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Die Kernspinresonanz(NMR)-Spektroskopie ist ein leistungsstarkes analytisches Werkzeug. Allerdings ist ihre Empfindlichkeit aufgrund geringer Wechselwirkungs-energie zwischen den Kernspins und dem externen Magnetfeld begrenzt. Die dynamische Kernpolarisation (DNP) erhöht DNP die Empfindlichkeit der NMR, indem sie die Polarisation von ungepaarten Elektronenspins auf die benachbarten Kernspins überträgt. In den letzten Jahrzehnten hat die DNP bei hohen Magnetfeldern erneut an Aufmerksamkeit gewonnen, bedingt durch die Verfügbarkeit leistungsstarker Gyrotron-Mikrowellen(mw)-Quellen. Jedoch wurde die Anwendung von DNP für Flüssigkeiten im Vergleich zu Festkörperproben bei niedrigen Temperaturen (≈100 K) weit weniger erforscht. Zwei Gründe können dafür hauptsächlich benennt werden. Bei hohen Magnetfeldern (entsprechend hohen mw-Frequenzen) wird die mw-Strahlung sehr stark von Flüssigkeiten absorbiert, was zu einer starken Erwärmung führt. Darüber hinaus sind die Translations- und Rotationsdynamik der Radikale und Target-Molekülen nicht schnell genug, um Spectraldichten bei den hohen mw-Frequenzen zu erzeugen, die für eine Overhauser-Effekt (OE) DNP Verstärkung benötigt werden. In dieser Arbeit wird gezeigt, Flüssigzustands-DNP bei hohen Magnetfeldern, insbesondere bei 9,4 T, mit hocheffizienten DNP-Probenköpfen möglich ist.
Der von skalaren Hyperfein-Wechselwirkung (hfWW) angetriebene OE ist für Flüssigzustands-DNP-Forschungen von besonderem Interesse, da der von der Theorie vorhergesagte Mechanismus auch bei hohen Magnetfeldern noch effizient ist. In der vorliegenden Arbeit wurde eine Methode zur Vorabprüfung potenzieller DNP-Kandidaten durch Messungen ihrer paramagnetischen NMR-Verschiebungen vorgeschlagen und untersucht. Wir beobachtete signifikante 13C-skalare OE DNP-Verstärkungen bis zu 50 bei den ausgewählten kleinen Biomolekülen, einschließlich Imidazol, Indol, verschiedene Aminosäuren und Kohlenhydraten. Das Lösungssystem wurde auch von organischen Lösungsmitteln auf Wasser erweitert.
Im Kontext von dipolarer OE DNP haben wir den Beitrag der Rotation des Radikals neben der Translationsbewegung zwischen Radikal und Target-Molekül zur OE DNP-Effizienz systematisch untersucht, indem wir verschiedene Nitroxidderivate mit unterschiedlichen Ringgeometrien und Substituenten verwendet haben. Mithilfe eines Models, das eine 'out-sphere' Translationsbewegung und eine 'inner-sphere' Rotationsbewegung des Radikal-Lösungsmittel-Komplexes enthält, konnte unsere Beobachtungen quantitativ simuliert werden. Außerdem wurde ein anderes Model untersucht, das eine Translationsbewegung mit der Rotation von Radikalen, bei denen das ungepaarte Elektron nicht im Zentrum sitzt, kombiniert.
Eine weitere neue Entdeckung in der DNP bei hohen Magnetfeldern waren der beobachtete SE (Solid-Effekt) an Lipidmolekülen mit BDPA-Radikal oberhalb der Lipidphasen-übergangstemperatur. Die neue Anwendung von SE DNP bietet einen alternativen Mechanismus zur OE DNP in Flüssigkeiten bei hohen Magnetfeldern und könnte möglicherweise auf Makromoleküle mit relativ langsamer Rotationsbewegung angewendet werden.
Wir haben zusätzliche Untersuchungen an den Lipiddoppelschichten mit Nitroxid-radikale durchgeführt, basierend auf dem beobachteten 1H DNP-Verstärkungen in einer viskosen Lipidumgebung bei 9,4 T . Durch Messung des Feldprofils wurden DNP-Verstärkungen durch OE und SE in Abhängigkeit ihrer relativen Verschiebungen von der Elektronen-Larmor-Frequenz bestimmt. Die individuelle OE DNP-Effizienzen für Protonen des Wassers, der Lipid-Cholin-Kopfgruppen oder der Lipid-Acylketten wurde bestimmt. Dadurch wird ein quantitativer Vergleich mit MD-Simulationen ermöglicht. Obwohl die von der MD-Simulationen vorhergesagten DNP Kopplungsfaktoren noch deutliche Abweichungen von den experimentellen Beobachtungen aufweisen, wird die schnelle Dynamik nahe der Elektronen-Larmor-Frequenz, die für einen erfolgreichen OE DNP Transfer erforderlich ist, von den MD-Simulationen gut erfasst.
In der Arbeit wurden auch zwei unterschiedliche Dreifachresonanz-DNP-Experimente durchgeführt. Zum einen wurde 13C OE DNP unter 1H-Entkopplung in wässriger Natriumpyruvatlösung, und zum anderen 13C-NMR von Glycin, verstärkt durch SE DNP an 1H zusammen mit einem 1H-13C INEPT-Polarisationstransfer, im Rahmen dieser Doktorarbeit durchgeführt.
