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Calcium ion (Ca2+) and protons (H+) are both regarded as second messengers, participating in plant growth and stress mechanisms. However, H+ signals in plant physiology are less well investigated compared to Ca2+ signals. If interconnections between these two second messengers exist remains to be uncovered because appropriate imaging tools to monitor Ca2+ and H+ simultaneously in the same cell as well as accurate bioinformatics analysis remain to be developed. To overcome this problem and unravel the role and possible interconnection of Ca2+ and H+ in plants, a new biosensor named CapHensor was developed and optimized to visualize intracellular Ca2+ and H+ changes simultaneously and ratiometrically in the same cell. The CapHensor consisted of an optimized green fluorescent pH sensor (PRpHluorin) and an established red fluorescent Ca2+ sensor (R-GECO1) that were combined in one construct via a P2A sequence. A P2A self-cleavage site between the two sensors allowed to express equal amounts but spatially separated sensors, which enabled artifact-free and ratiometric imaging of cellular Ca2+ and pH side-by-side. The function of the CapHensor was verified in pollen tubes, since they possess standing Ca2+ and pH gradients. We found better imaging quality and the signal-to-noise ratio to be enhanced in live-cell imaging when two R-GECO1 proteins were fused in tandem within the CapHensor construct. To guarantee exclusive subcellular localization and avoid mixed signals from different compartments, Nuclear Export Sequence (NES) and Nuclear Localization Sequence (NLS) were used to target PRpHluorin and R-GECO1 to distinct compartments. After optimization and verification its function, CapHensor was successfully expressed in different cell types to investigate the role of Ca2+ and H+ signals to control polar growth of pollen tube, stomatal movement or leaf defense signaling. Results obtained in the past indicated both Ca2+ gradients and pH gradients in pollen tubes play roles in polar growth. However, the role and temporal relationship between the growth process and changes in Ca2+ and pH have not been conclusively resolved. Using CapHensor, I found cytosolic acidification at the tip could promote and alkalization to suppress growth velocity in N. tabacum pollen tubes, indicating that cytosolic H+ concentrations ([H+]cyt) play an important role in regulation pollen tubes growth despite the accompanied changes in cytosolic Ca2+ concentrations ([Ca2+]cyt). Moreover, growth correlated much better with the tip [H+]cyt regime than with the course of the tip [Ca2+]cyt regime. However, surprisingly, tip-focused [Ca2+]cyt andII [H+]cyt oscillations both lagged behind growth oscillations approximately 33 s and 18 s, respectively, asking for a re-evaluation of the role that tip [Ca2+]cyt may play in pollen tube growth. Live-cell CapHensor imaging combined with electrophysiology uncovered that oscillatory membrane depolarization correlated better with tip [H+]cyt oscillations than with tip [Ca2+]cyt oscillations, indicative for a prominent role of [H+]cyt to also control electrogenic membrane transport. Using CapHensor, reading out cellular movement at the same time enabled to provide a precise temporal and spatial resolution of ion signaling events, pointing out a prominent role of [H+]cyt in pollen tube tip growth. For leaf cells, a special CapHensor construct design had to be developed, containing additional NES localization sequences to avoid overlapping of fluorescense signals from the nucleus and the cytosol. Once this was achieved, the role of Ca2+ and pH changes in guard cells, another typical single-cell system was investigated. Cytosolic pH changes have been described in stomatal movement, but the physiological role of pH and the interaction with changing Ca2+ signals were still unexplored. Combining CapHensor with the here developed technique to monitor stomatal movement in parallel, the role of Ca2+ and H+ in stomatal movement was studied in detail and novel aspects were identified. The phytohormone ABA and the bacterial elicitor flagellin (flg22) are typical abiotic and biotic stresses, respectively, to trigger stomatal closure. What kind of Ca2+ and