Refine
Year of publication
Document Type
- Doctoral Thesis (39)
Language
- English (39) (remove)
Has Fulltext
- yes (39)
Is part of the Bibliography
- no (39)
Keywords
- NMR-Spektroskopie (5)
- RNA (4)
- NMR (3)
- Proteinfaltung (3)
- DNA (2)
- Dynamik (2)
- G-Quadruplex (2)
- Kinetik (2)
- Molekülstruktur (2)
- NMR spectroscopy (2)
Institute
- Biochemie und Chemie (19)
- Biochemie, Chemie und Pharmazie (17)
- Extern (1)
- Pharmazie (1)
- Physik (1)
Cells perform a wide range of functions such as signalling, transportation, immunoprotection and metabolism. Unravelling the molecular mechanism behind those processes will provide a platform for more targeted and rational drug design. This is achieved by discerning the structural and functional aspects of the biological macromolecules involved. This thesis discusses about the biophysical characterization of protein structures and the biological importance of protein dynamics. Membrane receptors and enzymes which are ubiquitously present in our biological systems and regulate wide variety of functions are excellent choice for such study. From a pharmaceutical point of view, receptor and enzymes are exceptionally important drug targets as they represent the major share (receptor, 30% and enzymes, 47%) of all marketed drugs. Therefore, apart from biological insights, the detailed study of receptors and enzymes will provide the basis for new pharmaceutical applications. Most information about receptor activation and enzyme activity come from the structural and functional analysis of target members of the above mentioned systems.
In “Chapter 1 – General Introduction” the readers are introduced to the world of proteins with special focus on G-protein coupled receptors (GPCRs) and methyltransferases. The first part of this chapter discusses about GPCRs with emphasis on their classification, structural features and functions. GPCRs are the most abundant membrane receptors present in mammalian cells, accounting for almost 15% of all membrane proteins. The GPCR superfamily consists of ~800 members and can be subdivided into six classes (A-F). Class A containing rhodopsin, peptide hormones, olfactory GPCRs, is the most abundant with a large share of 85% of GPCR protein family. GPCRs share a common architecture of 7 transmembrane a-helices, with different ligand binding sites. Although a variety of ligands ranging from subatomic particles (a photon) to large proteins can activate a GPCR, their mechanism of signal transduction is almost similar. There are two major signal transduction pathways identified for GPCRs: the cAMP pathway and the phosphatidylinositol pathway. The therapeutic relevance of GPCRs has also been pointed out here since a large share (30%) of modern marketed drugs target GPCRs.
In the second part of this chapter, the structural and functional characterizations of methyltransferases (MTs) are discussed in detail. Several important biological processes in cells e.g. drug metabolism, gene transcription, epigenetic regulations are modulated by methylation of targets ranging from small biomolecules to large proteins. MTs are the proteins which catalyze this methylation reaction and transfer the methyl group to an acceptor molecule through SN2 like nucleophilic substitution reaction. The MTs can be classified on the basis of the substrate atoms they methylate: O (54% of all MTs), N (23%), C (18%), S (3%) and other acceptors (such as halides; 2%). They can also be categorized into five different classes (Class I-V) depending upon distinctive structural features facilitating substrate binding or catalytic activity. Rossmann fold and SET (acronym acquired from the Drosophila Su(var)3-9 and 'Enhancer of zeste' proteins) domain are the two characteristic structural motifs commonly found in MTs. Similar to GPCRs, MTs dysfunction has been shown to be involved in various diseases including neuropsychiatric diseases and cancer. Therefore they are also interesting targets for drug development. The final part of this chapter discusses the importance of structural biology in gathering information related to structure and conformational dynamics of proteins. The two prominent biophysical techniques used in structural biology, X-ray crystallography and NMR, are discussed with focus on their advantages and limitation. The importance of NMR spectroscopic techniques to investigate different dynamic processes of protein at atomic resolution under physiological conditions is also discussed. Real time NMR spectroscopy required for the analysis of slow protein dynamic processes (protein folding, enzyme catalysis, domain rearrangement) has been explained in detail.
