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G protein coupled receptors (GPCRs) constitute the largest family of cell-surface receptors in mammals and are key players in signal transduction. By responding to a plethora of extracellular stimuli ranging from photons to amines to fatty acids to peptides and proteins, these receptors trigger intracellular signalling cascades and regulate a variety of cellular responses. Approximately 800 genes in humans encode GPCRs which are classified according to sequence conservation into rhodopsin-like, glutamate, adhesion, frizzled/taste2 and secretin receptors. GPCRs share a seven transmembrane domain fold undergoing a conformational change upon ligand binding which is translated to the intracellular surface of the receptor thereby allowing a heterotrimeric G protein to couple. Heterotrimeric G proteins consist of a Ga, Gb and Gg subunit and dissociate into their Ga and Gbg entities upon activation by a GPCR. Subsequently, distinct signalling cascades are triggered by each G protein protomer.
Membrane proteins and GPCRs in particular, are highly important targets in drug design and development as currently approximately 60% of all marketed drugs target membrane proteins. Although these classes of proteins are of high therapeutic interest, our understanding of their mechanism of action and structure remains limited. The first structure of a human GPCR was determined in 2007 and required the development of protein engineering and innovative crystallisation techniques. Since then, approximately 130 GPCR structures of less than 40 individual receptors have been determined providing insights into the structural arrangement of the transmembrane helices, ligand binding pockets and G protein interactions. Combined with spectroscopic methods, these studies allowed a more detailed understanding of the molecular aspects of GPCR activation and signalling. Despite the tremendous advances in GPCR structural biology, certain aspects of GPCR function still remain poorly understood. Due to their size and inherent flexibility, the interaction of protein and peptide ligands with their receptors remains a challenging aspect in the structural characterisation of GPCRs. Moreover, structural information on subtype selectivity of peptide ligands continues to be scarce. To contribute functional and structural information on the molecular mechanisms of peptide interactions with GPCRs, this thesis focused on characterising receptors from the chemoattractant cluster using radioligand binding assays as well as NMR spectroscopy.
The chemoattractant cluster mainly groups the kinin, angiotensin, anaphylatoxin chemotactic complement and apelin receptors according to conserved residues in their ligand binding cavities. All receptors in this cluster bind to peptide ligands deriving from high molecular weight protein precursors upon proteolytic processing. Comparable to the conserved binding pocket of the chemoattractant receptors, the peptide ligands display a certain sequence conservation although they differ strongly in size. The largest ligands used in this thesis are the anaphylatoxins complement 3a and 5a, comprising 77 or 74 residues, respectively. Due to their size and complex fold involving three intramolecular disulphide bonds, solid phase synthesis is impossible, which prompted us to develop a modified cell-free expression system to produce these ligands in tritiated form for subsequent functional characterisation of the complement receptors. To demonstrate the versatility of the developed system, it was applied to another disulphidebond containing peptide ligand, the 21 amino acid endothelin-1. We describe a reliable and multifaceted tool to generate custom labelled peptide ligands for the structural and functional characterisation of GPCRs. The system allows the production of custom radioligands, peptides labelled for NMR studies or with fluorescent amino acids.
Apart from the modulation of GPCR activity by orthosteric ligands, GPCR signalling has long been described to be regulated by allosteric ligands including peptides, small molecules and ions. In this thesis, the influence of sodium ions on the activity state of the chemoattractant cluster receptors and in particular on the apelin, bradykinin 2 and angiotensin II type 1 receptors was examined. In recent high resolution crystal structures an allosteric sodium ion pocket beneath the orthosteric ligand binding cavity was identified and residues contributing to the coordination of sodium ions are conserved throughout the chemoattractant cluster receptors. This allosteric sodium ion coordinated within the transmembrane domain bundle has been described to negatively influence the affinity of agonists but not of antagonists. It was found that sodium ions have distinct influences on the affinity state as well as the available number of binding sites of the chemoattractant receptors. In case of the apelin and bradykinin 2 receptors, sodium ions drastically reduced the number of available binding sites whereas the affinity of peptide ligands to the bradykinin 2 receptors remained constant and the ligand binding affinities to the apelin receptor were completely abolished. In contrast, the angiotensin II type 1 receptor affinity state towards the endogenous peptide ligand angiotensin II is highly dependent on the presence of sodium ions, whereas binding of the synthetic peptide antagonist Sar1-Ile8-angiotensin II remained unaffected by the sodium ion concentration. As differential effects irrespective of the efficacy class but dependent on the amino acid composition of the applied ligands are observed, it can be concluded that electrostatic interactions between charged residues of the peptide ligands and amino acids on the extracellular surface of the receptors are influenced by sodium ions thereby adding another layer of complexity on GPCR signalling.
To elucidate the structure-function relationship of ligand selectivity between the kinin receptors, the structure of desArg10-kallidin (DAK) bound to the bradykinin 1 receptor was determined using solid state NMR (SSNMR) in the course of this thesis. The kinin peptides DAK and bradykinin bind with high affinity and high selectivity to either the bradykinin 1 or bradykinin 2 receptor, respectively. The binding pockets of the receptors are highly conserved and the two peptide ligands only differ in one amino acid at their N- and C-termini whereas the remaining eight amino acids are fully conserved. DAK adopts a U-shaped structure when bound to the bradykinin 1 receptor which resembles a horse shoe-like conformation. Using 2D TEDOR spectroscopy it could furthermore be demonstrated that positively charged residues at the N-terminal part of the peptide engage in ionic interactions with negatively charged amino acids on the extracellular surface of the bradykinin 1 receptor. In contrast, bradykinin displays a distinct b-turn at the C-terminus and an S-shaped conformation of the N-terminal segment when bound to the bradykinin 2 receptor. By using SSNMR to study the binding mode of DAK on the bradykinin 1 receptor we could determine that subtype selectivity between the kinin receptors is conferred by distinct conformational restraints within the peptide ligands and by the formation of specific ionic interaction between charged residues on the peptide and receptor, respectively.
In brief, this thesis contributes structural and functional data on the binding mechanisms and binding mode of different peptide-ligand GPCRs helping to understand subtype selectivity and allosteric modulation of the chemoattractant cluster receptors. In addition, a versatile cell-free expression system was developed that allows the custom synthesis of isotopically labelled peptides containing disulphide bonds for the functional characterisation of GPCRs.