H+ signals by ABA and flg22 are set-off in guard cells and what their temporal relationship and role for stomatal movement is were unknown. Similar [Ca2+]cyt increases were observed upon ABA and flg22 triggered stomatal closure, but [H+]cyt dynamics differed fundamentally. ABA triggered pronounced cytosolic alkalization preceded the [Ca2+]cyt responses significantly by 57 s while stomata started to close ca. 205 s after phytohormone application. With flg22, stomatal closure was accompanied only with a mild cytosolic alkalization but the [Ca2+]cyt response was much more pronounced compared to the ABA effects. Where the cytosolic alkalization originates from was unclear but the vacuole was speculated to contribute in the past. In this thesis, vacuolar pH changes were visualized by the dye BCECF over time, basically displaying exactly the opposite course of the concentration shift in the vacuole than observed in the cytosol. This is indicative for the vacuolar pH dynamics to be coupled strongly to the cytosolic pH changes. In stomatal closure signalling, reactive oxygen species (ROS) were proposed to play a major role, however, only very high concentration of H2O2 (> 200 µM), which resulted in the loss of membrane integrity, induced stomatal closure. Unexpectedly, physiological concentrations of ROS led to cytosolic acidificationIII which was associated with stomatal opening, but not stomatal closure. To study the role of [H+]cyt to steer stomatal movement in detail, extracellular and intracellular pH variations were evoked in N. tabacum guard cells and their behaviour was followed. The results demonstrated cytosolic acidification stimulated stomatal opening while cytosolic alkalization triggered stomatal closure accompanied by [Ca2+]cyt elevations. This demonstrated pH regulation to be an important aspect in stomatal movement and to feed-back on the Ca2+-dynamics. It was remarkable that cytosolic alkalization but not [Ca2+]cyt increase seemed to play a crucial role in stomatal closure, because more pronounced cytosolic alkalization, evoked stronger stomatal closure despite similar [Ca2+]cyt increases. Increases in [Ca2+]cyt, which are discussed as an early stomatal closure signal in the past, could not trigger stomatal closure alone in my experiments, even when extremely strong [Ca2+]cyt signals were triggered. Regarding the interaction between the two second messengers, [Ca2+]cyt and [H+]cyt were negatively correlated most of the times, which was different from pollen tubes showing positive correlation of [Ca2+]cyt and [H+]cyt regimes. [Ca2+]cyt elevations were always associated with a cytosolic alkalization and this relationship could be blocked by the presence of vanadate, a plasma membrane H+-pump blocker, indicating plasma membrane H+-ATPases to contribute to the negative correlation of [Ca2+]cyt and [H+]cyt. To compare with guard cells, cytosolic and nuclear versions of CapHensor were expressed in N. benthamiana mesophyll cells, a multicellular system I investigated. Mesophyll cell responses to the same stimuli as tested in guard cells demonstrated that ABA and H2O2 did not induce any [Ca2+]cyt and [H+]cyt changes while flg22 induced an increase in [Ca2+]cyt and [H+]cyt, which is different from the response in guard cells. I could thus unequivocally demonstrate that guard cells and mesophyll cells do respond differently with [Ca2+]cyt and [H+]cyt changes to the same stimuli, a concept that has been proposed before, but never demonstrated in such detail for plants. Spontaneous Ca2+ oscillations have been observed for a long time in guard cells, but the function or cause is still poorly understood. Two populations of oscillatory guard cells were identified according to their [Ca2+]cyt and [H+]cyt phase relationship in my study. In approximately half of the oscillatory cells, [H+]cyt oscillations preceded [Ca2+]cyt oscillations whereas [Ca2+]cyt was the leading signal in the other half of the guard cells population. Strikingly, natural [H+]cyt oscillations were dampened by ABA but not by flg22. This effect could be well explained by dampening of vacuolar H+ oscillations in the presence of ABA, but not through flg22. Vacuolar pH contributes to spontaneous [H+]cyt oscillations and ABA but not