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Institute
Pulsed electron-electron double resonance (PELDOR) is a pulsed EPR method that can reliably and precisely provide structural information regarding duplex RNAs and DNAs by measuring long-range distances (1.5-7 nm) utilizing distance-dependent magnetic dipole-dipole interaction between two nitroxide spin labels. In this thesis the application field of PELDOR spectroscopy has been expanded. For the first time the global architecture of tertiary folded RNA has been mapped in vitro. Moreover, the first application of PELDOR for determining structural aspects of RNA and DNA molecules inside cells has been presented. RNA has the central role in cellular processes and gene regulation. It can adopt complex three dimensional structures, which in combination with its conformational dynamics is essential for its function as biological catalyst, structural scaffold and regulator of gene expression. Riboswitches are cis-acting RNA segments that modulate gene expression by direct binding of small molecules with high affinity and specificity. Neomycin-responsive riboswitch is an engineered riboswitch developed by combination of in vitro selection and in vivo screening. Upon insertion into the 5‟ untranslated region of mRNA and binding the cognate ligand it is able to inhibit translational initiation in yeast. Using enzymatic probing the secondary structure had been postulated comprising global stem-loop architecture with a terminal and an internal loop. In the first part of this thesis, the global conformational arrangement of this 27 nucleotides long RNA element has been studied by means of site-directed spin labeling and PELDOR spectroscopy. Spin-labeled neomycin-responsive riboswitch mutants were synthesized via a Sonogashira cross-coupling reaction between 5-membered pyrroline ring based nitroxide radical (TPA) and 5-iodo-uridine. The labeling positions were chosen outside of the binding pocket and UV melting curves revealed that spin-labeling neither disturbs the secondary structure nor interferes with ligand binding. Efficient ligand binding was proven by thermal stabilization of 20.3±3.3 oC upon addition of neomycin, as well as by cw EPR spectra. PELDOR time traces with long observation time windows and with good signal to noise ratio and modulation depth were recorded for all double-labeled samples allowing a reliable data analysis. The fact that there were no shifts in the measured distances upon addition of neomycin implied the existence of a prearranged tertiary structure of the neomycin-sensing riboswitch without a significant global conformational change induced by ligand binding. Measured distances were in very good agreement with the NMR structure of the ligand-bound state of the riboswitch indicating the intrinsic propensity of the global RNA architecture toward its energetically favored ligand-bound form at low temperature. The results harvested in this work represent the first application of PELDOR for mapping the global structure of a tertiary folded RNA. In the second part of this thesis the possibility of applying PELDOR on nucleic acids (NAs) in cellular environment has been investigated. It was shown before that global NA structure depends on matrix conditions, such as concentration of ions and small molecules, molecular crowding, viscosity and interactions with proteins. Therefore, PELDOR spectroscopy on a double-labeled 12-base pair DNA duplex, the 14-mer cUUCGg tetraloop hairpin RNA and the 27-mer neomycin-sensing riboswitch has been used to obtain long-range distance constraints on such systems in Xenopus laevis oocytes and to compare them with in vitro measurements. The reduced lifetime of nitroxide spin labels under cellular conditions has been a major challenge in these measurements. Investigation of nitroxide reduction kinetics in-cell has revealed that the 5-membered pyrrolidine and pyrroline rings are significantly slower reduced compared to 6-membered piperidine ring based nitroxides. Due to prolonged lifetime of the TPA nitroxides covalently attached to NA molecules PELDOR signals could be measured with good signal-to-noise ratios up to 70 minutes of incubation time. The partial loss of coupled spin labels due to nitroxide reduction only led to a decrease in the modulation depth upon increasing the incubation time. No alterations in the measured distances between in vitro and in-cell experiments implies the existence of stable overall conformations of the 14-mer cUUCGg tetraloop hairpin RNA and the 27-mer neomycin-sensing riboswitch, whereas the 12-bp duplex DNA experiences stacking in-cell but retaining the secondary structure. Thus, for the first time nanometer distance measurements were performed inside cells, clearly laying a foundation for the application of PELDOR spectroscopy to study biological processes in cells, such as diffusion, interaction with proteins and other factors or chemical reactions.