Transport processes across the membrane are essential to ensure survival of every living cell. Therefore, the exchange of membrane impermeable molecules is mediated by specific transport proteins, which are embedded in the lipid bilayer.
One important class comprises secondary active transporters, which couple very efficiently the uphill transport of the main substrate against its concentration gradient to the downhill transport of an additional substrate. These transporters are widely distributed among all kingdoms of life and accomplish many crucial functions. One function is to counteract the deleterious effect of hyperosmotic stress in bacteria. Several members of the BCCT (betaine-choline-carnitinetransport) family of secondary transporters mediate osmostress protection by the accumulation of the compatible solute betaine or its precursor choline (Lamark et al., 1991; Peter et al., 1996; Ziegler et al., 2010). Besides osmo-dependent sodium or proton-coupled symporters, the BCCT family includes few rare representatives of osmo-independent transporters such as the substrate:product antiporter CaiT from E. coli (Jung et al., 2002; Ziegler et al., 2010).
The best-characterized member of the BCCT family is the sodium-coupled betaine transporter BetP from Corynebacterium glutamicum. BetP together with the ABCtransporter OpuA and the H+-solute symporter ProP, became a paradigm for osmoregulated osmolyte transport. Although, all three transporters were extensively studied, the general mechanism of osmoregulation is still far from being understood. Thus, one task of this thesis was to elucidate further the regulatory properties of BetP.
BetP is tightly regulated by osmotic stress and is able to increase its basal betaine uptake activity dramatically upon elevated osmolalities within one second (Peter et al., 1998a). The osmotic stress is sensed by BetP via two stimuli, one is the increase of the internal K+ concentration above a threshold of 220 mM (Rübenhagen et al., 2001), the second is related to a change in the physical state of the membrane (Maximov et al., 2014). So far, several solved crystal structures in combination with functional and computational analysis provided insights into the coupling mechanism of betaine and its co-substrate sodium (Khafizov et al., 2012; Perez et al., 2012). Despite the wealth of data, the precise regulatory mechanism of trimeric BetP is still unclear.
The knowledge of three-dimensional structures of biomolecules is fundamental for the understanding of their function. Nuclear magnetic resonance (NMR) spectroscopy represents besides X-ray crystallography one of the two most widely used techniques to study macromolecules at atomic resolution. Its application has long been a laborious task that could take months and required the expertise of an experienced scientist, however, owing to the tremendous effort that has been put into the development of respective computer algorithms, structure determination by NMR spectroscopy of small- to medium sized proteins is nowadays routinely performed. CYANA is one widely used software package, which combines the majority of individual steps towards a three-dimensional structure. The most common application of the program, however, restricts to the combined automated NOE assignment and structure calculation based on NOESY peak lists and an existing chemical shift assignment. Completely automated structure determination starting from NMR spectra is to date technically possible with CYANA, however, not yet routinely applied. In order to achieve this long-term goal, the individual steps need to become more robust with regard to data imperfections such as peak overlap, spectral artifacts or a limited amount of NMR data. The work presented in this thesis should be placed within the context of increasing the reliability and improving the accuracy of structures determined by CYANA on the basis of solution- as well as solid-state NMR data.
The chapter “Systematic evaluation of combined automated NOE assignment and structure calculation with CYANA” comprises an extensive study on the robustness of the combined automated NOE assignment and structure calculation algorithm based on experimental solution NMR data sets that were modified in multiple ways to mimic different kinds of data imperfections. The results show that the algorithm is remarkably robust with regard to imperfections of the NOESY peak lists and the chemical shift tolerances but susceptible to lacking or erroneous resonance assignments, in particular for nuclei that are involved in many NOESY cross peaks.
In the chapter “Peakmatch – A simple and robust tool for peaklist matching” a method to achieve self-consistency of the chemical shift referencing among a set of peak lists is presented. The Peakmatch algorithm matches a set of peak lists to a specified reference peak list, neither of which have to be assigned, by optimizing an assignment-free match-score function. The algorithm has been extensively tested on the basis of experimental NMR data sets of five different proteins. The results show that peak lists from many different types of spectra can be matched reliably as long as they contain at least two corresponding dimensions.
NMR structures are represented by bundles of conformers whose spread indicates the precision of the atomic coordinates. However, there is as yet no reliable measure of structural accuracy, i.e. how close NMR conformers are to the “true” structure. Instead, the precision of structure bundles is widely (mis)interpreted as a measure of structural quality. Attempts to increase the precision thus often yield tight structure bundles where the precision overestimates the accuracy. To overcome this problem, the chapter “Increased reliability of NMR protein structures by consensus structure bundles” introduces a new protocol for NMR structure determination with the software package CYANA that produces bundles of conformers with a realistic precision that is throughout a large number of test data sets a much better estimate of the structural accuracy than the precision of conventional structure bundles.
Solid-state NMR is a powerful technique to study molecules which are not amenable to either solution NMR or X-ray crystallography. Despite the reporting of individual atomic resolution structures of membrane proteins and amyloid fibrils based on solid-state NMR data, the application is far from routine. One major obstacle that hinders structure determination by solid-state NMR is the overall lower quality of the solid-state NMR spectra. It is therefore necessary to increase the robustness of the computer algorithms in order to improve the results when using lower quality solid-state NMR spectra. The chapter “Structure calculations of the model protein GB1 from solid-state NMR data” presents structure calculations on the basis of a set of two-dimensional solid-state NMR experiments of the model protein GB1. The most important result obtained from these test calculations is that the limitation of structural accuracy can be attributed to inaccurate distance information resulting from the limited correlation between peak intensities and distance, which is especially severe in spin diffusion-based solid-state NMR experiments.
The chapter “Full relaxation matrix-based correction of relayed polarization transfer for solid-state NMR structure calculation” therefore introduces a method which corrects experimental peak intensities for spin diffusion in order to improve the distance information from solid-state NMR spectra. The results show that the structural accuracy can be significantly improved when using the corrected distance information, however, strongly dependent on the preliminary structural model that is required as input for the method.