flg22 can block the interdependence of naturalIV [Ca2+]cyt and [H+]cyt signals. To study the role of [Ca2+]cyt oscillations in stomatal movement, solutions containing high and low KCl concentrations were applied aiming to trigger [Ca2+]cyt oscillations. The triggering of [Ca2+]cyt oscillations by this method was established two decades ago leading to the dogma that [Ca2+]cyt increases are the crucial signal for stomatal closure. However, I found stomatal movement by this method was mainly due to osmotic effects rather than [Ca2+]cyt increases. Fortunately, through this methodology, I found a strong correlation between cytosolic pH and the transport of potassium across the plasma membrane and vacuole existed. The plasma membrane H+-ATPases and H+-coupled K+ transporters were identified as the cause of [H+]cyt changes, both very important aspects in stomata physiology that were not visualized experimentally before. Na+ transport is also important for stomatal regulation and leaves generally since salt can be transported from the root to the shoot. Unlike well-described Ca2+- dependent mechanisms in roots, how leaves process salt stress is not at all understood. I applied salt on protoplasts from leaves, mesophyll cells and guard cells and combined live-cell imaging with Vm recordings to understand the transport and signaling for leaf cells to cope with salt stress. In both, mesophyll and guard cells, NaCl did not trigger Ca2+-signals as described for roots but rather triggered Ca2+ peaks when washing salt out. However, membrane depolarization and pronounced alkalinization were very reliably triggered by NaCl, which could presumably act as a signal for detoxification of high salt concentrations. In line with this, I found the vacuolar cation/H+ antiporter NHX1 to play a role in sodium transport, [H+]cyt homeostasis and the control of membrane potential. Overexpression of AtNHX1 enabled to diminish [H+]cyt changes and resulted in a smaller depolarization responses druing NaCl stress. My results thus demonstrated in contrast to roots, leaf cells do not use Ca2+-dependent signalling cascades to deal with salt stress. I could show Na+ and K+ induced [H+]cyt and Vm responses and Cl- transport to only have a minor impact. Summing all my results up briefly, I uncovered pH signals to play important roles to control pollen tube growth, stomatal movement and leaf detoxification upon salt. My results strongly suggested pH changes might be a more important signal than previously thought to steer diverse processes in plants. Using CapHensor in combination with electrophysiology and bioinformatics tools, I discovered distinct interconnections between [Ca2+]cyt and [H+]cyt in different cell types and distinct [Ca2+]cyt and [H+]cyt signals are initiated through diverse stimuli and environmental cues. The CapHensor will be very useful in the future to further investigate the coordinated role of Ca2+ and pH changes in controlling plant physiology.
Die arrhythmogene Kardiomyopathie (ACM) ist eine Herzmuskelerkrankung, die durch den fett- und bindegewebigen Umbau von Herzmuskelgewebe charakterisiert ist. Klinisch treten häufig ventrikuläre Herzrhythmusstörungen auf, teilweise bis hin zum plötzlichen Herztod. ACM ist eine genetisch bedingte Erkrankung, die durch Mutationen in desmosomalen Proteinen, wie Plakophilin-2 (PKP2) und Desmoglein-2 (DSG2), entsteht. Die molekularen Mechanismen sind nur teilweise verstanden und aktuell gibt es keine spezifischen Therapiemöglichkeiten.
Ziel der Arbeit war es, die therapeutische Wirkung eines DSG2-spezifischen Tandem-Peptids (TP) durch desmosomale Stabilisierung an humanen Kardiomyozyten (KM) in einem ACM-Modell zu untersuchen. KM wurden aus humanen induzierten pluripotenten Stammzellen (hiPS) einer PKP2-Knockout- (PKP2-KO), DSG2-Knockout- (DSG2-KO) und deren isogener Kontrollzelllinie differenziert. Zunächst wurden verschiedene Methoden der beschleunigten Zellreifung getestet. Dann wurden die PKP2- und DSG2-KO-KM anhand von intrazellulären Kalzium-Messungen und Arrhythmie-Analysen phänotypisch charakterisiert. Letztlich wurde die Wirkung des TPs, das an die DSG2 der geschwächten Zellbindungen von PKP2-KO-KM binden sollte, im Vergleich zu entsprechenden Kontrollen untersucht.
