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Nitric oxide (NO) is a potent mediator with pleiotropic functions such as inhibition of platelet aggregation, smooth muscle relaxation and regulation of neuronal transmission. These effects are mostly mediated by intracellular NO-sensitive guanylyl cyclases (GCs) which convert GTP into the second messenger, cGMP. This messenger in turn activates multiple downstream effectors such as cGMP-dependent protein kinases, cGMP-regulated ion channels and cGMPdependent phosphodiesterases. Mammalian NO-sensitive GCs are obligate heterodimers of an α and β subunit each. Given that these enzymes play a key role in cGMP-mediated pathways, one may anticipate that mechanisms other than allosteric activation via NO may exist to regulate the production and turnover of cGMP. In this thesis, novel aspects of the regulation of the most abundantly expressed GC heterodimer α1β1 are presented.
A possible mechanism of regulation that was tested here, is tyrosine phosphorylation. Using anti-phosphotyrosine antibodies, the phosphorylation of the β1 subunit was detected after incubation of β1-overexpressing COS-1 cells with protein tyrosine phosphatase (PTP) inhibitors such as pervanadate and bpV(phen). β1 phosphorylation on tyrosines was also observed in PC-12 cells which endogenously express GC and in rat aorta after inhibition of PTPs. Furthermore, hydrogen peroxide was found to be a physiological stimulus for the induction of reversible β1 tyrosine phosphorylation in intact cells. Using phenylalanine mutants of different tyrosines, residue 192 (Y192) of β1 was identified as the major phosphorylation site. Consistent with this finding, sequence analyses showed that Y192 forms part of a motif that resembles a preferential target site for Src-like kinases. When tyrosine-phosphorylated, this motif exposes a typical SH2 docking site for members of the Src kinase family.
Experiments with inhibitors of Src kinases, PP1 and PP2, clearly showed that phosphorylation of Y192 is Src-dependent. Preincubation of β1-expressing cells with these inhibitors significantly reduced the level of phosphorylated β1 after bpV(phen) treatment. Furthermore, co-expression of β1 with Src led to a strong phosphorylation of this subunit. Co-precipitation experiments showed that Src interacts with GC. Interestingly, kinases of the Src family are recruited to β1 via the SH2 domain upon phosphorylation of Y192. Together, these results indicate that Src kinases phosphorylate tyrosine 192 thereby creating a docking site for their own SH2 domains. Kinase bound to GC may then catalyze phosphorylation of GC or other downstream effectors. Inhibition of PTPs altered GC activity in two ways: it increased both the basal activity and the YC-1- and BAY 41-2272-stimulated activity two-fold, and it reduced the sensitivity of the enzyme towards NO. The detailed mechanism of action is still unknown, but experiments using the mutant β1[Y192F] demonstrated that residue 192 is not responsible for these effects.
Another major focus of this thesis was the identification of novel GC binding proteins. Using the yeast two-hybrid approach, the carboxy-terminal portion of a protein named AGAP1 (amino acid (aa) 399-804) was found to interact with the catalytic domain of α1 (aa 466-690) and with the regulatory domain of β1 (aa 1-348). Human AGAP1 is a multidomain protein of 804 amino acids with a calculated molecular mass of 89,1 kDa comprising an Arf-GAP (GAP:GTPase activating protein), a putative GTPase domain, two Ankyrin repeats and a PHdomain. Co-precipitation experiments using lysates from mammalian cells overexpressing both binding partners confirmed the interaction of AGAP1 with the GC subunits. Immunofluorescence analyses demonstrated that AGAP1 co-localizes with GC in the cytoplasm of COS-1 cells.
In Northern blots, AGAP1 mRNA was detected in various human and murine tissues showing a comparable expression pattern described for the mRNA of α1 and β1. Using an AGAP1-specific antibody, endogenous protein was precipitated from lysates of HEK-293 cells derived from human embryonic kidney. The same antibody efficiently cross-reacted with the rat homologue (rAGAP1) and immunoprecipitated endogenous rAGAP1 from lysates of PC-12 cells, aorta and heart. The molecular mass of rAGAP1 is larger than that of the human protein, possibly due to an additional exon present in the rat genome. Like β1, AGAP1 is a substrate for tyrosine kinases. Phosphorylation of AGAP1 was detected after inhibition of PTPs or by coexpression of Src. Furthermore, the kinase inhibitor PP2 strongly impaired phosphorylation of AGAP1 after pervanadate treatment suggesting that tyrosine kinases of the Src family are involved. Measurements of cGMP production showed that AGAP1 has no influence on the activity of NO-sensitive GC. Interestingly, inhibition of PTPs potently increased the complex formation between AGAP1 and GC indicating that the interaction between these two proteins is modulated by reversible tyrosine phosphorylation. Whether this effect is due to the phosphorylation of AGAP1 or GC is still unknown. AGAP1 associates with endosomes and exposes Arf-GAP activity towards Arf1 and Arf5 which are involved in vesicular transport. Thus, one may hypothesize that binding of α1β1 to AGAP1 targets GC to distinct subcellular compartments in close proximity to cGMP-dependent effectors, thereby optimizing cGMP generation and fostering cGMP-driven actions.
