TY - JOUR A1 - Jochmann, Svenja A1 - Elkenani, Manar A1 - Mohamed, Belal A. A1 - Buchholz, Eric A1 - Lbik, Dawid A1 - Binder, Lutz A1 - Lorenz, Kristina A1 - Shah, Ajay M. A1 - Hasenfuß, Gerd A1 - Toischer, Karl A1 - Schnelle, Moritz T1 - Assessing the role of extracellular signal‐regulated kinases 1 and 2 in volume overload‐induced cardiac remodelling JF - ESC Heart Failure N2 - Aims Volume overload (VO) and pressure overload (PO) induce differential cardiac remodelling responses including distinct signalling pathways. Extracellular signal‐regulated kinases 1 and 2 (ERK1/2), key signalling components in the mitogen‐activated protein kinase (MAPK) pathways, modulate cardiac remodelling during pressure overload (PO). This study aimed to assess their role in VO‐induced cardiac remodelling as this was unknown. Methods and results Aortocaval fistula (Shunt) surgery was performed in mice to induce cardiac VO. Two weeks of Shunt caused a significant reduction of cardiac ERK1/2 activation in wild type (WT) mice as indicated by decreased phosphorylation of the TEY (Thr‐Glu‐Tyr) motif (−28% as compared with Sham controls, P < 0.05). Phosphorylation of other MAPKs was unaffected. For further assessment, transgenic mice with cardiomyocyte‐specific ERK2 overexpression (ERK2tg) were studied. At baseline, cardiac ERK1/2 phosphorylation in ERK2tg mice remained unchanged compared with WT littermates, and no overt cardiac phenotype was observed; however, cardiac expression of the atrial natriuretic peptide was increased on messenger RNA (3.6‐fold, P < 0.05) and protein level (3.1‐fold, P < 0.05). Following Shunt, left ventricular dilation and hypertrophy were similar in ERK2tg mice and WT littermates. Left ventricular function was maintained, and changes in gene expression indicated reactivation of the foetal gene program in both genotypes. No differences in cardiac fibrosis and kinase activation was found amongst all experimental groups, whereas apoptosis was similarly increased through Shunt in ERK2tg and WT mice. Conclusions VO‐induced eccentric hypertrophy is associated with reduced cardiac ERK1/2 activation in vivo. Cardiomyocyte‐specific overexpression of ERK2, however, does not alter cardiac remodelling during VO. Future studies need to define the pathophysiological relevance of decreased ERK1/2 signalling during VO. KW - ERK1/2 KW - volume overload KW - aortocaval fistula model KW - cardiac remodelling KW - eccentric hypertrophy Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-212735 VL - 6 IS - 5 SP - 1015 EP - 1026 ER - TY - JOUR A1 - Lorenz, Kristina A1 - Rosner, Marsha Rich T1 - Harnessing RKIP to combat heart disease and cancer JF - Cancers N2 - Cancer and heart disease are leading causes of morbidity and mortality worldwide. These diseases have common risk factors, common molecular signaling pathways that are central to their pathogenesis, and even some disease phenotypes that are interdependent. Thus, a detailed understanding of common regulators is critical for the development of new and synergistic therapeutic strategies. The Raf kinase inhibitory protein (RKIP) is a regulator of the cellular kinome that functions to maintain cellular robustness and prevent the progression of diseases including heart disease and cancer. Two of the key signaling pathways controlled by RKIP are the β-adrenergic receptor (βAR) signaling to protein kinase A (PKA), particularly in the heart, and the MAP kinase cascade Raf/MEK/ERK1/2 that regulates multiple diseases. The goal of this review is to discuss how we can leverage RKIP to suppress cancer without incurring deleterious effects on the heart. Specifically, we discuss: (1) How RKIP functions to either suppress or activate βAR (PKA) and ERK1/2 signaling; (2) How we can prevent cancer-promoting kinase signaling while at the same time avoiding cardiotoxicity. KW - RKIP KW - ERK1/2 KW - PKA KW - βAR KW - heart failure KW - cancer Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-262185 SN - 2072-6694 VL - 14 IS - 4 ER - TY - THES A1 - Niederlechner, Stefanie T1 - Assessment of the basic molecular mechanisms underlying L-glutamine's cytoprotective effects after intestinal injury T1 - Untersuchung und Auswertung der molekularen Mechanismen, die L-Glutamin's protektivem Zellmechanismus nach Intestinaler Verletzung zugrunde liegen N2 - Critical illness like sepsis, shock, and intestinal bowel disease are one of the leading causes of morbidity and mortality in the US and around the world. At present, studies to define new therapeutic interventions that can protect tissues and cells against injury and attenuate inflammation are fields of intense investigation. While research over the past decade has clearly identified GLN as a vital stress substrate