Based on the commonly used and well-established state-of-the-art DNA sequencing method, i. e. Sanger sequencing, the major target of future research is to develop a fast, cost-effective and gelelectrophoresis-free sequencing method. The aim of the new sequencing technologies is to detect DNA mutations faster and more accurate in order to develop individual therapies for patients (personalized medicine). For this purpose, a lot of novel sequencing techniques like pyrosequencing, mass-spectrometry-assisted sequencing, sequencing by hybridization etc. have been put into practice and already led to commercialized sequencers. The sequencing technology we were mostly interested in is the so-called sequencing-by-synthesis method (SBS). This PhD thesis covers the synthesis of modified nucleosides – the so-called reversible terminators – and their evaluation as reversible terminators. These 3′-modified and dye-labeled nucleotides are incorporated by the polymerase into the DNA-template, then the DNA-synthesis is stopped. After detection of the fluorescent signal, the reversible terminator has to be cleavable in a way (i. e. the polymerase-blocking modification) that the DNA-synthesis can continue. As a result of the polymerase-acceptance tests that have been carried out with the two triphosphates cyanoethoxymethyl(CEM)-dTTP and cyanoethyl(CE)-dTTP as substrates it became clear that the latter one was better incorporated than the first one. Based on this knowledge all four key compounds for the whole reversible terminators possessing the cyanoethyl (CE) group where synthesized within this PhD thesis. Additionally to the synthesis of the modified key compounds, the cleavability of the cyanoethyl function had to be evaluated which is an essential requirement of a reversible terminator for SBS. For addressing this issue, three different CE- and CEM modified monophosphates were created. For each of these three monophosphates an individual synthetic strategy has been developed within this PhD work, each of these strategies and subsequent phosphorylation led to the desired modification. These previously unknown model compounds mimicking the solubility of short oligonucleotides were employed the for qualitative cleavage experiments after their purification and spectroscopical characterization. With these three monophosphates suitable cleavage conditions for a quantitative removal of the CE and the CEM group were examined. In case of the CE function we selectively improved the cleavage conditions while varying the solvent, the reaction temperature as well as the amount of cleaving agent used, in order to make the conditions applicable for an SBS experiment. Due to the fact that the CE function was the most important modification for our SBS experiment, we could even optimize the cleavage efficiency by employing co-solvents like DMSO or DMF. An additional cleavage experiment was carried out by using a short CE-modified oligomer which led to further results that were comparable to the ones obtained from the cleavage experiments of the monomers. One big difference is the required amount of TBAF as cleaving agent for the quantitative removal of the CE-modification from the oligomer. In this case, 7500 equivalents of TBAF are needed for complete CE cleavage at 45 °C compared to the amount of 40 to 80 equivalents TBAF for the monomer (monophosphate). As a conclusion of this result we assume that the amount of cleaving agent and the solubility of the oligomer plays an important role in the CE cleavage efficiency. This assumption was already supported by Saneyoshi et al. who demonstrated for CE-modified RNA oligonucleotides that the CE-cleavage rate is strongly lowered with the increasing of the oligomer length. Thus we could demonstrate that the CE function is quantitatively removable from an oligomer without destroying it. With these results in hands we could prove that the CEM and the CE group are quantitatively cleavable and therefore applicable as blocking groups for reversible terminators. The conditions for the CE cleavage are used for the ArraySBS-“proof-of-principle” which is currently under investigation.
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. ...
Die Sulfonyl-Gruppe (-SO2-) ist ein weit verbreitetes Strukturmotiv in der organischen Chemie und Bestandteil vieler biologisch aktiver Moleküle, insbesondere Arzneistoffen. Zwei der am häufigsten auftretenden Gruppen sind Sulfone und Sulfonamide, die in über 100 zugelassenen Medikamenten und 10% der meistverkauften Medikamente sind. Insofern kommt der Entwicklung neuer Synthesemethoden eine große Bedeutung zu. Dabei stehen besonders einfache, wirtschaftliche und zeitsparende Vorgehensweisen im Vordergrund, die eine große Bandbreite an neuen Substanzen generieren können. Ein Ansatz hierfür sind Multikomponenten- oder Eintopfreaktionen.
Aufgrund der Wichtigkeit dieser zwei Strukturklassen, sollen im Rahmen der hier vorliegenden Doktorarbeit neue Syntheserouten für Sulfone und Sulfonamide entwickelt werden. Besonderes Augenmerk wird auf die die Einführung der SO2-Einheit während der Reaktionsführung gelegt. Im Vergleich zu bereits existierenden Verfahren ist dies ein enormer Fortschritt, da die Mehrheit der bekannten Routen auf Schwefel- oder Schwefeldioxid-haltige Startmaterialien zurückgreift.
