@phdthesis{Classen2021, author = {Claßen, Alexandra}, title = {The ERK-cascade in the pathophysiology of cardiac hypertrophy}, doi = {10.25972/OPUS-22966}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-229664}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2021}, abstract = {ERK1/2 are known key players in the pathophysiology of heart failure, but the members of the ERK cascade, in particular Raf1, can also protect the heart from cell death and ischemic injury. An additional autophosphorylation (ERK1 at Thr208, ERK2 at Thr188) empowers ERK1/2 translocation to the nucleus and phosphorylation of nuclear targets which take part in the development of cardiac hypertrophy. Thereby, targeting this additional phosphorylation is a promising pharmacological approach. In this thesis, an in silico model of ERK cascade in the cardiomyocyte is introduced. The model is a semi-quantitive model and its behavior was tested with different softwares (SQUAD and CellNetAnalyzer). Different phosphorylation states of ERK1/2 as well as different stimuli can be reproduced. The different types of stimuli include hypertrophic as well as non-hypertrophic stimuli. With the introduced in-silico model time courses and synergistic as well as antagonistic receptor stimuli combinations can be predicted. The simulated time courses were experimentally validated. SQUAD was mainly used to make predictions about time courses and thresholds, whereas CNA was used to analyze steady states and feedback loops. Furthermore, new targets of ERK1/2 which partially contribute, also in the formation of cardiac hypertrophy, were identified and the most promising of them were illuminated. Important further targets are Caspase 8, GAB2, Mxi-2, SMAD2, FHL2 and SPIN90. Cardiomyocyte gene expression data sets were analyzed to verify involved components and to find further significantly altered genes after induced hypertrophy with TAC (transverse aortic constriction). Changes in the ultrastructure of the cardiomyocyte are the final result of induced hypertrophy.}, subject = {Herzhypertrophie}, language = {en} } @phdthesis{Pickel2020, author = {Pickel, Simone}, title = {Role of the β subunit of L-type calcium channels in cardiac hypertrophy}, doi = {10.25972/OPUS-19282}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-192829}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2020}, abstract = {L-type calcium channels (LTCCs) control crucial physiological processes in cardiomyocytes such as the duration and amplitude of action potentials, excitation-contraction coupling and gene expression, by regulating the entry of Ca2+ into the cells. Cardiac LTCCs consist of one pore-forming α1 subunit and the accessory subunits Cavβ, Cavα2δ and Cavγ. Of these auxiliary subunits, Cavβ is the most important regulator of the channel activity; however, it can also have LTCC-independent cellular regulatory functions. Therefore, changes in the expression of Cavβ can lead not only to a dysregulation of LTCC activity, but also to changes in other cellular functions. Cardiac hypertrophy is one of the most relevant risk factors for congestive heart failure and depends on the activation of calcium-dependent prohypertrophic signaling pathways. However, the role of LTCCs and especially Cavβ in this pathology is controversial and needs to be further elucidated. Of the four Cavβ isoforms, Cavβ2 is the predominant one in cardiomyocytes. Moreover, there are five different splice variants of Cavβ2 (Cavβ2a-e), differing only in the N-terminal region. We reported that Cavβ2b is the predominant variant expressed in the heart. We also revealed that a pool of Cavβ2 is targeted to the nucleus in cardiomyocytes. The expression of the nuclear Cavβ2 decreases during in vitro and in vivo induction of cardiomyocyte hypertrophy and overexpression of a nucleus-targeted Cavβ2 completely abolishes the in vitro induced hypertrophy. Additionally, we demonstrated by shRNA-mediated protein knockdown that downregulation of Cavβ2 enhances the hypertrophy induced by the α1-adrenergic agonist phenylephrine (PE) without involvement of LTCC activity. These results suggest that Cavβ2 can regulate cardiac hypertrophy through LTCC-independent pathways. To further validate the role of the nuclear Cavβ2, we performed