Die Genexpression in prokaryotischen Organismen unterliegt einer Vielzahl von Regulationsmechanismen, deren Aufgabe darin besteht, die Zelle an sich ändernde Umweltbedingungen anzupassen, um so das Überleben des prokaryotischen Organismus zu gewährleisten. Eine Reihe von Hitzeschock- und Virulenzgenen unterliegen temperaturabhängiger Regulation, mit dem Ziel, die Zelle an die sich ändernde Umgebung anzupassen. Die Messung der Temperatur erfolgt dabei über temperatursensitive RNA-Elemente, sogenannte RNA-Thermometer, die sich üblicherweise in der 5’-untranslatierten Region der Gene befinden, die sie regulieren. Sie unterdrücken die Translationsinitiation, indem sie die Shine-Dalgarno (SD)-Sequenz bei niedrigen Temperaturen über Basenpaarung blockieren und dadurch die Bindung des Ribosoms verhindern. In Kapitel 2 der vorliegenden Arbeit wurde die thermodynamische Stabilität der temperatursensitiven Haarnadelschleife 2 des Salmonella FourU RNA-Thermometers über einen breiten Temperaturbereich analysiert. Freie Enthalpie-, Enthalpie- und Entropie-Werte für die Basenpaaröffnung der einzelnen Nukleobasen innerhalb der RNA wurden über die temperaturabhängige Messung von Iminoprotonen-Austauschraten mittels NMR-Spektroskopie bestimmt. Die Austauschraten wurden für die Wildtyp-RNA und die A8C-Mutante bestimmt und miteinander verglichen. Es zeigte sich, dass die Wildtyp-RNA durch das außergewöhnlich stabile Basenpaar G14-C25 stabilisiert wird. Dies konnte durch die Untersuchung der Entfaltung der destabilisierenden G14A-C25U-Doppelmutante verifiziert werden. Über CD-spektroskopsiche Untersuchungen konnte der globale Entfaltungsübergang der jeweiligen RNA analysiert werden. Das Mismatch-Basenpaar innerhalb des Wildtyp-RNA-Thermometers (A8-G31) erwies sich als Ursache für die geringere Kooperativität des Entfaltungsübergangs der Wildtyp-RNA im Vergleich zur A8C-Mutante. Enthalpie- und Entropie-Werte für die Basenpaaröffnung einzelner Nukleotide sind für beide RNAs linear korreliert. Die Steigungen dieser Korrelationen stimmen mit den Schmelzpunkten der RNAs überein, die über CD-Spektroskopie bestimmt wurden. Entfaltung der RNA tritt also genau dann auf, wenn alle Nukleotide gleiche thermodynamische Stabilitäten besitzen. Die Resultate sind mit einem Reißverschluss-Mechanismus für die RNA-Helix Entfaltung konsistent und erklärbar, in dem die Stapelinteraktionen der benachbarten Nukleobasen innerhalb der RNA-Helix verantwortlich für die beobachtete Kooperativität sind. Die Ergebnisse weisen auch auf die Wichtigkeit der RNA-Lösungsmittel-Interaktion für die Stabilität der RNA-Struktur hin. So konnten langreichweitige Wechselwirkungen der A8C-Mutation auf die Stabilität der G14-Nukleobase identifiziert werden, die möglicherweise über die Hydrathülle der RNA vermittelt werden. Schließlich konnte für das FourU-Motiv eine Mg2+-Bindestelle identifiziert werden, die die temperaturabhängige Stabilität des RNA-Thermometers beeinflusst. Es besteht also die Möglichkeit, dass Änderungen der intrazellulären Mg2+-Konzentration die Expression des agsA-Gens in vivo modulierend beeinflussen. In Kapitel 3 dieser Arbeit wurden die dynamischen Eigenschaften des Phosphodiesterrückgrats einer perdeuterierten cUUCGg-Tetraloop-14mer-RNA untersucht. Dazu wurden die Relaxationseigenschaften aller 31P-Kerne dieser RNA bei magnetischen Feldstärken von 300, 600 und 900 MHz untersucht. Dipolare Relaxationsbeiträge konnten unterdrückt werden, indem eine perdeuterierte RNA-Probe in einem D2O-Puffer verwendet wurde. Um die 31P-Relaxationsdaten (R1, R2) interpretieren zu können, wurde zusätzlich mittels Festkörper-NMR die Chemische Verschiebungsanisotropie (CSA) der 31P-Kerne des Phosphodiesterrückgrats bestimmt. Die Messungen wurden bei verschiedenen Salzkonzentrationen und unter unterschiedlichen Hydratationsbedingungen durchgeführt. Aus den Daten konnte ein 31P-CSA-Wert von 178.5 ppm im statischen Zustand (S2 = 1) bestimmt werden. Auf der Grundlage der durchgeführten R1- und R2-Messungen wurde eine Modelfree-Analyse durchgeführt, um Informationen über die schnellen Dynamiken des Phosphodiesterrückgrats zu erhalten. Die Resultate zeigen, dass die Dynamiken des Phosphodiesterrückgrats auf der Subnanosekundenzeitskala stärker ausgeprägt sind als die Dynamiken der Ribofuranosylreste und der Nukleobasen. Des Weiteren konnte gezeigt werden, dass die Dynamik einer individuellen Phosphatgruppe zu der jeweiligen 5’-benachbarten Nukleobase korreliert ist. In Kapitel 4 dieser Arbeit wird die Entwicklung neuer Methoden beschrieben, mit denen Torsionswinkelinformation aus der Analyse kreuzkorrelierter Relaxationsraten gewonnen werden können. Im ersten Teil des Kapitels wird die Entwicklung einer neuen NMR-Pulssequenz beschrieben, über die der glykosidische Torsionswinkel Chi in 13C,15N-markierten Oligonukleotiden bestimmt werden kann. Mit dem neuen quantitativen Gamma-HCNCH-Experiment ist es möglich, die dipolaren kreuzkorrelierten Relaxationsraten Gamma-C6H6-C1´H1´ (Pyrimidine) und Gamma-C6H6-C1´H1´ (Purine) zu messen. Die kreuzkorrelierten Relaxationsraten wurden an einer 13C,15N-markierten cUUCGg-Tetraloop-14mer-RNA bestimmt. Die aus den Raten extrahierten Chi-Winkel wurden mit bereits vorhandener Strukturinformation verglichen. Sie stimmen bemerkenswert gut mit den Winkeln der Kristallstruktur des Tetraloops überein. Zusätzlich wurde die neue Methode an einer größeren 30mer-RNA, dem „Stemloop D“ (SLD) aus dem Coxsackievirus-B3-Kleeblatt, getestet. Für die SLD-RNA wurde der Effekt von anisotroper Rotationsdiffusion auf die Relaxationsraten