Die 5-Lipoxygenase (5-LO) ist eines der Schlüsselenzyme der Leukotrienbiosynthese. Sie katalysiert zunächst die Umsetzung der freigesetzten Arachidonsäure(AA) zu 5-Hydroperoxyeicosatetraensäure (5-HpETE), in einem zweiten Reaktionsschritt wandelt sie diese in Leukotrien A4 (LTA4) um. Leukotriene sind potente Entzündungsmediatoren und spielen eine wichtige Rolle bei entzündlichen und allergischen Reaktionen. Außerdem wird die Beteiligung an verschiedenen Krebsarten kontrovers diskutiert.
Sie besteht aus 673AS, ist 78 kDa schwer und gliedert sich wie alle bisher bekannten Lipoxygenasen in eine N-terminale C2-ähnliche, regulatorische Domäne(AS 1–114) (C2ld), die für die Membran- und Calciumbindung sowie die Interaktion mit dem Coactosin-like Protein (CLP) verantwortlich ist, und in eine C-terminale, katalytische Domäne (AS 121–673), die das Nicht-Häm-gebundene Eisen im aktiven Zentrum trägt. Ein weiteres Strukturmerkmal sind zwei ATP-Bindungsregionen, eine befindet sich in der C2ld (AS 73–83), die andere auf der katalytischen Domäne (AS 193–209), das molare Verhältnis von 5-LO zu ATP konnte dabei auf 1:1 festgelegt werden [167].
Bereits 1982 wurde in einer Veröffentlichung von Parker et al. beschrieben, dass 5-LO aus Rattenzellen in Gegenwart von Calcium auf einer Gelfiltration dimerisieren kann [204], 2008 schließlich wurde von Aleem et al. publiziert, dass humane 12-LO aus Thrombozyten Dimere bilden kann [219]. Somit konnte es möglich sein, dass auch die humane 5-LO zur Dimerisierung fähig ist.
Zunächst wurde aufgereinigtes Enzym mit nativer Gelelektrophorese und anschließender Coomassiefärbung oder Western Blot untersucht, dabei konnten mehrere Banden pro Bahn detektiert werden. Um dieses Phänomen weiter zu untersuchen, wurde im Anschluss eine Gelfiltration etabliert; da die C2ld der 5-LO recht hydrophob ist, war es nötig, 0,5% T20 zum Elutionspuffer PBS/EDTA zuzusetzen, da das Enzym ansonsten unspezifisch mit dem Säulenmaterial interagiert und für seine Größe zu spät eluiert hätte. In Anwesenheit von T20 eluierte 5-LO in zwei getrennten Peaks, die exakt zu den vorher mit Referenzproteinen bestimmten Elutionsvolumina des Monomers und Dimers passten. Weiter wurde getestet, ob niedermolekulare Substanzen einen Einfluss auf das Dimerisierungsverhalten haben, allerdings konnte weder durch Ca2+noch durch ATP eine Verstärkung der Dimerisierung beobachtet werden. Dahingegen konnte, nach Vorinkubation mit GSH und Diamid, das alleinige Monomer auf der Gelfiltration nachgewiesen werden, nach Vorinkubation nur mit Diamid, lag das gesamte Protein ausschließlich als Dimer vor. Durch Gelelektrophorese mit oder ohne Zusatz von ß-Mercaptoethanol und LILBID-MS konnte die Ausbildung von intermolekularen Disulfidbrücken bestätigt werden. Ein Bindungsassay mit radioaktivem 35S-GSH konnte die kovalente Bindung des GSH an die 5-LO bestätigen. Quantifizierungsstudien mit Ellmans Reagens zeigten, dass mindestens eins der Oberflächencysteine mit GSH modifiziert wurde. Die von der Gelfiltration erhaltenen Fraktionen wurden auf enzymatische Aktivität getestet und in allen 5-LO-haltigen Fraktionen konnte Aktivität gefunden werden. Leider war es nicht möglich, eine Aussage darüber zu treffen, ob das Mono- oder das Dimer aktiver war. Es liegt offenbar in einem Fließgleichgewicht vor, da erneute Injektion des Monomerpeaks im bekannten Elutionsprofil aus zwei Peaks resultierte. Außerdem führt die Anwesenheit von 0,5% T20 während des Aktivitätstests zu einer Hemmung des Enzyms und weniger detektierbaren 5-LO-Produkten; es fiel vor allem auf, dass so gut wie keinerlei trans- und epitrans-LTB4, die nicht-enzymatischen Zerfallprodukte der 5-HpETE, nachzuweisen waren. Betrachtet man die Struktur der 5-LO, so findet man zehn Cysteine an der Oberfläche; die Cysteine 159, 300, 416 und 418 liegen dabei in einem Interface. Mutiert man diese Cysteine zu Serinen, so verschwindet der Dimer-induzierende Effekt des Diamids, wohingegen die Mutante weiterhin glutathionylierbar bleibt. Interessanterweise zeigt diese Mutante auch eine wesentlich weniger ausgeprägte Hemmung durch T20. Um eine Aussage treffen zu können, ob auch 5-LO aus humanen Zellen Dimere bilden kann, wurde 5-LO-haltiger S100 aus polymorphkernigen Leukozyten (PMNL) untersucht. Dabei konnte mit Western Blot und einem Aktivitätsnachweis gezeigt werden, dass die 5-LO in einem breiten Bereich von der Gelfiltration eluiert. Das deutet darauf hin, dass sie in PMNL ebenfalls dimerisiert vorliegen kann. In Gegenwart von Ca2+kam es zu einer Verschiebung der 5-LO zu höhermolekularen Gewichten, wobei dieses Phänomen nicht bei S100 aus transformierten E.coli auftrat, was auf einen gerichteten Komplex nach Calciuminduktion in PMNL hindeutet.