In der vorliegenden Arbeit gelang es, einen synthetischen Zugang zu Arylsulfonen basierend auf von Natrium-, Lithium-, Magnesium- und Zinksulfinaten zu finden. Diese Reaktion besitzt eine sehr große Anwendungsbandbreite und setzt sowohl Aryl- als auch Alkylsulfinate effizient um. Außerdem weisen Reaktionen mit unsymmetrischen Diaryliodoniumsalzen hohe Chemoselektivitäten auf.
Auf der Grundlage auf der Reaktion zwischen Natriumsulfinaten und Iodoniumsalzen wurde eine simple Route zur Synthese von Diarylsulfonen abgeleitet, jedoch war hierbei die Sulfonylgruppe noch Bestandteil eines der Edukte. Um die SO2-Einheit während der Reaktion einführen zu können, wurde ein praktisches Eintopf-Protokoll entwickelt, welches die direkte Umsetzung von (hetero)aromatischen und alkylischen Halogeniden zu Arylsulfonen gestattet. Diese innovative Methode besteht aus folgenden vier Schritten: (1) Generierung des Organometallreagenzes via Halogen-Metall-Austausch, direkte Metallinsertion oder Deprotonierung; (2) Reaktion des Organometallreagenzes mit SO2 zum Sulfinat; (3) Entfernen des SO2-Überschusses und flüchtiger Komponenten und (4) Umsetzung des nicht aufgereinigten Sulfinates mit einem Iodoniumsalz.
Desweiteren wird in dieser Arbeit ein neuartiger Übergangsmetall-katalysierter Ansatz zur Darstellung von Diarylsulfonen ausgehend von Arylhalogeniden und Sulfinaten diskutiert. Erste Experimente deuten auf Nickel-Katalysatoren als gute Wahl für die Reaktion. Optimierungsreaktionen zeigten eine starke Abhängigkeit der Ausbeute in Hinsicht auf die Bisswinkel der an das zentrale Nickelatom koordinierten Liganden. Da die bis dato besten Ergebnisse mit dem Komplex [o-tol-Ni(PPh2Me)2Cl] erzielt wurden, wird der [o-tol-Ni(PMe3)2Cl]-Komplex momentan in unserem Labor weiteren Studien unterzogen. Bislang ist davon auszugehen, dass dieser Katalysator hervorragende Ergebnisse liefert und zu einer allgemein gültigen Methode führt.
In weiteren Kapiteln wird die Anwendbarkeit von SO2-Surrogaten, Metabisulfiten „S2O52-„ oder DABSO; untersucht; mit dem Ziel eine Eintopf- oder Multikomponentenreaktion zu entwickeln.
Zum einen wird die Entwicklung einer Ein-Topf-Reaktion von Alkylhalogeniden mit Metabisulfiten und Organozinkreagenzien zur Darstellung von Alkylarylsulfonen vorgestellt. Darüber hinaus wird eine Übergangsmetall-katalysierte Multikomponenten Reaktion zur Synthese von Sulfonsäureamiden vorgestellt. Eine Reaktion zwischen Aminen, Arylhalogeniden und DABSO als SO2-Quelle wurde in Form einer Palladium-katalysierten Aminosulfonylierung entwickelt.
The metabolome of any live cell consists of several hundred, if not thousands of different molecules at any given moment, be it a relatively small bacterial cell or a whole multicellular organism. Although there are continuous attempts to differentiate between primary and secondary metabolites, the borders often blur in the eye of almost perfect interconvertability of all such matter. With chemistry and physics dominating this domain of biology it is an interdisciplinary endeavor to tackle the questions surrounding the workings of the metabolic pathways involved, searching for answers that ultimately help us to better understand life and find solutions to problems that affect us humans. One area of biochemistry that serves as a formidable example of the intertwined primary and secondary metabolic pathways are fatty acids, essential components of bacterial membranes, sources of energy and carbon but also important building blocks of several natural products. The second area to be mentioned is the metabolism of amino acids, the basic components of proteins and enzymes, which also serve as precursors to a diverse set of metabolites with many biological purposes.
This work focuses on these two areas of biochemistry, as several intermediates of their metabolism serve as building blocks for complex secondary metabolites whence many interesting and bioactive natural products are derived. The powerful and relatively novel tool of click-chemistry is employed to track azide-labeled precursors of primary and secondary metabolism in various bacterial strains to observe biochemistry at work and adds to the knowledge gained through other methods. The methods presented in this work serve the observation of fatty acid biosynthesis, degradation, modification and transport through direct ligation of azido fatty acids with cyclooctynes on one hand, leading to a revision of fatty acid transport in general. On the other hand a cleavable azide-reactive resin is devised to generally track the fate of azidated compounds through the myriads of metabolic pathways offered by entomopathogenic bacteria possessing a rich secondary metabolism. The resulting findings led to the identification of several antimicrobial peptides, amides and other compounds of which many had remained so far undetected in the strains that underwent investigation, underlining the worth of this method for future metabolomic research and beyond.
