TY - JOUR A1 - Peissert, Stefan A1 - Sauer, Florian A1 - Grabarczyk, Daniel B. A1 - Braun, Cathy A1 - Sander, Gudrun A1 - Poterszman, Arnaud A1 - Egly, Jean-Marc A1 - Kuper, Jochen A1 - Kisker, Caroline T1 - In TFIIH the Arch domain of XPD is mechanistically essential for transcription and DNA repair JF - Nature Communications N2 - The XPD helicase is a central component of the general transcription factor TFIIH which plays major roles in transcription and nucleotide excision repair (NER). Here we present the high-resolution crystal structure of the Arch domain of XPD with its interaction partner MAT1, a central component of the CDK activating kinase complex. The analysis of the interface led to the identification of amino acid residues that are crucial for the MAT1-XPD interaction. More importantly, mutagenesis of the Arch domain revealed that these residues are essential for the regulation of (i) NER activity by either impairing XPD helicase activity or the interaction of XPD with XPG; (ii) the phosphorylation of the RNA polymerase II and RNA synthesis. Our results reveal how MAT1 shields these functionally important residues thereby providing insights into how XPD is regulated by MAT1 and defining the Arch domain as a major mechanistic player within the XPD scaffold. KW - nucleotide excision repair KW - nuclear receptors KW - helicase KW - transactivation KW - fluorescence KW - recognition KW - subunit KW - binding KW - sulfur KW - kinease Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-229857 VL - 11 IS - 1 ER - TY - JOUR A1 - Andreska, Thomas A1 - Lüningschrör, Patrick A1 - Sendtner, Michael T1 - Regulation of TrkB cell surface expression — a mechanism for modulation of neuronal responsiveness to brain-derived neurotrophic factor JF - Cell and Tissue Research N2 - Neurotrophin signaling via receptor tyrosine kinases is essential for the development and function of the nervous system in vertebrates. TrkB activation and signaling show substantial differences to other receptor tyrosine kinases of the Trk family that mediate the responses to nerve growth factor and neurotrophin-3. Growing evidence suggests that TrkB cell surface expression is highly regulated and determines the sensitivity of neurons to brain-derived neurotrophic factor (BDNF). This translocation of TrkB depends on co-factors and modulators of cAMP levels, N-glycosylation, and receptor transactivation. This process can occur in very short time periods and the resulting rapid modulation of target cell sensitivity to BDNF could represent a mechanism for fine-tuning of synaptic plasticity and communication in complex neuronal networks. This review focuses on those modulatory mechanisms in neurons that regulate responsiveness to BDNF via control of TrkB surface expression. KW - BDNF KW - TrkB KW - subcellular trafficking KW - transactivation KW - synaptic plasticity Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-235055 VL - 382 ER - TY - THES A1 - Hart, Stefan T1 - Characterisation of the molecular mechanisms of EGFR signal transactivation in human cancer T1 - Charakterisierung der molekularen Mechanismen der EGFR-Transaktivierung in humanen Tumoren. N2 - In a variety of established tumour cell lines, but also in primary mammary epithelial cells metalloprotease-dependent transactivation of the EGFR, and EGFR characteristic downstream signalling events were observed in response to stimulation with physiological concentrations of GPCR agonists such as the mitogens LPA and S1P as well as therapeutically relevant concentrations of cannabinoids. Moreover, this study reveals ADAM17 and HB-EGF as the main effectors of this mechanism in most of the cancer cell lines investigated. However, depending on the cellular context and GPCR agonist, various different members of the ADAM family are selectively recruited for specific ectodomain shedding of proAR and/or proHB-EGF and subsequent EGFR activation. Furthermore, biological responses induced by LPA or S1P such as migration in breast cancer and HNSCC cells, depend on ADAM17 and proHB-EGF/proAR function, respectively, suggesting that highly abundant GPCR ligands may play a role in tumour development and progression. Moreover, EGFR signal transactivation could be identified as the mechanistic link between cannabinoid receptors and the activation of mitogen activated protein kinases (MAPK) ERK1/2 as well as pro-survival Akt/PKB signalling. Depending on the cellular context, cannabinoid-induced signal cross-communication was mediated by shedding of proAmphiregulin and/or proHB-EGF by ADAM17. Most importantly, our data show that concentrations of THC comparable to those detected in the serum of patients after THC administration accelerate proliferation of cancer cells instead of apoptosis and thereby may contribute to cancer progression in patients. N2 - Im Rahmen dieser Arbeit wurde gezeigt, dass in verschiedenen etablierten Tumorzelllinien, aber auch in primären Brustepithelzellen sowohl physiologische Konzentrationen von GPCR Liganden, wie z.B. den Mitogenen LPA und S1P, als auch therapeutische Konzentrationen von Cannabinoiden zur metalloproteaseabhängigen Aktivierung des EGFRs führen. Abhängig von diesem Mechanismus konnte die Aktivierung der mitogenen Ras/MAPK-Kaskade als auch des antiapoptotischen Akt/PKB Signalweges beobachtet werden. Untersuchungen mit Hilfe der siRNA-Technik oder dominant-negativen Konstrukten identifizierten ADAM17 sowie den EGFR-Liganden HB-EGF als wichtigste Komponenten dieses Signalweges. Abhängig vom Zellsystem konnte aber auch eine Beteiligung anderer Mitglieder der ADAM Familie sowie des EGFR-Liganden Amphiregulin nachgewiesen werden. Weiterhin konnte in dieser Arbeit gezeigt werden, dass die durch LPA und S1P induzierten biologische Prozesse, wie z.B. die Migration in Brustkrebs- oder HNSCC-Zellen, vollständig von der Aktivität von ADAM17 und HB-EGF/AR abhängig waren. Außerdem konnte die ADAM17- und HB-EGF/AR-vermittelte EGFR-Transaktivierung als Bindeglied zwischen Cannabinoid-Rezeptoren und MAPK- und Akt-Aktivierung sowie erhöhter Zellproliferation identifiziert werden. Die Ergebnisse dieser Arbeit unterstreichen die Rolle der EGFR Signaltransaktivierung und dadurch induzierter biologischer Antworten wie Zellmigration oder –proliferation in Tumorzellen, und sollten darüber hinaus zu einer Neubewertung der Krebstherapie mit Cannabinoiden führen. KW - Epidermaler Wachstumsfaktor-Rezeptor KW - Krebs KW - Signaltransduktion KW - EGFR KW - GPCR KW - Transaktivierung KW - Krebs KW - Metalloprotease KW - EGFR KW - GPCR KW - transactivation KW - cancer KW - metalloprotease Y1 - 2004 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-10067 ER -