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The technique of site-specific fluorescence labelling with Tetramethylrhodaminemaleimide (TMRM) in combination with two electrode voltage-clamp technique (TEVC), an approach that has been named voltage clamp fluorometry (VCF), has been used in this work to study the Na,K-ATPase. The TMRM dye has the ability to attach covalently to cysteine residues and it responds to changes in the hydrophobicity of its local environment. We exploited this property using a construct of the Na-pump in which the native, extracellularly accessible cysteines were removed and cysteine residues were introduced by site-directed mutagenesis in specific positions of the Na-pump. In this way it was possible to detect site-specific conformational rearrangements of the Na-pump in a time-resolved fashion within a native membrane environment. In particular this technique allows to resolve reactions with low electrogenicity that cannot be satisfactorily analyzed with purely electrophysiological techniques and to identify the conformations of the enzyme under specific ionic composition of the measuring buffers. We used VCF to study the influence that several cations like Na+, K+, NMG+, TEA+ and BTEA+ exert on the distribution of the Na,K-ATPase between several enzymatic intermediates and on some of the reactions related to cation transport. To this end we utilized the mutants N790C in the loop M5-M6 and the mutant E307C, T309C, L311C and E312C in the loop M3-M4. From the correspondence of the fluorescence changes with the activation and inhibition of pumping current, by K+ and ouabain respectively, and from the fact that in Na+/Na+ exchange conditions the voltage distribution of charge movement and fluorescence changes evoked by voltage jumps are in reasonable agreement we conclude that through the fluorescence signals measured from these mutants, we can indeed monitor conformational changes linked to transport activity of the enzyme. For the mutants N790 and L311, it was found that the Na+ dependence of the amplitude and kinetics of the fluorescence signal associated with the E1P-E2P transition is in agreement with the prediction of an access channel model describing the regulation of the access of extracellular Na+ to its binding site. In particular for the mutants E307 and T309 it was found that in Na+/Na+ exchange conditions, the conformational change tracked by the fluorescence was much slower than the charge relaxation at hyperpolarized potentials while the kinetics was very similar at depolarized potentials. This implies that at hyperpolarized potentials the conformational change connected to the E1P-E2P transition does not give a large contribution to the electrogenicity of the process which is also consistent with the access channel model. On the mutant N790C it was found that the external pH does not seem to have any effect on the E1P-E2P equilibrium even if it seems to modulate the fluorescence quantum yield of the dye. Fluorescence quenching experiments with iodide and D2O indicate that at hyperpolarized potentials the local environment of the mutant N790C, experiences a small change in the accessibility to water without major changes in the local electrostatic field ...
The Na+/proline transporter of E. Coli (PutP) is responsible for the uptake of proline which is subsequently used not only as a carbon and nitrogen source and a constituent of proteins but also as a particularly effective osmoprotectant. However, for a long time there was little known about the single steps in the reaction cycle of this transporter and only few details about its structure-function relationship are available. Aim of the present work was to achieve a deeper understanding about the kinetic properties of the Na+/proline transporter and to get insights into the structure-function relationship of the substrate binding. To answer these questions different techniques were used. By using the novel SSM technique combining the preparation of PutP proteoliposomes it was possible to demonstrate for the first time the electrogenic substrate binding to PutP transporter. Due to rapid solution exchange measurements on the SSM it was additionally possible to obtain time resolved information about the kinetic details of the cytoplasmic substrate binding sites which were not available by previous steady state and equilibrium binding measurements. Pre-steady-state charge translocation was observed after rapid addition of one or both of the cosubstrates Na+ and/or proline to the PutP-WT proteoliposomes adsorbed on the SSM. Thereby it was possible to link the observed electrical signals with the binding activity of PutP. The observed Na+ and/or proline induced charge displacement were assigned to an electrogenic Na+ and/or proline binding process at the cytoplasmic face of the enzyme with a rate constant of k > 50 s-1 proceeding the rate limiting step of the reaction cycle. Furthermore, based on the kinetic analysis of the electrical signals obtained from the measurements of PutP on SSM, the following characteristics of the substrates binding in PutP were deduced: (1) both Na+ and proline can bind individually to the transporter. Under physiological conditions, an ordered binding mechanism prevails; while at sufficiently high concentrations, each substrate can bind in the absence of the other; (2) substrate binding is electrogenic not only for Na+, but also for the uncharged cosubstrate