Die Ergebnisse zeigen, dass mit der Matrigel-Mattress-Kultivierung und einer Hormonbehandlung elektrisch stimulierbare hiPS-KM mit reifen Eigenschaften hergestellt werden konnten. Der Phänotyp der mutationstragenden PKP2-KO-KM und DSG2-KO-KM zeichnete sich durch erhöhte diastolische Kalzium-Konzentrationen und erniedrigte Kalzium-Amplituden sowie durch beschleunigte Kalzium-Kinetik im Sinne der Relaxationszeiten aus. Weiterhin war bei den PKP2-KO-KM die Häufigkeit der Arrhythmien erhöht, die unter beta-adrenerger Stimulation nachließen. Insgesamt konnte keine eindeutige Wirkung des TPs im ACM-Modell gezeigt werden. Das TP hatte nur auf die diastolischen Kalzium-Konzentrationen der PKP2-KO-KM einen therapeutischen Einfluss, allerdings auch auf DSG2-KO-KM, weshalb der Hinweis auf eine fehlende DSG2-Spezifität des TPs entstand.
Schlussfolgernd wurde bestätigt, dass sich reife hiPS-KM mit genetischen Veränderungen als Modell zur Untersuchung der Kalziumhomöostase und von Arrhythmien bei der ACM eignen. Sie können grundsätzlich zum Test von therapeutischen Anwendungen genutzt werden. Die Wirksamkeit und Spezifität des getesteten TPs sollte zukünftig weiter überprüft werden.
Die bedrohlich steigende Anzahl an Diabetikern sowie die sich daraus ergebenden Folgeerkrankungen werden weltweit die Gesundheitssysteme immens belasten. Der Einfluss des Diabetes mellitus auf das kardiovaskuläre System beeinflusst die Prognose der Patienten und nimmt somit zentralen Stellenwert in der Therapie ein. Die Pathogenese der diabetischen Kardiomyopathie, also des direkten Einflusses des Diabetes mellitus auf den Herzmuskel, ist aktuell noch unzureichend geklärt und bedarf somit weiterer Forschung. Zu diesem Zwecke wurde in dieser Arbeit die calcium-induzierte Kraftentwicklung im skinned fiber Modell in links- und rechtsatriale Fasern zwischen Diabetikern und nicht-Diabetikern verglichen.
Insgesamt wurden 149 Patienten (106 Diabetiker, 43 nicht Diabetiker), welche allesamt für eine elektive Bypassversorgung vorgesehen waren, in die Studie eingeschlossen. Perioperativ wurden Teile des rechten und linken Vorhofohres entfernt, anschließend chemisch sowie mechanisch gehäutet und Calcium induzierte Kontraktionskraftwerte erhoben. Diese so gewonnenen experimentellen Daten konnten abschließend mit klinisch erhobenen Daten korreliert werden.
Zusammenfassend konnte ein signifikanter Unterschied bezüglich der calcium-induzierten Kraftwerte im linken Atrium über alle Calciumaktivierungsschritte zwischen Diabetikern und der Kontrollgruppe beobachtet werden (Diabetiker 0.50 ± 0.19 mN vs 0.68 ± 0.23 mN nicht-diabetiker, P = 0.002). Ebenso zeigte sich ein signifikante Kraftunterschied im rechten Vorhof. Hierbei zeigte sich der Effekt in supraphysiologischen Calciumkonzentrationen (pCa 4,52, 4,75) als nicht signifikant.
Erstmals konnten in der vorliegenden Dissertation an einem großen Patientenkollektiv experimentell signifikant reduzierte Kraftwerte bei Diabetikern im Vergleich zur Kontrollgruppe nachgewiesen werden.
In this Doctoral Thesis we investigated the consequences of perturbed mitochondrial calcium handling in the context of a rare human disease, Barth syndrome, in which the altered phospholipid composition of the inner mitochondrial membrane affects the structural organization of several protein complexes, including the mitochondrial calcium uniporter. We discovered that loss of the mitochondrial calcium uniporter in cardiac, but not skeletal muscle mitochondria hinders the calcium-induced adaptation of mitochondrial oxidative metabolism during workload transitions. This mechano-energetic uncoupling impairs the physiological increase in contractile force during physical exercise and might predispose Barth syndrome patients to the development of arrhythmias.
