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Insgesamt geht man von ca. 200 Millionen chronischen Hepatilis-C-Virus (HCV) Trägern in der Welt aus. Der Hauptübertragungsweg der Hepatitis C ist seit der Einführung der Hepatitis C Testung im Blutspendewesen der i.v. Drogenabusus. Die Inzidenz von Neuinfektionen wird in Deutschland auf ca. 5.000/Jahr geschätzt, allerdings verlaufen die meisten akuten Infektionen unauffällig. Für das initiale Screening sind ELISA Tests zum Nachweis HCV spezifischer Antikörper am schnellsten und kostengünstigsten. Bei immungeschwächten Patienten können diese Tests allerdings aufgrund einer verzögerten oder fehlenden Immunantwort versagen. Falsch positive Resultate (insbesondere bei niedriger Reaktivität im Screening ELISA) können durch die Verwendung von rekombinanten Immunoblots verringert werden. In den letzten Jahren wurden Tests zum Nachweis des HCV Core Antigens entwickelt. Diese erwiesen sich als sehr sensitiv und vergleichbar mit der PCR für die Diagnose einer akuten HCV-Infektion. Zur Abklärung positiver oder unklarer serologischer Befunde oder zur Verlaufskontrolle der Viruslast chronisch infizierter Patienten sind Nukleinsäure Amplifikationstests (NAT) aufgrund ihrer höheren Sensitivität nach wie vor Mittel der Wahl. Die Entscheidung, welcher Patient behandelt werden sollte, ist von sehr vielen Faktoren abhängig. Diese sind das Alter des Patienten, der allgemeine Gesundheitszustand, das Risiko einer Zirrhose, Kontraindikation bzgl. der zu verwendenden Medikamente und die Wahrscheinlichkeit eines Therapieerfolgs (Viruslast, Genotyp). Es ist allgemein anerkannt, daß Patienten mit einer hohen Viruslast. (> 2 Million Kopien/ml) und der HCV-Genotyp l schlechter auf eine Therapie ansprechen.
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.
We present the rapid biophysical characterization of six previously reported putative G‐quadruplex‐forming RNAs from the 5′‐untranslated region (5′‐UTR) of silvestrol‐sensitive transcripts for investigation of their secondary structures. By NMR and CD spectroscopic analysis, we found that only a single sequence—[AGG]2[CGG]2C—folds into a single well‐defined G‐quadruplex structure. Sequences with longer poly‐G strands form unspecific aggregates, whereas CGG‐repeat‐containing sequences exhibit a temperature‐dependent equilibrium between a hairpin and a G‐quadruplex structure. The applied experimental strategy is fast and provides robust readout for G‐quadruplex‐forming capacities of RNA oligomers.
We report here the nuclear magnetic resonance 19F screening of 14 RNA targets with different secondary and tertiary structure to systematically assess the druggability of RNAs. Our RNA targets include representative bacterial riboswitches that naturally bind with nanomolar affinity and high specificity to cellular metabolites of low molecular weight. Based on counter-screens against five DNAs and five proteins, we can show that RNA can be specifically targeted. To demonstrate the quality of the initial fragment library that has been designed for easy follow-up chemistry, we further show how to increase binding affinity from an initial fragment hit by chemistry that links the identified fragment to the intercalator acridine. Thus, we achieve low-micromolar binding affinity without losing binding specificity between two different terminator structures.
