thomas D. A1 - Shabala, Lana A1 - Monte, Isabel A1 - Solano, Roberto A1 - Al-Rasheid, Khaled A. S. A1 - Rennenberg, Heinz A1 - Shabala, Sergey A1 - Neher, Erwin A1 - Hedrich, Rainer T1 - The Venus flytrap Dionaea muscipula counts prey-induced action potentials to induce sodium uptake JF - Current Biology N2 - Carnivorous plants, such as the Venus flytrap (Dionaea muscipula), depend on an animal diet when grown in nutrient-poor soils. When an insect visits the trap and tilts the mechanosensors on the inner surface, action potentials (APs) are fired. After a moving object elicits two APs, the trap snaps shut, encaging the victim. Panicking preys repeatedly touch the trigger hairs over the subsequent hours, leading to a hermetically closed trap, which via the gland-based endocrine system is flooded by a prey-decomposing acidic enzyme cocktail. Here, we asked the question as to how many times trigger hairs have to be stimulated (e.g., now many APs are required) for the flytrap to recognize an encaged object as potential food, thus making it worthwhile activating the glands. By applying a series of trigger-hair stimulations, we found that the touch hormone jasmonic acid (JA) signaling pathway is activated after the second stimulus, while more than three APs are required to trigger an expression of genes encoding prey-degrading hydrolases, and that this expression is proportional to the number of mechanical stimulations. A decomposing animal contains a sodium load, and we have found that these sodium ions enter the capture organ via glands. We identified a flytrap sodium channel DmHKT1 as responsible for this sodium acquisition, with the number of transcripts expressed being dependent on the number of mechano-electric stimulations. Hence, the number of APs a victim triggers while trying to break out of the trap identifies the moving prey as a struggling Na\(^+\)-rich animal and nutrition for the plant. KW - jasmonic acid biosynthesis KW - gene expression KW - signal transduction KW - transporters KW - Arabidopsis Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-190870 VL - 26 IS - 3 ER - TY - JOUR A1 - Bazihizina, Nadia A1 - Böhm, Jennifer A1 - Messerer, Maxim A1 - Stigloher, Christian A1 - Müller, Heike M. A1 - Cuin, Tracey Ann A1 - Maierhofer, Tobias A1 - Cabot, Joan A1 - Mayer, Klaus F. X. A1 - Fella, Christian A1 - Huang, Shouguang A1 - Al‐Rasheid, Khaled A. S. A1 - Alquraishi, Saleh A1 - Breadmore, Michael A1 - Mancuso, Stefano A1 - Shabala, Sergey A1 - Ache, Peter A1 - Zhang, Heng A1 - Zhu, Jian‐Kang A1 - Hedrich, Rainer A1 - Scherzer, Sönke T1 - Stalk cell polar ion transport provide for bladder‐based salinity tolerance in Chenopodium quinoa JF - New Phytologist N2 - Chenopodium quinoa uses epidermal bladder cells (EBCs) to sequester excess salt. Each EBC complex consists of a leaf epidermal cell, a stalk cell, and the bladder. Under salt stress, sodium (Na\(^{+}\)), chloride (Cl\(^{−}\)), potassium (K\(^{+}\)) and various metabolites are shuttled from the leaf lamina to the bladders. Stalk cells operate as both a selectivity filter and a flux controller. In line with the nature of a transfer cell, advanced transmission electron tomography, electrophysiology, and fluorescent tracer flux studies revealed the stalk cell’s polar organization and bladder‐directed solute flow. RNA sequencing and cluster analysis revealed the gene expression profiles of the stalk cells. Among the stalk cell enriched genes, ion channels and carriers as well as sugar transporters were most pronounced. Based on their electrophysiological fingerprint and thermodynamic considerations, a model for stalk cell transcellular transport was derived. KW - halophyte KW - polar ion transport KW - quinoa KW - salt tolerance KW - stalk cell Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-287222 VL - 235 IS - 5 SP - 1822 EP - 1835 ER -