untersucht. Es konnte gezeigt werden, dass die Chi-Winkelbestimmung besonders für Nukleotide in der anti-Konformation sehr genau ist und die Methode eine eindeutige Unterscheidung von syn- und anti-Konformation zulässt. Im zweiten Teil von Kapitel 4 wird die Entwicklung des Gamma-HCCCH-Experiments beschrieben. Hierbei handelt es sich um eine neue NMR-Pulssequenz zur Messung der Gamma-C1´H1´-C3´H3´-Rate in 13C-markierten RNAs. Die Funktionsfähigkeit der neuen Methode wurde an einer cUUCGg-Tetraloop-14mer-RNA demonstriert. Zusätzlich dazu wurden die analytischen Gamma-C1´H1´-C3´H3´(P,nü_max)-, Gamma-C1´H1´-C4´H4´(P,nü_max)- und Gamma-C2´H2´-C4´H4´(P,nü_max)-Abhängigkeiten mathematisch hergeleitet. Die an der 14mer-RNA gemessenen Gamma-C1´H1´-C3´H3´-Raten wurden mit Hilfe der Gamma-C1´H1´-C3´H3´(P,nü_max)-Beziehung analysiert. Die Ergebnisse für die Pseudorotationsphase P sind konsistent mit Referenzwinkeln aus der 14mer-NMR-Struktur und den bereits bekannten (Gamma-C1´H1´-C2´H2´)/(Gamma-C3´H3´-C4´H4´)-Ratenverhältnissen. Die neue Methode liefert zusätzliche Informationen, um Konformation (P, nü_max) und Dynamik S2(C1´H1´-C3´H3´) der Ribosereste in RNA-Molekülen genauer beschreiben zu können. In Kapitel 5 dieser Arbeit wird die Entwicklung des 3D-HNHC-Experiments, einer neuen NMR-Pulssequenz, beschrieben. Dieses Experiment ermöglicht es, die H2-, C2- und N1-Resonanzen in Adenin-Nukleobasen 13C, 15N-markierter RNA-Oligonukleotide miteinander zu korrelieren. Die Funktionsfähigkeit der neuen Methode wurde an einer mittelgroßen, entsprechend markierten 36mer-RNA demonstriert. Die neue Methode vereinfacht die Zuordnung der Kerne der Adenin-Nukleobasen, da Zuordnungsmehrdeutigkeiten aufgrund überlappender Resonanzen in der 1H-Dimension aufgelöst werden können. In Kombination mit dem TROSY-relayed-HCCH-COSY-Experiment liefert das neue 3D-HNHC-Experiment das fehlende Glied für die Zuordnung der Imino-H3-Resonanzen der Uracil-Nukleobasen über das AU-Basenpaar hinweg zu den H8-Resonanzen der Adenin-Nukleobasen.
The development of resistance to multiple drugs is a major problem in treatment of number of infectious diseases and cancer. The phenomenon of multidrug resistance (MDR) is based on the synergetic interplay of a number of mechanisms such as target inactivation, target alteration, prevention of drug influx as well as active extrusion of drugs from the cell. The latter is mediated by over-expression of multidrug efflux pumps. The first discovered and the best characterized until now the human MDR transporter is P-glycoprotein. It is a member of the ATP binding cassette (ABC) superfamily and acts as an active transporter for a variety of anticancer agents using the energy released by ATP hydrolysis. The closest structure and functional homologue of P-glycoprotein found in bacteria is LmrA from Lactococcus lactis. The major goals of this work are to establish the selective isotope labelling of LmrA in Lactococcus lactis, to optimize LmrA sample preparation for solid-state NMR, and finally to perform first solidstate NMR investigations on LmrA shedding light on its catalytic cycle and substrate binding. For a long time the solid-state NMR applications to biological science has been limited to investigation of small molecules mostly. Recently, the solid-state NMR methods have shown potential for structuraland non-perturbing, site directed functional studies of large membrane proteins as well as ligands bound to them. However, to our knowledge neither selective isotope amino acid labelling of any ABC transporter, nor NMR investigations on full-length ABC transporter have been reported to date. Solidstate NMR experiments on a membrane protein require reconstitution of purified proteins into a membrane environment at a high density and either isotopic enrichment of the protein or bound drugs or inhibitors. Therefore, the large quantities of LmrA reconstituted at a high density in lipid membranes, sufficient for advanced NMR studies have been produced and its functional state in reconstituted form has been assessed. In the next step, a procedure for cost effective selective amino acids isotope labelling of LmrA in Lactococcus lactis has been established. Using this protocol deuterium alanine labelled LmrA reconstituted into E. coli liposomes has been prepared. Deuterium NMR has been used extensively to assess the proteins dynamics in past. However, it has never been applied to ABC transporter. Here, we report 2H NMR on selective alanine isotope labelled LmrA which has been used to shed light on the dynamics changes in the protein occurred under AMP-PNP, non-hydrolysable ATP analogue, binding and in ATP/ADP-Vanadate trapped state. It has been found that the major conformation changes affecting the protein motional characteristics occur in the ATP binding domains but not in the transmembrane domains. Additionally, the binding of several substrates to LmrA has been studied by fluorescence spectroscopy as well as by 19F and 31P solid-state NMR. The binding constants for several LmrA substrates have been obtained by fitting the concentration dependant tryptophan intrinsic fluorescence quenching curves. Based on the fluorescence studies and solid-state NMR data, the conformation changes in LmrA under substrate binding have been discussed. In addition, the preferable location of nine LmrA and P-glycoprotein substrates within the model membrane has been studied via 1H-MAS-NOESY-NMR. The results have been interpreted with respect to LmrA and P-glycoprotein binding site accessibility from the membrane interface region.