Außerdem wurde im Rahmen dieser Arbeit der Bindemodus von Sulindac an die 5-LO mittels Crosslinking untersucht. Dabei konnte gezeigt werden, dass konzentrationsabhängig der einfache Komplex aus 5-LO und CLP abnimmt, dafür aber ein hochmolekularer Komplex, der beide Enzyme enthält, entsteht. Weder das Prodrug Sulindac noch der weitere Metabolit Sulindacsulfon oder andere Inhibitoren, die ebenfalls an der C2ld angreifen sollen, zeigten diesen Effekt. Leider konnte nicht weiter geklärt werden, was diesen Effekt verursacht, allerdings liegt die Vermutung nahe, dass es zu einer Aggregation kommt. Weitere Untersuchungen könnten wichtige Hinweise auf das Design von neuen Arzneistoffen bringen, um selektivere und damit nebenwirkungsärmere Inhibitoren zu finden.
Channelrhodopsin-2 (ChR2) is a light-gated cation selective channel from the unicellular alga Chlamydomonas reinhardtii, which is involved in phototaxis and photophobic responses. As other rhodopsins, ChR2 comprises a seven-transmembrane helix (TMH) motif and a retinal as the light-sensitive chromophore. The chromophore is covalently attached via a protonated Schiff base to the conserved lysine residue Lys257 located in TMH7. Based on its primary sequence and the all-trans configuration of the retinal in the ground state, ChR2 is assigned to the type I rhodopsins, also referred to as microbial-type rhodopsins. Upon light activation, the retinal isomerizes from the all-trans to the 13-cis form. This photoisomerization, which is accompanied by conformational changes of the protein, eventually leads to the opening of the channel and cation translocation. Cation flux during the conductive state leads to depolarization of the cell membrane and subsequent triggering of action potentials when expressed in neurons. Therefore, ChR2 has become the most versatile optogenetic tool, enabling a non-invasive investigation of neural circuits at high spatial and temporal resolution. With the rapidly increasing importance of ChR2 as a tool in neurobiology and cell biology, structural information is the prerequisite to an unambiguous understanding of the molecular mechanisms of this unique light-activated ion channel. The coupling between isomerization and structural alterations is well understood for other microbial-type rhodopsins, like bacteriorhodopsin (bR), halorhodopsin (HR) and sensory rhodopsin II (SRII). In case of ChR2, the first data on light-induced conformational changes came from spectroscopic studies and structural information is still missing. However, in order to fully understand the mechanism of light transduction by ChR2, it is necessary to determine the changes in the protein structure at specific steps in the photocycle.
By the time I started my PhD thesis, there was no structural information of ChR2 available. Therefore, the objective of this thesis was to obtain structural information of the transmembrane domain containing the first 315 amino acids of ChR2 by cryo electron crystallography. Besides revealing the structure of membrane proteins, cryo-EM of two-dimensional (2D) crystals is ideal for investigating conformational changes in membrane proteins induced by different stimuli. Therefore, the second objective of my thesis was the investigation of light-induced conformational changes in the slow C128T ChR2 mutant. The ~1,000 times longer lifetime of the open state of the C128T mutant compared to the wild-type allowed to trap different intermediates that accumulate during the photocycle.
In 2012, the X-ray structure of a channelrhodopsin-1/channelrhodopsin-2 chimaera (C1C2) at 2.3 Å resolution in the closed dark-adapted state was published (Kato et al., 2012). The structure revealed the essential molecular architecture of C1C2, including the retinal-binding pocket and the putative cation conduction pathway. Together with biochemical, spectroscopic, mutagenesis experiments, and the high-resolution model, some functionally important residues of ChR2 have been identified. However, unambiguous explanation of the molecular determinants that contribute to activation (gating) and transport were still mostly unknown.
RESULTS AND CONCLUSIONS
The first half of my theses dealt with 2D crystallization of ChR2. I succeeded in obtaining 2D crystals of ChR2 of four different types, which differed in size, crystal packing, crystal contacts and resolution, yielding structure factors up to 6 Å resolution. The crystals were grown by reconstituting the protein with different lipids at various lipid-to-protein ratios. The best crystals formed with the synthetic lipid DMPC and EPL upon detergent removal by dialysis. The projection maps calculated from these crystals revealed the overall structure of C128T ChR2 at 6 Å resolution and were published in 2011 (Müller et al., 2011). Surprisingly, ChR2 was found to be a dimer in all crystal types. The ChR2 dimer was stable both in detergent solution and in the presence of lipids for 2D crystallization. The monomers clearly showed the expected densities for the seven TMHs.
The arrangement of the ChR2 dimers on the four 2D lattices was different. However, comparison of the individual rojection maps revealed no significant differences within the ChR2 interface in the four crystal forms. The observation that the structure of the dimer was the same in all four crystal forms and in different lipids suggested strong specific contacts between the two protomers and implied that the protein was also dimeric in the native membrane. These findings were in agreement with Western blot analysis of plasma membranes from oocytes expressing ChR2 and laser-induced liquid bead ion desorption mass spectrometry, which both showed ChR2 as a dimer. The unusual stability of the ChR2 dimer contrasts with other microbial rhodopsins, which exist in different oligomeric states, i.e. monomers, trimers or dimers. These observations raised the question whether the functional unit is the monomer or the dimer.
The comparison of the projection map of the light-driven proton pump bR at the same resolution showed similar overall dimensions. Based on this comparison, the densities which became evident in the ChR2 projection maps could be assigned to the corresponding seven densities in bR. The shape of the densities near the dimer interface suggested that TMHs 2, 3, and 4 are oriented more or less perpendicular to the membrane plane, while the other four helices appear to be more tilted, as in bR.
Based on the high-resolution bR structure and the projection structures obtained, I have built a homology model. On the basis of this homology model, several residues found in the dimer interface were selected for mutational studies in order to disrupt the dimer interface.
The investigation of light-induced conformational changes in C128T ChR2 was the second part of my thesis. I designed an experimental setup for trapping light-induced conformational changes in C128T ChR2. In addition, I optimized the sample preparation in a way that the different illumination conditions did not alter the quality of the crystals. I have trapped two different functional states, namely the conductive open state and the non-conductive closed dark-adapted state.