quantitative proteome analyses of Cavβ2-deficient neonatal rat cardiomyocytes (NRCs). The results show that downregulation of Cavβ2 influences the expression of various proteins, including a decrease of calpastatin, an inhibitor of the calcium-dependent cysteine protease calpain. Moreover, downregulation of Cavβ2 during cardiomyocyte hypertrophy drastically increases calpain activity as compared to controls after treatment with PE. Finally, the inhibition of calpain by calpeptin abolishes the increase in PE-induced hypertrophy in Cavβ2-deficient cells. These results suggest that nuclear Cavβ2 has Ca2+- and LTCC-independent functions during the development of hypertrophy. Overall, our results indicate a new role for Cavβ2 in antihypertrophic signaling in cardiac hypertrophy.}, subject = {Herzhypertrophie}, language = {en} } @phdthesis{Vidal2013, author = {Vidal, Marie}, title = {b-adrenergic receptors and Erk1/2-mediated cardiac hypertrophy}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-83671}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2013}, abstract = {Chronische Aktivierung von b-Adrenorezeptoren (b-ARs) durch Katecholamine ist ein Stimulus f{\"u}r kardiale Hypertrophie und Herzinsuffizienz. Ebenso f{\"u}hrt die Expression von b1-ARs oder Gas-Proteinen in genetisch modifizierten M{\"a}usen zu Hypertrophie und Herzinsuffizienz. Allerdings f{\"u}hrt die direkte Aktivierung dem Gas nachgeschalteten Komponenten des b-adrenergen Signalwegs wie z.B. die Aktivierung der Adenylylcyclase (AC) oder der Proteinkinase A (PKA) nicht im signifikanten Ausmaß zur Herzhypertrophie. Diese Ergebnisse deuten darauf hin, dass zus{\"a}tzlich zu dem klassischen Signalweg, auch weitere durch Gas-Proteine aktivierte Komponenten in die b-adrenerg vermittelte Hypertrophieentwicklung involviert sind. Interessanterweise wurde vor kurzem ein hypertropher Signalweg beschrieben, der eine direkte Involvierung von Gbg-Untereinheiten bei der Induktion von Herzhypertrophie durch die extrazellul{\"a}r-regulierten Kinasen 1 und 2 (ERK1/2) zeigt: Nach Aktivierung Gaq-gekoppelter Rezeptoren binden Gbg-Untereinheiten an die aktivierte Raf/Mek/Erk Kaskade. Die Bindung der freigesetzten Gbg-Untereinheiten an Erk1/2 f{\"u}hrt zu einer Autophosphorylierung von Erk1/2 an Threonin 188 (bzw. Thr208 in Erk1; im folgenden ErkThr188-Phosphorylierung genannt), welche f{\"u}r die Vermittlung kardialer Hypertrophie verantwortlich ist. In dieser Arbeit konnte nun gezeigt werden, dass auch die Aktivierung von b-ARs in M{\"a}usen sowie von isolierten Kardiomyozyten zur Induktion von ErkThr188-Phosphorylierung f{\"u}hrt. Dar{\"u}berhinaus f{\"u}hrte die {\"U}berexpression von Erk2 Mutanten (Erk2T188S und Erk2T188A), die nicht an Threonin 188 phosphoryliert werden k{\"o}nnen, zu einer deutlich reduzierten Hypertrophieantwort von Kardiomyozyten auf Isoproterenol. Auch die kardiale Expression der Erk2T188S Mutante im M{\"a}usen verminderte die Hypertrophieantwort auf eine 2-w{\"o}chige Isoproterenol-Behandlung deutlich: Die linksventrikul{\"a}re Wanddicke, aber auch interstitielle Fibrose und Herzinsuffizienzmarker wie z.B. BNP waren signifikant reduziert. Weiterhin konnte in dieser Arbeit gezeigt werden, dass tats{\"a}chlich ein Zusammenspiel von Ga und Gbg-vermittelten Signalen zur Induktion von ErkThr188-Phosphorylierung und damit zur Induktion von b-adrenerg vermittelter Hypertrophie notwendig ist. W{\"a}hrend die Hemmung von Gbg-Signalen mit dem C-Terminus der GRK2 oder die Hemmung von Adenylylzyklase eine ErkThr188-Phosphorylierung und eine Hypertrophieantwort nach Isoprenalingabe effektiv reduzierten, f{\"u}hrt die alleinige Aktivierung von Adenylylzyklase nicht zu einer Hypertrophieantwort. Diese Ergebnisse k{\"o}nnten bei der Entwicklung neuer m{\"o}glicher therapeutischen Strategien zur Therapie b-adrenerg induzierter Herzhypertrophie und Herzinsuffizienz helfen.