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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.
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The human GPCR nicotinic acid receptor 1 : heterologous overproduction in Pichia pastoris and the reconstitution of its complex with beta-Arrestin 1 in vivo and in vitro
(2007)
- Nicotinic acid has been used in the clinical treatment of elevated blood lipid levels for over 50 years. Although it has a beneficial effect on myocardial infarction and blood lipid profiles, its widespread use has been hampered by side effects such as skin rashes and a burning sensation on the upper body. Since elevated blood lipid levels, especially ones of VLDL and LDL cholesterol are a frequent indication and high risk factor for coronary and cardiac diseases, finding a compound with an enhanced pharmacological profile, still holding the desired effects, but without inconvenient side effects, is a very appealing aim to many pharmaceutical companies. These efforts have already produced two marketed drugs, Acipimox and Acifran, but they have not been able to overcome the restrictions already imposed on the treatment by nicotinic acid. Although proposed long before, in the year 2000 the gene for the nicotinic acid receptor in mouse PUMA-G was cloned, and in 2003 the discovery of the genes HM74 and HM74A followed, which comprise the homologous low and high affinity receptors for nicotinic acid in humans. The discovery of this G Protein-coupled receptor target allowed a more directed approach for the search of alternative compounds. This work is the first report of the heterologous overexpression of the high affinity GPCR gene HM74A in the methylotrophic yeast Pichia pastoris. The protein product, NAR1, was pharmacologically characterized, and displayed a binding affinity of 224.8 nM to its ligand nicotinic acid, showing a similar activity profile compared to those displayed in human tissue, which were determined to be 60 nM to 90 nM. Additionally, inhibitory constants (Ki) for Acifran and Acipimox were determined to be 4.5 µM and 50.5 µM, respectively. Furthermore, the total yield of NAR1 reached 42 pmol/mg membrane protein, which corresponds to 0.4 mg of receptor produced per liter yeast culture, opening up the perspective of large scale protein production to facilitate high throughput screening drug discovery efforts and structural studies. In addition, NAR1 could be solubilized in n-decyl-β-D-maltopyranoside and purified to homogeneity after immobilized metal affinity chromatography and a second affinity chromatography step on immobilized monomeric avidin, yielding a single peak on gel filtration, while the purified receptor was able to bind ligand, as shown in NMR Saturation Transfer Difference (STD) measurements. It could be shown that NAR1 is desensitized by β-arrestin 1 in vivo in confocal microscopy studies on HEK and BHK cells. This finding provides a native binding partner for the stabilization of the receptor upon solubilization and purification. Finally human β-arrestin 1 could be produced as a constitutively active variant, comprising residues 1-382 in Pichia pastoris and Escherichia coli. The purified protein was used for in vitro binding experiments and shown to be capable of interacting with NAR1. Although the interaction and formation of the complex was only possible to a limited extent, it leaves open the perspective of crystallizing NAR1 in its active conformation, bound to nicotinic acid and β-arrestin 1.
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Structural and functional characterization of the triplet acyl carrier protein in the curacin cluster and its interaction partners
(2011)
- 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.
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Solid-state NMR investigations of the ATP binding cassette multidrug transporter LmrA
(2006)
- 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.
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Purification and characterisation of the respiratory supercomplex III/IV from Corynebacterium glutamicum and phospholipid analysis of membrane proteins
(2008)
- 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.