The second part of the thesis (Chapters 3-4), which is the cumulative part, comprises the original publications grouped into 2 chapters according to their topic:
• NMR-spectroscopic characterization of the transiently populated photointermediates of bovine rhodopsin and it’s interaction with arrestin (Chapter 3)
• Structural and biophysical characterization of PaMTH1, a putative SAM dependent O-methyltransferase from filamentous fungi Podospora anserina (Chapter 4)
Each chapter is initiated by a detailed introduction to the topic, providing the framework for the following papers. The personal contribution of this thesis’ author to each publication is stated in the introduction to the respective article.
The formation and maintenance of a defined three-dimensional structure is a prerequisite for most proteins in order to fulfill their function in the native context. However, there are proteins, which are intrinsically unstructured and thus natively unfolded. In addition, the misfolding and aggregation of many proteins can lead to severe diseases. The investigation of non-native states of proteins significantly contributes to the understanding of protein folding and misfolding. Nuclear magnetic resonance (NMR) spectroscopy is the only known technique that can provide information on structure and dynamics of non-native states of proteins at atomic resolution. Unfolded and non-native states of proteins have to be treated as ensembles of rapidly interconverting conformers and their observed properties are ensemble and time averaged. In this thesis, hen egg white lysozyme (HEWL) and mutants thereof have been investigated by NMR spectroscopy. The reduction of its four disulfide bridges and the successive methylation of the cysteine residues renders HEWL permanently non-native (‘HEWL-SMe’). Alternatively, the exchange of the eight cysteines for alanines results in very similar states (‘all-Ala-HEWL’). Under these conditions, HEWL-SMe and all-Ala-HEWL do not resemble random coil conformations, but exhibit residual secondary and tertiary structure. The presence of hydrophobic clusters and long-range interactions around the proteins six tryptophan residues and the modulation of these properties by single-point mutants has been observed. For the NMR spectroscopic investigation, HEWL has been isotopically labelled in E. coli by expression into inclusion bodies. After purification, the 1HN, 15NH, 13Calpha, 13Cbeta, 13C’, 1Halpha and 1Hbeta resonances of HEWL-SMe and all-Ala-HEWL have been assigned almost completely using three-dimensional NMR experiments. The analysis of secondary chemical shifts revealed regions in the proteins sequence — particularly around the six tryptophan residues—with significantly populated alpha-helix like conformations. In order to further elucidate the influence of the tryptophan side chains, a set of two new pulse sequences has been developed that allowed for the successful assignment of the 13Cg, 15Ne and 1HNe resonances in these side chains. This knowledge was eventually exploited in the interpretation of two-dimensional 15N-1H photo-CIDNP spectra, which revealed a differential solvent accessibility of the tryptophan residues in all-Ala-HEWL but not in the single point mutant W62G-all-Ala-HEWL. In addition, heteronuclear R2 relaxation rates have been determined for the indole 15Ne nuclei of all-Ala-HEWL and W62G. While in the wild-type like all-Ala-HEWL, the rates are different among the six tryptophan residues, in W62G they are more uniform. Together with relaxation data from the amide backbone, these results indicate the significant destabilization of the hydrophobic clusters in the absence of W62. In contrast, in the W108G mutant the profile of the R2 relaxation rates was not found to be significantly altered. No evidence was found by R1rho relaxation rates and relaxation dispersion measurements for conformational exchange on slower (micro- to millisecond) timescales. Residual dipolar couplings have been determined for non-native HEWL in order to retrieve structural information of these states. The differences of the W62G and the wild-type like non-native HEWL is also picked up in NH-RDCs of these proteins aligned in polyacrylamide gels. Significant positive RDCs are observed in the regions of the hydrophobic clusters in all-Ala-HEWL, but to a much lesser degree in W62G. So far, all attempts to simulate RDCs from generated non-native ensembles failed even when including long-range contacts or specific phi/psi backbone angle propensities. However, the measured RDCs can be used to cross-validate structural ensembles of non-native HEWL generated by molecular dynamics simulations that are based on restraints from the other experimental data, such as the differential solvent accessibilities from the photo-CIDNP experiments and the data on the hydrophobic clustering gained from the combined mutational and relaxation studies. Finally, non-native HEWL has been investigated for the first time using two-dimensional NMR in organic solvents, which are able to induce secondary structures and ultimately lead to amyloid formation. Under these conditions severe line broadening was observed, which was attributed to exchange between different — mostly a-helical— conformations. In summary, in this thesis methods have been developed, optimized and successfully applied for the structural and dynamical characterization of non-native states of proteins and the effect of single-point mutants on the properties of such ensembles has been investigated. Data has been gained that can considerably contribute to the further elucidation of the nature of non-native states of HEWL by molecular dynamics simulations.