}, subject = {Adrenerger Rezeptor}, language = {en} } @phdthesis{Drechsler2012, author = {Drechsler, Johannes}, title = {Determination of the hypertrophic potential of Oncostatin M on rat cardiac cells and the characterisation of the receptor complexes utilised by rat Oncostatin M}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-85215}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2012}, abstract = {Interleukin-6 (IL-6), oncostatin M (OSM), leukaemia inhibitory factor (LIF) and cardiotrophin-1 (CT-1) are members of the IL-6-type cytokine family that is characterised by sharing the common receptor subunit gp130. While the involvement of these polypeptides in cell differentiation, cell survival, proliferation, apoptosis, inflammation, haematopoiesis, immune response and acute phase reaction has already been demonstrated, the description of their role in development and progression of cardiac hypertrophy is still rather limited. A model has been postulated that declares the transient expression of IL-6-type cytokines as protective, while a continuous cardiac secretion of these proteins seems to be rather harmful for the heart. Within the first part of the study (results 4.1, 4.2 and 4.3) it was shown that OSM induces hypertrophy of primary neonatal rat cardiomyocytes (NRCM), just as its related cytokines LIF, CT-1 and hIL-6/hsIL-6R (hsIL-6R, human soluble IL-6 receptor). Regarding the hypertrophic potentials the LIFR/gp130 utilising cytokines (hLIF, hOSM and hCT-1) are stronger inducers than the OSMR/gp130 utilising mOSM. Human IL-6/hsIL-6R which signals via a gp130 homodimer has the weakest hypertrophic effect. The thorough analysis of typical signalling pathways initiated by IL-6-type cytokines revealed that STAT3 phosphorylation at Y705 seems to be the most important hypertrophy promoting pathway. In addition and in contrast to published work, we clearly demonstrate that classical IL-6 signalling (upon pure IL-6 treatment) has no hypertrophic effect on cardiomyocytes, because they lack sufficient amounts of the membrane-bound IL-6R. This is also true for neonatal rat cardiac fibroblasts (NRCFB). Since these cells can also influence cardiac hypertrophy, signalling pathways and target genes were additionally examined in NRCFB in response to OSM, LIF and IL-6/sIL-6R. One of the key findings of this thesis is the selective change in expression of cytokines and receptors of the IL-6 family in both cell types upon IL-6-type cytokine stimulation. A striking difference between NRCM and NRCFB is the fact that the target gene induction in NRCM is of similar duration upon mOSM and hIL-6/hsIL-6R treatment, while hIL-6/hsIL-6R is capable of promoting the induction of OSMR and IL-6 significantly longer in NRCFB. By searching for transcription factors or intermediate cytokines which could be responsible for this difference, a strong correlation between increased Il6 transcription and amount of mRNA levels for C/EBPβ and C/EBPδ was observed in response to IL-6/sIL-6R stimulation. Interestingly, mOSM also mediates the induction of C/EBPβ and δ, but the initiation is significantly less efficient than in response to IL-6/sIL-6R. Therefore, we assume that mOSM stimulation fails to reach threshold values required for a prolonged IL-6 secretion. Since we additionally observe a slight IL-6R mRNA upregulation in NRCFB, we assume that the combination of IL-6, LIF, C/EBPβ, C/EBPδ and IL-6R expression might be responsible for the observed different kinetics with which IL-6 and OSM stimulate NRCFB. In addition to the aforementioned proteins, members of the renin-angiotensin system seem to support the IL-6-type cytokine mediated hypertrophy. Since it has already been shown that angiotensin II vice versa induces IL-6 expression in NRCM and NRCFB, this enhanced expression of AT1α and ACE could be of crucial interest for the hypertrophy supporting phenotype. The second part of the presented work dealt with the characterisation of the receptor complexes of rat OSM. The central question of this analysis was, whether rOSM, just like mOSM, only binds the type II (OSMR/gp130) receptor complex or is able to utilise the type II and type I (LIFR/gp130) receptor complex. Using different experimental approaches (knock-down of the OSMR expression by RNA interference, blocking of the LIFR by LIF-05, an antagonistic LIF variant, and generation of stably transfected Ba/F3 cells expressing the newly cloned rat OSMR/gp130 or LIFR/gp130 receptor complex) we can clearly show that rat OSM surprisingly utilises both, the type I and type II receptor complex. Therefore it closely mimics the human situation. Furthermore, rOSM displays cross-species activities and stimulates cells of human as well as murine origin. Its signaling capacities closely mimic those of human OSM in cell types of different origin in the way that strong activation of the JAK/STAT, the MAP kinase as well as the PI3K/Akt pathways can be observed. Therefore, the results obtained in the last section of this thesis clearly suggest that rat disease models would allow evaluation of the relevance of OSM for human biology much better than murine models.