Mit jedem Herzschlag werden enorme Mengen an Kalzium (Ca2+) in der Herzmuskelzelle freigesetzt. Dies geschieht vornehmlich über Ryanodinrezeptororen (RyR) und dient der Induktion der Muskelkontraktion. Daneben vermittelt aber auch der Inositoltrisphosphat (IP3)-Rezeptor, nach Aktivierung durch den Botenstoff IP3, unabhängig von der Elektromechanischen Kopplung eine Ca2+-Freisetzung aus dem sarkoplasmatischen Retikulum (SR). Die hier vorliegende Arbeit hatte das Ziel an isolierten Herzmuskelzellen die Interaktion von SR und Mitochondrien zu untersuchen, unter besonderer Berücksichtigung einer IP3-vermittelten Aktivierung des mitochondrialen Metabolismus. Wir verglichen den Effekt einer IP3- bzw. RyR-vermittelten zytosolischen Ca2+-Erhöhung auf die mitochondriale Ca2+-Aufnahme und Adenosintriphosphat (ATP)-Produktion. Sowohl unter den IP3-Rezeptor-Agonisten Endothelin-1 (ET-1) bzw. Angiotensin II (Ang II), als auch unter Verwendung des ß-Rezeptor-Agonisten Isoprenalin war eine mitochondriale Ca2+-Aufnahme nachweisbar, allerdings kam es nur IP3-abhängig zu einer ATP-Produktion. Unter Zugabe des IP3-Rezeptor-Blockers 2-Aminoethoxydiphenylborat (2-APB) konnte die zuvor nachgewiesene mitochondriale Ca2+-Aufnahme deutlich reduziert werden, gleiches zeigte sich bei Zellen isoliert aus transgenen IP3-sponge-Mäusen, entsprechend einem funktionellen IP3-Knockout. Hinsichtlich des Mechanismus der mitochondrialen Ca2+-Aufnahme kamen prinzipell zwei Strukturen in Frage: der mitochondriale Ryanodinrezeptor (mRyR1) und der mitochondriale Ca2+-Kanal (MCU). Wir unternahmen in der Folge weitere Versuche mit den anerkannten Rezeptorblockern Ru360 bzw. Dantrolen, um wechselseitig den MCU oder den mRyR1 zu blockieren. Das Ergebnis dieser Versuchsreihe legt den Schluss nahe, dass die Ca2+-Aufnahme in die Mitochondrien nach betaadrenerger Stimulation mit Isoprenalin primär über den MCU vermittelt wird, demgegenüber erfolgt die IP3-vermittelte Ca2+-Aufnahme über den mRyR1. Unter Verwendung von immunhistochemischer Färbungen identifizierten wir den IP3-Rezeptor vom Typ III, der ein überwiegend mitochondriales Verteilungsmuster aufzeigte. Wir schließen daraus, dass die von uns beobachteten Effekte der mitochondrialen Ca2+-Aufnahme und ATP-Produktion IP3-abhängig induziert werden bzw. zu einem Großteil auf eine Aktivität des IP3-Rezeptors, vermutlich der Unterform vom Typ III, zurückzuführen sind. Zusammenfassend konnte in der hier vorgelegten Arbeit gezeigt werden, dass die Aktivität des IP3-Rezeptors wesentlich am zellulären Energiehaushalt der Kardiomyozyten beteiligt ist. Der IP3-Signalweg vermittelt die Ca2+-Aufnahme in die Mitochondrien und führt so zu einer Energiebereitstellung in Form von ATP.
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.
