TY - JOUR A1 - Paudel, Rupesh A1 - Fusi, Lorenza A1 - Schmidt, Marc T1 - The MEK5/ERK5 pathway in health and disease JF - International Journal of Molecular Sciences N2 - The MEK5/ERK5 mitogen-activated protein kinases (MAPK) cascade is a unique signaling module activated by both mitogens and stress stimuli, including cytokines, fluid shear stress, high osmolarity, and oxidative stress. Physiologically, it is mainly known as a mechanoreceptive pathway in the endothelium, where it transduces the various vasoprotective effects of laminar blood flow. However, it also maintains integrity in other tissues exposed to mechanical stress, including bone, cartilage, and muscle, where it exerts a key function as a survival and differentiation pathway. Beyond its diverse physiological roles, the MEK5/ERK5 pathway has also been implicated in various diseases, including cancer, where it has recently emerged as a major escape route, sustaining tumor cell survival and proliferation under drug stress. In addition, MEK5/ERK5 dysfunction may foster cardiovascular diseases such as atherosclerosis. Here, we highlight the importance of the MEK5/ERK5 pathway in health and disease, focusing on its role as a protective cascade in mechanical stress-exposed healthy tissues and its function as a therapy resistance pathway in cancers. We discuss the perspective of targeting this cascade for cancer treatment and weigh its chances and potential risks when considering its emerging role as a protective stress response pathway. KW - atherosclerosis KW - bone KW - cartilage KW - endothelium KW - extracellular-regulated kinase 5 KW - Krüppel-like factor KW - mechanotransduction KW - mitogen-activated protein kinase KW - stress signaling KW - tumor Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-261638 SN - 1422-0067 VL - 22 IS - 14 ER - TY - JOUR A1 - Fusi, Lorenza A1 - Paudel, Rupesh A1 - Meder, Katharina A1 - Schlosser, Andreas A1 - Schrama, David A1 - Goebeler, Matthias A1 - Schmidt, Marc T1 - Interaction of transcription factor FoxO3 with histone acetyltransferase complex subunit TRRAP modulates gene expression and apoptosis JF - Journal of Biological Chemistry N2 - Forkhead box O (FoxO) transcription factors are conserved proteins involved in the regulation of life span and age-related diseases, such as diabetes and cancer. Stress stimuli or growth factor deprivation promotes nuclear localization and activation of FoxO proteins, which—depending on the cellular context—can lead to cell cycle arrest or apoptosis. In endothelial cells (ECs), they further regulate angiogenesis and may promote inflammation and vessel destabilization implicating a role of FoxOs in vascular diseases. In several cancers, FoxOs exert a tumor-suppressive function by regulating proliferation and survival. We and others have previously shown that FoxOs can regulate these processes via two different mechanisms: by direct binding to forkhead-responsive elements at the promoter of target genes or by a poorly understood alternative process that does not require direct DNA binding and regulates key targets in primary human ECs. Here, we performed an interaction study in ECs to identify new nuclear FoxO3 interaction partners that might contribute to FoxO-dependent gene regulation. Mass spectrometry analysis of FoxO3-interacting proteins revealed transformation/transcription domain–associated protein (TRRAP), a member of multiple histone acetyltransferase complexes, as a novel binding partner of FoxO family proteins. We demonstrate that TRRAP is required to support FoxO3 transactivation and FoxO3-dependent G1 arrest and apoptosis in ECs via transcriptional activation of the cyclin-dependent kinase inhibitor p27\(^{kip1}\) and the proapoptotic B-cell lymphoma 2 family member, BIM. Moreover, FoxO–TRRAP interaction could explain FoxO-induced alternative gene regulation via TRRAP-dependent recruitment to target promoters lacking forkhead-responsive element sequences. KW - FoxO3 KW - TRRAP KW - transcription factors Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-299820 VL - 298 IS - 3 ER - TY - THES A1 - Schmidt, Marc T1 - Die Rolle mitogener und stressinduzierter MAPK-Signalwege in der Regulation von keratinozytären Wachstums- und Differenzierungsvorgängen T1 - The role of mitogenic and stress-induced MAPK pathways in the regulation of growth and differentiation of keratinocytes N2 - Fehlgeleitete Proliferations- und Differenzierungsprozesse von Keratinozyten spielen eine entscheidende Rolle in der Pathogenese vieler Hauterkrankungen. Die intrazellulären Signalmechanismen, die die Balance zwischen Keratinozytenwachstum und -differen-zierung steuern, sind bislang weitgehend unbekannt. In dieser Arbeit wurde die Bedeutung Mitogen-aktivierter Proteinkinase (MAPK-) Signalwege in keratinozytären Wachstums- und Differenzierungsvorgängen untersucht. Es konnte gezeigt werden, daß Induktion von Keratinozytendifferenzierung