TY - JOUR A1 - Balkenhol, Johannes A1 - Kaltdorf, Kristin V. A1 - Mammadova-Bach, Elmina A1 - Braun, Attila A1 - Nieswandt, Bernhard A1 - Dittrich, Marcus A1 - Dandekar, Thomas T1 - Comparison of the central human and mouse platelet signaling cascade by systems biological analysis JF - BMC Genomics N2 - Background Understanding the molecular mechanisms of platelet activation and aggregation is of high interest for basic and clinical hemostasis and thrombosis research. The central platelet protein interaction network is involved in major responses to exogenous factors. This is defined by systemsbiological pathway analysis as the central regulating signaling cascade of platelets (CC). Results The CC is systematically compared here between mouse and human and major differences were found. Genetic differences were analysed comparing orthologous human and mouse genes. We next analyzed different expression levels of mRNAs. Considering 4 mouse and 7 human high-quality proteome data sets, we identified then those major mRNA expression differences (81%) which were supported by proteome data. CC is conserved regarding genetic completeness, but we observed major differences in mRNA and protein levels between both species. Looking at central interactors, human PLCB2, MMP9, BDNF, ITPR3 and SLC25A6 (always Entrez notation) show absence in all murine datasets. CC interactors GNG12, PRKCE and ADCY9 occur only in mice. Looking at the common proteins, TLN1, CALM3, PRKCB, APP, SOD2 and TIMP1 are higher abundant in human, whereas RASGRP2, ITGB2, MYL9, EIF4EBP1, ADAM17, ARRB2, CD9 and ZYX are higher abundant in mouse. Pivotal kinase SRC shows different regulation on mRNA and protein level as well as ADP receptor P2RY12. Conclusions Our results highlight species-specific differences in platelet signaling and points of specific fine-tuning in human platelets as well as murine-specific signaling differences. KW - interspecies comparison KW - transcriptome KW - proteome KW - platelet KW - network KW - signaling KW - mouse KW - human KW - interactome KW - cascade Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-230377 VL - 21 ER - TY - JOUR A1 - Seher, Axel A1 - Lagler, Charlotte A1 - Stühmer, Thorsten A1 - Müller-Richter, Urs Dietmar Achim A1 - Kübler, Alexander Christian A1 - Sebald, Walter A1 - Müller, Thomas Dieter A1 - Nickel, Joachim T1 - Utilizing BMP-2 muteins for treatment of multiple myeloma JF - PLoS ONE N2 - Multiple myeloma (MM) represents a haematological cancer characterized by the pathological hyper proliferation of antibody-producing B-lymphocytes. Patients typically suffer from kidney malfunction and skeletal disorders. In the context of MM, the transforming growth factor β (TGFβ) member Activin A was recently identified as a promoter of both accompanying symptoms. Because studies have shown that bone morphogenetic protein (BMP)-2-mediated activities are counteracted by Activin A, we analysed whether BMP2, which also binds to the Activin A receptors ActRII and ActRIIB but activates the alternative SMAD-1/5/8 pathway, can be used to antagonize Activin A activities, such as in the context of MM. Therefore three BMP2 derivatives were generated with modified binding activities for the type II (ActRIIB) and/or type I receptor (BMPRIA) showing either increased or decreased BMP2 activity. In the context of MM these BMP2 muteins show two functionalities since they act as a) an anti-proliferative/apoptotic agent against neoplastic B-cells, b) as a bone-formation promoting growth factor. The molecular basis of both activities was shown in two different cellular models to clearly rely on the properties of the investigated BMP2 muteins to compete for the binding of Activin A to the Activin type II receptors. The experimental outcome suggests new therapeutic strategies using BMP2 variants in the treatment of MM-related pathologies. KW - multiple myeloma KW - signaling KW - cell proliferation KW - cell binding KW - membrane receptor signaling KW - BMP KW - gene expression KW - B cell receptors KW - B cells Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-158144 VL - 12 IS - 5 ER - TY - JOUR A1 - Konte, Tilen A1 - Terpitz, Ulrich A1 - Plemenitaš, Ana T1 - Reconstruction of the High-Osmolarity Glycerol (HOG) Signaling Pathway from the Halophilic Fungus Wallemia ichthyophaga in Saccharomyces cerevisiae JF - Frontiers in Microbiology N2 - The basidiomycetous fungus Wallemia ichthyophaga grows between 1.7 and 5.1 M NaCl and is the most halophilic eukaryote described to date. Like other fungi, W. ichthyophaga detects changes in environmental salinity mainly by the evolutionarily conserved high-osmolarity glycerol (HOG) signaling pathway. In Saccharomyces cerevisiae, the HOG pathway has been extensively studied in connection to osmotic regulation, with a valuable knock-out strain collection established. In the present study, we reconstructed the architecture of the HOG pathway of W. ichthyophaga