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Pulsed EPR characterization of membrane transport protein complexes
(2012)
- Pulsed electron–electron double resonance (PELDOR) spectroscopy is a powerful tool for measuring nanometer distances in spin-labeled systems and recently is increasingly applied to membrane proteins. However, after reconstitution of labeled proteins into liposomes, spin labels often exhibit a much faster transversal relaxation (Tm) than in detergent micelles, thus limiting application of the method in lipid bilayers. In the first part of the thesis, optimization of transversal relaxation in phospholipid membranes was systematically investigated by use of spin-labeled derivatives of stearic acid and phosphatidylcholine as well as spin-labeled derivatives of the channel-forming peptide gramicidin A under the conditions typically employed for PELDOR distance measurements. Our results clearly show that dephasing due to instantaneous diffusion that depends on dipolar interaction among electron spins is an important contributor to the fast echo decay in cases of high local concentrations of spin labels in membranes. The main difference between spin labels in detergent micelles and membranes is their local concentration. Consequently, avoiding spin aggregation and suppressing instantaneous diffusion is the key step for maximizing PELDOR sensitivity in lipid membranes. Even though proton spin diffusion is an important relaxation mechanism, only in samples with low local concentrations does deuteration of acyl chains and buffer significantly prolong Tm. In these cases, values of up to 7 μs have been achieved. Furthermore, our study revealed that membrane composition and labeling position in the membrane can also affect Tm, either by promoting the segregation of spin-labeled species or by altering their exposure to matrix protons. Effects of other experimental parameters including temperature (<50 K), presence of oxygen, and cryoprotectant type are negligible under our experimental conditions. In the second part of the thesis, inhomogeneous distribution of spin-labels in detergent micelles has been studied. A common approach in PELDOR is measuring the distance between two covalently attached spin labels in a macromolecule or singly-labeled components of an oligomer. This situation has been described as a spin-cluster. The PELDOR signal, however, does not only contain the desired dipolar coupling between the spin-labels of the molecule or cluster under study. In samples of finite concentration the dipolar coupling between the spin-labels of the randomly distributed molecules or spin-clusters also contributes significantly. In homogeneous frozen solutions or lipid vesicle membranes this second contribution can be considered to be an exponential or stretched exponential decay, respectively. In this study, it is shown that this assumption is not valid in detergent micelles. Spin-labeled fatty acids that are randomly partitioned into different detergent micelles give rise to PELDOR time traces which clearly deviate from stretched exponential decays. As a main conclusion a PELDOR signal deviating from a stretched exponential decay does not necessarily prove the observation of specific distance information on the molecule or cluster. These results are important for the interpretation of PELDOR experiments on membrane proteins or lipophilic peptides solubilized in detergent micelles or small vesicles, which often do not show pronounced dipolar oscillations in their time traces. In the third part, PELDOR has been utilized to study the structural flexibility of the Toc34 GTPase homodimer, a preprotein receptor of the translocon of the outer envelope of chloroplasts (TOC). Toc34 belongs to GAD subfamily of G-proteins that are regulated and activated by nucleotide-dependent dimerization. However, the function of Toc34 dimerization is not yet fully understood. Previous structural investigations of the Toc34 dimer yielded only marginal structural changes in response to different nucleotide loads. PELDOR revealed a nucleotide-dependent transition of the dimer flexibility from a tight GDP to a flexible GTP-loaded state. Substrate-binding stabilizes the dimer in the transition state mimicked by GDP-AlFx, but induces an opening in the GDP or GTP-loaded state. Thus, the structural dynamics of bona fide GTPases induced by GTP hydrolysis is replaced by substrate-dependent dimer flexibility, which represents the regulatory mode for dimerizing GTPases. In the fourth part of the thesis, conformational flexibility and relative orientation of the N-terminal POTRA domains of a cyanobacterial Omp85 from Anabaena sp. PCC 7120, a key component of the outer membrane protein assembly machinery, were investigated by PELDOR spectroscopy. Membrane proteins of the Omp85-TpsB superfamily are composed of a C-terminal β-barrel and a different number of N-terminal POTRA domains, three in the case of cyanobacterial Omp85. It has been suggested that the N-terminal POTRA domains (P1 and P2) might have functions in substrate recognition. Molecular dynamics (MD) simulations predicted a fixed orientation for P2 and P3 and a flexible hinge between P1 and P2. The PELDOR distances measured between the P2 and P3 POTRA domains are in good agreement with the structure determined by X-ray, and compatible with the MD simulations suggesting a fixed orientation between these domains. PELDOR constraints between the P1 and P2 POTRA domains imply a rather rigid structure with a slightly different relative orientation of these domains compared with the X-ray structure. Moreover, the large mobility predicted from MD is not observed in the frozen solution. The PELDOR results further highlight the restricted relative orientation of the POTRA domains of the Omp85-TpsB proteins as a conserved characteristic feature that might be important for the processive sliding of the unfolded substrate towards the membrane.