proline. The charge displacement associated with Na+ binding and proline binding is of comparable size and independent of the presence of the respective cosubstrate. In addition, it was concluded that Na+ accesses its binding site through a high-field access channel resulting in a charge translocation, whereas the binding of the electroneutral proline induces a conformation alteration involving the displacement of charged amino acid residue(s) of the protein; (3) Na+ and proline binding sites interact cooperatively with each other by increasing the affinity and/or the speed of binding of the respective cosubstrate; (4) proline binding proceeds in a two step process: low affinity (~ 0.9 mM) electroneutral substrate binding followed by a nearly irreversible electrogenic conformational transition; (5) membrane impermeable PCMBS inhibits both Na+ and proline binding to the inside-out orientated PutP transporter, indicating that rather than selectively blocking a specific binding site, PCMBS probably locks the enzyme in an inactive state. The possible targets for this SH-reagent are cysteines 281 and 344 located close to the cytoplasmic surface of the protein. Beyond it, transient electrical currents of PutP were also observed on the BLM after rapid addition of proline in the presence of Na+. This was possible by combining the conventional BLM technique with high-speed flash-photolysis of caged-proline. Indeed the signals on the BLM indicate the detection of a different underlying reaction process in comparison to the data achieved by the SSM technique. This has paved the way for supplemental information about the reaction cycle since it was possible to assign the flash-photolysis BLM signals to the proline binding step followed by the internalization of Na+ and proline into the liposome. Thereby it was found, that the presence of Na+ is indispensable and the time constant for the process is ~ 63 ms. Moreover, structure-function information about the Na+ and proline binding sites of PutP was obtained by investigating the functionally important amino acid residues Asp55, Gly63 and Asp187 with site-directed mutagenesis and the combined SSM technique. One finding is that the mutated proteins PutP-D55C and PutP-G63C showed no activity on the SSM. Therefore, it can be assumed that either both Asp55 and Gly63 are crucial for the structure of PutP protein, or they are located at or close to the Na+ and proline binding sites. Furthermore, the results obtained from PutP-D187N and PutP-D187C mutants on SSM suggest that Asp187 of PutP is likely to be involved in the Na+ binding at the cytoplasmic side of the backward running carrier. Taken together the results of the present work have substantially broadened the known picture of the Na+/proline transporter PutP thereby several steps of the reaction cycle were elucidated, and moreover, valuable insights into the structure-function relationship of the transporter have become available.
Nucleotide-binding domains (NBDs), roughly 27 kDa in size, are conservative components of the large family of ABC (ATP-binding cassette) transporters, which includes importers, exporters, and receptors. NBDs or ABC-ATPases supply energy for the translocation of a vast variety of substrates across biological membranes. Despite their hydrophilic sequence, many NBDs tend to aggregate and precipitate in solution upon isolation from the complete transporter. The conditions stabilizing an extremely labile NBD component of the E.coli HlyA transporter, HlyB-NBD, were developed. As a result, the pure highly concentrated enzyme was protected from precipitation for months that allowed screening of the unlimited crystallization conditions in the presence of different substrates and performance of the reproducible functional assays. HlyB-NBD was characterized in regard to its uncoupled ATPase activity, oligomeric state, and stability in solution. Comparative analysis of protein stability and ATPase activity in various buffers suggested an inverse relationship between the two. Kinetic analysis of ATPase activity revealed ATP-induced protein dimerization. Gel-filtration experiments with the wild type protein and H662A-mutant of HlyB-NBD provided further evidence of protein dimerization in the presence of ATP. The crystal structures in post- and pre-hydrolysis nucleotide-bound states of HlyB-NBD were determined at 1.6Å and 2.5Å resolution, respectively. While the hydrolytically deficient H662A mutant of HlyB-NBD was crystallized as a stable dimer in the presence of ATP or ATP-Mg2+, with two nucleotide molecules sandwiched between the two monomers, the same protein was shown to be a monomer in the ADP-loaded state. The wild type protein failed to develop crystals with bound ATP, yet formed ADP-bound crystals identical to those of the H662A-mutant. The X-ray structures of HlyB-NBD in various states of the hydrolytic cycle and the functional studies of the enzyme have provided an opportunity to characterize enzyme-substrate complexes and protein-protein interactions between the NBD subunits in great detail. Comparison of the nucleotide-free, the ADP-, and the ATP-loaded states revealed oligomeric and conformational changes of the protein upon substrate binding and resulted in a molecular picture of the catalytic cycle. The correlated results of the structural and functional investigations of HlyB-NBD are discussed with relation to the mechanism of action of ABC transporters.