Despite the well-known importance of ribonucleic acids (RNA) in cell biology, it is astounding to realize the pace at which new fundamental functions of RNAs have been discovered. One of the fundamental reasons for the multitude of functions of RNA is the property of RNA to adopt different conformations or folds. The primary sequence of RNA, a linear polymer built from four different repetition units, can fold into alternate secondary structure motifs which in turn form alternate long-range interactions in complex tertiary structures. Ligands such as metal ions or small molecular weight metabolites and also proteins or peptides can bind to RNA and induce the changes in tertiary conformation. For example, in the cell, RNA participates in gene regulation in the form of riboswitches. Riboswitches are found in untranslated regions of messenger RNA (mRNA) and adopt alternate conformations depending on the presence or absence of specific metabolites. If a metabolite is present above a specific concentration, it induces a conformational change in the respective riboswitch by binding and thereby alters gene expression. Another example is the RNA thermometer which participates in the cell translational mechanism by a similar strategy. Translation initiation requires the binding of RNA thermometers to the ribosome. The ribosome binding region is located in the 5’ untranslated region of mRNA. At low temperatures this region is prevented from binding to the ribosome by forming basepairs. At higher temperatures, these basepairs dissociate allowing ribosome binding and subsequent translation. Therefore, the characterization and delineation of the kinetics and pathway of RNA folding is important to understand the function of RNA and is an important contribution to fundamentally understand RNA’s role in the cell. RNA conformational transitions occur over a wide range of timescales. Depending on the timescale, various biophysical techniques are used to study RNA conformational transitions. In these biophysical studies, achieving good structural and temporal resolution constitute frequently encountered challenges or limitations. For example, single molecule FRET spectroscopy provides high temporal resolution in the milliseconds at high sensitivity but lacks atomic resolution. Recent advances in the field of Nuclear Magnetic Resonance (NMR) spectroscopy have enabled the elucidation of tertiary folding events to be characterized with atomic resolution. This thesis involves the use of NMR spectroscopy to characterize the folding of RNA molecules. Kinetics experiments require rapid initiation of the kinetics followed by monitoring of the reaction. In this thesis, two different folding initiation techniques have been applied and coupled to the subsequent detection of RNA folding using NMR spectroscopy, namely, photocaging and rapid mixing. The method of photocaging is well established (Kuhn and Schwalbe, 2000) and builds on the following principle: A photolabile moiety is attached to a molecule that prevents a specific interaction. Upon irradiation of the molecule with the photolabile group using laser light at a specific wave length, at which the molecule of interest is not absorbing, the protecting group is released. In our group, together with the group of S. Pitsch, ETH Lausanne, we could "cage" RNA at its equilibrium state by a photolabile molecule (similar work has been carried out in the group of A. Heckel). Rapid and traceless release of the photolabile precursor compound by a laser pulse releases the RNA to fold into its native state; the build-up of the native state of the RNA is monitored by NMR signals that are uniquely characteristic for the native state of the RNA. By optically coupling a laser source to an NMR magnet, the above procedure can take place in situ and the kinetics recorded by NMR. Several different molecules can be caged: The photocage can be attached to RNA. Then, a modified photolabile nucleotide can be placed at strategic positions of a target RNA whose folding properties is to be studied. The photocage can also be attached to a ligand: if folding is dependent on ligand binding then the ligand can be modified to carry a photosensitive unit whose degradation allows binding to RNA. In this thesis, an alternative method for photocaging is introduced. Here, metal ions essential for folding of the RNA are photocaged using the photolabile chelating agent Dimethyl-nitrophen (DMN). Photolysis of DMNr releases the metal ion, thereby RNA folding is initiated. In the rapid-mixing technique, one of (several) components required for proper folding of the RNA is rapidly injected into an NMR sample in situ by the use of a pneumatic injection device. ...
