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The main objective of this thesis was the design and synthesis of perylene bisimide dyes with sufficient water-solubility for the construction of self-assembled architectures in aqueous solutions. Beside these tasks another goal of this project was the control over the self-assembly process in terms of aggregate size and helicity, respectively. Within this thesis an appropriate synthesis for spermine-functionalized perylene bisimide dyes was developed and conducted successfully. The characterization of these building blocks and their course of self-assembly were investigated by NMR, UV/Vis and fluorescence spectroscopy as well as by atomic force and transmission electron microscopy. For the better understanding of the experimental results theoretical calculations were performed.
This PhD thesis introduced several concepts for the construction of new supramolecular assem-blies in polar solvents. Although the building blocks differ in their binding mode and association strength they follow the same principle: one main driving force for the self-assembly in polar solutions in combination with one texturing force. The main self-assembly process is based on the mutual interaction of hydrogen-bond enforced ion pairs which deliver the association energy needed for stable, supramolecular structures even in polar solvents. The texturing force itself is represented by the linkers between the zwitterionic building blocks or parts of them. The different length and functionalization of the linkers have a tremendous influence on the mode of self-assembly leading to cyclic dimers, vesicles, layers or solid spheres. Hence, this principle is suitable for the construction of programmable monomers. Since the derivatisation of the main binding motive is rather simple it offers a great number of new and undoubtedly fascinating structures with potential applications in material and biomimetic science.
Die absoluten Konfigurationen von mehr als 20 neuartigen Naturstoffen und Syntheseprodukten mit unterschiedlichen Chiralitätselementen (stereogene Zentren, chirale Achsen und chirale Ebenen) wurden durch Vergleich ihrer experimentellen CD-Spektren mit den quantenchemisch berechneten der jeweils möglichen Stereoisomere aufgeklärt. Zur Simulation des molekularen CD kamen dabei semiempirische Verfahren (CNDO/S und OM2) und die zeitabhängige Dichtefunktionaltheorie (TDDFT) zum Einsatz.
In the first part of the work three polycarbazoles poly[N-((4-dimesitylboryl)-3,5-dimethylphenyl)-carbazole]-2,7-diyl P1, poly[N-((4-dimesitylboryl)-3,5-dimethylphenyl)-carbazole]-3,6-diyl P2 and poly[N-(4-(diphenylmethylene)-phenyl)- carbazole]-2,7-diyl P3 were synthesized by Yamamoto coupling reaction and their spectroscopic and electrochemical properties were investigated. Absorption and fluorescence characteristics of P1 and P3 were found to be similar to other 2,7-linked polycarbazoles, whereas P2 shows a CT absorption band arising from a shift of electron density from the nitrogen of the carbazole donor to the triarylborane acceptor. This causes a negative solvatochromic absorption and a positive solvatochromic fluorescence behaviour and is responsible for the significantly enlarged fluorescence quantum efficiency in solution and solid state compared to other 3,6-linked polycarbazoles. Thus the spectroscopic properties are governed by the connection pattern: the 2,7-linked polycarbazoles are not affected by the acceptor substituent due to the rigid poly-para-phenylene-like backbone structure, whereas the 3,6-linked polycarbazole P2 is dominated by the properties of the monomer unit due to its more flexible (less conjugated) structure. The oxidative processes of P1-P3 have been investigated in detail by cyclic voltammetry, which are similar to known 2,7- and 3,6-polycarbazoles. The reversible reduction found for P1 and P2, respectively, is attributed to the reduction of the triarylborane moiety. No reduction process referring to the carbazole moiety was observed. Due to its better solubility compared to P1 and P3 only P2 was used as active layer in an OLED device (ITO/P2/Al). The electroluminescence spectrum revealed CIE coordinates of (0.17, 0.21). In the second part of the work the low band gap polyradical poly{[((2,3,4,5,6-pentachlorophenyl)-bis(2,3,5,6-tetrachlorophenyl)methyl radical)-4,4’-diyl]-alt-4,4’-bis(vinylphenyl)-4-(2-ethylhexyloxy)phenylamin} P4 was synthesized by Horner-Emmons reaction. It shows an IV-CT band in the NIR, which arises from an ET from the triarylamine donor to the PCTM radical acceptor. This transition is confined to one monomer unit as deduced from comparison