The metabolome of any live cell consists of several hundred, if not thousands of different molecules at any given moment, be it a relatively small bacterial cell or a whole multicellular organism. Although there are continuous attempts to differentiate between primary and secondary metabolites, the borders often blur in the eye of almost perfect interconvertability of all such matter. With chemistry and physics dominating this domain of biology it is an interdisciplinary endeavor to tackle the questions surrounding the workings of the metabolic pathways involved, searching for answers that ultimately help us to better understand life and find solutions to problems that affect us humans. One area of biochemistry that serves as a formidable example of the intertwined primary and secondary metabolic pathways are fatty acids, essential components of bacterial membranes, sources of energy and carbon but also important building blocks of several natural products. The second area to be mentioned is the metabolism of amino acids, the basic components of proteins and enzymes, which also serve as precursors to a diverse set of metabolites with many biological purposes.
This work focuses on these two areas of biochemistry, as several intermediates of their metabolism serve as building blocks for complex secondary metabolites whence many interesting and bioactive natural products are derived. The powerful and relatively novel tool of click-chemistry is employed to track azide-labeled precursors of primary and secondary metabolism in various bacterial strains to observe biochemistry at work and adds to the knowledge gained through other methods. The methods presented in this work serve the observation of fatty acid biosynthesis, degradation, modification and transport through direct ligation of azido fatty acids with cyclooctynes on one hand, leading to a revision of fatty acid transport in general. On the other hand a cleavable azide-reactive resin is devised to generally track the fate of azidated compounds through the myriads of metabolic pathways offered by entomopathogenic bacteria possessing a rich secondary metabolism. The resulting findings led to the identification of several antimicrobial peptides, amides and other compounds of which many had remained so far undetected in the strains that underwent investigation, underlining the worth of this method for future metabolomic research and beyond.
Summary and Outlook The aim of this work was the investigation of the Mn2+ binding sites in hammerhead and the Diels-Alder ribozymes. This project consists of three main topics. In the first part quantification and structural characterization of Mn2+ binding sites in the m- and the tsHHRz using Electron Paramagnetic Resonance (EPR) spectroscopy are described. The second part summarizes the newest results obtained for the cleavage activity of both mand tsHHRzs in the presence of different Mg2+ and Mn2+ and Na+ ion concentrations using the new method with fluorescent-labeled RNAs. Here the influence of neomycin B on the structure of Mn2+ binding pockets and on the catalytic activity of both HHRzs is discussed. In addition, a possible role of Mn2+ ions is suggested from correlation of the EPR data with the kinetic results. The last chapter is devoted to quantification and differentiation of Mn2+ binding sites of the Diels-Alder ribozyme using continuous wave (cw) EPR experiments in solution. In this work EPR spectroscopy was used to study the binding of Mn2+ ions to the cis tsHHRz and to compare it with the binding to the trans mHHRz and to the Diels-Alder ribozyme. Cw EPR measurements showed that the tsHHRz possesses a single highaffinity Mn2+ binding site with a KD of < 10 nM at a NaCl concentration of 0.1 M. This dissociation constant is three orders of magnitude smaller than the KD determined for the single high-affinity Mn2+ site in the mHHRz (KD = 4.4 μM). The measurements of catalytic activity have been performed using fluorescent-labeled RNAs. Compared to the mHHRz, the cis tsHHRz cleaves up to 20-fold faster in the presence of Mg2+/Mn2+ ions with no saturation of the cleavage rates at high metal(II) ion concentrations. This is in good agreement with the last investigations on the trans tsHHRz (Nelson et al. 2005). Thus, the much stronger Mn2+ binding and higher cleavage activity were attributed to the interaction between the two external loops of the tsHHRz which reduces the RNA dynamics and traps the Mn2+ in the tightly folded conformation. Intriguingly, according to the EPR studies the binding constants for Mn2+ ions are several orders higher than the concentration of Mn2+ ions required for the catalytic activity (mHHRz: KD = 4.4 ± 0.5 μM and the Mn2+ concentration required to achieve half of the maximum cleavage rate [Mn2+]1/2 = 4.1 ± 0.6 mM respectively). Therefore, strongly bound Mn2+ ions seem to be needed for the folding of the HHRz, whereas weakly bound metal(II) ions are required to achieve full catalytic