facilitating cellular survival following injury, the initiation steps in GLN’s cytoprotective molecular mechanism still remain elusive. Previously published work suggested that stabilization of ECM proteins and activation of ECM receptor osmosignaling may play a central role in the orchestration of many cellular pathways following stress. Thus, I hypothesized that preservation of ECM protein and EGFR levels as well as ECM receptor signaling play key roles in the molecular mechanisms underlying GLN’s protection against thermal injury in the intestine. I was able to confirm via Western blotting and by using silencing RNA against FN, Ntn-1, EGFR, and their negative controls, that GLN-mediated preservation of FN, Ntn-1, and EGFR levels is critical in GLN’s protection against hyperthermia in IEC-6 cells. By using a selective FN-Integrin interaction inhibitor GRGDSP, its negative control peptide GRGESP, and Src-kinase inhibitor PP2, I showed that FN-Integrin signaling and Src-kinase activation are essential in GLN-mediated protection in the intestine. This applied to EGFR signaling as demonstrated using the EGFR tyrosine kinase inhibitor AG1478. In addition to GRGDSP and AG1478, ERK1/2 inhibitors PD98059 and UO126 as well as the p38MAPK inhibitor SB203580 revealed that GLN is protective by activating ERK1/2 and dephosphorylating p38MAPK via FN-Integrin and EGFR signaling. However, GLN-mediated PI3-K/Akt/Hsp70 activation seems to occur independently of FN-Integrin and EGFR signaling as indicated by Western blots as well as experiments using the PI3-K inhibitor LY294002, GRGDSP, and AG1478. The results showed that GLN activates cell survival signaling pathways via integrins as well as EGFRs after hyperthermia. Moreover, I found that GLN-mediated preservation of FN expression after HS is regulated via PI3-K signaling. Whether GLN-mediated PI3-K signaling happens simultaneously to FN-Integrin and EGFR signaling or whether PI3-K signaling coordinates FN-Integrin and EGFR signaling needs to be investigated in future studies. Further, experiments with PD98059 and GRGDSP revealed that ERK1/2 assists in mediating transactivation of HSF-1 following HS. This leads to increases in Hsp70 expression via FN-Integrin signaling, which is known to attenuate apoptosis after thermal injury. Fluorescence microscopy results indicated that HS and GLN regulate cell are size changes and the morphology of F-actin via FN-Integrin signaling. Experiments using GRGDSP and GRGESP showed that GLN enhances cellular survival via FN-Integrin signaling in a manner that does not require increased intracellular GLN concentrations (as quantified using LC-MS/MS). In summary, my thesis work gives new and potentially clinically relevant mechanistic insights into GLN-mediated molecular cell survival pathways. These results warrant clinical translation to assess if clinical outcome of critically ill patients suffering from gastrointestinal diseases can be improved by GLN treatment and/or by targeting the molecular pathways found in my studies. N2 - Kritische Erkrankungen wie Sepsis, Schock und entzündliche Darmerkrankungen sind eine der häufigsten Todesursachen in den Vereinigten Staaten und dem Rest der Welt. Von großer Bedeutung sind deshalb Studien, die darauf abzielen, neue therapeutische Ansätze zu finden, die Gewebe und Zellen vor Verletzungen schützen und Entzündungen verhindern. Im letzten Jahrzehnt hat sich herausgestellt, dass Glutamin Schutz gegen die pathophysiologischen und pathobiochemischen Entgleisungen während solcher Erkrankungen vermitteln kann. Trotzdem ist es bisher nur sehr unvollständig gelungen, die zugrundeliegenden molekularen Mechanismen, die für diese zellulären Schutzfunktionen von Glutamin verantwortlich sind, aufzuklären. In diesem Zusammenhang gab es erste Hinweise darauf, dass die Stabilisierung von extrazellulären Matrixproteinen und die Aktivierung der Signalwege extrazellulärer Matrixproteinrezeptoren eine wichtige Rolle spielen könnten. Hierauf basierend habe ich die Hypothesen aufgestellt, dass die Expression von extrazellulären Matrixproteingehalten und von epidermalen Wachstumsfaktorrezeptoren (EGFR), sowie die Aktivierung von Integrin- und EGFR-Signalwegen Schlüsselrollen in den protektiven Mechanismen von Glutamin spielen. Meine Arbeiten zeigten anhand von Western Blots und durch den Einsatz von Silencing RNA (gegen Fibronektin, Netrin-1, EGFR und deren Negativkontrollen), dass Glutamin extrazelluläre Matrixproteingehalte, wie Fibronektin und Netrin-1, und EGFR-Levels vor Hitzestress in Darmepithelzellen bewahrt, wodurch Apoptose verhindert wird. Außerdem konnte ich mit Hilfe des selektiven Inhibitors GRGDSP, seiner Negativkontrolle GRGESP und des Src-Kinase-Inhibitors PP2 nachweisen, dass auch