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The chemiosmotic theory suggested by Peter Mitchell (Mitchell, 1961, Nature 191:144-148; see Mitchell, 1979, Science 206:1148-1159 for review) postulated that the energy released upon the oxidation of electron donor substrates is transiently stored as electrochemical proton potential, delta-p across energy-transducing membranes, which acts then as the driving force for the ATP synthesis. Membrane protein complexes can both generate and utilise a transmembrane electrochemical proton potential, either by transmembrane proton transfer or by transmembrane electron transfer coupled to protolytic reactions on opposite sides of the membrane. The dihaem-containing membrane protein complex quinol:fumarate reductase (QFR) from the anaerobic epsilon-proteobacterium Wolinella succinogenes apparently combines both of these mechanisms (Haas et al, 2005, Biochemistry 44:13949-13961; Lancaster et al, 2005, PNAS 102:18860–18865; Mileni et al, 2005, Biochemistry 44:16718-16728; Madej et al, 2006, EMBO J 25:4963-4970). QFR is the terminal enzyme of anaerobic fumarate respiration that allows bacteria to use fumarate as the terminal electron acceptor (Kröger, 1978, Biochim Biophys Acta 505:129-45; Lancaster, 2004, In: Respiration in Archaea and Bacteria Volume 1:57-85). QFR couples the two-electron reduction of fumarate to succinate to the two-electron oxidation of quinol to quinone. QFR contains two haem b groups bound by the transmembrane subunit C, which are termed the ‘proximal haem’, bP, and the ‘distal haem’, bD, according to the relative proximity to the hydrophilic subunits A and B (Lancaster et al, 1999, Nature 402:377-85). The two-electron transfer via the two haem groups has been proposed (Lancaster, 2002, Biochimica et Biophysica Acta 1565:215-231) and demonstrated (Madej et al, 2006, EMBO J 25:4963-4970) to be coupled to a compensatory, parallel transfer of two protons via a transmembrane proton transfer pathway. The two most prominent constituents of the proposed pathway were suggested to be the haem bD ring C propionate and the side chain of amino-acid residue Glu C180, after which the proton transfer pathway was named the ‘E-pathway’ (Lancaster, 2002, Biochimica et Biophysica Acta 565:215-231). The essential role of Glu C180 was supported by site-directed mutagenesis and structural and functional characterization of the enzyme E180Q, where the Glu C180 was replaced with a Gln residue (Lancaster et al, 2005, PNAS 102:18860–18865). Moreover, multiconformer continuum electrostatics (MCCE) calculations (Haas and Lancaster 2004, Biophys J 87:4298-4315) and Fouriertransformed infrared (FTIR) spectroscopy experiments (Haas et al, 2005, Biochemistry 44:13949-13961) indicated the Glu C180 side chain to undergo a combination of a conformational change and protonation upon haem reduction. The contribution of haem bD propionate is less clear, however, a combination of 13C labelling of the haem propionates with redox-induced FTIR experiments (Mileni et al, 2005, Biochemistry 44:16718-16728) and MCCE calculations (Haas and Lancaster, 2004, Biophys J 87:4298-4315) support a change in protonation, possibly accompanied by a change in environment upon haem reduction. These experiments and their results strongly support the existence of the ‘E-pathway’ which is transiently open during the reduction of the haem groups and blocked in the oxidized state of the enzyme (Lancaster, 2002b, Biochim Biophys Acta 1565:215-231). All available crystal structures of the QFR, however, are those of the oxidized enzyme. Therefore, it is advantageous to perform simulations of various redox states of the enzyme to determine for instance, how the side-chain of Glu C180 and haem bD ring C propionate behave upon changes of the redox states of the haem groups and why is the ‘E-pathway’ blocked in the oxidized state of the enzyme. Although the distal haem ring C propionate and Glu C180 were identified as the most prominent components of the proton transfer pathway, it was not clear, on the basis of the structure, how proton transfer could occur between them. In addition, two constituents are not enough to span the membrane region and the additional participants in the proton transfer pathway must be identified. Since an atomistic investigation of proton transfer in this system is not yet possible experimentally, I used available theoretical methods such as classical molecular dynamics (MD) simulation (Alder and Wainwright, 1959, J Phys Chem 31:459-466; McCammon et al, 1977, Nature 267:585-590) and Q-HOP molecular dynamics (Q-HOP MD) simulation (Lill and Helms, 2001, J Chem Phys 115:7993-8005) to investigate the postulated mechanism of electron coupled proton transfer in QFR. MD simulations allowed us to move away from static difference pictures obtained from FTIR experiments and MCCE calculations. The advantage of the MD simulations over the experiments and the simulations performed so far is that the time-dependent properties could now be analyzed. The behaviour of various residues and their side-chains and any environmental changes may be directly observed during MD simulations. Although classical MD simulations cannot be used to study proton transfer reactions, they can provide information on formation of configurations that would allow either direct proton transfer between donor and acceptor residues or indirect proton transfer mediated by water molecules. To avoid the static protonation of residues which is inherent in classical MD simulations, Q-HOP MD simulations were performed which explicitly describe proton transfer reactions by allowing the change of the protonation state of residues ‘on the fly’. The structures obtained after classical molecular dynamics simulations ....