This thesis describes the structural characterization of interactions between biological relevant ribonucleic acid biomacromolecules (RNAs) and selected ligands to optimize the methodologies for the design of pharmacological lead compounds. To achieve this aim, not only the structures of the RNA, the ligand and their complexes need to be known, but also information about the inherent dynamics, especially of the target RNA, are necessary. To determine the structure and dynamics of these molecules and their complexes, liquid state nuclear magnetic resonance spectroscopy (NMR) is a suitable and powerful method. The necessity for these investigations arises from the lack of knowledge in RNA-ligand interactions, e.g. for the development of new medicinal drugs targeting crucial RNA sequences. In the first chapters of this thesis (Chapters II to IV), an introduction into RNA research is given with a focus on RNA structural features (Chapter II), into the interacting molecules, the biology of the specific RNA targets and the further development of their ligands (Chapter III) and into the NMR theory and methodologies used within this thesis (Chapter IV). Chapter II begins with a description of RNA characteristics and functions, placing the focus on the increasing attention that these biomacromolecules have attracted in recent years due to their diverse biological functionalities. This is followed by a detailed description of general structural features of RNA molecules. The biological functions of the RNAs investigated in this thesis (Human immunodeficiency virus PSI- and TAR-RNA and Coxsackievirus B3 Stemloop D in the 5’-cloverleaf element), together with their known structural characteristics are introduced in Chapter III. Furthermore, a description of the investigated ligands is given, focusing on the methods how their affinity and specificity were determined. The introduction is completed in Chapter IV, where the relevant NMR theory and methodologies are explained. First, kinetics and thermodynamics of ligand binding are summarized from an NMR point of view. Subsequently, a detailed description of the resonance assignment procedures for RNAs and peptidic ligands is given. This procedure mainly concentrates on the assignment of the proton resonances, which are essential for the later structure calculation from NMR restraints. The procedure for NMR structure calculation of RNA and its complexes follows with a short introduction into the programs ARIA and HADDOCK. The final part of this chapter explains the relaxation theory and the methodology to extract dynamic information from autocorrelated relaxation rates via the model-free formalism. In the Chapters V to VII of this thesis, the original publications are included and grouped into three topics. Chapter V comprehends the publications on the investigations of HIV PSI-RNA and its hexapeptidic ligand. These three publications[1-3] focus on the characterization of the ligand and its binding properties, its structure and the optimization of its composition aiming to improve its usage for further spectroscopic investigations.
Untersuchung der Konformation und Dynamik von RNA mit Hilfe fluoreszierender Farbstoffmoleküle
(2010)
Die vorliegende Arbeit beschäftigt sich mit der Untersuchung der konformationellen und elektronischen Eigenschaften sowie der Dynamik verschiedener RNA-Systeme. Zur Durchführung dieser Experimente wurde zusätzlich zu bereits vorhandenen statischen und zeitaufgelösten Absorptionsspektrometern im Rahmen dieser Arbeit eine Apparatur zur Messung von Fluoreszenzlebensdauern entwickelt, die durch die integrative Verwendung zweier verschiedener, etablierter Technologien (TCSPC und Aufkonvertierung) über einen weiten Zeitbereich von 9 Größenordnungen (100 fs - 0,1 ms) operiert. Mit diesem Aufbau konnten neben den RNA-Studien wichtige Beiträge zum Verständnis der Isomerisierung eines Retinalproteins, des Transportprozess des Membrantransportproteins TbSMR und der im Infraroten liegenden Fluoreszenz des Radikalkations von Astaxanthin gewonnen werden. Der Schwerpunkt der vorliegenden Arbeit liegt auf der Untersuchung verschiedener RNA-Systeme: So werden die optischen Eigenschaften einer 1-Ethinylpyren-modifzierten RNA-Adeninbase allein und in RNA-Strängen eingebunden untersucht. Statische Fluoreszenzmessungen zeigen einen ausgeprägten Ladungstransfercharakter des Chromophors und eine generell große Wechselwirkung zwischen Ethinylpyren und Adenin, die in einer substanziellen Änderung der optischen Eigenschaften des Pyrens resultiert. Die Untersuchung der schnellen Photodynamik von Pyrenadenin zeigt zudem eine Verringerung der Lebensdauer von Pyren um etwa 2 Größenordnungen. Pyrenadenin zeigt sowohl Fluoreszenz eines neutralen (100-200 ps), als auch eines energetisch tiefer liegenden Ladungstransferzustands (1-2 ns). Die Formationszeit des Ladungstransferzustandes fällt mit steigender Polarität des Lösemittels. Eingebunden in Modell-RNA-Stränge ist Fluoreszenzquantenausbeute des