die Aktivierung von Fibronektin-Integrin-Signalwegen und von Src-Kinasen an den Schutzmechanismen von Glutamin im Darm beteiligt sind. Wie mit Hilfe des spezifischen EGFR-Tyrosinkinase-Inhibitors AG1478 nachgewiesen werden konnte, trifft dies auch für die EGFR-Signalwege zu. Zusätzlich zu GRGDSP und AG1478 wurden auch die ERK1/2-Kinase-Inhibitoren PD98059 und UO126 und der p38MAPK-Inhibitor verwendet, um zu zeigen, dass Glutamin Darmepithelzellen durch die Aktivität von Fibronektin-Integrin- und EGFR-Signalwegen vor Hitzestress schützt, indem es EKR1/2 phosphoryliert und p38MAPK dephosphoryliert. PI-3K/Akt/Hsp70-Signalwege werden ebenfalls von Glutamin aktiviert, jedoch unabhängig von Fibronektin-Integrin- und EGFR-Signalwegen. Dies konnte anhand von Western Blot Experimenten und mit Hilfe von LY294002 (PI-3K-Inhibitor), GRGDSP und AG1478 bewiesen werden. Glutamin scheint die gleichen Signalwege sowohl mit Hilfe von Integrinen als auch von EGFR zu beeinflussen, um so den Zelltod in Darmepithelzellen nach Hitzestress zu verhindern. Desweiteren konnte gezeigt werden, dass Glutamin die Erhaltung von Fibronektinkonzentrationen nach Hitzestress durch den PI-3K-Signalweg reguliert. Ob Glutamin den PI-3K-Signalweg parallel zu den Integrin- und EGFR-Signalwegen aktiviert oder ob der von Glutamin ausgelöste PI-3K-Signalweg die Integrin- und EGFR-Signalwege steuert, muss noch weiter untersucht werden. Experimente mit PD98059 und GRGDSP zeigten, dass ERK1/2 in der Gegenwart von Glutamin den Transkriptionsfaktor HSF-1 durch den Fibronektin-Integrin-Signalweg nach Hitzestress transaktiviert. Dadurch nimmt die Expression von Hsp70, welches den Zelltod nach Hitzeschock verhindert, zu. Mit Hilfe der Fluoreszenzmikroskopie konnte gezeigt werden, dass Hitzestress und Glutamin die Zellgröße und die Aktinmorphologie von Darmepithelzellen durch Fibronektin-Integrin-Signalwege steuern können. Außerdem ergaben Versuche mit GRGDSP und GRGESP, dass Glutamin unabhänging von seinen intrazellulären Konzentrationen das Überleben von Darmepithelzellen durch die Aktivierung von Fibronektin-Integrin-Signalwegen erhöhen kann. Hierbei wurden die Glutaminkonzentrationen mit LC-MS/MS gemessen. Die Versuche im Rahmen meiner Dissertation konnten neue und potentiell klinisch relevante Signalwege der molekularen Schutzmechanismen von Glutamin aufdecken. Diese Ergebnisse können die Grundlage für translationale Studien darstellen, die weiter untersuchen, ob die Überlebensrate von Patienten mit entzündlichen Darmerkrankungen durch die Behandlung mit Glutamin oder durch gezielte Beeinflussung der hier untersuchten molekularen Mechanismen verbessert werden kann. KW - Glutamin KW - Integrine KW - Epidermaler Wachstumsfaktor-Rezeptor KW - Apoptosis KW - glutamine KW - integrins KW - epidermal growth factor receptor KW - cell death KW - cell survival KW - EGFR KW - ERK1/2 KW - p38MAPK KW - PI3-K KW - Akt KW - Apoptose Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-77399 ER - TY - JOUR A1 - Schanbacher, Constanze A1 - Bieber, Michael A1 - Reinders, Yvonne A1 - Cherpokova, Deya A1 - Teichert, Christina A1 - Nieswandt, Bernhard A1 - Sickmann, Albert A1 - Kleinschnitz, Christoph A1 - Langhauser, Friederike A1 - Lorenz, Kristina T1 - ERK1/2 activity is critical for the outcome of ischemic stroke JF - International Journal of Molecular Sciences N2 - Ischemic disorders are the leading cause of death worldwide. The extracellular signal-regulated kinases 1 and 2 (ERK1/2) are thought to affect the outcome of ischemic stroke. However, it is under debate whether activation or inhibition of ERK1/2 is beneficial. In this study, we report that the ubiquitous overexpression of wild-type ERK2 in mice (ERK2\(^{wt}\)) is detrimental after transient occlusion of the middle cerebral artery (tMCAO), as it led to a massive increase in infarct volume and neurological deficits by increasing blood–brain barrier (BBB) leakiness, inflammation, and the number of apoptotic neurons. To compare ERK1/2 activation and inhibition side-by-side, we also used mice with ubiquitous overexpression of the Raf-kinase inhibitor protein (RKIP\(^{wt}\)) and its phosphorylation-deficient mutant RKIP\(^{S153A}\), known inhibitors of the ERK1/2 signaling cascade. RKIP\(^{wt}\) and RKIP\(^{S153A}\) attenuated ischemia-induced damages, in particular via anti-inflammatory signaling. Taken together, our data suggest that stimulation of the Raf/MEK/ERK1/2-cascade is severely detrimental and its inhibition is rather protective. Thus, a tight control of the ERK1/2 signaling is essential for the outcome in response to ischemic stroke. KW - ERK1/2 KW - tMCAO KW - ischemic stroke KW - RKIP Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-283991 SN - 1422-0067 VL - 23 IS - 2 ER -