Seit gezeigt wurde, dass die genetischen Informationen in Form von DNA gespeichert wird, ist das Geheimnis der DNA-Struktur gelöst, der Mechanismus der Gen-Expression und die Rolle der RNA verstanden worden. Das Interesse für die Chemie und die Biologie der Nukleinsäuren ist somit kontinuierlich gewachsen. Besonders interessant ist die RNA, die eine Rolle als ein Vermittler der genetischen Informationen (mRNA) spielt, aber auch als Bote von Aminosäuren (tRNA). Sie ist im Ribosom (rRNA) anwesend, arbeitet als Templat in Telomerasen für DNA-Synthese und hat außerdem wichtige Funktionen in der RNA-Spaltung, z.B. bei Ribozymen wie RNAse P inne. Betreffend bestimmter Spaltstellen in RNA hat auch das Phänomen der siRNA beträchtliche Aufmerksamkeit in diesem Prozess erregt. Der sogenannte RISC-Komplex wird programmiert, einzelsträngige RNA mit hoher Sequenz-Spezifität zu schneiden. Die für die RNA-Interferenz verantwortliche zelluläre Maschinerie ist auch an der Bilbung von MikroRNAs beteiligt. RNA-Interferenz ist heute eines der nützlichsten Werkzeuge in functional genomics geworden. Die große Hoffnung ist, dass es auch vielleicht in der Therapie angewandt werden könnte. Das Thema meiner Doktorarbeit trägt den Titel „Synthesis of Site-Specific Artificial Ribonucleases“. Es beschäftigt sich mit der Entwicklung künstlicher bindungsspezifischer Ribonucleasen. Diese künstlichen Katalysatoren sind im Wesentlichen aus drei Gründen bedeutsam: Zum einen liegt eine mögliche Anwendung in der Affinity-Cleavage (Affinitätsspaltung), eine Technik, die Bindungsstellen von RNA-Liganden durch das kovalente Anbringen eines Reagenzes lokalisiert, das zwischen den Nukleinsäuren schneidet. Zum anderen entsteht die Möglichkeit, neue Werkzeuge für eine gezielte Manipulation großer RNA-Moleküle zu schaffen. Die Vorteile des Ansatzes sind, dass man damit beliebige Zielsequenzen anwählen kann. Das Problem dieser Strategie ist die Notwendigkeit, hohe Genauigkeit im Spaltungssschritt zu erreichen, wie zum Beispiel mit natürlichen Ribozymen. Wichtige Ergebnisse wurden auch während meiner Arbeit erhalten, mit einem Fall von genauer Spaltung zwischen zwei Basen. Der dritte Grund ist die potentielle Anwendung als katalytische antisense-Oligonucleotide in der Chemotherapie. Gegenwärtig existieren zwei Ansätze, unspezifische künstliche RNasen relativ kleiner Größe zu schaffen. Der erste basiert auf Metallkomplexen und führt im Allgemeinen zu höheren Raten. Die Idee ist, ein Metall als elektrophiles Zentrum zur Unterstützung der Transesterfikation zu nutzen. Unter diesen Katalysatoren enthalten die effizientesten Lanthanid-Ionen, Cu2+ und Zn2+. Der zweite Ansatz zielt darauf ab, metallfreie künstliche Ribonucleasen zu entwickeln. Die Vorteile dieser Strategie sind, den Katalysator von der Stabilität der Metallkomplexe, die in vivo problematisch sein könnten, unabhängig zu machen. In diesem Ansatz wird die natürliche Katalyse durch Enzyme simuliert. Zweckmäßige Gruppen mit beschränkter katalytischer Aktivität z.B. als Nucleophile, Säuren oder Basen, werden in einer Weise zusammengesetzt, um Kooperation zu ermöglichen. Potente Katalysatoren können so ohne die Notwendigkeit von Metallen als Cofaktoren erzeugt werden. ...