This work summarizes the results of studies on three major aspects of platelet signaling and of the pathogenesis of immune thrombocytopenia. Therefore, this thesis is divided into three parts. i) Platelet activation and subsequent thrombus formation at sites of vascular injury is crucial for normal hemostasis, but it can also trigger myocardial infarction and stroke. The initial capture of flowing platelets to the injured vessel wall is mediated by the interaction of the glycoprotein (GP) Ib-V-IX complex with von Willebrand factor (vWF) immobilized on the exposed subendothelial extracellular matrix (ECM). The central importance of GPIb for platelet adhesion is well established, whereas GPV is generally considered to be of minor relevance for platelet physiology and thrombus formation. This study intended to clarify the relevance of this receptor during thrombus formation using Gp5-/- mice and mice with different double-deficiencies in GPV and in other platelet receptors. It was found that GPV and the collagen receptor integrin a2b1 have partially redundant functions in collagentriggered platelet aggregation. Further, it was revealed that GPV limits thrombus formation and impairs hemostasis in vivo. The data presented here demonstrate that the protective effect of GPVI-deficiency (another platelet collagen receptor) in arterial thrombosis and ischemic stroke depends on the expression of GPV. Moreover, it was demonstrated that lack of GPV restores the hemostatic function of mice lacking both GPVI and a2b1 or mice lacking GPVI and the C-type lectin receptor 2 (CLEC-2). Conclusively, GPV-depletion or blockade might have the potential to treat hemorrhagic disease states. ii) Platelets contain the two phospholipase (PL) D isoforms, PLD1 and PLD2, both of which presumably become activated upon platelet stimulation. However, the function of PLD in the process of platelet activation and aggregation has not been definitively explored. Thus, PLD-deficient mice were analyzed. Mice lacking PLD1 or PLD2 were viable, fertile and had normal platelet counts. PLD1 was found to be responsible for the inducible PLD-activity in platelets and to contribute to efficient integrin activation under static conditions. Moreover, flow adhesion experiments revealed that PLD1 is essential for efficient GPIb-mediated integrin activation. Consequently, Pld1-/- mice were protected from arterial thrombosis and ischemic brain infarction without affecting tail bleeding times. Hence, inhibition of PLD1 might be a novel approach for antithrombotic therapy. iii) Cellular activation of platelets or immune cells results in increased cytosolic calcium (Ca2+) levels. Store-operated calcium entry (SOCE) via the STIM1-Orai1 axis is the main route of Ca2+ entry downstream of immunoreceptor tyrosine-based activating motif (ITAM) receptor stimulation in mast cells and T cells. However, the requirement of Ca2+-mobilization in Fcg receptor (FcgR)-signaling and the relevance of STIM2 for T cell SOCE have been unclear. To address these questions, genetically modified mice lacking central molecules of the SOCE machinery were analyzed. Ca2+-measurements revealed that both STIM isoforms contribute to Ca2+-mobilization downstream of T cell receptor activation. Additionally, it was found that FcgR stimulation results in SOCE and is mediated by STIM1 and probably Orai1. Animal models of immune thrombocytopenia (ITP) revealed that SOCE is essential for platelet clearance and that both STIM isoforms contribute to the pathology of ITP. Moreover, in this work it was also demonstrated that STIM1 and Orai1 are essential in IgG-mediated systemic anaphylaxis. STIM2 contributes to IgG-mediated, but not to IgE-mediated anaphylaxis. The data indicate that interference with SOCE might become a new strategy to prevent or treat IgG-dependent autoimmune diseases.