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Produktion, Reinigung und Charakterisierung von monovalenten Kation/Proton - Antiportern
(2007)
- 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.
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NMR-spektroskopische Methodenentwicklung an RNA und strukturelle Charakterisierung des transkriptionellen Adenin-RNA-Schalters
(2012)
- Die Untersuchung von RNA mittels NMR-Spektroskopie hat in den letzten Jahren an Bedeutung gewonnen, weil die Zahl der neu entdeckten RNA-Funktionen, wie z.B. RNA-Schalter in Bakterien, stark gestiegen ist. Ziel dieser Arbeit war es, mithilfe der NMR-Spektroskopie einen Beitrag zum besseren Verständnis der biochemischen Prozesse, in die RNA-Moleküle involviert sein können, zu leisten. Im ersten Teil dieser Arbeit (Kapitel 2, 3 und 4) werden zum einen die Entwicklung neuer Methoden für die RNA-Strukturbestimmung vorgestellt und zum anderen die Leistungsfähigkeit der modernen NMR-spektroskopischen Strukturaufklärung demonstriert. Im zweiten Teil dieser Arbeit (Kapitel 5) wird die NMR-Spektroskopie zur Untersuchung der RNA-Schalter-Funktion eingesetzt. Die biologische Funktion von RNA oder Proteinen setzt oftmals eine dynamische Struktur voraus und involviert Konformationsänderungen infolge biochemischer Signalweiterleitung. Für die Charakterisierung solcher Prozesse eignet sich die NMR-Spektroskopie insbesondere gut, weil sie in Lösung unter verschiedenen Reaktionsbedingungen angewandt wer-den kann. Durch den direkten NMR-spektroskopischen Nachweis von Basenpaarungen können wichtige strukturelle Eigenschaften (Faltung, Strukturhomogenität und Dynamik) entschlüsselt und in einen Zusammenhang mit der Funktion gebracht werden. Im Folgenden werden die einzelnen Kapitel vorgestellt. Nachdem das erste Kapitel eine allgemeine Einleitung in die NMR-Spektroskopie, RNA-Struktur und Funktion der RNA-Schalter darstellt, folgt im Kapitel 2 die Einführung einer neuen Methode, die eine quantitative Bestimmung der Torsionswinkel alpha und zeta in RNA/DNA mittels NMR-Spektroskopie ermöglicht (Abb. 1). Sie basiert auf der Wechselwirkung zwischen dem CH-Dipol und der 31P-CSA, die von der relativen Orientierung abhängig ist. Die Methode wurde für die CH- und CH2-Gruppen in Form von zwei Pulssequenzen (2D- und 3D-G-HCP) zur Messung von insgesamt fünf kreuz-korrelierten Relaxationsraten entlang des RNA/DNA-Rückgrats optimiert. Die Funktionsfähigkeit der Methode wurde zunächst an der 14mer cUUCGg-Tetraloop RNA getestet und zur Bestimmung der Torsionswinkel alpha und zeta genutzt. Die Ergebnisse flossen in die Strukturrechnung der 14mer RNA, die im Kapitel 3 vorgestellt wird, mit ein. Des Weiteren gelang es die Anwendbarkeit der Experimente an einer größeren 27mer RNA zu demonstrieren. Die neue Methode ist deswegen von Bedeutung, weil die Winkel alpha und zeta nicht über 3J-Kopplungskonstanten gemessen werden können. (Nozinovic, S., Richter, C., Rinnenthal, J., Fürtig, B., Duchardt-Ferner, E., Weigand, J. E., Schwalbe, H. (2010), J. Am. Chem. Soc. 132, 10318-10329.) Im Kapitel 3 wird die NMR-spektroskopische Bestimmung der Struktur einer Model-RNA, der 14mer cUUCGg-Tetraloop RNA, vorgestellt. Die