Transport of proteins into or across cellular membranes is mediated by the conserved and ubiquitous Sec-machinery. The Sec-homologue in the inner membrane of Escherichia coli is SecYEG. Sec-mediated insertion of numerous membrane proteins is aided by YidC, another protein integral to the inner membrane of Escherichia coli. YidC fulfils in addition the integration of a variety of membrane proteins Sec-independently. It belongs to a conserved but structurally uncharacterised family of proteins important for membrane protein biogenesis and comprises homologues in mitochondria and chloroplasts. By modification of a former crystallisation protocol two-dimensional crystals of SecYEG were grown in presence of the signal sequence peptide of LamB. Recording of structural data by electron cryo-microscopy and calculation of a difference structure comparing a former SecYEG projection structure with the one of SecYEG crystallised in presence of the substrate revealed several new and vacant densities. These hint to signal peptide binding close to the translocation pore and to significant rearrangements in proximity to the lateral exit site for transmembrane domains in SecYEG. The difference structure suggests that dimeric SecYEG is an asymmetric molecule consisting of one active and one inactive SecYEG monomer. Detergent removal from a mixture of purified YidC and lipids produced two-dimensional crystals that were highly dependent on the ionic strength and lipid composition for their growth. Electron cryo-microscopy on the frozen-hydrated crystals and image processing visualised structural details at about 10 Å resolution. Averaging two alternative projection structures in p2 and p121_a symmetry, respectively, yielded essentially the same features. Four YidC monomers form one unit cell (dimensions 82 x 71 Å, included angle 85 ° and 90 °, respectively) and seem to be arranged as two sets of dimers integrated in an anti-parallel fashion into the membrane. An area of low density in the centre of each YidC monomer resembles possibly a constriction of the membrane, which could have particular relevance for the integration of substrate proteins into the lipid bilayer.
In this thesis the three dimensional solution strucutre of the RbfA protein from Thermotoga maritima was solved using multidimensional heteronuclear NMR spectroscopy. The RbfA protein binds to the helix I region of the 16S rRNA. To gain insights into the binding mode of RbfA to its target, a second RbfA construct from Helicobacter pylori was used. Comparison of the RbfA proteins with the published structure of RbfA from Escherichia coli, led to studies concerning the differences between proteins from thermophile and mesophile systems. In the second part of this thesis the native binding motive of the RbfA protein was identified. The RbfA protein binds to an alternate helix fold within the pre-sequence of the immature 16S rRNA.
Metabotropic glutamate receptor subtype 7 (mGluR7) belongs to the family of G-protein coupled receptors. mGluR7 is widely distributed in the brain and primarily localized at presynaptic terminals, where it is thought to regulate neurotransmitter release and synaptic plasticity. Studies have shown that the intracellular C-terminal tail of mGluR7 binds a variety of proteins in addition to trimeric G-proteins. These newly identified protein interactions are believed to play a key role in the synaptic targeting and G-protein dependent signaling of mGluR7. Protein interacting with C kinase 1 (PICK1), a PDZ-domain protein, is a strong interaction partner of mGluR7a. In order to investigate the role of PICK1 in the synaptic trafficking and signaling of mGluR7a, a knock-in mouse line in which the interaction of mGluR7a and PICK1 is disrupted was generated. Analysis of the mutant mice by immunocytochemistry and immunoelectron microscopy showed that the synaptic targeting and clustering of mGluR7a was not altered, indicating that PICK1 is not required for mGluR7a receptor membrane trafficking and synaptic localization. However, when the spontaneous synaptic activity of cerebellar granule cell cultures prepared from both wild-type and knock-in mice was monitored, and L-AP4 (400μm) was found to decrease the frequency, but not the amplitude, of spontaneous excitatory currents in wild-type neurons, while no effect of L-AP4 on spontaneous synaptic activity was observed in knock-in neurons. This indicates that PICK1 binding to the C-terminal region of mGluR7a plays an essential role in mGluR7a mediated G-protein signaling. We examined the threshold sensitivity for the convulsant pentetrazole (PTZ) in knock-in mice. It was found that mGluR7a knock-in mice had a greater sensitivity to PTZ than wild-type mice. Moreover, the surface parietal cortex EEG recordings of the mutant mice revealed spontaneous synchronous oscillation, or "spike-and-wave discharges" (SWD), which displayed similar characteristics to absence-like seizures. It was also observed that the knock-in mice responded to pharmacology as human absence epilepsy. These data suggests that the knock-in mice displayed the phenotype of absencelike epilepsy. Furthermore, the behavioral analysis of the mGluR7a knock-in mice showed no deficits in motor coordination, pain sensation, anxiety as well as spatial learning and memory, thus the interaction of mGluR7a and PICK1 appears not to contribute to these physiological processes. Taken together, our data provides evidence for an important role of PICK1 in Gprotein dependent signaling of mGluR7a, whereas PICK1 is not required for synaptic targeting and clustering of mGluR7a. Our results also provide an animal model of absencelike epilepsy generated by disruption of a single mGluR7a-PDZ interaction, thus creating a novel therapeutic target against this neurological disease.