Solid state NMR is a emerging method for the study of membrane proteins, which has received much interest in recent years. Limiting the study of many pharmacologically relevant targets, are the often long measuring times, required to obtain especially higher dimensional solid state NMR spectra of good quality. To address this problem, multiple methods where developed in this work, which can be categorized into two groups. The first set of methods aims at the quality of certain spectra, by implementing a spectral filter, which increases the fidelity of the measured data. The second set of methods, addresses the problem of long measuring times directly, by increasing the sensitivity per unit time, as could be shown, for example, on homo- and heteronuclear singlequantum-singlequantum correlation experiments. The gains in measuring time for the latter group of methods are typically in the order of 2-3, but some experiments allow multiple methods to be employed simultaneously, which can lead to a decrease in measuring time of a factor of up to 8. It is important to mention, that none of the methods introduced in this work require any equipment in addition to the conventional setup present in most sold state NMR laboratories and no changes or addition to the samples under study are required. Therefore the gains reported in this work come at no extra cost and require only minimal implementation effort on the side of the user.
X-ray structure of the Na+-coupled Glycine-Betaine symporter BetP from Corynebacterium glutamicum
(2009)
Cellular membranes are important sites of interaction between cells and their environment. Among the multitude of macromolecular complexes embedded in these membranes, transporters play a particularly important role. These integral membrane proteins perform a number of vital functions that enable cell adaptation to changing environmental conditions. Osmotic stress is a major external stimulus for cells. Bacteria are frequently exposed to either hyperosmotic or hypoosmotic stress. Typical conditions for soil bacteria, such as Corynebacterium glutamicum, vary between dryness and sudden rainfall. Physical stimuli caused by osmotic stress have to be sensed and used to activate appropriate response mechanisms. Hypoosmotic stress causes immediate and uncontrolled influx of water. Cells counteract by instantly opening mechanosensitive channels, which act as emergency valves leading to fast efflux of small solutes out of the cell, therebydiminishing the osmotic gradient across the cell membrane. Hyperosmotic stress, on the other hand, results in water efflux. This is counterbalanced by an accumulation of small, osmotically active solutes in the cytoplasm, the so-called compatible solutes. They comprise a large variety of substances, including amino acids (proline), amino acid derivatives (betaine, ectoine), oligosaccharides (trehalose), and heterosides (glucosylglycerol). Osmoregulated transporters sense intracellular osmotic pressure and respond to hyperosmotic stress by facilitating the inward translocation of compatible solutes across the cell membrane, to restore normal hydration levels. This work presents the first X-ray structure of a member of the Betaine-Choline-Carnitine-Transporter (BCCT) family, BetP. This Na+-coupled symporter from Corynebacterium glutamicum is a highly effective osmoregulated and specific uptake system for glycine-betaine. X-ray structure determination was achieved using single wavelength anomalous dispersion (SAD) of selenium atoms. Selenium was incorporated into the protein during its expression in methione auxotrophic E. coli cells, grown in media supplemented with selenomethionine. SAD data with anomalous signal up to 5 Å led to the detection of 39 selenium sites, which were used to calculate the initial electron density map of the protein. Medium resolution and high data anisotropy made the structure determination of BetP a challenging task. A specific strategy for data anisotropy correction and a combination of various crystallographic programs were necessary to obtain an interpretable electron density map suitable for model building. The crystal structure of BetP shows a trimer with glycine-betaine bound in a three-fold cation-pi interaction built by conserved tryptophan residues. The bound substrate is occluded from both sides of the membrane and aromatic side chains line its transport pathway. Very interestingly, the structure reveals that the alpha-helical C-terminal domain, for which a chemo- and osmosensory function was elucidated by biochemical methods, interacts with cytoplasmic loops of an adjacent monomer. These unexpected monomer-monomer interactions are thought to be crucial for the activation mechanism of BetP, and a new atomic model combing biochemical results with the crystal structure is proposed. BetP is shown to have the same overall fold as three unrelated Na+-coupled symporters. While these were crystallised in either the outward- or inward-facing conformation, BetP reveals a unique intermediate state, opening new perspectives on the alternating access mechanism of transport.
