@phdthesis{Humrich2009, author = {Humrich, Jan}, title = {G-Protein betagamma-Regulation durch Phosducin-like Proteine}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-40059}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2009}, abstract = {Phosducin-like Protein existiert in zwei Splicevarianten: PhLPLONG (PhLPL) und PhLPSHORT (PhLPS). Sie unterscheiden sich in der L{\"a}nge ihres N-Terminus und in ihrem Expressionsmusters: Die lange Form (PhLPL) wird ubiquit{\"a}r exprimiert und bindet G-Protein-betagamma-Untereinheiten (Gbetagama), was zur Hemmung von Gbetagamma-abh{\"a}ngigen Funktionen f{\"u}hrt. Der um 83 Aminos{\"a}uren verl{\"a}ngerte N-Terminus besitzt ein hoch konserviertes Motiv, welches f{\"u}r die Gbetagamma-Bindung und Regulation von entscheidender Bedeutung ist. Im Gegensatz hierzu besitzt die kurzen Spliceform PhLPS, deren Expression in verschiedenen Gewebetypen deutlich geringer ist, diese hoch konservierte Region nicht. In der vorliegenden Arbeit wurde nun erstmals die Rolle von PhLPL und PhLPS bei der Gbetagamma-Regulation in intakten Zellen untersucht. Hierbei konnte {\"u}berraschenderweise gefunden werden, dass PhLPS der potentere und effizientere Regulator f{\"u}r Gbetagamma-abh{\"a}ngige Signale war. PhLPL hingegen schien in seiner Gbetagamma-regulierenden F{\"a}higkeit limitiert zu werden. Die Ursache dieser Limitierung von PhLPL in intakten Zellen wurde auf eine konstitutive Phosphorylierung seines verl{\"a}ngerten N-Terminus durch die ubiquit{\"a}re Casein Kinase 2 (CK2) zur{\"u}ckgef{\"u}hrt. Die verantwortlichen Phosphorylierungsstellen (S18, T19, S20) wurde identifiziert und die Mutation der CK2-Phosphorylierungsstellen (PhLPLA18-20) f{\"u}hrte zu einer Verbesserung der hemmenden Funktion von PhLPL in Zellen. In vitro-Assays zur Bindungsf{\"a}higkeit von rekombinantem PhLPL (vor und nach CK2-Phosphorylierung) zeigten allerdings: die Phosphorylierung beeinflusste die Affinit{\"a}t nicht. Eine genaue Analyse der N-terminalen Strukuren von PhLPL zeigte indes, dass die Regulationsf{\"a}higkeit von PhLPL in intakten Zellen vor allem in dem konservierten Gbetagamma-Bindungsmotiv zu suchen war. Die Mutation einer einzigen Aminos{\"a}ure (W66V) war ausreichend, um sowohl die Gbetagamma-Bindungsf{\"a}higkeit, als auch die F{\"a}higkeit zur funktionellen Hemmung in intakten Zellen zu verlieren. Was war also der Mechanismus der Hemmung von Gbetagamma durch PhLPS und die phophorylierungsdefiziente Mutante von PhLPL? Ein erster Hinweis hierauf kam von der Beobachtung, dass die Gbeta- und Ggamma-Untereinheiten in Anwesenheit von PhLPS in ihrem Proteingehalt deutlich reduziert vorlagen (wie in Western Blots gezeigt). Dieser Mechanismus schien von proteasomalen Abbauwegen abzuh{\"a}ngen (gezeigt durch Effekte des spezifischen Proteasominhibitors Lactazystin). Allerdings schien eine Stabilisierung der Gbeta- und Ggamma-Untereinheiten (durch N-terminale Fusion mit einem Protein zur vitalen Proteinf{\"a}rbung) nicht die Funktionsf{\"a}higkeit von Gbetagamma in Anwesenheit von PhLPS bewahren zu k{\"o}nnen. Ganz im Gegenteil, es wurde gezeigt, dass Gbeta und Ggamma hierbei nicht mehr zu einem funktionellen Dimer assoziierten. Dies war ein Hinweis darauf, dass m{\"o}glicherweise Proteinfaltungsmechanismen bei der Regulation essentiell sein k{\"o}nnten. Eine postulierte Rolle bei der Faltung von WD40-Repeatproteinen wie der Gbeta-Untereinheit wurde dem Chaperonin-Komplex CCT (chaperonin containing TCP) zugedacht. Folgerichtig konnte PhLPS mit seinen funktionell aktiven Dom{\"a}nen an endogenes TCP-1alpha (einer Untereinheit von CCT) binden. Ferner konnte gezeigt werden, dass die Hemmung des CCT-Komplexes durch RNA-Interferenz mit TCP-1alpha ebenso wie PhLPS zur spezifischen Reduktion von Gbetagamma f{\"u}hrte. In dieser Arbeit wurde also ein neuartiger Mechanismus der G-Protein-Regulation durch Hemmung der Proteinfaltung von Gbetagamma beschrieben. Ein Schaltmechanismus zwischen direkter Gbetagamma-Bindung (induziert durch CK2-Phosphorylierung von PhLPL) und Hemmung der Proteinfaltung von Gbetagamma (induziert durch alternatives Splicen oder durch Dephosphorylierung von PhLP) wird postuliert.