Purification and characterization of heterologously produced cannabinoid receptor 1 and G proteins
(2007)
G protein coupled receptors form the largest group of transmembrane proteins, which are involved in signal transduction and are targeted directly or indirectly by 40-50% of the drugs in the market. Even though a lot of biochemical and pharmacological information was acquired for these receptors in the past decades, structural information is still insufficient. G protein coupled receptors are expressed in a very minute scale in the tissues. Purification of G protein coupled receptors, in amounts needed for structural studies, from native tissue is tedious and almost impossible. To overcome this first hurdle of insufficient protein, several heterologous protein expression systems are being used. Another difficulty in structural determination of a G protein coupled receptor is that it is a membrane protein. Membrane proteins are difficult targets for structural studies. One of the possible reasons is the little hydrophilic surface area on the membrane protein, reducing the chances of crystal contact between the molecules. The present work is an attempt to investigate possible ways to overcome these problems. Aim of the project was to use G proteins to increase the hydrophilic area of the G protein coupled receptor. G protein is a physiological partner to the G protein coupled receptor which makes the complex functionally relevant. In the present work five G alpha proteins were purified to homogeneity by a two step purification using metal affinity and ion-exchange chromatography. The G alpha subunits purified were tested for their detergent susceptibility. It was found that only some G proteins were active in the presence of detergent. Observation from contemporary reports also suggest that the G alpha proteins expressed in Escherichia coli, alone may not be sufficient to bind to the G protein coupled receptors in solution. So the project was extended towards expressing a G protein coupled receptor which was reported to exist in a complex with the G proteins, in the cells. Purifying such a functional complex could be more beneficial to use for crystallization. Cannabinoid receptors were chosen for heterologous expression and purification. Production of recombinant cannabinoid receptor 2 was investigated in Pichia pastoris. The protein obtained was highly heterogenous. There were several oligomeric forms as well as degradation products in the cell membranes. Most of the protein was lost in the purification steps leading to a poor yield. Several oligomeric forms and other impurities were still present in the protein sample after purification. Alternatively, a baculovirus mediated insect cell expression system was investigated, to produce the receptors. Cannabinoid receptor 1 was investigated in insect cell expression system because of its better biochemical understanding and pharmacological importance than cannabinoid receptor 2. Cannabinoid receptor 1 was produced in two forms, a full length and a distal carboxy terminal truncated version. All the several gene constructs made could be expressed in the Spodoptera frugiperda (Sf9) insect cells. Expression levels (Bmax) for the constructs with a decahistidine tag at the amino terminus and Strep-tagII at the carboxy terminus were 40 pmol/mg and 53 pmol/mg respectively, for full length and truncated versions. These expression levels are 2 fold higher than the levels reported till now in the literature. As was quite evident from previous experiences of other research groups, purification of this receptor was a challenge. Protein purified from immobilized metal affinity chromatography (Ni-nitrilo tri acetate)(Ni-NTA) was not even 50% pure. A second purification by immobilized monomeric avidin or Streptactin agarose, making use of Biotag and StreptagII respectively, drastically reduced the protein recovery. Later on, purification of receptor was investigated on different metal chelating resins. His-Select, a Ni-NTA based matrix from Sigma, with much lesser density than Ni-NTA from Qiagen, showed a better purification profile. Purification was optimized to get 80% homogeneity but with low yield (20%). Further efforts are needed to improve the yield and purity of the receptor, to use it for crystallization. Cannabinoid receptors are known to exist in a precoupled form to G proteins in the cells. The existence of such precoupled forms of the receptor was investigated using the fluorescence techniques. Guanosine-5-triphosphate binding assay on the cell membranes, in the absence of agonists confirmed the active precoupled form of the receptor. It was found that it is possible to co-immunoprecipitate the complex. These results show that the truncated cannabinoid receptor can be produced in functional form in insect cells in much higher yields than reported. This receptor exists as a complex with G proteins even in the absence of ligands. It was also shown that the receptor/G protein complex can be coimmunoprecipitated. Further work is required to investigate the possibility of purifying this complex to use it for co-crystallization.
