Biologische Hochschulschriften (Goethe-Universität)
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Das Ziel dieser Arbeit war es, RNA-Strukturen als potentielle Zielstrukturen für die Medikamentenentwicklung zu untersuchen. Hierbei ging es im Speziellen um die Anwendung Virtueller Screening Verfahren für die RNA-Liganden-Vorhersage. Hierzu wurde die als TAR-Motiv (transactivating response element) bekannte RNA-Struktur der mRNAs des HI-Virus ausgewählt. Diese Struktur wurde gewählt, da mit den vier PDB-Einträgen 1ANR, 1ARJ, 1LVJ und 1QD3 bereits experimentell motivierte Strukturmodelle zum Beginn der Untersuchung vorlagen. Ausschlaggebend war hierbei auch das Vorhandensein eines Tat-TAR-FRET-Assays im Rahmen des SFB 579, in welchem diese Arbeit angefertigt wurde. Die Aufmerksamkeit, welche dem HI-Virus im Rahmen der Bekämpfung der Immunschwächekrankheit bereits zukam, führte bei dem gewählten Testmodell ebenfalls zu einem, wenn auch immer noch überschaubaren Datensatz bereits getesteter Substanzen, der als Grundlage für einen Liganden-basierten Ansatz als erste Basis dienen konnte. Basierend auf diesen Voruntersuchungen ergaben sich die weiteren Schritte dieser Arbeit. Die Arbeit lässt sich zusammenfassend in vier zum Teil parallel verlaufende Phasen einteilen: Phase 1:Bestandsaufnahme bekannter Informationen über die Zielstruktur · experimentell bestimmte Zielstrukturen · experimentell bestimmte Liganden/Nichtliganden der Zielstruktur Phase 2: Ableiten eines ligandenbasierten Ansatzes zur Vorhersage von potentiellen Bindern der Zielstruktur aus Substanzbibliotheken, der nicht auf Strukturdaten der Zielstruktur beruht. Phase 3: Analyse der bekannten Konformere der Zielstruktur auf konstante Angriffspunkte für ein spezielles Liganden-Design. Phase 4: Einbinden der bekannten Strukturinformationen der Zielstruktur zur weiteren Verfeinerung der Auswahlverfahren neuer Kandidaten für die weitere experimentelle Bestimmung des Bindeverhaltens. Im Rahmen dieser Arbeit konnten mittels der Anwendung von künstlichen neuronalen Netzen in einem ligandenbasierten Ansatz durch virtuelles Screening der Chemikalien-Datenbanken verschiedener Lieferanten fünf neue potentielle TAR-RNA-Liganden identifiziert werden (drei davon mit einem Methylenaminoguanidyl-Substrukturmotiv), sowie als „Spin-Off“ durch die Anwendung der ursprünglich nur für den Tat-TAR-FRET-Assay vorgesehenen Testsubstanzen in einem Kooperationsprojekt (mittels CFivTT-Assay) zwei neue potentiell antibakterielle Verbindungen identifiziert werden. Die Beschäftigung mit der offensichtlichen Flexibilität der TAR-RNA und damit einer nicht eindeutig zu definierenden Referenz-Zielstruktur für das Liganden-Docking führte zur Erstellung eines Software-Pakets, mit dem flexible Zielstrukturen – basierend auf den Konformer-Datensätzen von MD-Simulationen – auf konstante Angriffspunkte untersucht werden können. Hierbei wurde ausgehend von der Integration eines Taschenvorhersage-Programms (PocketPicker) eine Reihe von Filtern implementiert, die auf den hierzu in einer MySQL-Datenbank abgelegten Strukturinformationen eine Einschränkung des möglichen Taschenraums für das zukünftige Liganden-Design automatisiert vornehmen können. Des Weiteren ermöglicht dieser Ansatz einen einfachen Zugriff auf die einzelnen Konformere und die Möglichkeit Annotationen zu den Konformeren und den daraus abgeleiteten Tascheninformationen hinzuzufügen, so dass diese Informationen für die Erstellung von Liganden-Docking-Versuchen verwendet werden können. Ferner wurden im Rahmen dieser Arbeit ein neuer Deskriptor für die Beschreibung von Taschenoberflächen eingeführt: der auf der „Skalierungs-Index-Methode“ basierende molekulare SIMPrint. Die Beschäftigung mit der Verteilung der potentiellen Bindetaschen auf der Oberfläche der Konformerensemble führte ferner zur Definition der Taschenoberflächenbildungswahrscheinlichkeit (Pocket Surface Generation Probability – PSGP) für einzelne Atome einer Zielstruktur, die tendenziell für die Einschätzung der Ausbildung einer potentiell langlebigen Interaktion eines Liganden mit der Zielstruktur herangezogen werden kann, um beispielsweise Docking-Posen zu bewerten.