Die Familie der Proteorhodopsine (PR) besteht aus Hunderten von PR Molekülen, die unter Lichteinwirkung Protonen pumpen und somit eine bedeutende Rolle für die Energiegewinnung spielen könnten. Da der pKa Wert des Proton Akzeptors der Schiff‘schen Base (SB) (~7.2) dem pH Wertes der Ozeane (~7.9) ähnelt, wird auch über eine regulatorische Funktion spekuliert. Wird in Erwägung gezogen, dass 24 000 PR Moleküle pro SAR86 Zelle vorhanden sind (Beja et al. 2001) und dass 13% der Bakterien der Meeresoberfläche PR besitzen (Sabehi et al. 2005) liefert dieses Protein wahrscheinlich einen bedeutenden Energiebeitrag neben der Photosynthese. Einblicke in den Mechanismus der Energieumwandlung erfordern sowohl die Untersuchung des Chromophores, welches die Lichtenergie absorbiert als auch der Struktur des Apoproteins, das durch die Generierung eines Protonengradienten zur Energiegewinnung beiträgt. Der Fokus der Doktorarbeit liegt auf dem Chromophor und seiner Umgebung. Eine erste Charakterisierung der SB und des Retinals erfolgt durch UV/VIS und NMR Messungen (Pfleger et al. 2008). Die 13C chemische Verschiebungen von 10,11-13C2 Retinal und die 15N chemische Verschiebung der protonierten SB, gebildet durch K231, zeigt eindeutig, dass im Grundzustand nur eine Konformation der Retinals, all-trans, vorliegt. Die 15N chemische Verschiebung weist außerdem auf eine starke Wechselwirkung der SB mit ihren Gegenionen hin. Desweiteren kann durch Messungen der 15N chemischen Verschiebung der SB bei verschiedenen pH Werten der pKa Wert der SB abgeschätzt werden, auf ~12. Diese Stabilisierung der positiv geladenen protonierten Form der SB weist auf die Existenz eines Wasserclusters hin, das durch die hohe Dielektrizitätskonstante die protonierte Form der SB stabilisieren könnte. Um zu überprüfen, ob Wasser an der SB gebunden ist, wird ein sogenanntes 15N-1H HETCOR Experiment durchgeführt. Der Bereich der 15N chemischen Verschiebung der SB korreliert mit einer Protonenresonanz bei ~5 ppm, welche im Bereich einer Wasserresonanz liegt und die durch D2O austauschbar ist. Dies indiziert eine wichtige Bedeutung von Wasser in der Nähe der SB für die Funktion von PR. Der Einfluss von Mutationen des Histidins H75 und des Aspartats D97 auf die 15N chemische Verschiebung der SB sowie die Auswirkung von Histidinmutationen auf das Chromophor deuten eine direkte Wechselwirkung von Aspartat 97 und der SB an, nicht aber eine direkte Wechselwirkung von H75 und der SB. Neben dem Chromophor ist außerdem das Signalpeptid Gegenstand der Untersuchung der Doktorarbeit. Motivation für die Untersuchung war die Inhomogenität der Proben, die im Zusammenhang mit ungleich prozessiertem PR stehen könnten. Ein zweiter Teil beschäftigt sich mit neuen Konzepten der Datenaufnahme, da das S/R in der Festkörper NMR ein limitierender Faktor darstellt. Diese beinhalten Verstärkung der Relaxation (RELOAD) sowie die Refokussierung von T2 bei Verwendung eines Prozessierungsschrittes, der „half echo alternating transformation“ (HEAT).
LmrA is a member of the ATP Binding Cassette (ABC) transporter family of membrane proteins and a structural and functional homologue of P-glycoprotein1, 2. ABC-transporters share a common architecture of two transmembrane domains and two nucleotide binding domains. The NBDs are highly conserved in this transporter family whereas the TMDs are highly diverse3. The TMDs recognize the substrate and the NBDs bind and hydrolyze ATP and thus contribute the energy for substrate translocation. ABC transporters as a protein family transport a high number of substrates including peptides, nutrients, ions, bile acids, lipids and other lipophilic compounds. LmrA is a multidrug transporter that recognizes a number of hydrophobic substrates including fluorescent dyes and antibiotics1, 4-6. LmrA is a native protein of the gram-positive bacterium Lactococcus lactis. In this thesis, L. lactis was used as a homologous expression host for the preparation of LmrA for a variety of experiments. Wildtype LmrA as well as a number of cysteine mutants were successfully expressed in L. lactis, purified and subsequently characterized by a variety of biochemical assays (Chapter 4). LmrA can be expressed to very high amounts in L. lactis. The purification and reconstitution were optimized for the requirements of solid-state NMR experiments in this thesis. For the first time, an ABC transporter has been reconstituted in synthetic lipids to a ratio of up to 1:150 (mol/mol). LmrA was shown to be active under magic angle spinning conditions with these reconstitution ratios. By taking advantage of the slower ATP hydrolysis by LmrA ΔK388 (lysine deletion in the Walker A motif), a real-time 31P solid-state NMR ATPase assay was established (Chapter 5). This assay allowed, for the first time, the investigation of all phosphor nuclei during the ATP hydrolysis cycle of a membrane protein simultaneously and in real time7. This assay has been successfully adapted to investigate both ATP hydrolysis and substrate phosphorylation of diacylglycerol kinase (together with S. Wollschlag) and ATP hydrolysis at high temperatures of the thermophilic ABC transporter ABC1 from Thermos thermophilus (together with A. Zutz). In the course of this thesis, the gene for LmrA has been cloned into expression vectors suitable for Escherichia coli and the heterologous expression of LmrA was established (Chapter 4). The functionality of the heterologously expressed protein has been investigated and compared to L. lactis LmrA. In these experiments, LmrA was shown to yield a distinct multidrug resistance phenotype in its E. coli host and to show secondary active multidrug transport in the absence of ATP and presence of a proton gradient [Hellmich et al, in prep] (Chapter 4). Previously, it had been shown that LmrA acts as a seconadary active transporter when the NBDs are truncated8. The overexpression in minimal and defined medium and the purification of LmrA from E. coli have been optimized. Isotope labeling for ssNMR has been established and the first multinuclear ssNMR experiments have been carried out on a functional ABC transporter (Chapter 8). ABC transporters couple two cycles: upon ATP binding, the NBDs dimerize, hydrolyze the ATP, subsequently release Pi and ADP and finally dissociate. During this cycle, conformational changes are relayed to the TMDs which utilize the energy from ATP binding and/or hydrolysis to translocate the respective substrate. The prehydrolysis state can be trapped by beryllium fluoride, whereas the post-hydrolysis state of this cycle can be trapped by vanadate9-12. Trapping protocols for these reagents were successfully established for LmrA in this thesis (Chapter 4). This allowed for the investigation of different catalytic states by both ssNMR and EPR. A general 19F labeling protocol for membrane proteins has been established in the course of this thesis and successfully applied to proteorhodopsin (together with N. Pfleger)13 and LmrA (chapter 6). Single cysteine mutants of LmrA that line out the dimer interface have been labeled with a fluorine label for ssNMR. In the apo state, the 19F labeling indicates highly flexible transmembrane domains, a finding that is supported by 13C ssNMR and EPR measurements. The addition of drugs has a different effect on different positions within the LmrA dimer, therefore indicating that different drugs are recognized at a different position within the protein. For P-glycoprotein