In order to visualize the location and the extent of conformational changes, projection difference maps were calculated between the open and the closed state. Visual inspection of the difference maps between the open and the two closed states revealed three difference peaks that map to the TMHs 2, 6, and 7, indicating significant and specific rearrangements of these helices. The strong pair of positive/negative peaks at TMH6 suggests an outward tilt movement of approximately 2 Å. Close comparison of similar work on bR revealed that this movement is likely to occur at the cytoplasmic end of TMH6. A second highly significant negative peak is observed at TMH7, indicating a less pronounced tilt compared to TMH6. The third negative peak at TMH2 indicates a loss of density in this region. No significant differences were recorded at the TMH1, 5 and at the dimer interface formed by TMH3 and 4.
I succeeded in trapping and characterizing the open and closed state in the photocycle of ChR2 and could demonstrate that the transition from the closed to the open state is linked to significant light-induced tilt movements of TMH6 and 7, plus a loss of order in TMH2. These conformational changes are likely to create a large water-filled conducting pore, which seems to be required for the conductance of up to 2,000 ions per photocycle. The previously mentioned spectroscopic studies support the difference structures I obtained. This approach sets the stage for studying structural changes accompanying the formation and decay of other photocycle intermediates in ChR2. Future studies will aim at three-dimensional maps of the open and closed state at higher resolution.
Proteorhodopsin (PR) originally isolated from uncultivated γ-Proteobacterium as a result of biodiversity screens, is highly abundant ocean wide. PR, a Type I retinal binding protein with 26% sequence identity, is a bacterial homologue of Bacteriorhodopsin (BR). The members within this family share about 78% of sequence identity and display a 40 nm difference in the absorption spectra. This property of the PR family members provides an excellent model system for understanding the mechanism of spectral tuning. Functionally PR is a photoactive proton pump and is suggested to exhibit a pH dependent vectorality of proton transfer. This raises questions about its potential role as pH dependent regulator. The abundance of PR in huge numbers within the cell, its widespread distribution ocean wide at different depths hints towards the involvement of PR in utilization of solar energy, energy metabolism and carbon recycling in the Sea. Contrary to BR, which is known to be a natural 2D crystal, no such information is available for PR til date. Neither its functional mechanism nor its 3D structure has been resolved so far. This PhD project is an attempt to gain a deeper insight so as to understand structural and functional characterization of PR. The approach combines the potentials of 2D crystallography, Atomic Force Microscopy and Solid State NMR techniques for characterization of this protein. Wide range of crystalline conditions was obtained as a result of 2D crystallization screens. This hints towards dominant protein protein interactions. Considering the high number of PR molecules reported per cell, it is likely that driven by such interactions, the protein has a native dense packing in the environment. The projection map represented low resolution of these crystals but suggested a donut shape oligomeric arrangement of protein in a hexagonal lattice with unit cell size of 87Å*87Å. Preliminary FTIR measurements indicated that the crystalline environment does not obstruct the photocycle of PR and K as well as M intermediate states could be identified. Single molecule force spectroscopy and atomic force microscopy on these 2D crystals was used to probe further information about the oligomeric state and nature of unfolding. The data revealed that protein predominantly exists as hexamers in crystalline as well as densely reconstituted regions but a small percentage of pentamers is also observed. The unfolding mechanism was similar to the other relatively well-characterized members of rhodopsin family. A good correlation of the atomic force microscopy and the electron microscopy data was achieved. Solid State NMR of the isotopically labeled 2D crystalline preparations using uniformly and selectively labeling schemes, allowed to obtain high quality SSNMR spectra with typical 15N line width in the range of 0.6-1.2 ppm. The measured 15N chemical shift value of the Schiff base in the 2D crystalline form was observed to be similar to the Schiff base chemical shift values for the functionally active reconstituted samples. This provides an indirect evidence for the active functionality of the protein and hence the folding. The first 15N assignment has been achieved for the Tryptophan with the help of Rotational Echo Double Resonance experiments. The 2D Cross Polarization Lee Goldberg measurements reflect the dynamic state of the protein inspite of restricted mobility in the crystalline state. The behavior of lipids as measured by 31P from the lipid head group showed that the lipids are not tightly bound to the protein but behave more like the lipid bilayer. The 13C-13C homonulear correlation experiments with optimized mixing time based on build up curve analysis, suggest that it is possible to observe individual resonances as seen in case of glutamic acid. The signal to noise was good enough to record a decent spectrum in a feasible period. The selective unlabeling is an efficient method for reduction in the spectral overlap. However, more efficient labeling schemes are required for further characterization. The present spectral resolution is good for individual amino acid investigation but for uniformly labeled samples, further improvement is required.
Die in dieser Arbeit durchgeführten Untersuchungen an GXG Modellpeptiden konnten eindeutig zeigen, dass diese Peptide, auch ohne das Vorhandensein von langreichweitigen Wechselwirkungen, bestimmte Sekundärstrukturen präferieren. Ein Teil der beobachteten, auftretenden Strukturmotive lässt sich hierbei über den sterischen Anspruch der Seitenkette erklären, ein anderer Teil über die Ladung der Seitenkette. In Kombination mit anderen Spektroskopischen Methoden konnten zehn dieser Peptide genauestens untersucht werden. Hierbei zeigte sich, dass diese Peptide nicht nur die favorisierten Regionen des Ramachandran-Diagramms besetzen. Ein Vergleich mit dem Vorkommen bestimmter Aminosäuren, beispielsweise in loop Regionen von Proteinen, zeigt dass die Sequenz dieser loops nicht zufällig ist. Tatsächlich besitzt ein Teil der Aminosäuren, die besonders häufig an bestimmten loop Positionen vorkommen, bereits die intrinsische Vorliebe, die notwendige Konformation einzunehmen. Diese Aminosäuren und die umgebenden loops sind somit eventuell nicht nur das simple Verbindungsglied zwischen zwei Sekundärstrukturen, sondern kommen selbst als Ausgangspunkte für Peptid- bzw. Proteinfaltung in Frage.
