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In der vorgelegten kumulativen Arbeit wurden strukturelle und funktionale Untersuchungen an Nukleinsäuren durchgeführt, hauptsächlich, aber nicht ausschließlich unter Verwendung von NMR-Spektroskopie (Kernspin Resonanzspektroskopie) als Analysemethode. Die untersuchten Biomoleküle umfassten kleinere und größere biologisch relevante RNAs sowie einen artifiziellen DNA G-Quadruplex. Hierbei konnten Ergebnisse im Bereich der Bestimmung der molekularen Struktur, der Aufklärung der biologischen Funktion und der Wirkstoffentwicklung gewonnen werden, die in sechs verschiedenen Publikationen dargelegt sind, an deren Erstellung der Autor maßgeblich oder hauptverantwortlich beteiligt war. Des Weiteren wird in einem mehrgliedrigen Einleitungssegment auf den Stand der aktuellen Forschung in den jeweiligen Teilgebieten eingegangen.
NMR structure calculation using NOE-derived distance restraints requires a considerable number of assignments of both backbone and sidechains resonances, often difficult or impossible to get for large or complex proteins. Pseudocontact shifts (PCSs) also play a well-established role in NMR protein structure calculation, usually to augment existing structural, mostly NOE-derived, information. Existing refinement protocols using PCSs usually either require a sizeable number of sidechain assignments or are complemented by other experimental restraints. Here, we present an automated iterative procedure to perform backbone protein structure refinements requiring only a limited amount of backbone amide PCSs. Already known structural features from a starting homology model, in this case modules of repeat proteins, are framed into a scaffold that is subsequently refined by experimental PCSs. The method produces reliable indicators that can be monitored to judge about the performance. We applied it to a system in which sidechain assignments are hardly possible, designed Armadillo repeat proteins (dArmRPs), and we calculated the solution NMR structure of YM4A, a dArmRP containing four sequence-identical internal modules, obtaining high convergence to a single structure. We suggest that this approach is particularly useful when approximate folds are known from other techniques, such as X-ray crystallography, while avoiding inherent artefacts due to, for instance, crystal packing.
Through the use of information about the biological target structure, the optimization of potential drugs can be improved. In this work I have developed a procedure that uses the quantitative change in the chemical perturbations (CSP) in the protein from NMR experiments for driving protein-ligand docking. The approach is based on a hybrid scoring function (QCSPScore) which combines traditional DrugScore potentials, which describe the interaction between protein and ligand, with Kendall’s rank correlation coefficient, which evaluates docking poses in terms of their agreement with experimental CSP. Prediction of the CSP for a specific ligand pose is done efficiently with an empirical model, taking into account only ring current effects. QCSPScore has been implemented in the AutoDock software package. Compared to previous methods, this approach shows that the use of rank correlation coefficient is robust to outliers. In addition, the prediction of native-like complex geometries improved because the CSP are already being used during the docking process, and not only in a post-filtering setting for generated docking poses. Since the experimental information is guaranteed to be quantitatively used, CSP effectively contribute to align the ligand in the binding pocket. The first step in the development of QCSPScore was the analysis of 70 protein-ligand complexes for which reference CSP were computed. The success rate in the docking increased from 71% without involvement of CSP to 100% if CSP were considered at the highest weighting scheme. In a second step QCSPScore was used in re-docking three test cases, for which reference experimental CSP data was available. Without CSP, i.e. in the use of conventional DrugScore potentials, none of the three test cases could be successfully re-docked. The integration of CSP with the same weighting factor as described above resulted in all three cases successfully re-docked. For two of the three complexes, native-like solutions were only produced if CSP were considered.Conformational changes in the binding pockets of up to 2 Å RMSD did not affect the success of the docking. QCSPScore will be particularly interesting in difficult protein-ligand complexes. They are in particular those cases in which the shape of the binding pocket does not provide sufficient steric restraints such as in flat protein-protein interfaces and in the virtual screening of small chemical fragments.