Der Typ I Interferonrezeptor, der aus den Transmembranproteinen ifnar1 und ifnar2 besteht, nimmt eine wichtige Rolle bei der angeborenen und erworbenen Immunantwort ein. Durch Bindung von Typ I Interferonen werden antivirale, antiproliferative und immunmodulatorische Aktivitäten in der Zelle induziert. Die Wirkung der Interferone wird bereits bei der Behandlung einer Vielzahl von Krankheiten eingesetzt. Es ist bislang nicht bekannt, wie die verschiedenen Typ I Interferone nach Bindung an einen gemeinsamen Rezeptor, unterschiedliche Zellantworten induzieren. So unterscheiden die Typ I Interferone sich nicht hinsichtlich ihrer Bindungsstelle oder der Stöchiometrie der Bindung an ifnar1 bzw. ifnar2. Sie weisen jedoch unterschiedliche Affinitäten zu den Rezeptoruntereinheiten auf, wobei ihnen eine niedrigere Affinität zu ifnar1 gemeinsam ist. Bislang konnte keine Interaktion zwischen den Rezeptoruntereinheiten nachgewiesen werden. Es wird angenommen, dass bei der Rezeptorassemblierung das Interferon zunächst an ifnar2 bindet und anschließend ifnar1 rekrutiert. Es wird postuliert, dass die unterschiedlichen Zellantworten für verschiedene Typ I Interferone auf Unterschieden in der Stabilität der ternären Komplexe beruhen könnten. Im Rahmen dieser Arbeit wurden daher die Struktur und Dynamik des Interferonrezeptors in vitro für die Typ I Interferone IFNa2 und IFNb charakterisiert. Die Struktur des ternären Komplexes aus den extrazellulären Domänen von ifnar1 und ifnar2 mit IFNa2 wurde mittels Elektronenmikroskopie untersucht. Über Einzelpartikelanalyse aufgereinigter Komplexe von IFN mit den extrazellulären Domänen von ifnar1 (ifnar1-EC) und ifnar2 (ifnar2-EC) konnte ein Strukturmodell des ternären Komplexes erstellt werden. Dieses zeigte eine Verschiebung der membranproximalen Domänen von ifnar1-EC und ifnar2-EC wie sie bereits für den Rezeptor für Erythropoietin und den Wachstumsfaktor beobachtet wurden, welche zu den Typ I Zytokinrezeptoren gehören. Die Struktur des ternären Komplexes ermöglicht als erste Struktur eines Typ II Zytokinrezeptors einen Einblick in die Architektur des Komplexes und mögliche Aktivierungsmechanismen. Die Strukturen der Komplexe für die verschiedenen Typ I Interferone IFNa2 und IFNb wiesen keine fundamentalen Unterschiede auf, was auf einen gemeinsamen Aktivierungsmechanismus hinweist. Temperatur-abhängige Messungen von Bindungskinetik und –affinität ergaben sehr unterschiedliche Energiehyperflächen für die Ligandenbindung an ifnar1- und ifnar2-EC, und wiesen auf einen mehrstufigen Prozess und mögliche Konformationsänderungen bei der Bindung an ifnar1-EC hin. Zur Analyse der Dynamik von ifnar1-EC wurden daher verschiedene fluoreszenzbasierte Assays etabliert. Eine besondere Herausforderung bestand darin, das Protein ortsspezifisch und stöchiometrisch mit zwei verschiedenen Fluorophoren zu koppeln. Ifnar1-EC wurde an verschiedenen Stellen kovalent mit Fluoreszenzfarbstoffen markiert. Es wurde gezeigt, dass nach Bindung eines geeigneten tris-NTA-Fluorophor-Konjugats an den C-terminalen His-Tag die Fluoreszenz abstandsabhägig durch Förster-Resonanz-Energie-Transfer gelöscht wurde. Für ifnar1-EC wurde eine ligandeninduzierte Abstandsänderung detektiert. Die detaillierte Analyse ergab nach Bindung von IFNa2 eine Abstandszunahme von 13 A vom N- zum C-Terminus. Durch die Interferonbindung nimmt demnach ifnar1-EC eine gestrecktere Konformation ein. Ähnliche Ergebnisse wurden auch in Anwesenheit von ifnar2-EC und für IFNb erhalten. Die Einzelmolekülanalysen mittels Fluoreszenz Korrelationsspektroskopie (FCS) zeigten sowohl einen Verlust der Flexibilität von ifnar1-EC nach Ligandenbindung als auch ein ligandeninduziertes Rearangement der Ig-ähnlichen Domänen. Die Änderung der Flexibilität wurde durch Messungen der Fluoreszenzlebensdauer bestätigt. Untersuchungen der Kinetik der Ligand-induzierten Konformationsänderung mittels Stopped-Flow Messungen bestätigten eine mehrstufige Umorientierung der Ig-ähnlichen Domänen nach Ligandenbindung. Zusätzlich konnte gezeigt werden, dass sich nach Ligandenbindung die Zugänglichkeit des Tryptophans in der membranproximalen Domäne von ifnar1-EC ändert. Da die membranproximale Domäne nicht bei der Ligandenbindung beteiligt ist, deutet dieser Effekt auf eine Propagation der Ligand-induzierten Konformationsänderung in diese Domäne hin. Das Tryptophan könnte mit der Membran interagieren, was auf eine wichtige Rolle der membranproximalen Domäne für die korrekte Orientierung von ifnar1 in der Membran hindeut. Die Stopped-Flow Analyse zeigte, dass es sich hierbei um einen einstufigen Prozess handelt, der mit der Interferonbindung korreliert. Die Ergebnisse wiesen insgesamt auf eine Ligand-induzierte Flexibilitätsänderung und Umorientierung der Ig-ähnlichen Domänen bei ifnar1-EC hin. Vermutlich wird nach Ligandenbindung das Signal in die membranproximale Domäne von ifnar1-EC propagiert. Die Strukturen der ternären Komplexe mit den verschiedenen Typ I Interferonen wiesen keine fundamentalen Unterschiede auf. Auch die Ergebnisse der fluoreszenzbasierten Assays zeigten keine Unterschiede für IFNa2 und IFNb, was die Hypothese stützt, dass die differentielle Aktivität der Interferone nicht auf grundsätzlichen Unterschieden in der Architektur des ternären Komplexes beruht, sondern in der unterschiedlichen Dynamik der Komplexe codiert sein könnte.