}, subject = {Interleukin 6}, language = {en} } @phdthesis{Burkard2010, author = {Burkard, Natalie}, title = {Signal{\"u}bertragungswege und Pr{\"a}ventionsm{\"o}glichkeiten der kardialen Hypertrophie : conditional overexpression of neuronal nitric oxide synthase is cardioprotective in ischemia-reperfusion}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-51832}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2010}, abstract = {Zusammenfassung: Wie fr{\"u}her schon gezeigt, wird der L-Typ Ca2+-Kanal durch eine induzierbare, myokardspezifische {\"U}berexpression der neuronalen Stickstoffmonoxidsynthase (nNOS) inhibiert. Gleichzeitig bewirkt diese {\"U}berexpression eine verminderte kardiale Kontraktilit{\"a}t1 (Burkard N. et al. (2007). Circ Res 100, 32-44). nNOS interagiert mit vielen verschiedenen Kompartimenten und Kan{\"a}len innerhalb der Zelle. In dieser Arbeit wurde gezeigt, dass eine nNOS {\"U}berexpression nach Isch{\"a}mie-Reperfusion kardioprotektiv wirkt. Dieses wird durch eine Inhibition der Mitochondrienfunktion und durch eine Verminderung der reaktiven Sauerstoffspezies (ROS) erm{\"o}glicht. In einer fr{\"u}heren Arbeit wurde der Effekt der induzierbaren und myokardspezifischen {\"U}berexpression von nNOS unter physiologischen Bedingungen am transgenen Tiermodell untersucht. Diese Arbeit besch{\"a}ftigt sich nun mit der {\"U}berexpression von nNOS unter pathophysiologischen (Isch{\"a}mie-Reperfusion) Bedingungen. Ein Isch{\"a}mie-Reperfusions-Schaden bewirkt bei Wildtyp-M{\"a}usen, sowie bei transgener nNOS {\"U}berexpression eine Anreicherung von nNOS in den Mitochondrien. Elektronenmikroskopische Aufnahmen von Mausmyokard haben gezeigt, dass bei {\"U}berexpression nNOS zus{\"a}tzlich in den Mitochondrien lokalisiert ist. Diese Translokation von nNOS in die Mitochondrien ist abh{\"a}ngig von HSP90. Isch{\"a}mie- Reperfusionsexperimente an isolierten M{\"a}useherzen zeigten einen kardioprotektiven Effekt der nNOS {\"U}berexpression (30min post ischemia, LVDP 27.0±2.5mmHg vs. 45.2±1.9mmHg, n=12, p<0.05). Dieser positive Effekt konnte bei der Bestimmung der Infarktgr{\"o}ße best{\"a}tigt werden. nNOS {\"u}berexprimierende M{\"a}use hatten eine kleinere Infarktgr{\"o}ße nach Isch{\"a}mie-Reperfusion (36.6±8.4 relative \% vs. 61.1±2.9 relative \%, n=8, p<0.05). Die {\"U}berexpression von nNOS bewirkte ebenfalls einen signifikanten Anstieg des mitochondrialen Nitrit-Levels, begleitet von einer Verminderung der Cytochrom C Oxidase Aktivit{\"a}t (72.0±8.9units/ml in nNOS overexpressing mice vs. 113.2±17.1units/ml in non-induced mice, n=12, p<0.01), was zu einer Hemmung der Mitochondrienfunktion f{\"u}hrt. Dementsprechend war der Sauerstoffverbrauch (gemessen an isolierten Herzmuskelstreifen) schon unter basalen Bedingungen beinNOS {\"U}berexpression vermindert (0.016±0.0015 vs. 0.024±0.006ml[O2] x mm-3 x min-1, n=13, p<0.05). Außerdem war die ROS Konzentration in Herzen von nNOS {\"u}berexprimierenden M{\"a}usen signifikant vermindert (6.14±0.685 vs. 14.53±1.7μM, n=8, p<0.01). Die Zugabe von verschiedenen Inhibitoren, Western Blot- und Aktivit{\"a}tsuntersuchungen zeigten schließlich, dass diese niedrigere ROS Konzentration durch eine verminderte Xanthin Oxidoreduktase Aktivit{\"a}t hervorgerufen wurde. Zusammenfassend hat diese Arbeit gezeigt, dass eine induzierbare und myokardspezifische {\"U}berexpression von nNOS unter pathophysiologischen Bedingungen (Isch{\"a}mie-Reperfusion) kardioprotektiv wirkt. Zus{\"a}tzlich zu der Verminderung des myokardialen Ca2+-{\"U}berschusses nach Reperfusion k{\"o}nnte dieser protektive Effekt durch eine Hemmung der Mitochondrienfunktion bedingt sein, schließlich wird der Sauerstoffverbrauch schon unter basalen Bedingungen reduziert}, subject = {Herzhypertrophie}, language = {en} }