The U-turn is a classical three-dimensional RNA folding motif first identified in the anticodon and T-loops of tRNAs. It also occurs frequently as a building block in other functional RNA structures in many different sequence and structural contexts. U-turns induce sharp changes in the direction of the RNA backbone and often conform to the 3-nt consensus sequence 5'-UNR-3' (N = any nucleotide, R = purine). The canonical U-turn motif is stabilized by a hydrogen bond between the N3 imino group of the U residue and the 3' phosphate group of the R residue as well as a hydrogen bond between the 2'-hydroxyl group of the uridine and the N7 nitrogen of the R residue. Here, we demonstrate that a protonated cytidine can functionally and structurally replace the uridine at the first position of the canonical U-turn motif in the apical loop of the neomycin riboswitch. Using NMR spectroscopy, we directly show that the N3 imino group of the protonated cytidine forms a hydrogen bond with the backbone phosphate 3' from the third nucleotide of the U-turn analogously to the imino group of the uridine in the canonical motif. In addition, we compare the stability of the hydrogen bonds in the mutant U-turn motif to the wild type and describe the NMR signature of the C+-phosphate interaction. Our results have implications for the prediction of RNA structural motifs and suggest simple approaches for the experimental identification of hydrogen bonds between protonated C-imino groups and the phosphate backbone.
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.
Die vorliegende Arbeit Zeitaufgelöste NMR-spektroskopische Untersuchung konformationeller Dynamiken in DNA G-Quadruplexen befasst sich mit der detaillierten biophysikalischen Untersuchung wichtiger strukturdynamischer Eigenschaften von nicht-kanonischen Nukleinsäure Sekundärstrukturelementen.
Im Genom aller eukaryotischer Lebewesen, insbesondere dem menschlichen Genom finden sich DNA-Sequenzabschnitte, die überdurchschnittlich Guanosin (G)-reich sind. Diese poly-G Abschnitte sind nicht zufällig im Genom verteilt, sondern häufen sich vermehrt in Genabschnitten, die besonders wichtig für die Regulation der Genexpression sind. G-reiche DNA-Sequenzen können unter geeigneten Umständen alternative Sekundärstrukturen ausbilden, die von der doppelsträngigen, kanonischen Watson-Crick Konformation abweichen. In Anwesenheit monovalenter Kationen können sich G-Nukleotide in einer Tetrade über Hoogsteen Interaktionen anlagern. Diese Tetraden können sich stapeln und dadurch sogenannte G-Quadruplexe (G4) ausbilden. Das menschliche cMYC Gen wird typischerweise als proto-Onkogen bezeichnet. Es kodiert für einen unspezifischen Transkriptionsfaktor, der bei einer Vielzahl von systematischen und soliden Tumorerkrankungen stark überexprimiert wird. Die zelluläre Konzentration des Genprodukts kann zu 90% über ein G4 cis-Element in der Promotorregion reguliert werden. Der cMYC G4 hat die Möglichkeit verschiedene Konformationen einzunehmen. Im Falle des cMYC G4 kann man zusätzliche, nicht-konventionelle Formen der konformationellen Isomerie finden. Zum einen gibt es die Möglichkeit, dass bei einem G4, der aus drei Tetraden und vier intramolekularen Strangabschnitten (dreistöckiger G4) besteht, einzelne Strangabschnitte mehr als drei konsekutive G-Nukleotide besitzen. Dadurch können sich Faltungs-Isomere bilden, die sich durch Verschieben des Strangs relativ zum verbleibenden dreistöckigen Tetradengerüst ergeben. Man spricht von G-Register Isomeren. Eine zweite Möglichkeit der Strukturisomerie ergibt sich, wenn in einer Nukleotidsequenz mehr als vier G-reiche Strangabschnitte aufeinander folgen. Jeweils vier dieser Strangabschnitte können in unterschiedlicher Weise kombiniert werden, um ein G4 Isomer auszubilden. In jedem dieser so zustande gekommenen G4 verbleibt ein (oder mehrere) G-reicher Strangabschnitt, der im konkreten Isomer nicht zur Faltung verwendet wird. Diese zusätzlichen G-Stränge werden daher auch Ersatzräder (engl. spare-tires) genannt; man erhält spare-tire Isomere.