Three-dimensional structure of the glycine-betaine transporter BetP by cryo electron crystallography
(2008)
The soil bacterium Corynebacterium glutamicum has five secondary transporters for compatible solutes allowing it to cope with osmotic stress. The most abundant of them, the transporter BetP, performs a high affinity uptake of glycine-betain when encountering hyperosmotic stress. BetP belongs to the betaine/carnitine/choline/transporter (BCCT) family, and is predicted to have twelve transmembrane helices with both termini facing the cytoplasm. The goal of this thesis is to facilitate understanding of BetP function by determining a three dimensional (3D) model of its structure. Two-dimensional (2D) crystallization of wild-type (WT) BetP has been successfully performed by reconstitution into a mixture of E. coli lipids and bovine cardiolipin, which resulted in vesicular crystals diffracting to 7.5 Å resolution (Ziegler, Morbach et al. 2004). Diffraction patterns of these crystals however showed unfocused spots, generally due to high mosaicity. Better results were obtained by using the constitutively active mutant BetPdeltaC45 in which the first 45 amino acids of the positively charged C-terminus were removed. BetPdeltaC45 crystals obtained under the same conditions for BetP WT were concluded to be pseudo crystals, based on the inconsistence of symmetry. These crystals had BetPdeltaC45 molecules randomly up/downwards inserted into membrane crystals, and cannot be used for structure determination, even though they diffracted up to 7 Å. The problem of pseudo crystal formation could be solved by changing the lipids used for 2D crystallization to a native lipid extract from C. glutamicum cells. This change of lipids improved the crystals to well-ordered packing with exclusive p121_b symmetry. To understand the role of lipids in crystal packing and order, lipids were extracted at different stages during crystallization, and identified by using multiple precursor ion scanning mass spectrometry. The results show that phosphatidyl glycerol (PG) 16:0-18:1 is the most dominant lipid species in C. glutamicum membranes, and that BetP has a preference for the fatty acid moieties 16:0-18:1. Crystallization with synthetic PG 16:0-18:1 proved that an excess of this lipid prevents pseudo crystal formation, but these crystals did not reach the quality as previously achieved by using the C. glutamicum lipids. Apart from the effect of lipids in crystallinity, the concentration and type of salts influenced crystal growth and morphology. High salt conditions (>400 mM LiCl or KCl) yielded tubular crystals, whereas low salt conditions (<300 mM LiCl, NaCl or KCl) led to formation of up to 10 µm large sheet-like crystals. The intermediate concentration gave a mixture of sheet-like and tubular crystals. In terms of resolution, sheets diffracted better than tubes. The sheet-like crystals used for 3D map reconstruction were obtained from a dialysis buffer containing 200 mM NaCl combined with using C. glutamicum lipids. Electron microscopic images were taken from frozen-hydrated crystals using a helium-cooled JEOL 300 SFF microscope or a liquid nitrogen-cooled FEI Tecnai G2 microscope at 300 kV, which allowed optimal data collection and minimized radiation damage to the sample. More than 1000 images of tilt angles up to 50° were taken and evaluated using optical diffraction of a laser beam. The best 200 images were processed with the MRC image processing software package, and 79 images from different tilt angles were merged to the final data set used for calculation of a 3D map at a planar resolution of 8 Å. The structure shows BetPdeltaC45 as a trimer with each monomer consisting of 12 transmembrane alpha-helices. Protein termini and loop regions could not be determined due to the limited resolution of the map. Six of the twelve helices line a central cavity forming a potential substrate-binding chamber. Each monomer shows a central cavity in different sizes and shapes. Thus, the constitutively active BetPdeltaC45 thus forms an unusual asymmetric homotrimer. BetP most likely reflects three different conformational states of secondary transporters: the cytoplasmically open (C), the occluded (O), and the periplasmically open (P) states. The C and O states are similar to BetP WT projection structure, while the P state is discrepant and highly flexible due to the shape and size of the central cavity as well as the lowest intensity of the density. The observation of the P state corresponds well to the constitutively active property of BetPdeltaC45. For the high resolution structure of the C and O states are available, this work presents the first structural information of the P state of a secondary transporter.