Prostaglandin E2 is the major prostaglandin involved in colorectal carcinogenesis. The biosynthesis of prostaglandin E2 is accomplished by several terminal prostaglandin E synthases through catalytical conversion of the cyclooxygenase product prostaglandin H2. Among the known terminal prostaglandin E synthases, microsomal prostaglandin E synthase type 1 and type 2 were found to be overexpressed in colorectal cancer, however the role and regulation of these enzymes in this tumor entity are yet not fully understood. Here we report that the cyclopentenone prostaglandins 15-deoxy-D12,14-prostaglandin J2 and prostaglandin A2, which have been shown to modulate cell growth and neoplasia, selectively down-regulate microsomal prostaglandin E synthase type 2 mRNA and protein expression in the human colorectal carcinoma cell lines Caco-2 and HCT 116. This effect appeared to be PPARgamma independent and was not found to require G-protein-coupled receptor activation. Instead, inhibition of microsomal prostaglandin E synthase type 2 by cyclopentenone prostaglandins may be mediated by covalent binding of the cyclopentenone ring to cysteine residues on signalling molecules or via a redox-dependent mechanism. Inhibition of microsomal prostaglandin E synthase type 2 was subsequently followed by decreased prostaglandin E synthase activity, which in turn contributed at least in part to the anti-proliferative action of cyclopentenone prostaglandins in HCT 116 cells. Collectively, these data unravel a novel mechanism for the growth-inhibitory effects of cyclopentenone prostaglandins and expose microsomal prostaglandin E synthase type 2 as a new potential target for pharmacological intervention in the treatment of colorectal cancer.
The transporter associated with antigen processing (TAP)-like (TAPL, ABCB9) belongs to the ATP-binding cassette transporter family, which translocates a vast variety of solutes across membranes. The function of this half-size transporter has not yet been determined. Here, we show that TAPL forms a homodimeric complex, which translocates peptides across the membrane. Peptide transport strictly requires ATP hydrolysis. The transport follows Michaelis-Menten kinetics with low affinity and high capacity. Different nucleotides bind and energize the transport with a slight predilection for purine bases. The peptide specificity is very broad, ranging from 6-mer up to at least 59-mer peptides with a preference for 23-mers. Peptides are recognized via their backbone, including the free N and C termini as well as side chain interactions. Although related to TAP, TAPL is unique as far as its interaction partners, transport properties, and substrate specificities are concerned, thus excluding that TAPL is part of the peptide-loading complex in the classic route of antigen processing via major histocompatibility complex class I molecules.