Obwohl diese Formen des Polymorphismus, deren biologischer Kontext und die biophysikalischen Konsequenzen in Arbeiten von C. Burrows (2015) und A. Mittermaier (2016) erstmals umfassend beschrieben wurden, gab es bis zum Ausgangspunkt dieser Arbeit keine Kenntnisse über deren strukturelle Dynamik, den Faltungswegen und den zugrundeliegenden molekularen Mechanismen. Zeitaufgelöste Kernspinresonanz (engl. nuclear magnetic resonance, NMR) Spektroskopie ist eine bestens geeignete Methode, um die Dynamik von Biomakromolekülen mit atomarer Auflösung zu studieren. Um solche Experimente durchführen zu können, braucht es geeignete Herangehensweisen für die Präparation eines Nicht-Gleichgewichtszustands. In dieser Arbeit wird eine neu erarbeitete Strategie vorgestellt, die es erlaubt, Einblick in die Faltungs- und Umfaltungskinetiken eines dynamischen Konformations-Ensembles nicht-konventioneller Strukturisomere der cMYC G4 DNA-Sequenz zu erhalten.
Hierzu wurden photolabile Schutzgruppen (engl. Photocages) positionsspezifisch an bestimmten G-Nukleobasen (O6-(R)-NPE) angebracht. Die Schutzgruppen blockieren die Basenpaar-Interaktionen des Nukleotids, wodurch dieses sich nicht mehr an einer Tetradenbildung beteiligen kann. Die Photocages wurden jeweils an den Nukleotiden eingeführt, die nur in jeweils einem der G-Register Isomere an der Tetradenbildung beteiligt sind. Durch diese gezielte Destabilisierung konnten die Isomere getrennt und im gefalteten Zustand isoliert werden. Die so erhaltenen Konformationen wurden umfassend spektroskopisch charakterisiert. Der Ansatz, das konformationelle Gleichgewicht durch Photocages transient zu stören, wurde daraufhin weiterentwickelt. Mehrere Photocages wurden an Nukleobasen in zentraler Position einzelner G-Strangabschnitte angebracht. Dadurch konnte eine ausreichende Destabilisierung erreicht werden, die die Faltung jedweder G4 Strukturen unterbindet. Somit wurde ein ungefalteter Zustand erzeugt, der unter ansonsten frei wählbaren, physiologischen Bedingungen besteht. Durch in situ Photolyse der Schutzgruppen konnte so die Licht-induzierte G4 Faltung unter konstanten Puffer- und Temperaturbedingungen untersucht werden. Dieser Ansatz wurde auf die Untersuchung der Faltungswege, die zu verschiedenen spare-tire Isomeren führen, fokussiert.
Zusammenfassend kann festgestellt werden, dass es insgesamt erstmalig gelungen ist, die Kinetiken der wesentlichen Faltungs- und Umfaltungswege entlang der konformationellen Energielandschaft des cMYC G4 Elements zu untersuchen. Das komplexe, dynamische Zusammenspiel aller relevanten, nicht-konventionellen isomeren G4 Strukturen konnte entworren und umfassend experimentell beschrieben werden. Der dafür weiterentwickelte Ansatz über konformationelle Selektion mit Hilfe photolabiler Schutzgruppen hat dabei experimentelle Einblicke erlaubt, die bislang nicht zugänglich waren. Die Strukturen und Faltungszustämde, die mit den chemisch modifizierten Oligonukleotiden erhalten und isoliert wurden, sind umfassend spektroskopisch untersucht worden. Die Anwendung verschiedener spektroskopischer Ansätze und deren Kombination mit weiteren biophysikalischen Methoden hat eine Methoden-unabhängige Validierung der erhaltenen kinetischen und thermodynamischen Daten ermöglicht.