and LmrA it has been previously shown by biochemical methods that different drug binding sites co-exist. For a 19F label attached at position 314 (LmrA E314C), the spectra showed two distinct peaks with similar populations. This could hint towards a structural asymmetry within the LmrA dimer that might also be reflected in the alternating ATP hydrolysis at the NBDs. E314 has been specifically implicated with drug transport. Thus, structural asymmetry at this position might be functionally relevant for guiding a substrate through the transporter. Structural asymmetry within a homodimeric ABC transporter has also been shown for BtuCD, the E. coli vitamin B12 importer14. In addition, the conserved glutamates in EmrE, a small multidrug resistance protein, were shown to be asymmetric in the drug bound state15. Both, uniformly 13C/15N labeled as well as selectively amino acid type labeled LmrA has been investigated in different conformational states. Interestingly, significant dynamic changes in the b-sheet regions of LmrA (confined to the NBDs) were observed in the pre-hydrolysis (beryllium fluoride) and transition state (vanadate trapped) state. These were interpreted as the transition from a domain in fast conformational exchange in the apo state to one of intermediate exchange in the nucleotide bound state. A significant change in NBD mobility upon nucleotide binding was previously also shown with 2H ssNMR on LmrA16. By EPR it was shown that LmrA in both the vanadate and BeFx trapped states displays a significantly higher rigidity and therefore defined distances, whereas the apo state resembled a “floppy” protein with no preferred distance distribution. This concurs with data obtained from 19F ssNMR with fluorine labeled single-cysteine mutants. Here, in agreement with the EPR data, a higher label (and possibly) protein mobility was observed in the apo state displaying rather broad line widths. Upon trapping with vanadate, the line widths of the majority of fluorine-labeled mutants decreased due to an enhanced protein rigidity and a more homogenous environment of the fluorine labels. A similar observation was made when increasing the temperature that can be explained due to higher protein flexibility at increased temperatures. Solution NMR was employed to investigate the isolated soluble NBD of LmrA (Chapter 9). First 2D and 3D spectra were successfully obtained and could be utilized for a preliminary assignment of a significant fraction of residues. Additionally, binding of ATP and ADP in absence and presence of magnesium was investigated. Finally, the effects of peptides emulating the coupling helices of the full-length transporter on the soluble NBD were investigated. Strikingly, binding of one of these peptides only occurred in the presence of nucleotides (whereas the other showed no binding at all) hinting towards a tightly coupled regulation of the NBD and TMD during the substrate translocation/ATP hydrolysis cycle based on nucleotide binding.
The increasing resistance of almost all pathogenic bacteria to antibiotics (multidrug resistance) causes a severe threat to public health. The mechanisms underlying multidrug resistance include the induced over expression of multidrug transporters which extrude a variety of lipophilic and toxic substrates in an energy dependent fashion through the membrane out of the cell. These proteins are found in all transporter families. The work described in this thesis is dedicated to drug-proton antiporters from the small multidrug resistance (SMR) family. These efflux pumps with just four transmembrane helices per monomer are so far the smallest transporters discovered. Their oligomeric state, topology, three dimensional structure, catalytic cycle and transport mechanism are still rather controversial. Therefore, the aim of this thesis was to directly address these questions for the small multidrug resistance proteins Halobacterium salinarium Hsmr and Escherichia coli (E. coli) EmrE using a number of biophysical methods such as NMR, transport assays, mass spectrometry and analytical ultracentrifugation. Especially the work on Hsmr has been challenging due to the halophilic nature of this protein. In Chapter 1, key questions and the most important biophysical techniques are introduced followed by Material and Methods in Chapter 2. Depending on experimental requirements, cell free or ‘classical’ in vivo expression has been used for this thesis. Cell free expression as an option for the production of small multidrug transporters has been explored in Chapter 3. It has been possible to produce the SMR family members Hsmr, EmrE, TBsmr and YdgF in vitro. The expression of Hsmr was investigated in more detail under different experimental conditions. Hsmr was either refolded from precipitate or maintained in a soluble form during expression in the presence of detergents and liposomes. Furthermore, amino acids for which no auxotrophic strains were available could be labelled successfully. This expression system has been also used for preparing labelled samples of EmrE as described in Chapter 9. In vivo in E. coli expression of Hsmr, as described in Chapter 4, provided large amounts of proteins if fermenter production was used. Uniform labelling and selective unlabelling with stable isotopes (13C, 15N) for NMR spectroscopy was achieved in vivo in a more efficient and cost effective manner than using the cell free approach for this protein. Hsmr could be purified successfully from both in vitro and in vivo expression media. Hsmr is expressed in vivo and in vitro with N-terminal formylation. The Nterminal formylation is unstable and Hsmr in the presence of low salt concentrations was amenable to N-terminal degradation. It was found that Hsmr shows longest stability in Fos-ß-choline® 12 and sodium dodecyl sulphate, but best reconstitution conditions were found, when dodecyl maltoside is used and exchanged with Escherichia coli lipids. A molar protein lipid ratio of 1 to 100, amenable to solid state nuclear magnetic resonance, has been achieved. Sample homogeneity was shown by freeze fracture electron microscopy. The oligomeric state of Hsmr in detergent has been assessed by SDS PAGE, blue native PAGE, size exclusion chromatography, analytical ultracentrifugation and laser induced liquid bead ion desorption mass spectrometry (LILBID) as described in Chapter 5. A concentration and detergent dependent monomer-oligomer equilibrium has been found by all methods. The activity of Hsmr under the sample preparation conditions used here was shown using radioactive and fluorescence binding as well as fluorescence and electrochemical transport assays (Chapter 6). For transport studies, a stable pH gradient was generated by co-reconstitution of Hsmr with bacteriorhodopsin and subsequent sample illumination. Based on the observed long term stability of Hsmr in Fos-ß-choline® 12 and sodium dodecyl sulphate, liquid state NMR experiments were attempted in order to assess the correct folding of Hsmr in detergent micelles (Chapter 7). 