with the monomer spectra. HOMO and LUMO of P4 determined by cyclic voltammetry are at -5.5 and -4.5 eV, respectively. The smaller electrochemical band gap (1.0 eV) compared to the optical band gap (1.2 eV) is probably caused by ion pairing effects in the electrochemical experiments and indicates a low exciton binding energy. Femtosecond-pump-probe transient absorption spectroscopy revealed the spectral features of the oxidized triarylamine donor and the reduced PCTM acceptor similar to the spectra obtained separately for positive and negative potentials by spectroelectrochemistry. Thus the ET event causing the IV-CT absorption band could unambiguously be identified. The decay of the IV-CT state was found to be biexponential. The fast solvent dependent decay component is ascribed to the direct decay from the IV-CT state to the ground state, whereas the slow solvent independent decay component is tentatively attributed to an equilibrium formation of the IV-CT state and a completely charge separated state formed by charge migration along the polymer backbone. Well balanced ambipolar charge transport with hole and electron mobilities of ca. 3 × 10-5 cm2 V-1 s-1 was found in OFET devices (BG/TC structure) comprising an additional insulating organic PPcB layer. Polymer/polymer BHJ solar cell devices with the structure glass/ITO/PEDOT:PSS/(P3HT/P4)/Ca/Al yielded a power conversion efficiency of 3.1 × 10-3 %, VOC = 0.38 V, JSC = 2.8 × 10-2 mA cm-2 and FF = 0.29 for the 1:4 (P3HT/P4) blend ratio. The improper solid state morphology of P4 that causes the unsatisfying performance of OFET and solar cell devices renders P4 less suitable for these applications, whereas the hypothesis of charge migration in the excited state is worth to be investigated in more detail.
Within this thesis the interactions between novel corannulene derivatives in solution as well as in the solid state by changing the imide residue of a literature known extended corannulene dicarboximide were investigated, in order to obtain a better understanding of the packing and possible charge transport in potential applications. Accordingly, the goal of the work was to synthesize and investigate an electron-poor corannulene bis(dicarboximide) based on previously published work but with higher solubility and less steric encumbrance in imide position to enable self-assembly in solution.
To obtain further insights into the conformational stability, structure and chiroptical properties of heavily twisted PBIs another aim of this thesis was the design, synthesis, and optoelectronic investigation of various fourfold directly arylated PBIs by substitution in bay position with smaller hydrocarbons with different steric demand, i.e., benzene, naphthalene and pyrene, which should be separable by chiral high performance liquid chromatography (HPLC).
As of yet, no concise study concerning the optical and electronic properties of differently core-substituted PBIs in the neutral as well as the mono- and dianionic state in solution is available, which also elucidates the origin of the different optical transitions observed in the absorption and emission spectra. Thus, in this thesis, the investigation of five PBI derivatives with different frontier energetic levels to produce a reference work of reduced PBIs was tackled.
A series of perylene bisimide (PBI) dyes bearing various aryl substituents in 1,6,7,12 bay positions has been synthesized by Suzuki cross-coupling reaction. These molecules exhibit an exceptionally large and conformationally fixed twist angle of the PBI π-core due to the high steric congestion imparted by the aryl substituents in bay positions. Single crystal X-ray analyses of phenyl-, naphthyl- and pyrenyl-functionalized PBIs reveal interlocked π-π-stacking motifs, leading to conformational chirality and the possibility for the isolation of enantiopure atropoisomers by semipreparative HPLC. The interlocked arrangement endows these molecules with substantial racemization barriers of about 120 kJ mol\(^{−1}\) for the tetraphenyl- and tetra-2-naphthyl-substituted derivatives, which is among the highest racemization barriers for axially chiral PBIs. Variable temperature NMR studies reveal the presence of a multitude of up to fourteen conformational isomers in solution that are interconverted via smaller activation barriers of about 65 kJ mol\(^{−1}\). The redox and optical properties of these core-twisted PBIs have been characterized by cyclic voltammetry, UV/Vis/NIR and fluorescence spectroscopy and their respective atropo-enantiomers were further characterized by circular dichroism (CD) and circular polarized luminescence (CPL) spectroscopy.