in suitable S. cerevisiae knock-out strains, through heterologous expression of the W. ichthyophaga HOG pathway proteins. Compared to S. cerevisiae, where the Pbs2 (ScPbs2) kinase of the HOG pathway is activated via the SHO1 and SLN1 branches, the interactions between the W. ichthyophaga Pbs2 (WiPbs2) kinase and the W. ichthyophaga SHO1 branch orthologs are not conserved: as well as evidence of poor interactions between the WiSho1 Src-homology 3 (SH3) domain and the WiPbs2 proline-rich motif, the absence of a considerable part of the osmosensing apparatus in the genome of W. ichthyophaga suggests that the SHO1 branch components are not involved in HOG signaling in this halophilic fungus. In contrast, the conserved activation of WiPbs2 by the S. cerevisiae ScSsk2/ScSsk22 kinase and the sensitivity of W. ichthyophaga cells to fludioxonil, emphasize the significance of two-component (SLN1-like) signaling via Group III histidine kinase. Combined with protein modeling data, our study reveals conserved and non-conserved protein interactions in the HOG signaling pathway of W. ichthyophaga and therefore significantly improves the knowledge of hyperosmotic signal processing in this halophilic fungus. KW - signaling KW - protein-protein interaction KW - protein phosphorylation KW - mitogen activated protein kinase (MAPK) KW - high-osmolarity glycerol (HOG) KW - signaling pathway KW - Saccharomyces cerevisiae KW - halophilic fungus KW - Wallemia ichthyophaga Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-165214 ER - TY - THES A1 - Sibilski, Claudia T1 - Identification and characterization of the novel mKSR1 phosphorylation site Tyr728 and its role in MAPK signaling T1 - Identifizierung und Charakterisierung der neuartigen mKSR1-Phosphorylierungsstelle Tyr728 und deren Rolle in der MAPK-Signalkaskade N2 - In mammals, KSR1 functions as an essential scaffold that coordinates the assembly of RAF/MEK/ERK complexes and regulates intracellular signal transduction upon extracellular stimulation. Aberrant activation of the equivalent MAPK signaling pathway has been implicated in multiple human cancers and some developmental disorders. The mechanism of KSR1 regulation is highly complex and involves several phosphorylation/dephosphorylation steps. In the present study, a number of novel in vivo phosphorylation sites were detected in mKSR1 by use of mass spectrometry analysis. Among others, Tyr728 was identified as a unique regulatory residue phosphorylated by LCK, a Src kinase family member. To understand how phosphorylation of Tyr728 may regulate the function of KSR1 in signal transduction and cellular processes, structural modeling and biochemical studies were integrated in this work. Computational modeling of the mKSR1(KD) protein structure revealed strong hydrogen bonding between phospho-Tyr728 and the residues surrounding Arg649. Remarkably, this pattern was altered when Tyr728 was non-phosphorylated or substituted. As confirmed by biochemical analysis, Arg649 may serve as a major anchor point for phospho-Tyr728 in order to stabilize internal structures of KSR1. In line with the protein modeling results, mutational studies revealed that substitution of Tyr728 by phenylalanine leads to a less compact interaction between KSR1 and MEK, a facilitated KSR1/B-RAF binding and an increased phosphorylation of MEK in complex with KSR1. From these findings it can be concluded that phospho-Tyr728 is involved in tightening the KSR1/MEK interaction interface and in regulating the phosphorylation of KSR1-bound MEK by either RAF or KSR1 kinases. Beside the Tyr728, Ser722 was identified as a novel regulatory phosphorylation site. Amino acid exchanges at the relevant position demonstrated that Ser722 regulates KSR1-bound MEK phosphorylation without affecting KSR1/MEK binding per se. Due to its localization, Ser722 might consequently control the catalytic activity of KSR1 by interfering with the access of substrate (possibly MEK) to the active site of KSR1 kinase. Together with Ser722, phosphorylated Tyr728 may further positively affect the kinase activity of KSR1 as a consequence of its vicinity to the activation and catalytic loop in the KSR1(KD). As revealed by structural modeling, phospho-Tyr728 builds a hydrogen bond with the highly conserved Lys685. Consequently, phospho-Tyr728 has a stabilizing effect on internal structures involved in the catalytic reaction and possibly enhances the phosphate transfer within the catalytic cleft in KSR1. Considering these facts, it seems very likely that the LCK-dependent phosphorylation of Tyr728 plays a crucial role in the regulation of KSR1 catalytic activity. Results of fractionation and morphology analyses revealed that KSR1 recruits LCK to cytoskeleton for its phosphorylation at Tyr728 suggesting that this residue may regulate cytoskeleton dynamics and, consequently, cell motility. Beside that, phosphorylation of Tyr728 is involved in the regulation of cell