The focus of this thesis has been to further advance and develop existing NMR techniques for the study of protein folding. In order to do so, experimental as well as theoretical approaches have been pursued. From the theoretical side, a successful attempt to the development of a general theory for the treatment of residual dipolar couplings in the case of unfolded proteins has been undertaken. Information contained in residual dipolar couplings is especially valuable due to its long-range nature. The dynamic character of unfolded states of proteins, which may be composed of distinct subsets of conformations, renders reliable interpretation of data a non-trivial task. Statistical-coil-based approaches have been shown to be powerful in data interpretation. A consistent theory based on fundamental polymer physics, however, had not been presented so far. The herein presented model addresses this problem building on the original work by Annila and co-workers. In this work, several shortcomings have been identified. These shortcomings have been corrected here leading to a general approach for the treatment of residual dipolar couplings of unfolded proteins. More specifically, it is shown that, in the case of fully unfolded proteins aligned by a steric mechanism, basic dependencies of dipolar couplings such as on chain length and location with in the chain can be analysed in simple analytical terms. The main predictions of the model are compared to experimental data showing reasonable agreement. The presented mathematical framework is principally suited for various improvements which could include the treatment of long-range interactions and of the actual geometry of the given aligment medium. From the experimental side, bovine alpha-lactalbumin has been chosen as a model system for the development of improved time-resolved 1D NMR methods aiming at the observation of conformational transitions by kinetic means. The presented results show that high-quality data can now be obtained at protein concentrations as low as 100uM. Rate constants characterising distinct conformational transitions of up to 8/s have been measured. These are the fastest rate constants which have been reported so far for protein folding events. The NMR data supplemented by complementary biophysical data furthermore demonstrate that the folding of bovine alpha-lactalbumin is more complex than has been anticipated. All data are consistent with a triangular folding mechanism involving parallel pathways of folding for formation of the native state of the protein. Interestingly, such a folding mechanism has also been found for the highly structurally homologous protein lysoyzme from hen egg white. Evidence is presented that the guiding role of long-range interactions in the unfolded state of lysoyzme for mediating intersubdomain interactions during folding is replaced in the case of bovine alpha-lactalbumin by the Ca2+ binding site.
Transmissible spongiform encephalopathies (TSEs) are rare but fatal neurodegenerative diseases affecting human and animals. The prion protein which is the causative agent, according to “protein-only” hypothesis misfold in to rogue amyloid conformer. Despite several years of studies, the atomic structural details of the rogue conformers have not been clearly understood. This study focused on developing an in-vitro conversion method, which allows us to monitor the transition from unfolded state of prion protein to fibril state. In order to reach maximal unfolded state, we have used 8 M urea as chemical denaturant, pH 2 and prion fragment 90-230 as the model. It has been demonstrated earlier that acidic pH and mild denaturant induce the fibril formation. The mechanism underlying the structural transition from monomeric state to polymeric form is largely unknown. We have confirmed by EM and AFM that fibrils are formed in our conditions, which resemble to naturally occurring fibrils in morphologies observed. The agitation accelerates the rate of fibril formation and, which allow us to do time-resolved NMR on these preparations. The conformational flexibility is inherent to amyloid fibrils and has been observed in our preparations. We aimed to map the important segment of prion protein, which forms the rigid core in its fibrillar structured form. Our time-resolved NMR studies allowed us to monitor the changes happening from unfolded state to fibrillar state. Analysis of data identified the segment between residues 145 to 223 forming the rigid core in these fibrils, which correspond to β strand 2, helix 2 and major part of helix 3 of native prion monomeric structure. Most of the point mutations which are associated with hereditary prion disease are part of rigid core, which undergo a refolding on fibril formation. The C-terminal residues from 224 to 230 displayed peak shifting and therefore, indicate the adaptation to a fibril specific conformation. The major part of N-terminal 90-144 segment, remains dynamic, which can be understood by their accessibility to amyloid specific antibodies. This provides novel structural insight to the amyloid formation from unfolded state of prion protein fragment 90-230, which represents the proteinase-K resistant part naturally occurring prions. Earlier studies have established the core to 160-220 where hydrogen-deuterium exchange mass spectrometry or site-directed spin labeling EPR spectroscopy was used for analysis. Those studies have been initiated from either native-like or partially unfolded state of recombinant prion protein, and therefore, it is quite striking to find out that fibrils initiated from unfolded monomeric state share the same “amyloid core”. This structural insight has important implications for understanding the molecular basis of prion propagation.