In der Abteilung „Medizinische Biotechnologie“ des Paul-Ehrlich-Instituts konnte gezeigt werden, dass ein SIVsmmPBj-abgeleiteter Vektor Vorteile gegenüber HIV-1-abgeleiteten Vektoren aufweist, da auch in der G0-Phase des Zellzyklus arretierte Zelllinien und Fibroblasten sowie primäre humane Monozyten transduziert werden können. Im ersten Teil der hier vorliegenden Arbeit wurden die besonderen Transduktionsfähigkeiten diese SIVsmmPBj Vektors eingehend untersucht. Zunächst wurden die transduzierbaren Monozyten morphologisch und biochemisch genauer charakterisiert; insbesondere wurde gezeigt, dass sich diese Zellen tatsächlich in der G0-Phase des Zellzyklus befinden und auch nach der Transduktion die Fähigkeit aufweisen, sowohl in Makrophagen als auch in Dendritischen Zellen auszudifferenzieren. Bei dem Versuch andere primäre humane Blutzellen zu transduzieren wurde gezeigt, dass SIVsmmPBj Vektoren für die Transduktion unstimulierter CD4+ T-Zellen nicht geeignet sind. Zum besseren Verständnis der zugrunde liegenden Mechanismen die zur Transduktion arretierter Zellen und Monozyten durch SIVsmmPBj-abgeleitete Vektoren führen, wurde der Einfluss der akzessorischen viralen Proteine untersucht. Dazu wurde ein PBj-Knockout- Vektor, bei dem die Expression aller akzessorischen Gene (vif, vpx, vpr und nef) inhibiert war, generiert und zur Transduktion von arretierten Zellen und Monozyten eingesetzt. Keines der akzessorischen Proteine war für die Transduktion der in G0 arretierten Zellen notwendig. Für die Transduktion von Monozyten erwies sich das virale Protein Vpx jedoch als essentiell, da der Knockout-Vektor zur Transduktion von Monozyten nur nach Supplementierung mit diesem Protein in der Lage war. Die Supplementierung von HIV-1 Vektoren mit Vpx des SIVsmmPBj ermöglichte keine Transduktion von Monozyten, was darauf hindeutet, dass weitere Proteine von SIVsmmPBj oder aber auch die Fähigkeit der prinzipiellen Transduktion von Zellen der G0-Phase eine Rolle spielen. Im letzten Teil dieser Arbeit wurde ein auf SIVsmmPBj basierendes Dreiplasmid-Vektorsystem entwickelt. Für das Verpackungskonstrukt wurde das Verpackungssignal charakterisiert. Dabei konnte gezeigt werden, dass der Bereich zwischen dem Promotor und dem Spleißdonor gelegene Bereich für eine effiziente Partikelbildung nötig ist und die Deletion der Region zwischen Spleißdonor und gag-Start-ATG zur Inaktivierung des Verpackungssignals ausreicht. Die aus dem Dreiplasmid-System generierten Vektoren erreichten Titer von bis zu 5 x 105 i.E./ml und waren nach Supplementierung mit Vpx dazu in der Lage, primäre humane Monozyten zu transduzieren. Der hier entwickelte, auf SIVsmmPBj basierende Vektor eröffnet neue Möglichkeiten in der Gentherapie. So sind nun auch Monozyten als wichtige Zielzellen der Tumortherapie einem Gentransfer durch lentivirale Vektoren zugänglich.