Chromophors ein deutlicher Indikator für seine Interkalation. Nur in der stabileren Umgebung von GC-Basenpaaren ist das Pyren in der Lage, sich dauerhaft innerhalb des Duplex aufzuhalten, während in einer flexibleren AU-Umgebung eine Position außerhalb des RNA-Duplex präferiert wird. Transiente Absorptionsmessungen zeigen, dass die Photophysik des in RNA eingebundenen Pyrenadenins nur kleine Variationen im Vergleich zur Photophysik des Labels allein aufweist. Die deutliche Abnahme der Quantenausbeute des interkalierten Chromophors geht hauptsächlich auf Kosten der langlebigeren Ladungstransferfluoreszenz, so dass interkaliertes Pyren insgesamt schneller in den Grundzustand zurückkehrt als nicht interkaliertes. Mit Hilfe eines doppelt modifizierten Duplex, bei dem sich jeweils ein Farbstoff an einem der beiden Stränge befindet, kann nachgewiesen werden, dass aufgrund von Exzimerwechselwirkungen eine Verschiebung des Fluoreszenzmaximums von 35 nm auftritt. Kurzzeitspektroskopische Messungen zeigen Signale, die als Superposition von Monomeren und Exzimeren interpretiert werden können, wobei die Lebensdauer des letzteren mit 18,5 ns die der Monomerkomponente um ein Vielfaches übertrifft. Ein weiterer Teil dieser Arbeit beschäftigt sich mit einer Studie zur Bindung des fluoreszenten Liganden Tetrazyklin an das Tetrazyklin bindende Aptamer. Hier wird auf Basis verschiedener Mutanten mit Hilfe des TCSPC eine Analyse der Stabilität der Bindetasche sowie mit der Stopped-Flow-Methode eine Beobachtung des Bindungsprozesses durchgeführt. Insgesamt folgt die Bindung des Tetrazyklins an das Aptamer einer zweistufigen Kinetik, deren zweiter Schritt irreversibel ist. Die Bindung läuft, verglichen mit anderen Aptameren, sehr schnell ab. Während die Mutationen von A13 und A50,die direkte Kontakte zum Substrat bilden, nur einen leichten Einfluss auf beide Bindungsschritte ausüben, führt eine Mutation der für die Präformation verantwortlichen Base A9 zu einer Verlangsamung des Bindungsprozesses um mehr als einen Faktor 20 durch eine immens gesteigerten Rückreaktionsrate des ersten Bindungsschritts. Hieraus lässt sich schließen, dass bei fehlender Präformation des Aptamers nur wenige Tetrazyklinmoleküle ein für vollständige Bindung geeignetes Aptamer vorfinden. Die Bindung an A13 und A50 geschieht bereits im ersten Schritt des Bindungsprozesses. Ferner konnte anhand von Lebensdauermessungen gezeigt werden, dass nach dem Wildtyp die Mutante A9G die stabilste Bindetasche aufwies. Das Fehlen eines direkten Kontaktes wirkt sich deutlich stärker aus. Insbesondere führt die Abwesenheit der Fixierung des Gegenions durch A50 zu der instabilsten Bindetasche. Wie in dieser Arbeit gezeigt wird, ist die zeitaufgelöste optische Spektroskopie insbesondere in Verbindung mit fluoreszierenden Molekülen ein ausgezeichnetes Mittel zur Beobachtung von Struktur und Dynamik von RNA. Die Empfindlichkeit von Fluoreszenz auf die Veränderung der Umgebung des Chromophors erlaubt es, Konformationsdynamik und elektronische Konfigurationen in Echtzeit zu beobachten.
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.
Oligonucleotide-based therapeutics have made rapid progress in clinical treatment of a variety of disease indications. Since most therapeutic oligonucleotides serve more than just one function and tend to have a prolonged lifetime, spatio-temporal control of these functions would be desirable. Photoswitches like azobenzene have proven themselves as useful tools in this matter. Upon irradiation, the photoisomerization of the azobenzene moiety causes destabilization in adjacent base pairs, leading to a decreased hybridization affinity. Since the way the azobenzene is incorporated in the oligonucleotide is of utmost importance, we synthesized locked azobenzene C-nucleosides and compared their photocontrol capabilities to established azobenzene C-nucleosides in oligonucleotide test-sequences by means of fluorescence-, UV/Vis-, and CD-spectroscopy.
The combination of high-throughput sequencing and in vivo crosslinking approaches leads to the progressive uncovering of the complex interdependence between cellular transcriptome and proteome. Yet, the molecular determinants governing interactions in protein-RNA networks are not well understood. Here we investigated the relationship between the structure of an RNA and its ability to interact with proteins. Analysing in silico, in vitro and in vivo experiments, we find that the amount of double-stranded regions in an RNA correlates with the number of protein contacts. This relationship —which we call structure-driven protein interactivity— allows classification of RNA types, plays a role in gene regulation and could have implications for the formation of phase-separated ribonucleoprotein assemblies. We validate our hypothesis by showing that a highly structured RNA can rearrange the composition of a protein aggregate. We report that the tendency of proteins to phase-separate is reduced by interactions with specific RNAs.