An application of EPR spectroscopy that is becoming increasingly important is the measurement of distances between electron spins. Several EPR methods have been developed for this purpose, all based on measuring the dipolar coupling between two spins. Due to the specific nature of the sample, we applied dipolar relaxation enhancement measurements to study the geometry of a protein-protein complex. The paramagnetic centers in question had EPR spectra that were too broad and had such short relaxation time that they could not be studied using the more straightforward PELDOR technique. EPR spectral resolution can be increased appreciably by measuring at a frequency higher than conventional X-band (9 GHz) frequency. The spectra of many paramagnetic species can only be resolved at frequencies higher than 90 GHz. For accurate measurement of the orientation of the vector between two dipolar coupled spins with respect to the g-tensors of the spins, high spectral resolution is required. We therefore performed our EPR measurements at G-band (180 GHz) frequency. Dipolar relaxation measurements were applied to study the complex that is formed by the two electron-transfer proteins cytochrome c and cytochrome c oxidase (CcO) from the soil bacterium Paracoccus denitrificans. We were able to detect dipolar relaxation enhancement due to complex formation of soluble subunit II of P.d. CcO (CcOII) with two substrate cytochromes, which was practically absent in a mixture of CcOII with the negative control protein cytochrome c1. This complex formation was characterized by a pronounced temperature dependence that could be simulated using a home-written computer program. The G-band EPR measurements could not be simulated with a single complex geometry. This provided evidence for the hypothesis that electron-transfer protein complexes are short-lived and highly dynamic; they do not seem to form one specific electron-transfer conformation, but rather move around on each other’s binding surfaces and transfer an electron as soon as the distance between donor and acceptor is short enough. As a test of our simulation program, we also applied dipolar relaxation measurements to specially synthesized organic molecules that contained a nitroxide radical and a metal center. The transverse relaxation of Cu2+-OEP-TPA was compared to the relaxation of Ni2+-OEP-TPA at temperatures between 20 and 120 K. In this temperature range, the nitroxide relaxation was enhanced due to the presence of Cu2+, but not by Ni2+. Similarly, relaxation enhancement was found in the nitroxide-Mn2+ pair in Mn2+-terpyridine-TPA with respect to the terpyridine-TPA ligand. Due to the fast T2 relaxation of the nitroxide radical at high temperatures, the measurements were all performed in the low-temperature regime where the T1 relaxation rate of the metal ion was smaller than the dipolar coupling frequency. In this region, no structural information about the molecule can be deduced, since the dipolar relaxation enhancement is only determined by the T1 of the metal ion. The dipolar relaxation measurements we performed at high field indicated a difference in relaxation times between X-band and G-band frequencies. Extensive T1 - measurements of different paramagnetic centers (CuA, Cu2+) confirmed a strong dependence of T1 on magnetic field in the temperature range where the direct process is the dominating T1 relaxation process. This dependence is very strong (factor of 103 with respect to X-band), but does not follow the B04 dependence predicted in literature. The T1 relaxation of low-spin iron in cytochrome c at high magnetic field, estimated from dipolar relaxation data, is also in agreement with a larger contribution by the direct process (factor of 104). Dipolar relaxation enhancement was found to be a technique that is useful for measuring distances between paramagnetic centers, but only for systems where several important conditions are met, such as: the system exists in one certain static geometry, and the relaxation rate of the fast-relaxing spin is faster than the dipolar coupling frequency within the accessible temperature range. Additionally, it is a great advantage for the analysis of dipolar relaxation data if the procedure of dividing the relaxation trace of the dipolar-coupled slow-relaxing spin by the relaxation trace of the slow-relaxing spin in absence of dipolar coupling can be applied. Another useful application of dipolar relaxation enhancement measurements is the measurement of T1 relaxation of extremely fast-relaxing spins, or spins that are otherwise difficult to detect.