Ein weiteres Augenmerk der Arbeit lag auf der Messung von skalaren und dipolaren Kopplungen an isotopenmarkierter RNA. Es wurden vier Pulssequenzen entwickelt, die es ermöglichen, 1J skalare bzw. dipolare Kopplungen in der Zuckerregion von 13C- markierter RNA mit hoher Präzision zu messen. Die entwickelten J-modulierten Experimente ermöglichen die Messung von 1J(H2’C2’), 1J(C1’C2’) sowie 1J(C2’C3’) Kopplungen selbst für größere RNA Moleküle. Die Detektion erfolgt hierbei auf den C1’H1’ Signalen, die Zuordnung der Kerne, deren Kopplung gemessen wird, ist nicht einmal erforderlich. Die Anwendbarkeit konnte für verschiedene Systeme mit 14 bis 70 Nukleotiden demonstriert werden. Die erreichte Präzision ermöglichte es außerdem auch sehr kleine Effekte, wie beispielsweise die Ausrichtung von RNA im Magnetfeld zu detektieren.
Diese Arbeit zeigt außerdem zwei Beispiele für die gezielte Modifikation, um Lanthanid Bindungsstellen einführen zu können. Auf chemischen und biochemischen Weg konnte isotopenmarkierte, in vitro transkribierte RNA modifiziert werden. Die Ergebnisse zeigen eindeutig eine Bindung von Lanthanid-Ionen an die modifizierte RNA. Die auftretenden, eher kleinen Effekte, sind vermutlich auf die noch zu hohe Flexibilität der eingeführten Modifikationen. Vor allem bei der chemischen Modifikation besteht hier noch Potential zur Optimierung, nachdem die generelle Anwendbarkeit der Methode demonstriert wurde.
Der letzte Teil der Arbeit beschäftigt sich mit der Analyse von Kopplungsmustern zur Analyse und zum Vergleichen von Naturstoffen. Hier konnten aus einer Reihe von Derivaten eindeutig die identifiziert werden, die verglichen mit der Ausgangsstruktur, die gleiche Konformation besitzen. Die gewonnenen Ergebnisse decken sich hier mit durchgeführten biologischen Tests, die ebenfalls dasselbe Derivat als aktiv identifizieren konnten, was klar für eine Struktur-Aktivitäts-Beziehung spricht.
In der vorliegenden Arbeit werden Methoden und Anwendungen gezeigt, um skalare und dipolare Kopplungen im Bereich von Peptiden, Nukleinsäuren und kleinen Molekülen zu nutzen. Die durchgeführten Arbeiten reichen dabei von der speziellen Probenpräparation zur Messung von dipolaren Kopplungen bis hin zur Entwicklung neuer NMR-spektroskopischer Methoden zur Messung von Kopplungen mit höherer Präzision und an größeren Systemen als bisher.
The following thesis is concerned with the elucidation of structural changes of RNA molecules during the time course of dynamic processes that are commonly denoted as folding reactions. In contrast to the field of protein folding, the concept of RNA folding comprises not only folding reactions itself but also refolding- or conformational switching- and assembly processes (see chapter III). The method in this thesis to monitor these diverse processes is high resolution liquid-state NMR spectroscopy. To understand the reactions is of considerable interest, because most biological active RNA molecules function by changing their conformation. This can be either an intrinsic property of their respective sequence or may happen in response to a cellular signal such as small molecular ligand binding (like in the aptamer and riboswitch case), protein or metal binding. The first part of the thesis (chapters II & III) provides a general overview over the field of RNA structure and RNA folding. The two chapters aim at introducing the reader into the current status of research in the field. Chapters II is structured such that primary structure is first described then secondary and tertiary structure elements of RNA structure. A special emphasis is given to bistable RNA systems that are functionally important and represent models to understand fundamental questions of RNA conformational switching. RNA folding in vitro as well as in vivo situations is discussed in Chapter III. The following chapters IV and V also belong to the introduction part and review critically the NMR methods that were used to understand the nature and the dynamics of the conformational/structural transitions in RNA. A general overview of NMR methods quantifying dynamics of biomolecules is provided in chapter IV. A detailed discussion of solvent exchange rates and time-resolved NMR, as the two major techniques used, follows. In the final chapter V of the first part the NMR parameters used in structure calculation and structure calculation itself are conferred. The second part of the thesis, which is the cumulative part, encompasses the conducted original work. Chapter VI reviews the general NMR techniques applied and explains their applicability in the field of RNA structural and biochemical studies in several model cases. Chapter VII describes the achievement of a complete resonance assignment of an RNA model molecule (14mer cUUCGg tetral-loop RNA) and introduces a new technique to assign quaternary carbon resonances of the nucleobases. Furthermore, it reports on a conformational analysis of the sugar backbone in this RNA hairpin molecule in conjunction with a parameterization of 1J scalar couplings. Achievements: • Establishment of two new NMR pulse-sequences facilitating the assignment of quaternary carbons in RNA nucleobases • First complete (99.5%) NMR resonance assignment of an RNA molecule (14mer) including 1H, 13C, 15N, 31P resonances • Description of RNA backbone conformation by a complete set of NMR parameters • Description of the backbone conformational dependence in RNA of new NMR parameters (1J scalar couplings) Chapters VII & VIII summarize the real-NMR studies that were conducted to elucidate the conformational switching events of several RNA systems. Chapter VIII gives an overview on the experiments that were accomplished on three different bistable RNAs. These molecules where chosen to be good model systems for RNA refolding reactions and so consequently served as reporters of conformational switching events of RNA secondary structure elements. Achievements: • First kinetic studies of RNA refolding reactions with atomic resolution by NMR • Application of [new] RT-NMR techniques either regarding the photolytic initiation of the reaction or regarding the readout of the reaction • Discovery of different RNA refolding mechanisms for different RNA molecules Deciphering of a general rule for RNA refolding methodology to conformational switching processes of RNA tertiary structure elements. The models for these processes were a) the guanine-dependent riboswitch RNA and b) the minimal hammerhead ribozyme. Achievements: • NMR spectroscopic assignment of imino-resonances of the hypoxanthine bound guanine-dependent riboswitch RNA • Application of RT-NMR techniques to monitor the ligand induced conformational switch of the aptamer domain of the guanine-dependent riboswitch RNA at atomic resolution • Translation of kinetic information into structural information • Deciphering a folding mechanism for the guanine riboswitch aptamer domain • Application of RT-NMR techniques to monitor the reaction of the catalytically active mHHR RNA at atomic resolution In the appendices the new NMR pulse-sequences and the experimental parameters are described, which are not explicitly treated in the respective manuscripts.