This cumulative thesis discusses the development of optimized force field parameters for Magnesium and resulting improved simulations of Magnesium-RNA interactions, including the in silico exploration of binding sites. This thesis is based on four publications as well as unpublished data. A fifth publication that was written during the time of the Ph.D. is discussed in the Appendix. This publication analyzes monovalent ion-specific effects at mica surfaces.
Nucleic acids in general and RNA in particular are fundamental to life itself. Especially in the folding and function of RNA, metal cations are crucial to screen the negatively charged nucleic acid backbones to allow for complex functional structures. They stabilize the tertiary structure of RNA and even drive its folding. Furthermore, similarly to proteins, RNAs can catalyze multiple reactions, rather than consisting of the 20 amino acids of a protein, RNA constitues of only four different building blocks. Metal cations play an important role here as additional cofactors. One essential ion is Magnesium (Mg2+), commonly referred to as the most important cofactor for nucleic acids. Mg2+ carries two positive charges. Its comparably small size and high charge result in a high charge density that has strong polarizing effects on its surroundings. Furthermore, Mg2+ forms a sharply defined first hydration shell with an integer number of coordinating water molecules. As a result, an exclusion zone exists around the ion within which no water molecules are observed. Moreover, Mg2+ displays a high solvation free energy and a low exchange rate of waters from its first hydration shell. Finally, it contains a strong preference towards oxygens . Together, this makes Mg2+ a particularly well suited interaction partner for the charged non-bridging phosphate oxygens on nucleic acid backbones and explains its crucial biological role.
The immense number of physiological and technological functions and applications indicates the significant scientific attention Mg2+ received. In experimental studies, however, severe difficulties arise for multiple reasons: Mg2+ is spectroscopically silent and cannot be detected directly by resonance techniques like NMR or EPR. Indirect observation is possible, either by detecting changes in the overall RNA structure with and without bound Mg2+, or by replacing the Mg2+ ion with another spectroscopically visible ion. In the latter, however, it cannot be guaranteed that the altered ion does not also alter the interaction site or even the whole structure. Another detection method is X-ray crystallography, but here challenges arise from Mg2+ being almost indistinguish- able from other ions as well as from water if not for very high resolutions and precise stereochemical considerations.
Alternatively, molecular dynamics (MD) simulations can be performed, with the power of adding atomistic insight to the interplay of metal cations and nucleic acids. MD simulations, however, are only as accurate as their underlying interaction models and the development of accurate models for the description of Mg2+ faces challenges especially in describing three properties:
(i) Polarizability. Commonly used simple models like the 12-6 type Lennard-Jones model typically fail to reproduce simultaneously thermodynamic and structural properties of a single ion in water. Alternative strategies include the use of a 12-6-4 type Lennard-Jones potential as proposed by Li and Merz, where the additional r−4 term explicitly accounts for polarization effects. The resulting Lennard-Jones potential is thereby more attractive and more long-ranged than for typical models of the 12-6 type.
(ii) Kinetics. Most Mg2+ models either fully ignore considerations about the timescales on which water exchanges from the first hydration shell of the ion or use inappropriate methodology to calculate the underlying kinetics. A realistic characterization of the involved timescales is imperative to be able to describe a seemingly simple process like the transition from inner-to-outer sphere binding and vice versa. This transition governs most biochemical reactions involving Mg2+ and therefore subsequent processes can only by as fast as the transition itself. However, already the previous step – the exchange of a water from the first hydration shell of the ion – is described my current Mg2+ models up to four orders of magnitude too slowly, which makes the observation of such events on the timescale of a typical simulation difficult or even impossible. Alln ́er et al. [48] as well as Lemkul and MacKerell explicitly considered the exchange rate into their parameter optimization procedure. To compute the rate, both studies applied Transition State Theory along a single reaction coordinate – the distance towards one of the exchanging waters. However, it could be shown that the water exchange from the first hydration shell requires at least the consideration of both exchanging water molecules in order to be able to realistically record the underlying rate using Transition State Theory. Furthermore, the model of Alln ́er et al. significantly underestimates the free energy of solvation of the ion.
(iii) Interactions between Mg2+ and nucleic acids. Typically, ionic force field parame- terization concentrates on the optimization of solution properties. The trans- ferability of these solution optimized parameters towards interactions with biomolecules, however, often fails.