One of the most important tasks in chemistry and especially in structural biology has always been the elucidation of three-dimensional molecular structures - either of small molecules or large biopolymers. Among the (bio)physical methods to acquire structural data at atomic resolution electron paramagnetic resonance (EPR) spectroscopy is the most valuable technique for obtaining structural information about many different kinds of paramagnetic species. In biological systems, either paramagnetic metal ions/clusters, transient paramagnetic intermediates in electron transfer processes or artificially attached stable spin labels can be found. The usual approach to interpret EPR spectra is to perform simulations based on the so-called spin Hamiltonian (SH). This means that the well-defined numerical parameters (tensors) in the SH representing different types of interaction are obtained by fitting the experimental data. The SH parameters include electronic g-values, hyperfine coupling (HFC) and quadrupole coupling (&C) constants, zero-field splittings and constants to describe exchange and dipolar interactions between electron spin systems. However, since the SH only contains spin degrees of freedom, a direct translation of the SH EPR parameters into structural information is not straightforward. Therefore, methods to predict such SH interaction parameters starting from molecular structures are required. In this thesis it was investigated whether quantum chemical calculations of EPR parameters based on density functional theory (DFT) methods may be employed to overcome these problems thus enabling a correlation of experimental EPR data with molecular structure. It was the central goal of this work to point out the potential of a fruitful interplay between quantum chemistry and experiment and to study how both can benefit from each other. For this purpose DFT methods were applied to a variety of organic radical or transition metal systems to calculate different EPR parameters. Using the 'broken symmetry' formalism it was possible to compute the exchange coupling constant for a nitroxide biradical and furthermore decompose the exchange mechanism in different through-bond and through-space interactions. Spin density distributions, 14N and 1H HFC constants as well as dipole moments and polarizabilities were computed for a number of aromatic nitroxides to examine their properties and select promising candidates which may serve as DNA-intercalating spin labels. Systematic investigations of the influence of hydrogen bond geometry on the 14N QC parameters for imidazole-water and methylimidazole-benzosemiquinone complexes lead to the conclusion that especially the imidazole amino nitrogen &C parameters are very sensitive probes of the bond geometry, in particular of the hydrogen bond length. The results of this study may be applied to biological systems, e.g. to gain structural information about quinone binding sites. Moreover, quantum chemical methods were applied to elucidate the structure of a nitrogen-centered radical intermediate in the inhibition process of ribonucleotide reductase (RNR). It was possible to find a molecular structure in accordance with all experimentally available data, thus revealing the longsought structure of the No radical and providing evidence for the trapping of a 3'-ketonucleotide in the reduction process catalyzed by RNR. To test the capability of modern DFT methods to predict g- and molybdenum HFC tensors for MoV complexes, validation studies were carried out. Comparison of computed EPR parameters of a number of MoV compounds with corresponding experimental values showed that g- and HFC tensors could be predicted in good accuracy, although some systematic errors of the computational methods have to be considered for such heavy 4d1 transition meta1 systems. Furthermore, DFT calculations on a Mn2+ binding site model of the hammerhead ribozyme allowed to conclude that the structure of the binding site as studied by EPR spectroscopy in frozen solution is very likely to be identical to the site found occupied by Mn2+ in crystals. Finally, computational methods were employed to aid in the structural characterization of the Mn2+ binding site in Ras (rat sarcoma protein) by providing accurate starting parameters for spectral simulations and furthermore helping to interpret the experimental data. In conclusion, it was demonstrated in this thesis that the combination of sophisticated experimental and quantum chemical methods represents a powerful approach in the field of EPR spectroscopy and that it may be essential to employ EPR parameter computations to extract the full information content from EPR spectra. Therefore, great potential lies in future applications of DFT methods to the large number of systems where detailed and reliable experimental data is available but where an unequivocal correlation of these data with structural information is still lacking.