The self-assembly of a bowl-shaped naphthalimide-annulated corannulene of high solubility has been studied in a variety of solvents by NMR and UV/Vis spectroscopy. Evaluation by the anti-cooperative K\(_2\)-K model revealed the formation of supramolecular dimers of outstanding thermodynamic stability. Further structural proof for the almost exclusive formation of dimers over extended aggregates is demonstrated by atomic force microscopy (AFM) and diffusion ordered spectroscopy (DOSY) measurements as well as by theoretical calculations. Thus, herein we present the first report of a supramolecular dimer of an annulated corannulene derivative in solution and discuss its extraordinarily high thermodynamic stability with association constants up to > 10\(^6\)M\(^-\) \(^1\) in methylcyclohexane, which is comparable to the association constants given for planar phthalocyanine and perylene bisimide dyes.
The presented work in the field of supramolecular chemistry describes the synthesis and detailed investigation of (bi)pyridine-based oligo(phenylene ethynylene) (OPE) amphiphiles, decorated with terminal glycol chains. The metal-ligating property of these molecules could be exploited to coordinate to Pd(II) and Pt(II) metal ions, respectively, resulting in the creation of novel metallosupramolecular π-amphiphiles of square-planar geometry.
The focus of the presented studies is on the self-assembly behaviour of the OPE ligands and their corresponding metal complexes in polar and aqueous environment. In this way, the underlying aggregation mechanism (isodesmic or cooperative) is revealed and the influence of various factors on the self-assembly process in supramolecular systems is elucidated. In this regard, the effect of the molecular design of the ligand, the coordination to a metal centre as well as the surrounding medium, the pH value and temperature is investigated.
Self-organization and self-sorting processes are responsible for the regulation and control of the vast majority of biological processes that eventually sustain life on our planet. Attempts to unveil the complexity of these systems have been devoted to the investigation of the binding processes between artificial molecules, complexes or aggregates within multicomponent mixtures, which has facilitated the emergence of the field of self-sorting in the last decade. Since, artificial systems involving discrete supramolecular structures, extended supramolecular aggregates or gel-phase materials in organic solvents or—to a lesser extent—in water have been investigated. In this review, we have collected diverse strategies employed in recent years to construct extended supramolecular aggregates in water upon self-sorting of small synthetic molecules. We have made particular emphasis on co-assembly processes in binary mixtures leading to supramolecular structures of remarkable complexity and the influence of different external variables such as solvent and concentration to direct recognition or discrimination processes between these species. The comprehension of such recognition phenomena will be crucial for the organization and evolution of complex matter.
No abstract available
Large-scale multireference configuration interaction (MRD-CI) calculations in a flexible atomic orbital (AO) basis are employed to study the reaction of C\(_2\)H\(_4\) with CH\(_2\) in its firSt triplet and singlet state. The minimum energy path (MEP) of both reactions is calculated, and different mechanisms are discussed. To examine the possible participation of the singlet state in the overall reaction starting from the triplet channel and terminating in the singlet-state c-C\(_3\)H\(_6\), various cuts through both hypersurfaces are calculated. lt is found that favorable interconversion from the trip1et to the singlet surface can only occur at !arge separations of the two fragments of CH2 and C\(_2\)H\(_4\). Experimental data considering the vibrational motion of CH\(_2\) in connection with the relative position of both surfaces are used to obtain an estimate for the overall barrier of the reaction. The height of the barrier is about 6 kcal/mol, while the barrier of the pure triplet reaction is calculated to be 7-9 kcal/mol.
In this thesis, the photophysics and spin chemistry of donor-photosensitizer-acceptor triads were investigated. While all investigated triads comprised a TAA as an electron donor and a NDI as an electron acceptor, the central photosensitizers (PS) were different chromophores based on the dipyrrin-motif. The purity and identity of all target compounds could be confirmed by NMR spectroscopy, mass spectrometry and elemental analysis.