Cellular metabolism can be envisaged by fluorescence lifetime imaging of fluorophores sensitive to specific intracellular factors such as [H+], [Ca2+], [O2], membrane potential, temperature, polarity of the probe environment, and alterations in the conformation and interactions of macromolecules. Lifetime measurements of the probes allow the quantitative determination of the intracellular factors. Fluorescence microscopy taking advantage of time-correlated single photon counting is a novel method that outperforms all other techniques with its single photon sensitivity and picoseconds time resolution. In this work, a time- and space-correlated single photon counting system was established to investigate the behavior of 2-(4-(dimethylamino)styryl)-1-methylpyridinium iodide (DASPMI) in living cells. DASPMI is known to selectively stain mitochondria in living cells. The uptake and fluorescence intensity of DASPMI in mitochondria is a dynamic measure of membrane potential. Hence, an endeavour was made to elucidate the mechanism of DASPMI fluorescence by obtaining spectrally-resolved fluorescence decays in different solvents. A bi-exponential decay model was sufficient to globally describe the wavelength dependent fluorescence in ethanol and chloroform. While in glycerol, a three-exponential decay model was necessary for global analysis. In the polar low-viscous solvent water, a mono-exponential decay model fitted the decay data. The sensitivity of DASPMI fluorescence to solvent viscosity was analysed using various proportions of glycerol/ethanol mixtures. The lifetimes were found to increase with increasing solvent viscosity. The negative amplitudes of the short lifetime component found in chloroform and glycerol at the longer wavelengths validated the formation of new excited state species from the initially excited state. Time-resolved emission spectra in chloroform and glycerol showed a biphasic increase of spectral width and emission maxima. The spectral width had an initial fast increase within 150 ps and a near constant thereafter. A two-state model based on solvation of the initially excited state and further formation of TICT state has been proposed to explain the excited state kinetics and has been substantiated by the de-composition of time-resolved spectra. The knowledge of DASPMI photophysics in a variety of solvents now provides the means of deducing complex physiological parameters of mitochondria from its behavior in living cells. Spatially-resolved fluorescence decays from single mitochondria or only very few organelles of XTH2 cells signified distinctive three-exponential decay kinetics of viscous environment. Based on DASPMI photophysics in a variety of solvents, these lifetimes have been attributed to the fluorescence from locally excited state (LE), intramolecular charge transfer state (ICT) and twisted intramolecular charge transfer (TICT) state. A considerable variation in lifetime among mitochondria of different morphology and within single cell was evident corresponding to the high physiological variations within single cells. Considerable shortening of the short lifetime component (τ1) under high membrane potential condition, such as in the presence of ATP and/or substrate, was similar to quenching and dramatic decrease of lifetime in polar solvents. Under these conditions τ2 and τ3 increased with decreasing contribution. Upon treatment with ionophore nigericin, hyperpolarization of mitochondria resulted in remarkable shortening of τ1 from 159 ps to 38 ps. Inhibiting respiration by cyanide resulted in notable increase of mean lifetime and decrease of mitochondrial fluorescence. Increase of DASPMI fluorescence on conditions elevating mitochondrial membrane potential has been attributed to uptake according Nernst distributions, to de-localisation of π electrons, quenching processes of the methyl pyridinium moiety and restricted torsional dynamics at the mitochondrial inner membrane. Accordingly, determination of anisotropy in DASPMI stained mitochondria in living XTH2 cells, revealed dependence of anisotropy on membrane potential. Such changes in anisotropy attributed to restriction of the torsional dynamics about the flexible single bonds neighboring the olefinic double bond revealed the previously known sub-mitochondrial zones with higher membrane potential along its length. Membrane-potential-dependent changes in anisotropy have further been demonstrated in senescent chick embryo fibroblasts. In conclusion, spectroscopic observations of excited-state kinetics of DASPMI in solvents and its behavior in living cells had revealed for the first time its localisation, mechanism of voltage sensitive fluorescence and its membrane-potential-dependent anisotropy in living cells. The simultaneous dependence of DASPMI photophysics on mitochondrial inner membrane viscosity and transmembrane potential has been highlighted.