}, subject = {G-Proteine}, language = {de} } @phdthesis{ZelmanFemiak2011, author = {Zelman-Femiak, Monika}, title = {Single Particle Tracking ; Membrane Receptor Dynamics}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-65420}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2011}, abstract = {Single-molecule microscopy is one of the decisive methodologies that allows one to clarify cellular signaling in both spatial and temporal dimentions by tracking with nanometer precision the diffusion of individual microscopic particles coupled to relevant biological molecules. Trajectory analysis not only enables determination of the mechanisms that drive and constrain the particles motion but also to reveal crucial information about the molecule interaction, mobility, stoichiometry, all existing subpopulations and unique functions of particular molecules. Efficacy of this technique depends on two problematic issues the usage of the proper fluorophore and the type of biochemical attachment of the fluorophore to a biomolecule. The goal of this study was to evolve a highly specific labeling method suitable for single molecule tracking, internalization and trafficking studies that would attain a calculable 1:1 fluorophore-to-receptor stoichiometry. A covalent attachment of quantum dots to transmembrane receptors was successfully achieved with a techinque that amalgamates acyl carrier protein (ACP) system as a comparatively small linker and coenzyme A (CoA)-functionalized quantum dots. The necessity of optimization of the quantum dot usage for more precise calculation of the membrane protein stoichiometries in larger assemblies led to the further study in which methods maximizing the number of signals and the tracking times of diverse QD types were examined. Next, the optimized techniques were applied to analyze behavior of interleukin-5 β-common chain receptor (IL-5Rβc) receptors that are endogenously expressed at low level on living differentiated eosinophil-like HL-60 cells. Obtained data disclosed that perused receptors form stable and higher order oligomers. Additionally, the mobility analysis based on increased in number (>10\%) uninterrupted 1000-step trajectories revealed two patterns of confined motion. Thereupon methods were developed that allow both, determination of stoichiometries of cell surface protein complexes and the acquisition of long trajectories for mobility analysis. Sequentially, the aforementioned methods were used to scrutinize on the mobility, internalization and recycling dynamics characterization of a G protein-coupled receptor (GPCRs), the parathyroid hormone receptor (PTHR1) and several bone morphogenetic proteins (BMPs), a member of the TGF-beta superfamily of receptors. These receptors are two important representatives of two varied membrane receptor classes. BMPs activate SMAD- and non-SMAD pathways and as members of the transforming growth factor β (TGF-β) superfamily are entailed in the regulation of proliferation, differentiation, chemotaxis, and apoptosis. For effective ligand induced and ligand independent signaling, two types of transmembrane serine/threonine kinases, BMP type I and type II receptors (BMPRI and BMPRII, respectively) are engaged. Apparently, the lateral mobility profiles of BMPRI and BMPRII receptors differ markedly, which determinate specificity of the signal. Non-SMAD signaling and subsequent osteoblastic differentiation of precursor cells particularly necessitate the confinement of the BMP type I receptor, resulting in the conclusion that receptor lateral mobility is a dominative mechanism to modulate SMAD versus non-SMAD signaling during differentiation. Confined motion was also predominantly observed in the studies devoted to, entailed in the regulation of calcium homeostasis and in bone remodeling, the parathyroid hormone receptor (PTHR1), in which stimulation with five peptide ligands, specific fragments of PTH: hPTH(1-34), hPTHrP(107-111)NH2; PTH(1-14); PTH(1-28) G1R19, bPTH(3-34), first four belonging to PTH agonist group and the last to the antagonist one, were tested in the wide concentration range on living COS-1 and AD293 cells. Next to the mobility, defining the internalization and recycling rates of the PTHR1 receptor maintained in this investigation one of the crucial questions. Internalization, in general, allows to diminish the magnitude of the receptor-mediated G protein signals (desensitization), receptor resensitization via recycling, degradation (down-regulation), and coupling to other signaling pathways (e.g. MAP kinases). Determinants of the internalization process are one of the most addressed in recent studies as key factors for clearer understanding of the process and linking it with biological responses evoked by the signal transduction. The internalization of the PTH-receptor complex occurs via the clathrin-coated pit pathway involving β-arrestin2 and is initiated through the agonist occupancy of the PTHR1 leading to activation of adenylyl cyclase (via Gs), and phosphatidylinositol-specific phospholipase Cβ (via Gq). Taken together, this work embodies complex study of the interleukin-5 β-common chain receptor (IL-5Rβc) receptors, bone morphogenetic proteins (BMPs) and the parathyroid hormone receptor with the application of single-molecule microscopy with the newly attained ACP-quantum dot labeling method and standard techniques.