The first part of the work dealt with dipyrrinato-complexes of cyclometalated heavy transition metals. The successful synthesis of novel triads based on Ir(III), Pt(II) and Pd(II) was presented. The optical and electrochemical properties indicated charge separation (CS), which was confirmed by transient absorption (TA) spectroscopy. TA-spectroscopy also revealed that the process of CS is significantly slower and less efficient for the triads based on Pt(II) and Pd(II) than for the analogous Ir(III) triads. This is mostly due to a much more convoluted reaction pathway, comprising several intermediate states before the formation of the final charge separated state (CSS2). On the other hand, CSS2 exhibits long lifetimes which are dependent on the central metal ion. While the Ir(III) triads show lifetimes of about 0.5 µs in MeCN, the Pt(II) and Pd(II) analogues show lifetimes of 1.5 µs. The magnetic field effect on the charge recombination (CR) kinetics of CSS2 was investigated by magnetic field dependent ns-TA spectroscopy and could be rationalized based on a classical kinetic scheme comprising only one magnetic field dependent rate constant k±. The behavior of k± shows a clear separation of the coherent and incoherent spin interconversion mechanisms. While the coherent spin evolution is due to the isotropic hyperfine coupling with the magnetic nuclei of the radical centers, the incoherent spin relaxation is due to a rotational modulation of the anisotropic hyperfine coupling tensor and is strongly dependent on the viscosity of the solvent. This dependence could be used to measure the nanoviscosity of the oligomeric solvent pTHF, which was found to be distinctly different from its macroviscosity.
The second part of the work dealt with bisdipyrrinato complexes and their bridged porphodimethenato (PDM) analogues. Initially, the suitability of the different chromophores for the use as PS in donor-acceptor substituted triads was tested by a systematic investigation of their steady state and transient properties. While the PDM-complex of Zn(II) and Pd(II) exhibited promising characteristics such as a high exited state lifetime and relatively intense emission, the purely organic parent PDM and the non-bridged bisdipyrrinato-Pd(II) complex were less suitable. The difference between the two Pd(II) complexes could be explained by a structural rearrangement of the non-bridged complex which results in a non-emissive metal centered triplet state with disphenoidal geometry. This rearrangement is prevented by the dimethylmethylene-bridges in the bridged analogue resulting in higher phosphorescence quantum yields and excited state lifetimes.
With the exception of the Zn(II)PDM-complex, the synthesis of novel donor acceptor substituted triads could be realized for all desired central chromophores. They were investigated equivalently to the cyclometalated triads described in the first part. The steady state properties indicate a stronger electronic coupling between the subunits due to the lack of unsaturated bridges between the donor and the central chromophore. Photoinduced CS occurs in all investigated triads. Due to the low exited state lifetimes of the central chromophores, CSS is formed less efficiently for the triads based on the unbridged Pd(II)-complex as well as the purely organic PDM. In the triad based on the bridged Pd(II) complex, the CR of CSS2 is faster than its formation resulting in low intermediate concentrations. For its elongated analogue, this is not the case and CSS2 can be observed clearly. Although the spin-chemistry of the triads based on bisdipyrrinato-Pd(II) and porphodimethenato-Pd(II) is less well understood, first interpretations of the magnetic field dependent decay kinetics gave results approximately equivalent to those obtained for the cyclometalated triads. Furthermore, the MFE was shown to be useful for the investigation of the quantum yield of CS and the identity of the observed CSSs.
In both parts of this work, the influence of the central photosensitizer on the photophysics and the spin chemistry of the triads could be shown. While the process of CS is directly dependent on the PS, the PS usually is not directly involved in the final CSSs. None the less, it can still indirectly affect the CR and spin chemistry of the CSS since it influences the electronic coupling between donor and acceptor, as well as the geometry of the triads.
Tristriazolotriazines (TTTs) with a threefold alkoxyphenyl substitution were prepared and studied by DSC, polarized optical microscopy (POM) and X-ray scattering. Six pentyloxy chains are sufficient to induce liquid-crystalline behavior in these star-shaped compounds. Thermotropic properties of TTTs with varying substitution patterns and a periphery of linear chains of different lengths, branching in the chain and swallow-tails, are compared. Generally, these disks display broad and stable thermotropic mesophases, with the tangential TTT being superior to the radial isomer. The structure–property relationships of the number of alkyl chains, their position, length and structure were studied.