Taken together, these results demonstrate that beside the modulation of GC by NO the enzyme is regulated by tyrosine phosphorylation and interaction with AGAP1.
G-protein coupled receptors (GPCRs) comprise the largest superfamily of cell surface receptors and possess a signature motif of seven transmembrane helices. The endothelin B (ETB) receptor is a member of rhodopsin like GPCR family. It plays an important role in vasodilation and is found in the membranes of the endothelial cells enveloping blood vessels. Knowledge of the three-dimensional structure of G-protein coupled receptors in general would significantly add to our understanding of their molecular mechanisms and would be useful in the search for new specific drugs. However, three-dimensional structural analysis will require milligram quantities of pure and homogeneous protein. This dissertation is a study of the production, biochemical characterization and preliminary structural studies of the human ETB G-protein coupled receptor. The present work aimed at elucidating the structure and mechanistic details of function of the receptor by using a combination of X-ray crystallographic and NMR methods for collecting structural data. To obtain homogenous and monodisperse receptor protein preparation for structural and functional studies, we implemented the baculovirus expression system for the production of ETB receptor for the present work. The two step affinity purification ensured capture of full-length receptor. Silver stained SDS-PAGE of the purified receptor-ligand complex indicated greater than 90% protein purity. Based on previous reports, we used the high affinity ligand (endothelin -1) binding to the receptor for co-crystallization of receptor-ligand complex by locking the receptor in the activated conformation. As a prerequisite for 3D crystallization trials, the stability of the detergent solubilized receptor-ligand complex was assessed with respect to pH, temperature and time. Receptor-ligand complex did not show any degradation and aggregation over 6 days at 4°C and 18°C. Interestingly, change of pH suggested that receptor-ligand complex is unstable at lower pH due to possible charge induced conformational changes. In our work, we introduced the idea of using fluorophore labeled ligand for simple visual recognition of the receptor-ligand complex during purification and crystallization. On the other hand, we alternatively used biotinylated endothelin-1 to produce an adequate amount of ligand bound receptor complex, thus ensuring homogeneity of the purified complex for use in structural studies. Thus far, preliminary crystals have been obtained for both the unlabelled ET-1 and fluorophore labeled ET-1 complexed with ETB receptor. Moreover, we performed the systematic investigation of the protein/peptide binding partner for the receptor-ligand complex with the chief aims of stabilizing structure and increasing the possibilities of 3D-crystal contacts. Thus subsequent to formation of receptor-ligand complex, the additional in vitro formation of a ternary arrestin-receptor-ligand complex was also attempted for use in structural studies. We successfully demonstrated that arrestin mutant (R169E) forms a tight complex with ETB receptor regardless of its phosphorylation state. A second approach to get insight into the ETB receptor ligand binding site relied on the use of spin isotope labeled ET-1 ligand peptide by employing solid state MAS NMR method. Preliminary data provided compelling evidence that the C-terminal region of the peptide is immobilized in an ordered environment and presumably bound to the receptor. This indicates that the approach is feasible, although there are difficulties in sample preparation for further spectral measurements and data collection which are currently being discussed in ongoing investigations. At this point of our research work, we initiated a collaborative effort to obtain high yields of pure, active receptor without post translational modifications, from an E. coli cell lysate based in vitro expression system. We successfully optimized the production of homogenous and monodisperse endothelin B receptor in mg amounts. Thus this could potentially provide an alternative source of high quality receptor production in large quantities for immediate crystallization trials. Thus we hope that the results from these investigations can be applied in a more general sense to the production and crystallization of other G protein-coupled receptors.