The Na+,K+-ATPase was discovered more than 50 years ago, but even today the pumpcycle and its partial reactions are still not completely understood. In this thesis, Voltage Clamp Fluorometry was used to monitor the conformational changes that are associated with several electrogenic partial reactions of the Na+,K+-ATPase. The conformational dynamics of the ion pump were analyzed at different concentrations of internal Na+ or of external K+ and the influences on the conformational equilibrium were determined. To probe the effect of the internal Na+ concentration on the Na+ branch of the ion pump, oocytes were first depleted of internal Na+ and then loaded with Na+ using the epithelial sodium channel which can be blocked by amiloride. The conformational dynamics of the K+ branch were studied using different external K+ concentrations in the presence and in the absence of external Na+ to yield additional information on the apparent affinity of K+. The results of our Voltage Clamp Fluorometry experiments demonstrate that lowering the intracellular concentration of Na+ has a comparable effect on the conformational equilibrium as increasing the amount of K+ in the external solution. Both of these changes shift the equilibrium towards the E1/E1(P) conformation. Furthermore, it can be shown that the ratio between external Na+ and K+ ions is also a determinant for the position of the conformational equilibrium: in the absence of external Na+, the K+ dependent shift of the equilibrium towards E1 was observed at a much lower K+ concentration than in the presence of Na+. In addition, indications were found that both external K+ and internal Na+ bind within an ion well. Finally, the crucial role of negatively charged glutamate residues in the 2nd extracellular loop for the control of ion-access to the binding sites could be verified.
Structural analysis of the enzyme N-formylmethanofuran:tetrahydromethanopterin formyltransferase
(2008)
Archaea represent a third domain of life and some archaea exhibit a high degree of tolerance to extreme environmental conditions. Several members are methanogens and present in many anaerobic environments. Most methanogens are able to maintain growth simply on H2 and CO2 via the enzymatically catalyzed reaction 4H2 + CO2 > CH4 + 2 H2O. The archaeon Methanopyrus kandleri grows optimally at temperatures of 84°C to 110°C, pH values of 5.5 to 7.0 and NaCl concentrations 0.2% to 4%. The enzyme N-formylmethanofuran tetrahydromethanopterin formyltransferase (MkFTR) catalyzes the transfer of a formyl group from the cofactor N-formylmethanofuran (FMF) to the cofactor tetrahydromethanopterin (H4MPT), the second step of the above reaction. X-ray crystallographic analysis yielded insights into the structure and function of MkFTR, (1) the MkFTR monomer exhibits a pseudo-two fold structure suggestive of an evolutionary gene duplication. (2) The structure is a D2 homo-tetramer with prominent cleft-like surface features. Analysis of the interface contacts showed that the tetramer is best described as a dimer of dimers. The clefts were associated with the monomer:monomer interface and were weakly occupied by extra electron density which might be attributed to the H4MPT analog folate. (3) This suggested that the clefts are active sites and their association with oligomer interfaces suggested a basis for the dependence of activity on oligomerization. (4) The thermal stability of MkFTR most likely arises from the greater number of H- and ionic-bonds within the monomer and between monomers with respect to mesophilic protein structures. (5) The structure showed a large number of surface exposed negatively charged, glutamate and aspartate residues. These residues explain the salt dependent oligomerization, as only at high enough salt concentration is the electrostatic charge compensated by cation binding and neutralized allowing oligomerization. (6) These residues also improve the solubility of MkFTR at high salt concentration by increased charge repulsion. (7) Comparison of MkFTR structures from low and hight salt conditions showed that surface glutamate residues bind slightly more water molecules at high salt conditions further contributing to MkFTR solubility at high salt concentration.