Sekundäre Pflanzenstoffe sind aufgrund ihrer großen Strukturvielfalt sowohl als Leit- und Wirkstoffe für die Pharma- und Pflanzenschutzforschung in den Industrieländern als auch zur unmittelbaren medizinischen Grundversorgung der Entwicklungsländer von herausragender Bedeutung für den Menschen. Eine Klasse pharmakologisch, biogenetisch und chemotaxonomisch interessanter Sekundärmetabolite sind die Naphthylisochinolin-Alkaloide, die ausschließlich in den eng verwandten tropischen Pflanzenfamilien Ancistrocladaceae und Dioncophyllaceae vorkommen. Der Untersuchung der Biosynthese dieser acetogeninen Metabolite (z.B. Dioncophyllin A), einschließlich einiger Vorstufenderivate (z.B. Plumbagin, Droseron und Isoshinanolon), durch die konsequente Etablierung von in-vitro-Systemen sowie der Biologie ihrer pflanzlichen Produzenten am Naturstandort und in Kultur, wurde das Hauptaugenmerk in dieser Arbeit gewidmet. Außerdem wurden die biologischen Aktivitäten der Substanzen getestet. Daneben wurde die Strategie der stabilisotopenmarkierten Vorstufenverfütterung exemplarisch auf eine Art aus den nahe verwandten Nepenthaceen ausgeweitet, indem der natürliche Aufnahmemechanismus der carnivoren Pflanze ausgenutzt wurde. Anhand von Verfütterungsexperimenten mit ebenfalls neu etablierten Zellkulturen konnte außerdem die Struktur eines neuartigen Pyridon-Alkaloids (Antidesmon) aus Antidesma membranaceum, das ursprünglich als Isochinolin beschrieben worden war, revidiert werden und dessen ungewöhnliche Biosynthese aus Acetat und Glycin aufgeklärt werden.
The goal of this thesis was to investigate the influence of rotational restriction between individual parts and of the varying electron density in the bridging unit of D B A systems on the exchange interaction 2J, and thus the electronic coupling between a donor state and an acceptor state. A better understanding of how to influence the underlaying spin dynamics in such donor acceptor systems can open up the door to new technologies, such as modern molecular electronics or optoelectronic devices.
Therefore, three series of molecules consisting of a TAA electron donor, a TTC or ATC bridging unit and a PDI electron acceptor were studied. To investigate the influence of rotational restriction on 2J and the electronic coupling, a series of four rotationally hindered triads (chapter 6) was synthesised. The dihedral angle between the TAA and the TTC as well as between the TTC and the PDI was restricted by ortho methyl groups at the phenylene linkers of the connecting ends to the TTC bridge, producing a twist around the linking single bond which minimises the π overlap. The triads exhibit varying numbers of ortho methyl groups and therefore different degrees of rotational restriction. In order to shine light on the influence of varying electron density on 2J and the electronic coupling, a series of four substituted triptycene triads (chapter 7) was synthesised. The electron density in the TTC bridging unit was varied by electron donating and electron withdrawing groups in 12,13 position of the TTC bridging unit and thus varying its HOMO/LUMO energy. The last series of two anthracene bridge triads (chapter 8) connected both approaches by restricting the rotation with ortho methyl groups and simultaneously by varying the bridge energies.