1D proton and 2D HSQC spectra of U-15N Hsmr revealed a poor spectral dispersion, low resolution and only a small number of peaks. These are at least partly due to long rotational correlation times of the large protein detergent complex. This problem has been overcome by applying solid-state NMR to Hsmr reconstituted into E. coli lipids (Chapter 8). Uniform 13C labelled samples were prepared and two dimensional proton-driven spin diffusion and double quantum-single quantum correlation spectra were acquired successfully. Unfortunately, the spectral resolution was not yet sufficient for further structural studies. Reasons for the observed linebroadening could be structural heterogeneity or molecular motions which interfere with the NMR timescale. Therefore, the protein mobility has been probed using static 2H solid state NMR on Ala-d3-Hsmr. It could be shown, that parts of Hsmr are remarkably mobile in the membrane and that this mobility can be limited by the addition of the substrate ethidium bromide. Ethidium bromide as well as tetraphenylphosphonium (TPP+) is typical multidrug transporter substrates. The membrane interaction of TPP+ in DMPC membranes has been resolved by 1H MAS NMR. It was found that it penetrates into the interface region of the lipid bilayers and therefore behaves like many other transporter substrates adding to the hypothesis that the membrane could act as a pre-sorting filter. Finally, Chapter 9 is dedicated to the characterisation of the essential and highly conserved residue Glu-14 in EmrE by solid-state NMR. In order to avoid spectral overlap, the single Glu EmrE E25A mutant was chosen instead of the wildtype. The protein has been produced in vitro to take advantage of reduced isotope scrambling in the cell free expression system as verified by analytical NMR spectroscopy. Correct labelling of EmrE was tested by MALDI-TOF and solid-state NMR. The dimeric state of DDM solubilised EmrE has been probed by LILBID. The labelled protein was reconstituted into E. coli lipids to ensure a native membrane environment. Activity was determined by measuring ethidium bromide transport. Freeze fracture EM revealed very homogeneous protein incorporation even after many days of MAS NMR experiments. 2D 13C double quantum filtered experiments were used to obtain chemical shift and lineshape information of Glu-14 in EmrE. Two distinct populations were found with backbone chemical shift differences of 4 - 6 ppm which change upon substrate binding. These findings indicate a structural asymmetry at the assumed dimerisation interface and are discussed in the context of a model for shared substrate/proton binding. These studies represent the first successful use of cell free expression to prepare labelled membrane proteins for solid-state NMR and allow for the first time an NMR insight into the binding pocket of a multidrug efflux pump.
Antibiotic resistance of pathogenic bacteria is a major worldwide problem. Bacteria can resist antibiotics by active efflux due to multidrug efflux pumps. The focus of this study has been the mycobacterial multidrug transporter TBsmr because it belongs to the small multidrug resistance (SMR) family whose members are a paradigm to study multidrug efflux due to their small size. SMR proteins are typically 11-12 kDa in size and have a four-transmembrane helix topology. They bind cationic, lipophilic antibiotics such as ethidium bromide (EtBr) and TPP+, and transport them across the membrane in exchange for protons. To understand the molecular mechanism of multidrug resistance, we have to gain information about the structure and function of these proteins. The research described in this thesis aimed to deduce details about the topology, transport cycle and key residues of TBsmr using biophysical techniques. Solid-state NMR (ssNMR) can provide detailed insight into structural organization and dynamical properties of these systems. However, a major bottleneck is the preparation of mg amounts of isotope labeled protein. In case of proteoliposomes, the problem is compounded by the presence of lipids which have to fit into the small active volume of the ssNMR rotor. In Chapter 3, an enhanced protein preparation is described which yields large amounts of TBsmr reconstituted in a native lipid environment suitable for further functional and structual studies. The achieved high protein-to-lipid ratios made a further characterization by ssNMR feasible. The transport activity and oligomeric state of the reconstituted protein in different types of lipid was studied as shown in Chapter 4. The exact oligomeric state of native SMR proteins is still uncertain but a number of biochemical and biophysical studies in detergent suggest that the minimal functional unit capable of binding substrate is a dimer. However, binding assays are not ideal since a protein may bind substrate without completing the transport cycle which can only be shown for reconstituted protein in transport assays.By combining functional data of a TPP+ transport assay with information about theoligomeric state of reconstituted TBsmr obtained by freeze-fracture electron microscopy, it could be shown that lipids affect the function and the oligomeric state of the protein, and that the TBsmr dimer is the minimal functional unit necessary for transport. The transport cycle must involve various conformational states of the protein needed for substrate binding, translocation and release. A fluorescent substrate will therefore experience a significant change of environment while being transported, which influences its fluorescence properties. Thus the substrate itself can report intermediate states that form during the transport cycle. In Chapter 5, the existence of such a substrate-transporter complex for the TBsmr and its substrate EtBr could be shown. The pH gradient needed for antiport has been generated by co-reconstituting TBsmr with bacteriorhodopsin. The measurements have shown the formation of a pH-dependant, transient substrate-protein complex between binding and release of EtBr. This state was further characterized by determining the Kd, by inhibiting EtBr transport through titration with non-fluorescent substrate and by fluorescence anisotropy measurements. The findings support a model with a single occluded intermediate state in which the substrate is highly immobile. Liquid-state NMR is a useful tool to monitor protein-ligand interactions by chemical shift mapping and thus identify and characterize important residues in the protein which are involved in substrate binding. In agreement with previous studies (Krueger-Koplin et al., 2004), the detergent LPPG was found to be highly suitable for liquid-state NMR studies of the membrane protein TBsmr and 42% of the residues could be assigned, as reported in Chapter 6. However, no specific interactions with EtBr were found. This observation was confirmed by LILBID mass spectrometry which showed that TBsmr was predominantly in the non-functional monomeric state. Functional protein was prepared in proteoliposomes which can be investigated by solidstate NMR (Chapter 7). Besides the essential E13, the aromatic residues W63, Y40, and Y60 have been shown to be directly involved in drug binding and transport. Different isotope labeling strategies were evaluated to improve the quality of the NMR spectra to identify and characterize these key residues. In a single tryptophan mutant of reconstituted TBsmr W30A, the binding of ethidium bromide could be detected by 13C solid-state NMR. The measurements have revealed two populations of the conserved W63 residue with distinct backbone structures in the presence of substrate. There is a controversy about the parallel or anti-parallel arrangement of the protomers in the EmrE dimer (Schuldiner, 2007) but this structural asymmetry is consistent with both a parallel and anti-parallel topology.