Seit einigen Jahrzehnten ist Lysozym eines der am meisten erforschten Proteine in der Literatur und wird hauptsächlich als Modell Protein zur Aufklärung der Faltungs- und Entfaltungsprozesse genutzt. Da die Frage nach Fehlfaltung und deren Verknüpfung mit neurodegenerativen Krankheiten bis zum heutigen Tag nicht vollständig geklärt ist, besteht hier ein großer Spielraum für weitere Forschungsansätze. In der vorliegenden Arbeit wurden daher zwei Modellsysteme verwendet, Hühereiweiß-Lysozym und menschliches Lysozym, jeweils in ihrem nicht-nativen ungefalteten Zustand. Diese ungefalteten Ensembles wurden mit Hilfe NMR spektroskopischer Methoden untersucht und ergaben sehr detaillierte, zum Teil auch überraschende neue Einblicke in Struktur und Dynamik der beiden Proteine und liefern somit wichtige Erkenntnisse zu Faltungs- und Aggregationsprozessen. ...
Riboswitches are an important class of regulatory RNA elements that respond to cellular metabolite concentrations to regulate gene expression in a highly selective manner. 2’-deoxyguanosine-sensing (2’dG) riboswitches represent a unique riboswitch subclass only found in the bacterium Mesoplasma florum and are closely related to adenine- and guanine-sensing riboswitches. The I-A type 2’dG-sensing riboswitch represses the expression of ribonucleotide reductase genes at high cellular concentrations of 2’dG as a result of premature transcription termination.
Increasing evidence within the last decade suggests that transcriptional regulation by riboswitches is controlled kinetically and emphasizes the importance of co-transcriptional folding.2–4 Addition of single nucleotides to nascent transcripts causes a continuous shift in structural equilibrium, where refolding rates are competing with the rate of transcription.5,6
For transcriptional riboswitches, both ligand binding and structural rearrangements within the expression platform are precisely coordinated in time with the rate of transcription. The current thesis investigates the mechanistic details of transcriptional riboswitch regulation using the I-A 2’dG-sensing riboswitch as an example for a riboswitch that acts under kinetic control.
Membrane proteins (MPs) constitute about 30% of the genome and are essential in many cellular processes. In particular structural characterisation of MPs is challenged by their hydrophobic nature resulting in expression difficulties and structural instability upon extraction from the membrane. Despite these challenges, progress in sample preparation and the techniques to solve MP structures has led to 281 unique MP structures as of January 2011. Through the combination of a cell-free expression system and selective labelling strategies, this thesis aimed to advance the structure determination of α-helical MPs by NMR spectroscopy and resulted in the structure determination of a seven-ransmembrane-helix protein. Results were obtained for the 5-lipoxygenase-activating protein (FLAP) and proteorhodopsin (PR). The detergent-based cell-free expression mode proved most efficient for production of both targets, but optimisation of FLAP and PR followed different routes. The presence of a retinal cofactor in PR greatly facilitated the search for an appropriate hydrophobic environment. For structural studies, NMR spectra of FLAP indicated favourable properties of the lysolipid LPPG. In contrast, PR was stable and homogenous in the short-chain lipid diC7PC. As NMR spectra of α-helical MPs are generally characterised by broad lines and signal overlap, selective labelling strategies were essential in the assignment process of both targets. For the backbone assignment of FLAP the transmembrane segment-enhanced (TMS) labelling was developed, employing the six amino acids AFGILV. These residues cluster predominantly in transmembrane helices and form long stretches allowing a large extent of backbone assignment. Besides that, the combinatorial labelling enables identification of unique pairs in the sequence based on a mixture of 15N and 1-13C-labelled amino acids. To find the optimal labelling pattern for a given primary structure, the UPLABEL algorithm has been made available and successfully applied in the backbone assignment of PR. Both selective labelling approaches greatly benefitted from the use of a cell-free expression system to reduce isotope scrambling. Additionally, the de novo structure of PR was determined with an average backbone rmsd of 1.2 Å based on TALOS-derived backbone torsion angles, intrahelical hydrogen bond restraints and distance restraints from the NOE and paramagnetic relaxation enhancement (PRE). A major bottleneck in the NMR structure determination of MPs concerns the number of long-range distances which are often limited. In PR, side chain assignment was enabled by stereo-array isotope labelling as well as selective labelling which provided 33 long-range NOEs. These NOEs stabilised the symmetry of the seven helix bundle. With a total number of 1031, the majority of long-range distances were derived from PREs. The structure of PR reveals differences to its homologues such as the absence of an anti-parallel β-sheet between helices B and C and allows conclusions towards the mechanism of colour tuning.