}, subject = {Einzelmolek{\"u}lmikroskopie}, language = {en} } @phdthesis{Eiring2021, author = {Eiring, Patrick}, title = {Super-resolution microscopy of plasma membrane receptors}, doi = {10.25972/OPUS-25004}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-250048}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2021}, abstract = {Plasma membrane receptors are the most crucial and most commonly studied components of cells, since they not only ensure communication between the extracellular space and cells, but are also responsible for the regulation of cell cycle and cell division. The composition of the surface receptors, the so-called "Receptome", differs and is characteristic for certain cell types. Due to their significance, receptors have been important target structures for diagnostic and therapy in cancer medicine and often show aberrant expression patterns in various cancers compared to healthy cells. However, these aberrations can also be exploited and targeted by different medical approaches, as in the case of personalized immunotherapy. In addition, advances in modern fluorescence microscopy by so-called single molecule techniques allow for unprecedented sensitive visualization and quantification of molecules with an attainable spatial resolution of 10-20 nm, allowing for the detection of both stoichiometric and expression density differences. In this work, the single molecule sensitive method dSTORM was applied to quantify the receptor composition of various cell lines as well as in primary samples obtained from patients with hematologic malignancies. The focus of this work lies on artefact free quantification, stoichiometric analyses of oligomerization states and co localization analyses of membrane receptors. Basic requirements for the quantification of receptors are dyes with good photoswitching properties and labels that specifically mark the target structure without generating background through non-specific binding. To ensure this, antibodies with a predefined DOL (degree of labeling) were used, which are also standard in flow cytometry. First background reduction protocols were established on cell lines prior analyses in primary patient samples. Quantitative analyses showed clear expression differences between the cell lines and the patient cells, but also between individual patients. An important component of this work is the ability to detect the oligomerization states of receptors, which enables a more accurate quantification of membrane receptor densities compared to standard flow cytometry. It also provides information about the activation of a certain receptor, for example of FLT3, a tyrosine kinase, dimerizing upon activation. For this purpose, different well-known monomers and dimers were compared to distinguish the typical localization statistics of single bound antibodies from two or more antibodies that are in proximity. Further experiments as well as co localization analyses proved that antibodies can bind to closely adjacent epitopes despite their size. These analytical methods were subsequently applied for quantification and visualization of receptors in two clinically relevant examples. Firstly, various therapeutically relevant receptors such as CD38, BCMA and SLAMF7 for multiple myeloma, a malignant disease of plasma cells, were analyzed and quantified on patient cells. Furthermore, the influence of TP53 and KRAS mutations on receptor expression levels was investigated using the multiple myeloma cell lines OPM2 and AMO1, showing clear differences in certain receptor quantities. Secondly, FLT3 which is a therapeutic target receptor for acute myeloid leukemia, was quantified and stoichiometrically analyzed on both cell lines and patient cells. In addition, cells that have developed resistance against midostaurin were compared with cells that still respond to this type I tyrosine-kinase-inhibitor for their FLT3 receptor expression and oligomerization state.}, subject = {Fluoreszenzmikroskopie}, language = {en} }