tRNAs are L-shaped RNA molecules of ~ 80 nucleotides that are responsible for decoding the mRNA and for the incorporation of the correct amino acid into the growing peptidyl-chain at the ribosome. They occur in all kingdoms of life and both their functions, and their structure are highly conserved. The L-shaped tertiary structure is based on a cloverleaf-like secondary structure that consists of four base paired stems connected by three to four loops. The anticodon base triplet, which is complementary to the sequence of the mRNA, resides in the anticodon loop whereas the amino acid is attached to the sequence CCA at the 3′-terminus of the molecule. tRNAs exhibit very stable secondary and tertiary structures and contain up to 10% modified nucleotides. However, their structure and function can also be maintained in the absence of nucleotide modifications. Here, we present the assignments of nucleobase resonances of the non-modified 77 nt tRNAIle from the gram-negative bacterium Escherichia coli. We obtained assignments for all imino resonances visible in the spectra of the tRNA as well as for additional exchangeable and non-exchangeable protons and for heteronuclei of the nucleobases. Based on these assignments we could determine the chemical shift differences between modified and non-modified tRNAIle as a first step towards the analysis of the effect of nucleotide modifications on tRNA’s structure and dynamics.
Many naturally occurring or artificially created RNAs are capable of binding to guanine or guanine derivatives with high affinity and selectivity. They bind their ligands using very different recognition modes involving a diverse set of hydrogen bonding and stacking interactions. Apparently, the potential structural diversity for guanine, guanosine, and guanine nucleotide binding motifs is far from being fully explored. Szostak and coworkers have derived a large set of different GTP-binding aptamer families differing widely in sequence, secondary structure, and ligand specificity. The so-called class V–GTP aptamer from this set binds GTP with very high affinity and has a complex secondary structure. Here we use solution NMR spectroscopy to demonstrate that the class V aptamer binds GTP through the formation of an intermolecular two-layered G-quadruplex structure that directly incorporates the ligand and folds only upon ligand addition. Ligand binding and G-quadruplex formation depend strongly on the identity of monovalent cations present with a clear preference for potassium ions. GTP binding through direct insertion into an intermolecular G-quadruplex is a previously unobserved structural variation for ligand-binding RNA motifs and rationalizes the previously observed specificity pattern of the class V aptamer for GTP analogs.
Although often depicted as rigid structures, proteins are highly dynamic systems, whose motions are essential to their functions. Despite this, it is difficult to investigate protein dynamics due to the rapid timescale at which they sample their conformational space, leading most NMR-determined structures to represent only an averaged snapshot of the dynamic picture. While NMR relaxation measurements can help to determine local dynamics, it is difficult to detect translational or concerted motion, and only recently have significant advances been made to make it possible to acquire a more holistic representation of the dynamics and structural landscapes of proteins. Here, we briefly revisit our most recent progress in the theory and use of exact nuclear Overhauser enhancements (eNOEs) for the calculation of structural ensembles that describe their conformational space. New developments are primarily targeted at increasing the number and improving the quality of extracted eNOE distance restraints, such that the multi-state structure calculation can be applied to proteins of higher molecular weights. We then review the implications of the exact NOE to the protein dynamics and function of cyclophilin A and the WW domain of Pin1, and finally discuss our current research and future directions.
Cell-free expression represents an attractive method to produce large quantities of selectively labeled protein for NMR applications. Here, cell-free expression was used to label specific regions of the growth hormone secretagogue receptor (GHSR) with NMR-active isotopes. The GHSR is a member of the class A family of G protein-coupled receptors. A cell-free expression system was established to produce the GHSR in the precipitated form. The solubilized receptor was refolded in vitro and reconstituted into DMPC lipid membranes. Methionines, arginines, and histidines were chosen for 13C-labeling as they are representative for the transmembrane domains, the loops and flanking regions of the transmembrane α-helices, and the C-terminus of the receptor, respectively. The dynamics of the isotopically labeled residues was characterized by solid-state NMR measuring motionally averaged 1H-13C dipolar couplings, which were converted into molecular order parameters. Separated local field DIPSHIFT experiments under magic-angle spinning conditions using either varying cross polarization contact times or direct excitation provided order parameters for these residues showing that the C-terminus was the segment with the highest motional amplitude. The loop regions and helix ends as well as the transmembrane regions of the GHSR represent relatively rigid segments in the overall very flexible receptor molecule. Although no site resolution could be achieved in the experiments, the previously reported highly dynamic character of the receptor concluded from uniformly 13C labeled receptor samples could be further specified by this segmental labeling approach, leading to a more diversified understanding. of the receptor dynamics under equilibrium conditions