By translocating proteasomal degradation products into the endoplasmic reticulum (ER) for loading of major histocompatibility complex (MHC) class I molecules, the ATP binding cassette (ABC) transporter associated with antigen processing (TAP) plays a pivotal role in the adaptive immunity against infected or malignantly transformed cells. A key question regarding the transport mechanism is how the inter-domain communication and conformational dynamics of the TAP complex are connected during the peptide transport. To identify residues involved in this processes, we evolved a Trojan horse strategy in which a small artificial protease is inserted into antigenic epitopes. After binding, the TAP backbone in contact is cleaved, allowing the peptide sensor site to be mapped by mass spectrometry. Within this study, the peptide sensor and transmission interface have been identified. This region aligns with the cytosolic loop 1 (CL1) of Sav1866 and MsbA. Based on a number of experimental data and the homology to the bacterial ABC exporter Sav1866, we constructed a 3D structural model of the core TAP complex. According to this model, the CL1 and CL2 of TAP1 are extended cytosolic loops connecting the transmembrane helices (TMH) 2 and 3, and TMH4 and 5 respectively, and contact both nucleotide binding domains (NBDs) of the opposite subunit. In contrast to exporters, the cytosolic loop (named L-loop) of BtuCD importer is much shorter, and contacts only one NBD. The data confirm that the CL1 of TAP1 functions as signal transducer in ABC exporters, because it does not interfere with substrate binding but with substrate transport. The peptide contact site identified herein is restructured during the ATP hydrolysis cycle. Importantly, TAP showed a structural change trapped in the ATP hydrolysis transition state, because direct contact between peptide and CL1 is abolished. By cysteine scanning, the most conserved residues within CL1 were identified, which disrupted the tight coupling between peptide binding and transport. Together with Val-288, these residues are essential in sensing the bound peptide and inter-domain signal transmission. To characterize the molecular architecture of CL1, a convenient and minimally perturbing approach was used, which combined cysteine substitution in the CL1 region and determination of accessibility to thiol specific compounds with different properties. These studies revealed that the N-terminal region of CL1 has a good accessibility for hydrophilic (iodoacetamidofluorescein, IAF) and amphiphilic probes (BODIPY maleimide, BM), whereas the C-terminal region is accessible for hydrophobic probe (coumarin maleimide, CM). Kinetic studies of fluorescence labeling suggest that this region displayed a different accessibility to probes when the protein undergoes distinct conformations (e. g. nucleotide free state), thereby reflecting conformational transitions. Fluorescence labeling with BM induces a lost of peptide transport, whereas the peptide binding remains unaffected. These results indicate that covalent modifications of the CL1 residues influenced the inter-domain communication between transmembrane domain (TMD) and NBD. The X-loop is a recently discovered motif in the NBD of ABC exporters, which stays in close contact to the CLs. Moreover, because the X-loop precedes the ABC signature motif, it probably responds to ATP binding and hydrolysis and may transmit conformational changes to the CLs. By substitution of the highly conserved Glu-602 of TAP2 with residues that have different chemical properties, it was shown for the first time that the X-loop is a functional important element, which plays an key role in coupling substrate binding to downstream events in the transport cycle. We further verified domain swapping in the TAP complex by cysteine cross-linking. The TAP complex can be reversibly arrested either in a binding or translocation incompetent state by cross-linking of the X-loop to CL1 or CL2, respectively. These results resolve the structural arrangement of the transmission interface and point to different functions of the cytosolic loops in substrate recognition, signaling and transport.
Cytochrome c oxidase (CcO), also called Complex IV of the aerobic respiratory chain, is located in the plasma membrane of prokaryotes and in the inner mitochondrial membrane of eukaryotes. The redox energy of dioxygen reduction is used to translocate protons across the membrane resulting in an electrochemical proton gradient. The generated proton gradient is exploited by the adenosine-5’-triphosphate synthase. In this work, bacterial four-subunit aa3-Type CcO from Paracoccus denitrificans (ATCC 13543, 4 SU-wt ATCC CcO) was used for analyses. 1) The recombinant homologously produced 4 SU-wt CcO (4 SU-wt rec CcO) was functionally compared with the native 4 SU-wt ATCC CcO. The 4 SU-wt rec CcO showed functional deficiencies as determined by UV-vis spectroscopy and electron paramagnetic resonance (EPR) studies. Total X-ray Reflection Fluorescence measurements show in both wild type CcOs the same ratio of the redoxactive Fe and Cu (2 Fe : 3 Cu) indicating full complement of the functional metals. If CcO contains only subunit I and II, it loses its functional integrity during continuous turnover activity. The importance of subunit III for integrity of CcO was demonstrated using 2 SU-wt rec CcO. Crystallisation trials of suicide inactivated 2 SU-wt rec CcOs have been ineffective using standard crystallisation conditions. Crystals of active 2 SU-wt rec CcO (positive control) have been obtained under these conditions and this result indicates possible structural changes in suicide inactivated 2 SU-wt rec CcO. The structure of active 2 SU-wt rec CcO was determined to 2.25 Å resolution. 