G-protein coupled receptors (GPCRs) comprise the largest superfamily of cell surface receptors and possess a signature motif of seven transmembrane helices. The endothelin B (ETB) receptor is a member of rhodopsin like GPCR family. It plays an important role in vasodilation and is found in the membranes of the endothelial cells enveloping blood vessels. Knowledge of the three-dimensional structure of G-protein coupled receptors in general would significantly add to our understanding of their molecular mechanisms and would be useful in the search for new specific drugs. However, three-dimensional structural analysis will require milligram quantities of pure and homogeneous protein. This dissertation is a study of the production, biochemical characterization and preliminary structural studies of the human ETB G-protein coupled receptor. The present work aimed at elucidating the structure and mechanistic details of function of the receptor by using a combination of X-ray crystallographic and NMR methods for collecting structural data. To obtain homogenous and monodisperse receptor protein preparation for structural and functional studies, we implemented the baculovirus expression system for the production of ETB receptor for the present work. The two step affinity purification ensured capture of full-length receptor. Silver stained SDS-PAGE of the purified receptor-ligand complex indicated greater than 90% protein purity. Based on previous reports, we used the high affinity ligand (endothelin -1) binding to the receptor for co-crystallization of receptor-ligand complex by locking the receptor in the activated conformation. As a prerequisite for 3D crystallization trials, the stability of the detergent solubilized receptor-ligand complex was assessed with respect to pH, temperature and time. Receptor-ligand complex did not show any degradation and aggregation over 6 days at 4°C and 18°C. Interestingly, change of pH suggested that receptor-ligand complex is unstable at lower pH due to possible charge induced conformational changes. In our work, we introduced the idea of using fluorophore labeled ligand for simple visual recognition of the receptor-ligand complex during purification and crystallization. On the other hand, we alternatively used biotinylated endothelin-1 to produce an adequate amount of ligand bound receptor complex, thus ensuring homogeneity of the purified complex for use in structural studies. Thus far, preliminary crystals have been obtained for both the unlabelled ET-1 and fluorophore labeled ET-1 complexed with ETB receptor. Moreover, we performed the systematic investigation of the protein/peptide binding partner for the receptor-ligand complex with the chief aims of stabilizing structure and increasing the possibilities of 3D-crystal contacts. Thus subsequent to formation of receptor-ligand complex, the additional in vitro formation of a ternary arrestin-receptor-ligand complex was also attempted for use in structural studies. We successfully demonstrated that arrestin mutant (R169E) forms a tight complex with ETB receptor regardless of its phosphorylation state. A second approach to get insight into the ETB receptor ligand binding site relied on the use of spin isotope labeled ET-1 ligand peptide by employing solid state MAS NMR method. Preliminary data provided compelling evidence that the C-terminal region of the peptide is immobilized in an ordered environment and presumably bound to the receptor. This indicates that the approach is feasible, although there are difficulties in sample preparation for further spectral measurements and data collection which are currently being discussed in ongoing investigations. At this point of our research work, we initiated a collaborative effort to obtain high yields of pure, active receptor without post translational modifications, from an E. coli cell lysate based in vitro expression system. We successfully optimized the production of homogenous and monodisperse endothelin B receptor in mg amounts. Thus this could potentially provide an alternative source of high quality receptor production in large quantities for immediate crystallization trials. Thus we hope that the results from these investigations can be applied in a more general sense to the production and crystallization of other G protein-coupled receptors.
The retinoic acid related orphan receptor alpha (RORalpha) regulates the expression of various target genes by binding to specific response elements in their promoter region. RORalpha is an interesting pharmaceutical target since it positively affects several pathophysiological processes of clinical relevance. RORalpha enhances the expression of Apo-AI protein, the major constituent of HDL, which is responsible for the cholesterol transportation. RORalpha notably contributes to the bone mineralization and generation of the extracellular bone matrix, demonstrating its involvement in osteoporosis, and by up-regulating the gene for IKBalpha, RORalpha has anti-inflammatory effects. Moreover, RORalpha is necessary for cerebellar development and the maintenance of the mammalian day-night periodicity governed by the core-clock within the suprachiasmatic nuclei. RORalpha receptors have been reported to bind cholesterol, melatonin, or to function ligand-independent. By monomeric binding to the recognition motif AGGTCA preceded by an A/T-rich sequence (ROR response element, RORE), RORalpha constitutively activates gene transcription. However, RORalpha activity is passively suppressed by its opponents RevErbalpha and RevErbbeta, which both bind to the same target sequence. ...
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.