Charakterisierung der alternativen NADH-Ubichinon-Oxidoreduktase (NDH2) aus Yarrowia lipolytica
(2004)
Neben dem protonenpumpenden Komplex I (NDH-1) der Atmungskette besitzt die obligat aerobe Hefe Yarrowia lipolytica eine alternative NADH:Ubichinon Oxidoreduktase (NDH-2). Diese Enzyme, die in den Atmungsketten von Pflanzen, Pilzen und Bakterien vorkommen, bestehen aus nur einer Untereinheit, führen jedoch dieselbe Reaktion aus wie Komplex I, nämlich die Elektronenübertragung von NADH auf Ubichinon, wobei allerdings keine Protonen über die Membran transloziert werden. Nur peripher mit der Membran assoziiert, können alternative Dehydrogenasen entweder zur cytosolischen Seite (extern) oder zur Matrixseite (intern) orientiert sein. Y. lipolytica besitzt im Gegensatz zu anderen Ascomyceten nur eine einzige extern orientierte alternative Dehydrogenase mit einer vorhergesagten Masse von ca. 60 kD und einem nicht kovalent gebundenem Molekül FAD als Cofaktor. Durch Fusion des Leserasters mit der Präsequenz der 75 kD Untereinheit von Komplex I war die interne Expression des Enzyms (NDH2i) gelungen, die das Überleben von Komplex I Deletionsmutanten ermöglichte. Im Rahmen der vorliegenden Arbeit wurde die alternative Dehydrogenase von Y. lipolytica innerhalb ihrer natürlichen Membranumgebung charakterisiert. Das Enzym reagierte mit verschiedenen Chinonanaloga, wobei mit dem hydrophilen Q1 eine höhere katalytische Rate erzielt wurde als mit DBQ, das dem natürlich vorkommenden Q9 am ähnlichsten ist. Da hydrophobe Substrate fast ausschließlich in der Lipidphase der Membranen gelöst vorliegen, musste bei der Bestimmung von kinetischen Parametern (ebenso wie bei Komplex I) auf eine gleichbleibend große Membranphase im Messvolumen geachtet werden. Mit dem standardmäßig benutzten Substrat DBQ reagierte YLNDH2 nach einem Ping-Pong Reaktionsmechanismus. Dieser beschreibt eine abwechselnde Bindung der beiden Substrate, wobei das Enzym die Elektronen von NADH aufnimmt (E-FADH2) und an Ubichinon weitergibt (E-FAD); es existiert kein ternärer Enzym-Substrat Komplex. Gestützt durch Kristallstrukturen des analogen Enzyms QR1 mit NADPH bzw. mit Durochinon, liegt die Vermutung nahe, dass beide Substrate in ähnlicher Weise und sehr wahrscheinlich in der gleichen Bindungstasche binden. Ein Ping-Pong Reaktionsmechanismus wurde bereits für die NADH:DCPIP Oxidoreduktase Aktivität von zwei weiteren alternativen Enzymen postuliert, jedoch noch nie für ein physiologisches Substrat. Als bislang wirksamster Inhibitor für alternative Dehydrogenasen wurde 1-hydroxy-2-dodecyl-4(1H)chinolon (HDQ) entdeckt. HDQ hemmte NDH2 in Membranen aus Y. lipolytica mit einer I50 von 200 nM, was der 500fachen Hemmwirkung des gängig verwendeten Flavon auf das isolierte Enzym NDI1 von S. cerevisiae entspricht. Allerdings hemmte HDQ auch Komplex I mit einer I50 von 2 µM, ähnlich wie es bei Platanetin in Pflanzenmitochondrien der Fall war [Roberts et al., 1996]. Mit dem Ziel, ein polyklonales Antiserum gegen die native YLNDH2 zu generieren, wurde das Enzym in E. coli heterolog exprimiert. Die Expression führte zur Bildung von Einschlusskörpern, aus denen das rekombinante Enzym unter denaturierenden Bedingungen gereinigt und zur Immunisierung eines Kaninchens verwendet werden konnte. Das Antiserum kreuzreagierte mit der nativen und der internen Version von YLNDH2 und zeigte nur wenige unspezifische Bindungen. Es wurde gezeigt, dass Y. lipolytica Stämme ohne NDH2 und Komplex I mit NDH2i als einziger Dehydrogenase erzeugt werden konnten. In N. crassa war der Versuch, NDE2 und Komplex I gleichzeitig zu deletieren, gescheitert, was zu der Schlussfolgerung führte, dass sich die beiden Enzyme in diesem Organismus möglicherweise kompensieren könnten. Dies war in Y. lipolytica ausgeschlossen worden, da wahrscheinlich kein (oder nur unzureichender) Austausch zwischen matrixständigem und cytosolischem NADH stattfindet. Die zielgerichtete Mutagenese hochkonservierter Bereiche im offenen Leserahmen von YLNDH2 lieferte das eindeutige Ergebnis, dass die zweite der beiden beta-alpha-beta-Bindungsdomänen NADH binden muß, da sich der KM Wert für NADH bei Mutation des essentiellen sauren Restes E320 dratisch erhöhte. Alle Mutationen, die die Dinukleotid Bindungsdomäne I betrafen, die danach folgerichtig den Cofaktor FAD binden muß, führten zu einem vollständigen Verlust von NDH2. Dieselbe Zuordnung der Bindungsstellen war bereits von Björklöf et al. [2000] vorgeschlagen worden. Eine Chinonbindungstelle konnte durch Mutagenese der beiden apolar/aromatischen Bereiche der Sequenz nicht identifiziert werden. Die Modifikation des C-Terminus von NDH2i führte zu nicht mehr messbarer