In order to obtain the electronic properties, steady state absorption and emission spectra of all triads were investigated (chapter 4). Here, all triads show spectral features associated with the separate absorption bands of TAA and the PDI moiety. The reduced QYs, compared to the unsubstituted PDI acceptor, indicate a non radiative quenching mechanism in all triads. The CV data (chapter 5) were used to calculate the energies of possible CSSs and those results were used to assign the CR dynamics into the different Marcus regions. fs TA measurements reveal that all triads form a CSS upon excitation of the PDI moiety. The lifetimes of the involved states and the rate constants were determined by global exponential fits and global target analysis. The CR dynamics upon depopulation of the CSSs were investigated using external magnetic field dependent ns TA spectroscopy. The ns TA maps show that all triads recombine via CRT pathway populating the local 3PDI state in toluene and provided the respective lifetimes. The approximate QYs of triplet formation were determined using actinometry. The magnetic field dependent ns TA data reveal the exchange interaction 2J between singlet and triplet CSS for each triad. Those magnetic field dependent ns TA data in toluene were furthermore treated using a quantum mechanical simulation (done by U.E. Steiner) to extract the rate constants kT and kS for CRT and CRS, respectively. However, the error margins of kS were rather wide. Finally, the electronic couplings between the donor and the acceptor states were obtained by combining the aforementioned experimental results of the rate constants and applying the Bixon Jortner theoretical description of diabatic ET and Andersons perturbative theory of the exchange coupling. Therefore, the experimentally determined values of 2J and the calculated values of kCS and kT were used. The rate constant kS was calculated based on the electronic coupling V1CSS 1S0.
The rotationally hindered triads (chapter 6) show a strong influence of the degree of rotational restriction on the lifetimes and rate constants of the CS processes. The rate constants of CS are increasing with increasing rotational freedom. The magnetic field dependent decay data show that the exchange interactions increase with increasing rotational freedom. Based on the CR dynamics, the calculated electronic couplings of the ET processes reflect the same trend along the series. Here, only singlet couplings turned out to be strongly influenced while the triplet couplings are not. Therefore, this series shows that the ET dynamics of donor acceptor systems can strongly be influenced by restricting the rotational freedom.
In the substituted triptycene triads (chapter 7), decreasing electron density in the bridging unit causes a decrease of the CS rate constants. The magnetic field dependent decay data show that with decreasing electron density in the bridge the exchange interaction decreases. The CR dynamics-based rate constants and the electronic couplings follow the same trend as the exchange interaction. This series shows that varying the HOMO/LUMO levels of the connecting bridge between donor and acceptor strongly influences the ET processes.
In the anthracene bridge triads (chapter 8), the CS process is slow in both triads. The CR was fast in the anthracene triad and is slowed down in the methoxy substituted anthracene bridge triad. The increase of the exchange interaction with increasing electron density in the bridge was more pronounced than in the substituted triptycene triads. Thus, the variation of electron density in the bridge strongly influences the ET processes even though the rotation is restricted.
In this thesis, it was shown that the influence of the rotational hindrance as well as the electron density in a connecting bridge have strong influence on all ET processes and the electronic coupling in donor acceptor systems. These approaches can therefore be used to modify magnetic properties of new materials.
Fundamental studies of functional nucleic acids: aptamers, riboswitches, ribozymes and DNAzymes
(2020)
This review aims at juxtaposing common versus distinct structural and functional strategies that are applied by aptamers, riboswitches, and ribozymes/DNAzymes. Focusing on recently discovered systems, we begin our analysis with small-molecule binding aptamers, with emphasis on in vitro-selected fluorogenic RNA aptamers and their different modes of ligand binding and fluorescence activation. Fundamental insights are much needed to advance RNA imaging probes for detection of exo- and endogenous RNA and for RNA process tracking. Secondly, we discuss the latest gene expression–regulating mRNA riboswitches that respond to the alarmone ppGpp, to PRPP, to NAD+, to adenosine and cytidine diphosphates, and to precursors of thiamine biosynthesis (HMP-PP), and we outline new subclasses of SAM and tetrahydrofolate-binding RNA regulators. Many riboswitches bind protein enzyme cofactors that, in principle, can catalyse a chemical reaction. For RNA, however, only one system (glmS ribozyme) has been identified in Nature thus far that utilizes a small molecule – glucosamine-6-phosphate – to participate directly in reaction catalysis (phosphodiester cleavage). We wonder why that is the case and what is to be done to reveal such likely existing cellular activities that could be more diverse than currently imagined. Thirdly, this brings us to the four latest small nucleolytic ribozymes termed twister, twister-sister, pistol, and hatchet as well as to in vitro selected DNA and RNA enzymes that promote new chemistry, mainly by exploiting their ability for RNA labelling and nucleoside modification recognition. Enormous progress in understanding the strategies of nucleic acids catalysts has been made by providing thorough structural fundaments (e.g. first structure of a DNAzyme, structures of ribozyme transition state mimics) in combination with functional assays and atomic mutagenesis.