durch Erhöhung der extrazellulären Calciumkonzentration mit einer raschen und transienten Aktivierung des Raf/MEK/Erk- (MAPK-) Signalweges verbunden ist, während keine veränderte Aktivität der stressinduzierten MAPK Jnk und p38 nachweisbar war. Die calciuminduzierte Erk-Aktivierung unterschied sich in ihrer Kinetik von mitogener Erk-Aktivierung durch den Epidermalen Wachstumsfaktor (EGF) und konnte durch Veränderungen der intrazellulären Calciumkonzentration moduliert werden. Während die mitogene Erk-Aktivierung durch die kleine GTPase Ras vermittelt wird, erfolgte calciuminduzierte Aktivierung von Erk Ras-unabhängig, was auf einen fundamentalen Unterschied mitogener und differenzierungsinduzierender Stimuli hinsichtlich ihrer Aktivierungsmechanismen der Raf/MEK/Erk-Kaskade hindeutet. Trotz der transienten Natur der calciuminduzierten Erk-Aktivierung waren die calcium-vermittelte Expression des Zellzykusinhibitors p21/Cip1 und des Differenzierungsmarkers Involucrin sensitiv für MEK-Inhibition, was auf eine wichtige Rolle des Raf/MEK/Erk-Signalweges in frühen Stadien des Differenzierungsprozesses hinweist. Wichtige Konvergenzpunkte zwischen calcium- und MAPK-abhängigen Signalwegen scheinen die beiden calciumbindenden S100-Proteine MRP8 und MRP14 zu sein. Beide Proteine werden in vitro differenzierungsabhängig exprimiert und translozieren sowohl nach Erhöhung der intrazellulären Calciumkonzentration als auch nach Stimulation stress-aktivierter MAPK an Zytoskelettstrukturen. Untersuchung der Expression von MRP8 und MRP14 in paraffin- und kryofixierten Serienschnitten gesunder und pathologisch veränderter Haut ergab, dass deren Expression normalerweise auf differenzierende Zellen im Haarfollikel beschränkt ist, jedoch in differenzierten Hautschichten hyperproliferativer oder tumoröser Haut massiv induziert werden kann. In der hier vorgestellten Arbeit wurden interessante neue Signalbeziehungen identifiziert, deren Entdeckung einen wichtigen Beitrag zum Verständnis der regulatorischen Mechanismen leisten könnte, durch die die Epidermis ihre funktionell wichtige Homöostase erhält. N2 - Abnormal proliferation and differentiation processes play an important role in the pathogenesis of various skin diseases. The intracellular signaling mechanisms governing the balance between growth and differentiation of keratinocytes are still largely unknown. In this thesis the role of mitogen-activated protein kinase (MAPK) cascades in keratinocyte growth and differentiation was analysed. Induction of keratinocyte differentiation by elevation of extracellular calcium levels resulted in a rapid and transient activation of the Raf/MEK/Erk (MAPK) pathway but did not increase activity of the stress-activated Jnk or p38 MAPKs. Calcium-induced Erk activation differed in kinetics from mitogenic Erk activation by epidermal growth factor (EGF) and and could be modulated by alterations of intracellular calcium levels. While EGF-induced Erk activation was mediated by the small GTPase Ras, calcium-induced Erk activity occurred independently of active Ras. This suggests that proliferative and differentiation-inducing stimuli use alternative mechanisms to activate the Raf/MEK/Erk pathway. Despite the transient nature of Erk activation, calcium-induced expression of the cell cycle inhibitor protein p21 and the differentiation marker involucrin were sensitive to MEK inhibition which implies a role for the Raf/MEK/Erk pathway in early stages of keratinocyte differentiation. The two calcium binding S100 proteins additionally studied here, MRP8 and MRP14, seem to represent important convergent points between calcium and MAPK signaling. In vitro both proteins are expressed in a differentiation-dependent manner in keratinocytes. Elevation of intracellular calcium levels as well as activation of stress-activated MAPKs resulted in translocation of MRP8/MRP14 complexes to the cytoskeleton. When expression of MRP8 and MRP14 was analysed in serial paraffin- or kryo-sections of healthy or diseased skin, signals in normal skin were largely restricted to differentiating cells of the hair follicle, however, additionally a strong induction of MRP8/14 expression was observed in differentiating epidermal layers of hyperproliferative or tumorigenic skin. In this thesis important novel signaling interactions were identified which provide new basic insights into the molecular mechanisms involved in the regulation of skin homeostasis which is essential for the maintenance of the multiple functions of the epidermis. KW - Keratinozyt KW - Zelldifferenzierung KW - MAP-Kinase KW - Signaltransduktion KW - Keratinozyten KW - Differenzierung KW - Calcium KW - MAP-Kinase KW - Signaltransduktion KW - S100-Protein KW - Raf/MEK/ERK KW - Keratinocyte KW - differentiation KW - calcium KW - MAPK KW - signal transduction KW - S100 protein KW - Raf/MEK/ERK Y1 - 2001 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-2013 ER -