2) Terminal oxidases require four electrons for the cleavage of the dioxygen bond (O=O). In general, the catalytic cycle of CcO is described by the electron input and thus by the different redox states of the metal centres: the O, E, R, P and F state. The two-electron reduced R intermediate is able to donate four electrons for dioxygen reduction forming the P state. The P intermediate is an oxoferryl state implying the lack of an electron for the R -> P transition, because the metal centres can only provide three electrons (Fe+II forms Fe+IV and Cu+II forms Cu+I). The P state, where the dioxygen bond is already broken, shows an oxoferryl state (FeIV=O2-) and a nearby tyrosine is proposed to form a tyrosyl radical representing the donor of the missing electron. H2O2-induced artificial intermediates provide the opportunity to investigated different catalytic intermediates in detail. Mixing equimolar amounts of H2O2 to CcO in the O state induces the "two-electron" reduced PH state at high pH and the electronically equal "two-electron" reduced F• H state at low pH. The addition of an excess amount of H2O2 leads to the three-electron reduced FH state. Functional studies using the 4 SU-wt ATCC CcO have demonstrated a bound peroxide (O- - O-) intermediate during the catalytic cycle. Using EPR it was previously shown that Y167 hosts a radical species in PH/F• H state which suggests that Y167 could provide this "missing electron". While X-ray structural models of CcO and Fourier-transformed infrared (FTIR) measurements of oxygenated ("pulsed") 4 SU-wt ATCC CcO suggest a bound peroxide in the O state, UV-vis and EPR spectroscopic studies indicate that other intermediates may also contain such peroxide species. Equimolar and excess amounts of H2O2 induce the PH/F• H and FH states, respectively and catalase treatment of the FH state leads, contrary to the natural direction of the catalytic cycle, to the apparent transition of the FH -> PH/F• H states, which is accompanied by reappearance of an EPR signal from the Y167• radical. The novel PFH/F• FH states are presented here and we postulate that the FH state hosts a superoxide (or peroxide) adduct at CuB in the binuclear site. In addition, the novel P10 state is also introduced having a maximum at lambda = 612 nm in the difference absorption spectrum (minus the O state). The P10 state is induced by mixing CcO in the O state with a pH 10 buffer. This pH 10 induced state resembles standard P states such as PCO, PH and PR. However, the P10 state evolves out of the O state without addition of reduction equivalents. Using EPR spectroscopy it was shown that Y167 hosts a radical species in the P10 state such as in the PH state. In summary, all functional data presented here provide evidence for a peroxide bound during the O state. Finally, a new model for the natural catalytic cycle is proposed. If the O state contains a peroxide, it is also likely that the E and R state contain this species. Even the oxoferryl intermediates P and F states may complex a peroxide at CuB in the binuclear site. 3) The amino acid residue Y167, which hosts the radical in the PH/F•H states, is not directly part of the binuclear site of CcO. For identification of the primary electron donor, two tryptophan variants of CcO, W272F and W164F, which are located nearby the binuclear site, were produced. Evidence is provided that W272 is a kinetically fast electron donor for the O2 molecule. The electron is replenished by Y167, or probably by Y280 in the natural cycle. The Y167 radical is detectable by EPR spectroscopy after treatment with equimolar amounts of H2O2 in the active variant W164F, but is absent in the inactive variant W272F. 4) CcO contains two proton conducting pathways, the D- and the K-pathway. Proteoliposomes of the variants H28A and D30N, mutations located at the entrance of the D-pathway, both show the identical proton pumping activity as the 4 SU-wt rec CcO (pumped H+/e- = 1). The variant N113D shows abolished proton pumping (pumped H+/e- = 0), but a relative high cytochrome c oxidation activity (63 %). G196D displays no cytochrome c oxidation and proton pumping activity. Overall, the addition or removal of a negative charge within the D-pathway such as in D124N, N131D, N113D and G196D leads to a decoupled phenotype indicating the high degree of electrostatic coupling in CcO.
Eine in vivo Modifizierung von Blutstammzellen wäre für eine Reihe gentherapeutischer Therapieansätze vorteilhaft. Dies würde voraussetzen, dass retrovirale Vektoren gezielt auf Blutstammzellen ausgerichtet werden können. Für dieses sogenannte Zelltargeting bietet sich das vom Milznekrose-Virus von Vögeln (SNV) abgeleitete Vektorsystem an, bei dem die Rezeptorbindungsdomäne des Env-Proteins modifiziert werden kann. Im Rahmen der vorliegenden Arbeit sollte ein SNV-basierter retroviraler Zelltargeting-Vektor entwickelt werden, der einen selektiven Gentransfer in die primären humanen CD34-positiven hämatopoetischen Zellen ermöglicht. Zur weitergehenden Charakterisierung des SNV-Vektorsystems sollte geklärt werden, ob das Env-Protein des SNV ein mit anderen gamma-retroviralen Env-Proteinen vergleichbares R-Peptid aufweist, dessen mögliche Rolle bei viralem Zelleintritt ebenfalls untersucht werden sollte. Um eine Zielzell-Spezifität des SNV-Vektors zu erreichen, wurde die gesamte SU-Domäne des SNV-Env-Proteins mit einem einkettigen Antikörperfragment (scFv) ersetzt, das gegen das CD34 Molekül gerichtet