The respiratory chain is composed of protein complexes residing in the inner mitochondrial membrane of eukaryotes or in the cytoplasmic membrane of prokaryotes. This cellular energy converter transforms a redox potential stored in low potential substrates into an electrochemical potential across the respective membrane. Typical respiratory chains contain the complexes I, II, III and IV named according to their sequence in the respiratory chain reaction. Electrons of low potential substrates enter at complex I or II and are passed via complex III to complex IV where they are transferred to oxygen. The transport of electrons between the complexes is mediated by small electron shuttles like quinol or cytochrome c. Two different models describe their exchange either by (1) random collision of freely diffusible electron shuttles and membrane protein complexes or (2) arrangement of the complexes in supercomplexes enabling direct channeling of electron shuttles. In the Gram positive bacterium Corynebacterium glutamicum, the complex III to complex IV electron shuttle cytochrome c is not diffusible but a covalently bound part of the diheme cytochrome subunit QcrC of complex III. Therefore, the complexes III and IV have to form a supercomplex for electron transduction. The aim of this thesis was to purify and characterise this obligatory supercomplex III/IV of C. glutamicum. To gain sufficient biomass of C. glutamicum as starting material for purification, a phosphate buffered minimal medium was developed that enabled yield of total 120 g wet cell mass (38 g dry mass) in 12 L (6×2 L) shaking cultures. The determined conversion factor of glucose into biomass was 0.46 g/g indicating an intact respiratory chain. The yield was increased by bioreactor cultivation to ~690 g wet cell mass (~220 g dry mass) in ~10 L culture volume. A previously described homologous expression system was applied that produces the complex IV subunit CtaD with a fused Strep-tag II to facilitate purification. Affinity purifications using the Strep-tag II affinity to Strep-Tactin resin yielded a mixture of complexes and supercomplexes. Two supercomplex III/IV versions named supercomplex A and B and free complex IV were identified in this mixture by size exclusion chromatography, redox difference spectroscopy and two dimensional polyacrylamide gel electrophoresis including blue native polyacrylamide electrophoresis. The here presented downscaled blue native polyacrylamide electrophoresis method with analysis times of ~1 h enabled efficient screening of factors influencing the stability of supercomplex III/IV. The screening resulted that the integrity of supercomplex III/IV is preserved by using neutral detergents at minimal detergent to protein ratios for solubilisation and low detergent concentrations for purification and storage slightly above the required critical micellar concentration. Furthermore, pH <=7.5 is required for stability of supercomplex III/IV. Large biomass yields enabled upscaling of supercomplex III/IV affinity purification. Application of the identified stability conditions resulted in affinity purified samples free of supercomplex B. The major component supercomplex A was efficiently separated from residual free complex IV by preparative size exclusion chromatography. Concentration of purified supercomplex A by ultracentrifugation resulted in integrity of the supercomplex for several days at 4 °C. Purified supercomplex A contains ten different previously described subunits. The heme content of supercomplex A relative to the protein mass is heme A: 6.0 μmol/g, heme B: 6.5 μmol/g, and heme C: 5.8 μmol/g determined by redox difference spectroscopy and biochemical protein quantification. This indicates an equimolar ratio of complex III and complex IV in supercomplex A. Supercomplex A has quinol oxidase activity that is inhibited by stigmatellin or sodium azide. The turnover number of transferred electrons per complex III monomer is 148 s−1 at 25° C. The homogeneity and stability of the prepared supercomplex A enabled the growth of threedimensional crystals of up to 0.1 mm in length. Their composition of supercomplex A was verified by redox difference spectroscopy of intact crystals and blue native polyacrylamide electrophoresis of dissolved crystals. The crystals diffracted X-rays corresponding to a resolution of ~10 Å. Electron microscopy of negative stained samples revealed the uniform shape of purified supercomplex A particles with dimensions of 22 × 9 nm in the view plane. Combined heme quantification, size determination, determined activity, symmetry considerations, and particle shape indicate that supercomplex A has a central dimer of complex III and two monomers of complex IV on opposite sides. This conformation is functionally reasonable because it provides each complex III monomer with one complex IV monomer as electron acceptor. Therefore, the stoichiometry of supercomplex A is most likely III2IV2. The sensitivity of supercomplex A to detergents indicated a role of phospholipids in its stability. Therefore, a method for phospholipid identification and quantification was developed that is suitable for detergent solubilised crude and purified membrane protein samples. The analysis combines separation of phospholipid classes according to their head group by normal phase high performance liquid chromatography with evaporative light scattering detection. Calibration with external standard allows quantification of phospholipid amount in the range of 0.25-12 μg. The method is verified by analysing the phospholipid content of the well characterised complex III of Saccharomyces cerevisiae. The reduction of its phospholipid content during its purification steps is monitored. The complex III sample purified to crystallisation quality contains the phospholipid content that was also observed in previously reported structures determined by X-ray crystallography. Purified stable supercomplex A from C. glutamicum revealed a large content of bound phospholipids. The main differences between intact supercomplex A and a mixture of potentially disintegrated smaller complexes is that intact supercomplex A has a doubled phosphatidic acid content and an increased phosphatidyl glycerol content. The importance of the small anionic phosphatidic acid for mediation of contacts between complexes in a supercomplex is discussed. The total phospholipid content of stable supercomplex A is sufficient for a complete belt surrounding the supercomplex in the membrane plane. This indicates that also all essential internal phospholipid binding positions are occupied and potentially stabilise supercomplex A.