According to the World Health Organization (WHO) bacterial resistance to antibiotic drug therapy is emerging as a major public health problem around the world. Infectious diseases seriously threaten the health and economy of all countries. Hence, the preservation of the effectiveness of antibiotics is a world wide priority. The key to preserving the power of antibiotics lies in maintaining their diversity. Many microorganisms are capable of producing these bioactive products, the so called antibiotics. Specifically in microorganisms, polyketide synthases (PKS) and non-ribosomal peptide synthases (NRPS) produce these natural bioactive compounds. Besides being used as antibiotics these non-ribosomal peptides and polyketides display an even broader spectrum of biological activities, e.g. as antivirals, immunosuppressants or in antitumor therapy. The wide functional spectrum of the peptides and ketides is due to their structural diversity. Mostly they are cyclic or branched cyclic compounds, containing non-proteinogenic amino acids, small heterocyclic rings and other unusual modifications such as epimerization, methylation, N‐formylation or heterocyclization. It is has been shown that these modifications are important for biological activity, but little is known about their biosynthetic origin.
PKS and NRPS are multidomain protein assembly lines which function by sequentially elongating a growing polyketide or peptide chain by incorporating acyl units or amino acids, respectively. The growing product is attached via a thioester linkage to the 4’-phosphopantetheine (4’-Ppant) arm of a holo acyl carrier protein (ACP) in PKSs or holo peptidyl carrier protein (PCP) in NRPSs and is passed from one module to another along the chain of reaction centers. The modular arrangement makes PKS and NRPS systems an interesting target for protein engineering. More than 200 novel polyketide compounds have already been created by module swapping, gene deletion or other specific manipulations. Unfortunately, however, engineered PKS often fail to produce significant amounts of the desired products. Structural studies may faciliate yield improvement from engineered systems by providing a more complete understanding of the interface between the different domains. While some information about domain-domain interactions, involving the most common enzymatic modules, ketosynthase and acyltransferase, is starting to emerge, little is known about the interaction of ACP domains with other modifying enzymes such as methyltransferases, epimerases or halogenases.
To further improve the understanding of domain-domain interactions this work focuses on the curacin A assembly line. Curacin A, which exhibits anti-mitotic activity, is from the marine cyanobacterium Lyngbya majuscula. This outstanding natural product contains a cyclopropane ring, a thiazoline ring, an internal cis double bond and a terminal alkene. The biosynthesis of curacin A is performed by a 2.2 Mega Dalton (MDa) hybrid PKS-NRPS cluster. A 10-enzyme assembly catalyzes the formation of the cyclopropane moiety as the first building block of the final product. Interestingly, for these enzymes the substrate is presented by an unusual cluster of three consecutive ACPs (ACPI,II,III). Little is known about the function of multiple ACPs which are supposed to increase the overall flux for enhanced production of secondary metabolites.
The first task in this work was to elucidate the structural effect of the triplet ACP repetition by nuclear magnetic resonance (NMR). The initial data show that the excised ACPI, ACPII or ACPIII proteins resulted in [15N, 1H]-TROSY spectra with strong chemical shift perturbations (CSPs), suggesting an effect on the structure. The triplet ACP domains display a high sequence identity (93- 100%) making structural investigation using usual NMR techniques due to high peak overlap impossible. To enable the investigation of the triplet ACP in its native composition we developed a powerful method, the three fragment ligation. Segmental labeling allows incorporating isotopes into one single domain in its multidomain context. As a result we could prepare the triplet ACP with only one domain isotopically labeled and therefore assign the full length protein. In this way our method paved the way to study the structural effects of the triplet ACP repetition. We could show unexpectedly, that, despite the fact that the triplet repeat of CurA ACPI,II,III has a synergistic effect in the biosynthesis of CurA, the domains are structurally independent.
In the second part of this work, we studied the structure of the isolated ACPI domain. Our results show that the CurA ACPI undergoes no major conformational changes upon activation via phosphopantetheinylation and therefore contradicts the conformational switching model which has been proposed for PCPs. Further we report the NMR solution structures of holo-ACPI and 3-hydroxyl-3-methylglutaryl (HMG)-ACPI. Data obtained from filtered nuclear overhauser effect (NOE) experiments indicate that the substrate HMG is not sequestered but presented on the ACP surface.
In the third part of this work we focussed on the protein-protein interactions of the isolated ACPI with its cognate interaction partners. We were especially interested in the interaction with the halogenase (Cur Hal), the first enzyme within the curacin A sub-cluster, acting on the initial hydroxyl-methyl-glutaryl (HMG) attached to ACPI. Primarily we studied the interaction using NMR titration and fluorescence anisotropy measurements. Surprisingly no complex between ACPI and Cur Hal could be detected. The combination of an activity assay using matrix-assisted laser desorption/ionization (MALDI) mass spectroscopy and mutational analysis revealed several amino acids of ACPI that strongly decrease the activity of CurA Hal. Mapping these mutations according to their effect on the Cur Hal activity onto the structure of HMG-ACPI displays that these amino acids surround the substrate and form a consecutive surface. These results suggest that this surface is important for Cur Hal recognition and selectivity. Our research presented herein is an excellent example for protein-protein interactions in PKS systems underlying a specific recognition process.