Aktivität und stark verringerter Expression des Enzyms in mitochondrialen Membranen (siehe Anhang 7.5.1.1). Es kann daher vermutet werden, dass der C-Terminus für die korrekte Faltung eine wichtige Rolle spielt, möglicherweise sogar bei der Membranassoziation, wie bei Rasmusson [1999] vorgeschlagen wurde. Interessant war in diesem Zusammenhang, dass die C-terminal modifizierte NDH2i trotzdem das Überleben von Komplex I Deletionsmutanten bzw. das Wachstum auf DQA ermöglichte. In Membranen, die einen unterschiedlichen Gehalt an NDH2, jedoch die gleiche Gesamtmenge an Protein enthielten, wurde eine unerwartete lineare Abhängigkeit zwischen KM und Vmax Werten beobachtet. Dieses Phänomen wurde mit dem Modell der externen Diffusionslimitierung beschrieben, die in ähnlicher Weise auch bei immobilisierten Enzymen auftritt. Danach wird die Geschwindigkeit der enzymatischen Reaktion von YLNDH2 sowohl durch die kinetisch kontrollierte Rate, als auch durch die Transportrate des Ubichinons bestimmt, das aus der Membran heraus in die wässrige Umgebung des katalytischen Zentrums gelangen muss. Aus diesem Grund ist nicht nur die Maximalgeschwindigkeit, sondern auch die Michaelis Menten Konstante KM abhängig vom Gehalt des Enzyms in Membranen. Dies führte bei niedrig exprimierten mutanten Enzymen zur gleichzeitigen Abnahme von KM und Vmax. Eine externe Diffusionskontrolle der enzymatischen Reaktion wurde auch für Komplex I, dessen Reaktionszentrum im peripheren Arm vermutet werden kann, aber nicht für Komplex III aus S. cerevisiae, dessen Chinonbindungsstellen sich definitiv in hydrophober Umgebung befinden, beobachtet.
My graduate thesis is on the "Structural studies of membrane transport proteins". Transporters are membrane proteins that have multiple membrane-spanning a-helices. They are dynamic and diverse proteins, undergoing a large conformational change and transporting wide range of susbtrates. Based on their energy source they can be classified into primary and secondary transport systems. Primary transport systems are driven by the use of chemical (ATP) or light energy, while secondary transporters utilize ion gradients to transport substrates. I began my PhD dissertation on secondary transporters by two-dimensional crystallization and electron crystallographic analysis and recently my focus also has shifted towards 3D crystallization. The following projects constitute my PhD thesis: 1) 2D crystallization of MjNhaP1 and pH induced structural change: MjNhaP1, a Na+/H+ antiporter that is regulated by pH has been implicated in homeostasis of H+ and Na+ in Methanococcus jannaschii, a hyperthermophilic archaeon that grows optimally at 85°C. MjNhaP1 was cloned and expressed in E. coli. Two-dimensional crystals were obtained from purified protein at pH4. Electron cryo-microscopy yielded an 8Å projection map. The map of MjNhaP1 shows elongated densities in the centre of the dimer and a cluster of density peaks on either side of the dimer core, indicative of a bundle of 4-6 membrane-spanning helices. The effect of pH on the structure of MjNhaP1was studied in situ in 2D crystals revealing a major change in density within the helix bundle relative to the dimer interface. This change occurred at pH6 and above. The two conformations at low and high pH most likely represent the closed and open states of the antiporter, respectively. This is the first instance where a conformational change associated with the regulation of a secondary transporter appears to map structurally. Reconstruction of 3D map and high-resolution structure by x-ray crystallography would be necessary to understand the mechanism of ion transport and regulation by pH. 2) 2D crystallization of Proline transporter: Proline transporter (PutP) from E.coli belongs the sodium-solute symporter family that includes disease related sodium dependent glucose and iodide transporter in humans. Sodium and proline are co-transported with a stoichiometry of 1:1. Purified PutP was reconstituted to yield 2D crystals that were hexagonal in nature. The 2D crystals had tendency to stack indicating their willingness to form 3D crystals. A projection map of PutP from negatively stained crystals showed trimeric arrangement of protein. Other members of the SSF family have been shown to be monomers. My analysis of oligomeric state of PutP in detergent by blue native gel indicates a monomer in detergent solution. It is likely that PutP can function as a monomer but at higher concentration and in lipid bilayer it tends to form trimer. 