activity, and may be directly involved in catalysis. A comparison between the Electron Spin Echo Envelope Modulation (ESEEM) and Hyperfine Sublevel Correlation (HYSCORE) spectra of m- and tsHHRz demonstrates that both binding sites in HHRzs are structurally very similar. This suggests that the Mn2+ is located in both ribozymes between the bases A9 and G10.1 of the sheared G•A tandem basepair, as shown previously and in detail for the mHHRz (Vogt and DeRose 1998, Schiemann et al. 2003). However, the hyperfine spectra of the tsHHRz with 15N labeled G10.1 revealed no difference in comparison with the ones with 14N. This leads to an interpretation that the Mn2+ binding sites in both ribozymes are not identical. In addition, aminoglycoside antibiotic neomycin B inhibits the cleavage activity of both despite of the fact that it displaces the high-affinity Mn2+ ion only from the mHHRz. Hence, binding of neomycin B to the m- and the tsHHRzs probably occurs at different sites and neomycin B displaces only loosely bound Me2+ ions from the tsHHRs, whereas in the mHHRz both the high-affinity ion and the weakly bound ions are replaced. Therefore, it cannot be excluded that weakly bound Mg2+/Mn2+ ions, together with looploop interactions, induce a structural rearrangement which brings the high-affinity ion closer to the cleavage site. In the case of the Diels-Alder ribozyme it possesses five Mn2+ binding sites with KD = 0.6 ± 0.2 μM in solution under conditions where it is catalytically active. The competition experiment with Cd2+ allows to distinguish three different types of Mn2+ binding sites in the Diels-Alder ribozyme including inner-sphere monomeric Mn2+, monomeric Mn2+ bound through water-mediated contacts and electronically coupled dimeric Mn2+. Three Mn2+ ions are more strongly bound to the ribozyme via inner-sphere contacts, whereas two other Mn2+ ions form water-mediated outer-sphere contacts with the nucleotides of the ribozyme. The inner-sphere Mn2+ with the highest affinity and the fourth Mn2+ ions added to the ribozyme form a dimer with a Mn2+-Mn2+ distance of ~6 Å (as arises from simulations). Moreover, an addition of the product analog inhibitor (AMDA) to the [Diels-Alder ribozymes/ Mn2+] complex shows no conformational changes in the Mn2+ binding pockets. This is in good agreement with the recent studies which suggest that the Diels-Alder ribozyme is preorganized (Keiper et al. 2004). Some considerations on the evolution of the project (Outlook) There may be several venues of continuation of this project, which exploit on unique combination of EPR experiments and biochemical studies on RNA. This combination may allow us to significantly contribute to understanding of metal role in HHRz catalysis. Since the tsHHRz possesses the high affinity Mn2+ binding site (Kd < 10 nM) it creates a possibility to find conditions where the structural site is occupied by Mn2+, while catalytic sites are occupied by Mg2+ ions. If these conditions will be established by EPR titration, a set of standard biochemical experiments may be designed to look at the kinetic of cleavage and differentiate the “structural” and catalytic effects. The other experiment would be to look at the Mn2+ binding site in the tsHHRz in comparison with P1 and P1/P2 complexes and compare the results with the ones for the mHHRz. No matter the answer, P1 can be used as a simpler model to study the effect of tertiary structure on Mn2+ binding. A set of the tsHHRz mutants can be created to observe the mutations affect on Mn2+ binding sites, Mn2+ affinity and correlate the data with the kinetic analysis. FRET-based kinetic assay with fluorophore pairs on P1 and P2 can be designed for the kinetic experiments. Having this system one will be able to perform kinetic measurements 100-fold faster comparing to standard gel procedures (everything will be done in 96-wells). By manipulating the lengths and the sequence of P2 we most likely will be able to use FRET assay for the chemical step analysis (provided Kd > k2), and measure it using stop-flow system with time resolution of microseconds. And finally, one will be able to quantitatively measure the effect of neomycin B on the tsHHRz. Another interesting possibility would be to look at the state of metal(II) in the tsHHRz – enzyme alone (dissociated product) and in the enzyme-product complex and compare with the full-length tsHHRz. It will provide the information about the local rearrangements upon catalysis and the role of metal(II) ions. Furthermore, additional pulse-EPR experiments using 15N labeling have to be performed in order to reveal the location of the high-affinity Mn2+ binding site in the tsHHRz. Additionally, paramagnetic Mn2+ ions can be localized within the global fold of HHRzs using PELDOR and site-directed spin labeling. Further characterization of the high-affinity binding site in the tsHHRz can be performed using high-field ENDOR measurements in order to obtain the 14N and 31P tensors.