Eine wichtige Klasse von Membranproteinen ist die der aktiven sekundären Transporter. Diese Proteine werden in allen Spezies gefunden und verwenden einen Gradienten von löslichen Substanzen, um den Transport von Substraten voran zu treiben. Dieser Transportprozess ist essentiell, um die chemische Zusammensetzung des Zytoplasmas, wie Kalium- oder Natriumkonzentration von der des umgebenden Milieus unterschiedlich zu halten. Die Konzentration von K+ und Na+ in der Zelle sind wichtig für ein konstantes Zellvolumen, für die pH-Homöostase, für die Erregbarkeit von Nervenzellen und füür die Akkumulierung von Zuckern und Aminosöuren über Kotransportsysteme. In Bakterien wie Escherichia coli wird mit der Oxidation von Substraten durch die Elektronentransportkette ein Protonengradient und gleichzeitig eine Potentialdifferenz erzeugt. Ein Beispiel für einen sekundären Transporter, der diese Potentialdifferenz ausnutzt ist der Na+/H+-Antiporter NhaA, einer der am besten untersuchten Antiporter aus E. coli (Hunte, Screpanti et al. 2005). Dieser Antiporter ist essentiell für die Fähigkeit von Bakterien im alkalischen pH-Bereich zu überleben. Auch bei Säugetieren, sind die Isoformen der humanen Natrium/Protonen-Antiporter SLC9A1-SLC9A8 (NHE1-8) unentbehrlich für eine Reihe physiologischer Prozesse. So wird über die Antiporter-Aktivität nicht nur der Säure-Base-Haushalt und das Verhältnis des Zellvolumens zur Menge an Elektrolyten reguliert, Antiporter spielen ebenso eine wichtige Rolle bei der Adhäsion, Migration und Proliferation der Zelle (Orlowski and Grinstein 2004). Anomalien in diesem Bereich sind charakteristisch für maligne Zellen. Die Rolle von NHE1 in der Entwicklung von Tumoren ist daher ein wichtiger Ansatzpunkt für die Entwicklung von Krebsmedikamenten. Im Herz ist NHE1 die dominierende Isoform und wird damit zu einem pharmakologisch wertvollen Zielprotein (Malo and Fliegel 2006). Struktur und Mechanismus der meisten Antiporter ist bis dato jedoch noch nicht bekannt. Neben den klassischen Methoden der Pharmaentwicklung wird die strukturbasierende Wirkstoffentwicklung immer wichtiger um effiziente Medikamente ohne Nebenwirkung zu herzustellen. Hierfür werden jedoch 3D-Strukturen von Proteinen, sowie genaue Kenntnisse von deren Mechanismus benötigt. Zieht man in Betracht, dass 70% aller bis jetzt entwickelten Medikamente als Ziel ein Membranprotein haben, wird die Notwendigkeit klar, eine möglichst große Anzahl von Membranproteinstrukturen verfgbar zu haben. Wie bereits erwähnt ist die Klasse der monovalenten Kation/Proton-Antiporter aufgrund ihrer vielfältigen Aufgaben, eine äußerst wichtige Zielgruppe für die strukturbasierende Wirkstoffentwicklung. Die große Anzahl an entschlüsselten Genomen eröffnet hier ein breites Forschungsfeld füür die Strukturbiologie. In dieser Arbeit wurden daher Techniken und Methoden aus Hochdurchsatz-orientierten Strukturgenomikprojekten übernommen, um eine große Anzahl von Zielproteinen in ausreichender Menge für die funktionelle Charakterisierung und für die Kristallisation zu produzieren. Als Zielorganismen wurden Salmonella typhimurium LT2, Helicobacter pylori 26695, Aquifex aeolicus VF5 und Pyrococcus furiosus ausgewählt. Die Grundlage dieser Entscheidung hierfür waren die humanpathogenen Eigenschaften der beiden zuerst genannten Organismen und die Hyperthermophilie der beiden letzteren. Dadurch konnten sowohl klinische Anwendungsmöglichkeiten, als auch die potentiell höhere Stabilität der hyperthermophilen Proteine genutzt werden. Als Proteinzielgruppe wurden die monovalenten Kation/Proton-Antiporter aus allen 4 Organismen ausgewählt. Des Weiteren wurden Antiporter zweier eukaryotischer Systeme, Saccharomyces cerevisiae und Homo sapiens in die Zielproteingruppe aufgenommen. In dieser Arbeit wurden 24 verschiedene monovalente Kation/Proton-Antiporter untersucht. Von diesen 24 Zielproteinen konnten 12 in Expressionsvektoren kloniert und produziert werden. Von diesen 12 Antiportern konnten die Zielproteine STM0039 (STNhaA), HP1552 (HPNhaA), STM1556 (NhaC) und PF2032 (NhaC) in einer für die Kristallisation ausreichenden Homogenität und Ausbeute gereinigt werden. Mit der Ausnahme von HP1552 ist bis heute in keiner Veröffentlichung über diese Zielproteine berichtet worden. Durch Komplementationsexperimente mit dem E. coli-Deletionsstamm EP432 konnten eine Reihe von Zielproteine (STM0039, HP1552, PF2032, Aq_2030, STM1806, STM1556) bezüglich ihrer Fähigkeiten zum Na+/H+-Antiport untersucht werden. Die Ziel-proteine STM0039, STM1556 und HP1552 konnten zum ersten Mal kloniert, produziert, gereinigt und anschlieáen in Liposomen rekonstitutiert werden.Weiterhin konnte durch SSM-Messung die pH-Regulation der Zielproteine STM0039 und HP1552 gezeigt werden. Im Gegensatz zu bisherigen Literaturangaben ist HP1552 im pH-Bereich von pH 6 bis 8,5 nicht konstitutiv aktiv, sondern erfährt eine ähnliche Aktivierung wie STM0039 oder ECNhaA. STM0039 lässt sich zudem durch 2-Aminoperimidin inhibieren. Für STM0039 konnten die ersten Proteinkristalle der inaktiven Konformation bei pH 4 erzeugt werden. Weiterhin wurde in dieser Arbeit ein gegen das Zielprotein STM0039 gerichtetes scFV-Antikörperfragment (F6scFv) eingehend charakterisiert. Durch die Ko-Kristallisation des Antikörperfragments F6scFv mit STM0039 konnten die ersten 3 dimensionalen Kristalle in einer aktiven Proteinkonformation bei pH 7,5 erzeugt werden. Neben den bereits verfeinerten Kristallisationsbedingungen für das Zielprotein STM0039 wurden erfolgreich erste Kristallisationsbedingungen für STM0086 und PF2032 gefunden. Es wurde eine Vielzahl von Produktions- und Reinigungsprotokollen füür die Zielproteine etabliert. Dadurch ist der Grundstein füür weitergehende Charakterisierungs- und Kristalli-sationsexperimente gelegt. Die in dieser Arbeit etablierte Kombination von Hochdurch-satzmethoden mit klassischen Vorgehensweisen zur Proteincharakterisierung lassen sich leicht auf anderen Membranproteinklassen bertragen und die Geschwindigkeit der ver-schiedenen Schritte bis zur Strukturlösung stark beschleunigen.