ist,. Mit diesem modifizierten Env gelang es, [(antiCD34-TM)SNV]-Vektorpartikel herzustellen, die spezifisch CD34-positive Zellen transduzierten. Essentiell für die Erzeugung solcher Vektoren war die Etablierung einer stabilen Verpackungszelllinie, die Vektorpartikel mit einem Titer von 2x105 i.E./ml produzierte. In Transduktionsexperimenten mit verschiedenen Zelllinien wurde gezeigt, dass [(antiCD34-TM)SNV]-Vektoren eine deutliche Präferenz für CD34+-Zellen und nicht für CD34--Zellen besitzen, wobei der Unterschied in der Transduktionseffizienz zwischen CD34-positiven und –negativen Zellen um den Faktor 100 lag. [(antiCD34-TM)SNV]-Vektoren waren in der Lage, den Reportergentransfer auch in primäre humane Stammzellen zu bewirken. Hierzu wurde ein Transduktionsprotokoll so optimiert, dass die aus dem Nabelschnurblut isolierten CD34+-Zellen transduziert werden konnten. Der für diese Zielzellen bestimmte Vektortiter betrug bis zu 2x106 i.E./ml. In einem Gemisch von primären CD34+- und CD34--Zellen konnte der Vektor zwischen dem Target- und Nontarget-Zellen unterscheiden. Somit wurde zum ersten Mal nicht nur Spezifität, sondern auch Selektivität des SNV-Vektorsystems demonstriert. Dieses Ergebnis ist für eine Weiterentwicklung des Vektors für die in vivo Anwendung in Rahmen einer Gentherapie eine wichtige Voraussetzungen. Im zweiten Teil der Arbeit wurde der Fusionsvorgang bei Virus-Eintritt näher untersucht. Anlass dafür war die experimentelle Beobachtung, dass das Env-Protein des SNV bei der Virusknospung von einer viralen Protease innerhalb der zytoplasmatischen Domäne proteolytisch gespalten wird. Ein Sequenz-Vergleich des SNV TM-Proteins mit dem MLV TM-Protein ergab Hinweise darauf, dass es sich um die Abspaltung des sogenannten R-Peptides analog zu MLV handeln könnte. Die Expression von SNV-Env- Mutanten mit einem entsprechend verkürzten C-Tail (Env delta R) führte zur Synzytien-Bildung. Die bildung hochfusogener Oberflächenhüllproteine durch die Abspaltung des R-Peptids konnte auch für andere gamma-Retroviren gezeigt werden. Die Synzytienbildung konnte quantitativ unter den Env delta R-Varianten verschiedener gamma-Retroviren in einem etablierten Fusionsassay verglichen werden. Das Env delta R des endogenen Retrovirus des Schweins (PERV) des Typs A erwies sich als potentestes Fusionsagens. Als Folge der Ergebnisse der vorliegenden Arbeit wurde postuliert, dass die Abspaltung des R-Peptides ein allgemeiner Mechanismus bei der Partikelreifung der gamma-Retroviren ist und eine fusionsregulierende Rolle besitzt. Eine Weiterentwicklung fusionsaktiver Env-Varianten als mögliche therapeutische Gene für eine Tumor-Gentherapie ist somit diskutierbar.
The focus of this thesis has been to further advance and develop existing NMR techniques for the study of protein folding. In order to do so, experimental as well as theoretical approaches have been pursued. From the theoretical side, a successful attempt to the development of a general theory for the treatment of residual dipolar couplings in the case of unfolded proteins has been undertaken. Information contained in residual dipolar couplings is especially valuable due to its long-range nature. The dynamic character of unfolded states of proteins, which may be composed of distinct subsets of conformations, renders reliable interpretation of data a non-trivial task. Statistical-coil-based approaches have been shown to be powerful in data interpretation. A consistent theory based on fundamental polymer physics, however, had not been presented so far. The herein presented model addresses this problem building on the original work by Annila and co-workers. In this work, several shortcomings have been identified. These shortcomings have been corrected here leading to a general approach for the treatment of residual dipolar couplings of unfolded proteins. More specifically, it is shown that, in the case of fully unfolded proteins aligned by a steric mechanism, basic dependencies of dipolar couplings such as on chain length and location with in the chain can be analysed in simple analytical terms. The main predictions of the model are compared to experimental data showing reasonable agreement. The presented mathematical framework is principally suited for various improvements which could include the treatment of long-range interactions and of the actual geometry of the given aligment medium. From the experimental side, bovine alpha-lactalbumin has been chosen as a model system for the development of improved time-resolved 1D NMR methods aiming at the observation of conformational transitions by kinetic means. The presented results show that high-quality data can now be obtained at protein concentrations as low as 100uM. Rate constants characterising distinct conformational transitions of up to 8/s have been measured. These are the fastest rate constants which have been reported so far for protein folding events. The NMR data supplemented by complementary biophysical data furthermore demonstrate that the folding of bovine alpha-lactalbumin is more complex than has been anticipated. All data are consistent with a triangular folding mechanism involving parallel pathways of folding for formation of the native state of the protein. Interestingly, such a folding mechanism has also been found for the highly structurally homologous protein lysoyzme from hen egg white. Evidence is presented that the guiding role of long-range interactions in the unfolded state of lysoyzme for mediating intersubdomain interactions during folding is replaced in the case of bovine alpha-lactalbumin by the Ca2+ binding site.