proliferation, as shown by a significantly reduced population doubling time of KSR1-Y728F cells compared to cells expressing wild type KSR1. Taken together, tyrosine phosphorylation in KSR1 uncovers a new link between Src family kinases and MAPK signaling. Tyr728, the novel regulatory phosphorylation site in murine KSR1, may coordinate the transition between the scaffolding and the catalytic function of KSR1 serving as a control point used to fine-tune cellular responses. N2 - KSR1 fungiert bei Säugetieren als zentrales Gerüstprotein, welches die Anordnung von RAF/MEK/ERK-Komplexen koordiniert und die intrazelluläre Signalweiterleitung nach extrazellulärer Stimulation reguliert. Eine abweichende Aktivierung des entsprechenden MAPK-Signalwegs wurde mit vielen humanen Krebsformen und einigen Entwicklungsstörungen in Verbindung gebracht. Der Mechanismus der KSR1-Regulierung ist hochgradig komplex und involviert mehrfach Schritte der Phosphorylierung/Dephosphorylierung. In der vorliegenden Studie wurden etliche neue in-vivo-Phosphorylierungsstellen in mKSR1 mittels massenspektrometrischer Analyse entdeckt. Neben anderen wurde Tyr728 als besonderer regulatorischer Rest identifiziert, welcher durch LCK, einem Mitglied der Src-Kinase-Familie, phosphoryliert wird. Um zu verstehen wie die Phosphorylierung von Tyr728 die Funktion von KSR1 innerhalb der Signalweiterleitung und zellulärer Prozesse regulieren könnte, wurden strukturelle Modellierungen und biochemische Untersuchungen in diese Arbeit integriert. Die Computermodellierung der mKSR1(KD)-Proteinstruktur zeigte starke Wasserstoff- brückenbindungen zwischen Phospho-Tyr728 und den Resten in der Umgebung von Arg649 auf. Dieses Muster war auffällig verändert, wenn Tyr728 nicht phosphoryliert oder substituiert war. Wie anhand biochemischer Analyse untermauert wurde, könnte Arg649 für phospho-Tyr728 als Hauptankerpunkt dienen, um interne Strukturen in KSR1 zu stabilisieren. In Übereinstimmung mit den Ergebnissen der Proteinmodellierung enthüllten die Mutationsstudien, dass die Substitution von Tyr728 mit Phenylalanin zu einer weniger kompakten Interaktion zwischen KSR1 und MEK, einer erleichterten KSR1/B-RAF-Bindung und einer ansteigenden Phosphorylierung von MEK im Komplex mit KSR1 führt. Anhand dieser Erkenntnisse kann man rückschließen, dass Phospho-Tyr728 in die Verstärkung der Interaktionen innerhalb der KSR1/MEK-Grenzfläche und in die Regulierung der Phosphorylierung von KSR1-gebundenem MEK durch entweder RAF- oder KSR1-Kinasen involviert ist. Neben Tyr728 wurde Ser722 als eine neuartige regulatorische Phosphorylierungsstelle identifiziert. Aminosäureaustausche an der betreffenden Position demonstrierten, dass Ser722 die Phosphorylierung von KSR1-gebundenem MEK reguliert ohne die KSR1/MEK-Bindung selbst zu beeinträchtigen. Bedingt durch seine Lokalisierung könnte Ser722 folglich die katalytische Aktivität von KSR1 kontrollieren, indem es den Zugang des Substrates (möglicherweise MEK) zur aktiven Seite der KSR1-Kinase behindert. Zusammen mit Ser722 könnte phosphoryliertes Tyr728 ferner die Kinaseaktivität von KSR1 positiv beeinflussen, infolge von dessen Nähe zur Aktivierungs- und katalytischen Schleife in der KSR1(KD). Wie mittels Strukturmodellierung offengelegt wurde, bildet Phospho-Tyr728 eine Wasserstoffbrücke mit dem hochgradig konservierten Lys685 aus. Folglich hat Phospho-Tyr728 einen stabilisierenden Effekt auf interne Strukturen, welche in die katalytische Reaktion involviert sind, und erleichtert möglicherweise den Phosphattransfer innerhalb der katalytischen Spalte in KSR1. In Anbetracht dieser Fakten scheint es sehr wahrscheinlich, dass die LCK-abhängige Phosphorylierung von Tyr728 eine äußerst wichtige Rolle in der Regulierung der katalytischen Aktivität von KSR1 spielt. Die Ergebnisse der Fraktionierungs- und Morphologieanalysen enthüllten, dass KSR1 für die Phosphorylierung an Tyr728 LCK zum Zytoskelett rekrutiert, was darauf hindeutet, dass dieser Rest die Dynamik des Zytoskeletts und folglich Zellmotilität regulieren könnte. Darüber hinaus ist die Phosphorylierung von Tyr728 in die Regulierung der Zellproliferation involviert, wie anhand einer bedeutend reduzierten Populationsverdopplungszeit von KSR1-Y728F-Zellen im Vergleich zu Zellen, welche wildtypisches KSR1 exprimieren, gezeigt wurde. Zusammenfassend lässt sich sagen, dass die Tyrosin-Phosphorylierung in KSR1 eine neue Verknüpfung zwischen Kinasen der Src-Familie und der MAPK-Signalwirkung enthüllt. Tyr728, die neuartige regulatorische Phosphorylierungsstelle in Maus-KSR1, könnte den Übergang zwischen der Gerüst- und der katalytischen Funktion von KSR1 koordinieren und damit als Kontrollpunkt dienen, um zelluläre Reaktionen fein abzustimmen. KW - MAP-Kinase KW - Signaltransduktion KW - Regulation KW - tyrosine phosphorylation KW - KSR1 KW - LCK KW - MAPK KW - phosphorylation KW - signaling Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-114672 ER -