In dieser Arbeit wurde der Gentransfer von Todesliganden als Ansatz zur Tumor-Gentherapie untersucht. Dazu wurde ein lentiviraler Vektor der zweiten Generationverwendet, der die Todesliganden CD95L oder TRAIL sowie das Markergen EGFP exprimiert. Dies ist die erste Beschreibung von CD95L- oder TRAILexprimierenden lentiviralen Vektoren. Der TRAIL-exprimierende Vektor erwies sich als geeignet für die therapeutische Induktion von Apoptose in humanen Tumorzelllinien auch bei geringen Vektordosen. Die Transduktion mit diesem Vektor bei niedriger MOI führte zu Todesrezeptor-spezifischer Induktion von Apoptose. Diese wurde ausschließlich durch membranständiges TRAIL bei Zell-Zell-Kontakt vermittelt. Die transduzierten Zellen waren zudem in der Lage, bei Kontakt mit nichttransduzierten Zellen in diesen Apoptose auszulösen. Durch den TRAIL-Gentransfer wurde jedoch spezifisch in den transduzierten Zellen Resistenz gegen TRAIL-induzierte Apoptose ausgelöst, während die CD95- oder Cisplatin-induzierte Apoptose nicht beeinflusst war. Dies führte zum Auswachsen einer vollständig TRAIL-resistenten Population. Bereits 72 Stunden nach Transduktion konnten Anzeichen der Resistenz detektiert werden. Der Grund für diese Resistenzinduktion lag in einer spezifischen Blockade der DISC-Bildung und Caspase-8-Aktivierung durch die TRAIL-Todesrezeptoren. Die Signaltransduktion durch den sehr ähnlichen CD95-Signalweg war gänzlich unbeeinflusst. Durchflusszytometrische und proteinbiochemische Untersuchungen der Expression von TRAIL-R1 und TRAIL-R2, sowie die Untersuchung der mRNA-Expression dieser Rezeptoren ergaben, dass beide TRAIL-Todesrezeptoren noch synthetisiert, jedoch intrazellulär zurückgehalten wurden. In fluoreszenzmikroskopischen Versuchen konnte gezeigt werden, dass TRAIL-R2 intrazellulär in einem Komplex mit TRAIL vorlag, der sich im Bereich des ER/Golgi-Apparates befand. Diese Ergebnisse belegen, dass intrazelluläre Interaktion von TRAIL mit seinen Rezeptoren zur Retention dieser Proteine in der Zelle und damit zur Resistenzentwicklung führte. Bei Versuchen zur in vivo-Gentherapie durch lentivirale TRAIL-Expression in humanen Tumortransplantaten auf Nacktmäusen wurde nur ein transienter Effekt erzielt. Es konnte gezeigt werden, dass mit Vektorpartikeln assoziiertes TRAIL-Protein in den Tumoren Apoptose auslöste. Diese Induktion von Apoptose führte zu einer Wachstumsverzögerung. Dadurch wurde jedoch gleichzeitig eine effiziente Transduktion der Tumorzellen mit dem TRAIL-exprimierenden Vektor und ein langfristiger Effekt der TRAIL-Expression verhindert. Diese Ergebnisse zeigen, dass lentiviraler Gentransfer mit konstitutiv TRAIL-exprimierenden Vektoren ungeeignet zur in vivo-Transduktion von Tumoren ist. Gleichzeitig belegen die Ergebnisse der Transduktion mit einem Kontrollkonstrukt einen effizienten Gentransfer. Der hier charakterisierte Resistenzmechanismus ist zuvor nicht beschrieben worden und stellt eine neuartige Form der Therapie-induzierten Resistenz dar. Die proapoptotische Gentherapie durch konstitutive TRAIL-Expression in Tumoren muss nach diesen Ergebnissen neu bewertet werden. Der lentivirale Gentransfer in Tumore in vivo läuft prinzipiell effizient ab. Bei Verwendung eines regulierbaren Expressionssystems und in Kombination mit Suizidgenen könnte eine therapeutische Nutzung des lentiviralen TRAIL-Gentransfers möglich sein.
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.
Antibody library technology represents a powerful tool for the discovery and design of antibodies with high affinity and specificity for their targets. To extend the technique to the expression and selection of antibody libraries in an eukaryotic environment, we provide here a proof of concept that retroviruses can be engineered for the display and selection of variable single-chain fragment (scFv) libraries. A retroviral library displaying the repertoire obtained after a single round of selection of a human synthetic scFv phage display library on laminin was generated. For selection, antigen-bound virus was efficiently recovered by an overlay with cells permissive for infection. This approach allowed more than 10(3)-fold enrichment of antigen binders in a single selection cycle. After three selection cycles, several scFvs were recovered showing similar laminin-binding activities but improved expression levels in mammalian cells as compared with a laminin-specific scFv selected by the conventional phage display approach. Thus, translational problems that occur when phage-selected antibodies have to be transferred onto mammalian expression systems to exert their therapeutic potential can be avoided by the use of retroviral display libraries.