Strukturrechung wurde mit verschiedenen NMR-Datensätzen, die in der Arbeitsgruppe einschließlich dieser Doktorarbeit gesammelt wurden, durchgeführt. Zusammen mit den Ergebnissen aus dem Kapitel 2 konnte eine sehr präzise Struktur mit einem RMSD von 0,37 Å (20 Strukturen) in sehr guter Übereinstimmung mit experimentellen Daten ermittelt werden. Die gerechnete Struktur repräsentiert eine der gegenwärtig genauesten und umfassendsten Strukturbestimmungen einer RNA, bei der jeder Torsionswinkel quantitativ bestimmt wurde. Einen besonderen Höhepunkt stellt die strukturelle Analyse der 2’OH-Gruppen dar, die im anschließenden Kapitel 4 weiter vertieft wurde. (Nozinovic, S., Fürtig, B., Jonker, H. R. A., Richter, C., Schwalbe, H. (2010), Nucleic Acids Res. 38, 683-694) Über Jahre war bekannt, dass die Größe der 1J(C1’,H1’)- und 1J(C2’,H2’)-Kopplungskonstanten innerhalb der Ribonukleotide von der lokalen Struktur des Zuckers und der Orientierung der Nukleobase beeinflusst wird. In dieser Arbeit (Kapitel 4) wurde zum ersten Mal ein systematischer Vergleich zwischen NMR-Messungen und DFT-Rechnungen durchgeführt, der eine eindeutige Zuordnung der Hauptkonformationen des Zuckers (C3’- oder C2’-endo) und der Nukleobase (anti oder syn) anhand der 1J(C,H)-Kopplungskonstanten erlaubt. Die beschriebene Methode wurde an einer größeren 27mer RNA erfolgreich erprobt. Weiterhin wurde erstmalig entdeckt, dass zudem die Orientierung der 2’OH-Gruppe einen signifikanten Einfluss auf die 1J(C,H)-Kopplungen hat (Abb. 3). Mithilfe von NMR-Messungen und DFT-Rechnungen konnte aus 1J(C,H)-Kopplungskonstanten die Orientierung von allen 2’OH-Gruppen in der 14mer cUUCGg-Tetraloop RNA bestimmt werden. Die Methode hat den großen Vorteil, dass 2’OH-Gruppen, die aufgrund des schnellen Austauschs mit Wasser oder D2O keine NMR-Signale liefern, analysiert werden kön-nen. (Nozinovic, S., Gupta, P., Fürtig, B., Richter, C., Tüllmann, S., Duchardt-Ferner, E., Holthausen, M. C., Schwalbe, H. (2011), Angew. Chem. Int. Ed. 50, 5397-5400) Im Kapitel 5 wird eine NMR-spektroskopische Untersuchung an der Aptamerdomäne des Adenin-bindenden RNA-Schalters (pbuE) vorgestellt. Im Fokus der Forschung stand die Frage: Welchen Einfluss hat die Länge der P1-Helix auf die Struktur und die Ligandbindung der freien Aptamer-domäne? Durch den Vergleich von zwei Konstrukten mit unterschiedlich langer P1-Helix war es möglich, intrinsische Scherkräfte, die durch die Ausbildung der P1-Helix in der freien Aptamerdomäne entstehen, festzustellen. Es hat sich im Konstrukt mit der verlängerten P1-Helix gezeigt, dass diese zur Destabilisierung der P3-Helix und des Schlaufenkontakts führen. Diese strukturellen Änderungen haben außerdem zur Folge, dass die Bindungsstärke des Liganden reduziert wird. Die Ergebnisse zeigen, dass ein strukturelles Gleichgewicht zwischen Sekundärstrukturelementen die tertiäre Faltung beeinflusst und die Funktion moduliert. (Nozinovic, S., Reining, A., Noeske, J., Wöhnert, J., Schwalbe, H. (2011), in Vorbereitung)
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NMR, EM and functional studies on TBsmr, a small multidrug transporter from M. tuberculosis
(2008)
- 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.