Funktionelle Expression von ChR2 in Pflanzen In der vorliegenden Arbeit konnte erstmalig die funktionelle Expression des licht-aktivierten Channelrhodopsin-2 aus Chlamydomonas reinhardtii in höheren Pflanzen gezeigt werden. Obwohl die erfolgreiche Transformation auf der Basis der Integration einer Expressionskassette für WT-ChR2 in Pflanzen genetisch nachgewiesen werden konnte, war ein funktioneller Nachweis nicht möglich. Demgegenüber war die funktio-nelle Expression aller getesteten ChR2-Mutanten im transienten Expressionsansatz er-folgreich und konnte schließlich auf der Basis der im Rahmen dieser Arbeit generierten Konstrukte auch für stabil transformierte Arabidopsis-Pflanzen bestätigt werden. ChR2 wurde in Arabidopsis-Protoplasten sowie Tabak-Epidermis- und Mesophyllzellen an der Plasmamembran lokalisiert, zeigte jedoch aufgrund der Überexpression eine starke Überladung des Endomembransystems. Elektrophysiologische Messungen mit Hilfe der Einstichtechnik belegten, dass ChR2 sowohl in Arabidopsis-Keimlingen als auch im Tabakmesophyll funktionell ist, wobei sich die erzeugten Blaulicht-vermittelten Depolarisationen weitaus erfolgreicher im Ta-baksystem darstellten. Alle eingesetzten ChR2-Mutanten waren funktionell und zeigten in Einstichmessungen mit Oozytendaten korrelierende Kinetiken. Die Mutante C128A wurde hinsichtlich der erzielten lichtinduzierten Membranpotentialdepolarisationen als effektivste ChR2-Variante identifiziert. Calcium-Messungen mit dem Reporterprotein Aequorin lieferten keinen Beweis für einen direkt durch ChR2-C128A vermittelten Calcium-Einstrom in Arabidopsis-Protoplasten. Jedoch konnte ein cytosolischer Calcium-Anstieg ca. 3min nach Blau-lichtapplikation beobachtet werden. Dies deutet darauf hin, dass die durch ChR2 vermittelten Membranpotentialänderungen zu einer Aktivierung endogener, Calcium-permeabler Ionenkanäle führen könnte. Für die ChR2-L132C Mutante konnte allerdings in ersten Messungen ein direkter Calcium-Anstieg nach Lichtgabe beobachtet werden. Transkriptionelle Änderungen aufgrund ChR2-basierter, elektrischer Signalmuster In RNA-Seq-Analysen mit transient transformierten Tabakblättern konnte die Bedeu-tung der Signalsignatur elektrischer bzw. Calcium-basierter Signale verifiziert werden: Die Applikation zweier in ihrer Form gänzlich unterschiedlicher elektrischer Signal-muster lieferte ein signifikant unterschiedlich reguliertes Set an Genen, wobei einige wenige durch beide Behandlungen induziert werden konnten. Langanhaltende Depolari-sationen regulierten deutlich mehr Gene und waren daher in ihrer Wirkung weitaus ef-fektiver als kurze, repetitive Depolarisationen. Die bioinformatische Analyse dieser Daten zeigte, dass die Nachahmung eines im Zuge der Pathogenantwort bekannten, langen Depolarisationspulses Gene der Flagellin-induzierten Signaltransduktion adressierte, während kurze, wiederkehrende Pulse mit gleichem Informationsgehalt diese nicht regulierten.
Studies on receptor signaling and regulation in platelets and T cells from genetically modified mice
(2014)
Receptors with tyrosine-based signaling motifs control essential functions of hematopoietic cells, including lymphocytes and platelets. Downstream of the platelet receptor glycoprotein (GP) VI and the T cell receptor (TCR) the immunoreceptor tyrosine-based activation motif (ITAM) initiates a signaling cascade that involves kinases, adapter and effector proteins and finally leads to cellular activation. This thesis summarizes the results of three studies investigating different aspects of receptor signaling and regulation in platelets and T cells.
In the first part, the impact of constitutive Ca2+ influx on TCR signaling and T cell physiology was investigated using a transgenic mouse line with a mutation in the Ca2+ sensor stromal interaction molecule 1 (STIM1). The elevated cytoplasmic Ca2+ level resulted in an altered phosphorylation pattern of the key enzyme phospholipase (PL) Cγ1 in response to TCR stimulation, but without affecting its enzymatic activity. Withdrawal of extracellular Ca2+ or inhibition of the phosphatase calcineurin restored the normal phosphorylation pattern. In addition, there was a decrease in the release of Th2-type cytokines interleukin 4, 5 and 13 upon stimulation in vitro.