3) Oligomeric state and crystallization of carnitine transporter from E.coli: E.coli carnitine transporter (CaiT) belongs to the BCCT (Betaine, Carnitine and Choline) superfamily that transports molecules with quaternary amine groups. CaiT is predicted to span the membrane 12 times and acts as a L-carnitine/g-butyrobetaine exchanger. Unlike other members in this transporter family, it does not require an ion gradient and does not respond to osmotic stress. Over-expression of the protein yielded ~2mg of protein/L of culture. The structure and oligomeric state of the protein were analyzed in detergent and lipid bilayers. Blue native gel electrophoresis indicated that CaiT was a trimer in detergent solution. Gel filtration and cross-linking studies further support this. Reconstitution of CaiT into lipid bilayers resulted in 2D crystals. Analysis of negatively stained 2D crystals confirmed that CaiT is a trimer in the membrane. Initial 3D crystallization trials have been successful and currently, the crystals diffract to 6Å and are being improved. 4) Monomeric porin OmpG: OmpG is a bacterial outer membrane b-barrel protein. It is monomeric and its size (33kDa) places it as a prime candidate for a structural solution, using the recently developed method of solid state NMR (work in collaboration with Prof.Hartmut Oskinat, FMP, Berlin). A long-term aim would be to study porins as templates for designing nanopores, for DNA sequencing and identification. I have expressed OmpG in inclusion bodies and refolded at an efficiency of >90% into a functional form using detergent. OmpG was then crystallized by 2D crystallization yielding an 8Å projection map whose structure was similar to native protein. In addition, these crystals were used for structure determination by solid state NMR. An initial spectrum of heavy isotopically labeled OmpG has allowed identification of specific amino acid residues including threonine and proline. Additionally, I obtained 3D crystals in detergent that diffract to 5.5Å and are being improved.
Although in general cells are genetically identical in multicellular organisms, the differential expression of genomic information enables cell type definition and specific organ function. In eukaryotic cells, the DNA is associated with histone and non-histones proteins into a restrictive structure called chromatin. Assembly into chromatin does not only protect and package the linear double stranded DNA into the nucleus but is fundamental for the execution of diverse genetic programs. Posttranslational modifications of histones regulate the accessibility of the DNA to transcription factors and serve as scaffold for binding of regulatory proteins. Nuclear receptors are transcription factors that bind specific target sequences on the DNA and recruit transcriptional coregulators at the promoter. These are able to modify the chromatin structure in an activating or repressing manner. The contribution of corepressors to the biological actions of nuclear receptors has turned out to be essential. Impaired corepressor function can be the cause of endocrine malfunctions, neoplastic diseases or severe developmental abnormalities. To better understand the role of the nuclear receptor corepressor N-CoR the unknown function of the extreme C-terminus was investigated. In this thesis the interaction of N-CoR with the non-POU-domain containing octamer-binding protein Non0/p54nrb, that was found tobe a potential interaction partner in a yeast-two-hybrid screen, was confirmed. This protein contains two RNA recognition motifs (RRM) and is described as a multifunctional protein since it is involved in transcription Initiation as well as in pre-mRNA processing. The RRM1 motif was determined to be essential and sufficient for the interaction with N-CoR. Obtaining dominant negative effect with the Non0/p54nrb RRM1 deletion mutant in functional reporter assays, data support that NonO modulates the capacity of N-CoR to repress and alters the recruitment of N-CoR by nuclear receptors to targeted Promoters. Additional analyses suggest that the N- and C- terminus of N-CoR are involved in intramolecular interactions and that they regulate each other. Taken results together a functional model is proposed that supports the biological relevance of the interaction of N-CoR with NonO and the function of N-CoR C-terminus acting as asensor that evaluates the ratio of corepressors and coactivators in the nuclear receptor environment. N-CoR repressive capacity would be altered by modulating factors like NonO that interacts with N-CoR C-terminus. The mechanism support that splicing and transcription regulation are physically and functionallylinked to ensure the appropriate amount of messager RNA to be transcript and process in response to stimulation intensity and cell context.