The second part of the thesis deals with the role of the adapter protein growth factor receptor-bound protein 2 (Grb2) in platelets using a megakaryocyte/platelet-specific knockout mouse line. Loss of Grb2 severely impaired signaling of GPVI and C-type lectin-like receptor 2 (CLEC-2), a related hemITAM receptor. This was attributed to defective stabilization of the linker for activation of T cells (LAT) signalosome and resulted in reduced adhesion, aggregation, Ca2+ mobilization and procoagulant activity downstream of (hem)ITAM-coupled receptors in vitro. In contrast, the signaling pathways of G protein-coupled receptors (GPCRs) and the integrin αIIbβ3, which do not utilize the LAT signalosome, were unaffected. In vivo, the defective (hem)ITAM signaling caused prolonged bleeding times, however, thrombus formation was only affected under conditions where GPCR signaling was impaired (upon acetylsalicylic acid treatment). These results establish Grb2 as an important adapter protein in the propagation of GPVI- and CLEC-2-induced signals.
Finally, the proteolytic regulation of the immunoreceptor tyrosine-based switch motif (ITSM)-bearing receptor CD84 in platelets was investigated. This study demonstrated that in mice CD84 is cleaved by two distinct and independent proteolytic mechanisms upon platelet activation: shedding of the extracellular part, which is exclusively mediated by a disintegrin and metalloproteinase (ADAM) 10 and cleavage of the intracellular C-terminus by the protease calpain. Finally, the analysis of soluble CD84 levels in the plasma of transgenic mice revealed that shedding of CD84 by ADAM10 occurs constitutively in vivo.
Im Rahmen der Abschlussuntersuchung der Fall-Kontroll-Studie (September 2005- Oktober 2007) des Missionsärztlichen Instituts Würzburg in Kaduna, Nigeria, wurde die spezifische Symptomatik, die Blutwerte sowie die motorische Leistungsfähigkeit bei 124 Kindern mit Rachitis und 87 gesunden Kontrollen im Alter von 1 bis 18 Jahren analysiert und mit den Eingangs- und Verlaufswerten verglichen. Dabei wurden die Dimensionen der subjektiven und objektiven Einschränkungen des Bewegungsapparates, der motorischen Fähigkeiten Koordination, Kraft, Ausdauer und Beweglichkeit sowie der krankheitsspezifischen Serumwerte Calcium, PTH und Vitamin D gemessen und nach Alter, Geschlecht, klinisch-orthopädischen Untersuchungsergebnissen und durchgeführter Intervention analysiert. Die 2005 begonnene Substitution mit Calciumcarbonat über 3 Monate führte bei 54 Kindern zu einer Angleichung an die erhobenen Kontrollwerte. In Relation zu vergleichbaren Interventionsstudien kam es zu einer reduzierten Besserung. Begann die Therapie vor der motorischen Entwicklungsphase vor dem 7. Lebensjahr, so konnten Leistungsminderungen kompensiert werden. Die erhobenen Werte der 58 Teilnehmer der zweiten Interventionsgruppe mit Calciumlaktat sind zwischen den Studienergebnissen der aktiven und der therapierten Rachitis einzuordnen. Erstmals wurden die Eingangs- und Ausgangswerte von 12 symptomatischen Teilnehmer ohne wahrgenommener Therapie dokumentiert, mit dem Ergebnis einer vergleichbaren Besserung der klinischen und serologischen Werte wie die therapierten Teilnehmer. Die Ergebnisse bestätigen erstmals anhand eines objektiven Testverfahrens die Annahme, dass zwischen dem Ausprägungsgrad der Rachitis und der motorischen Leistungsfähigkeit ein Zusammenhang besteht. Die aufgezeigten Ergebnisse
verdeutlichen, dass eine Calcium-Mangel-Rachitis erfolgreich mit einer alleinige Substitution von Calcium therapiert werden kann, besonders vor dem 7. Lebensjahr. Dabei gilt neben einer ausreichenden Substitution an Calcium auch eine adäquate Compliance sicherzustellen. Mit der Erhebung der klinischen, motorischen und serologischen Werte wurde eine Datenbasis geschaffen, anhand derer es zukünftig möglich sein wird, Aussagen über den Verlauf und die adäquate Therapie von Kindern mit Rachitis in Nigeria zu treffen.