Mittels einer fünfstufigen Synthese wurde das 2,2´-Ditetracen als Modellsystem zur Erforschung von singlet fission-Prozessen hergestellt. Die Synthese wurde mit einer Gesamtausbeute von 21 % durchgeführt, wobei der Schlüsselschritt, die Kopplung der beiden Monomere, durch eine Suzuki-Kopplung erfolgte. Das gewünschte Produkt konnte nach gründlicher Reinigung mittels Gradientensublimation als leuchtend rote Einkristalle erhalten werden. Während die Emissionsspektren der Einzelmoleküle nahezu identisch sind, zeigen Untersuchungen mittels Photolumineszenzspektroskopie eine Rotverschiebung im Emissionsspektrum des Dimer-Einkristalls im Vergleich zum Einkristall des Tetracen-Monomers. Durch theoretische Berechnung konnte die Absenkung des S1-Zustands des Dimers im Kristall erklärt werden, wodurch die Energiebedingung für singlet fission (2 E(T1) ≤ E(S1)) nicht mehr erfüllt ist.
Weiterhin wurden mehrere mit Alkylgruppen und Vinylgruppen substituierte Tetracenderivate synthetisiert und diese mittels optischer und elektrochemischer Methoden auf ihre Eigenschaften hin untersucht. Es wurde bei allen synthetisierten Derivaten eine Rotverschiebung der Hauptbanden im Absorptionsspektrum beobachtet, was durch einen kleineren HOMO-LUMO-Abstand im Vergleich zum nicht substituierten Tetracen erklärt wird. Es wurde zudem eine erhöhte Stabilität dieser Derivate gegenüber Umwelteinflüssen wie Licht und Sauerstoff, die die Bildung von Endoperoxiden und Dimeren zur Folge haben, festgestellt. Dies kann auf sterische Effekte sowie die Stabilisierung des biradikalischen Zustands dieser Moleküle durch Hyperkonjugation und Resonanzeffekte zurückgeführt werden.
In the course of this work, a total of three photocatalytically active dyads for proton reduction could be synthesized together with the associated individual components. Two of them, D1 and D2, comprised a [Ru(bpy)3]2+ photosensitizer and D3 an [Ir(ppy)2bpy]+ photosensitizer. A Ppyr3-substituted propyldithiolate [FeFe] complex was used as catalyst in all systems. The absorption spectroscopic and electrochemical investigations showed that an inner-dyadic electronic coupling is effectively prevented in the dyads due to conjugation blockers within the bridging units used. The photocatalytic investigations exhibited that all dyad containing two-component systems (2CS) showed a significantly worse performance than the corresponding bimolecular three-component systems (3CS). Transient absorption spectroscopy showed that the 2CS behave very similarly to the associated multicomponent systems during photocatalysis. The electron that was intended for the intramolecular transfer from the photosensitizer unit to the catalyst unit within the dyads remains at the photosensitizer for a relatively long time, analogous to the 3CS and despite the covalently bound catalyst. It is therefore assumed that this intramolecular electron transfer is likely to be hindered as a result of the weak electronic coupling caused by the bridge units used. Instead, the system bypasses this through an intermolecular transfer to other dyad molecules in the immediate vicinity. In addition, with the help of emission quenching experiments and electrochemical investigations, it could be clearly concluded that all investigated systems proceed via the reductive quenching mechanism during photocatalysis.
Ziel der vorliegenden Arbeit war es zum einen, das Potential von chiralen Eisenporphyrin- und Mangansalen-Katalysatoren zur kinetischen Racematspaltung sekundärer Allylalkohole durch asymmetrische Epoxidierung auszuloten. Zum anderen sollten Untersuchungen zum Mechanismus der Jacobsen-Katsuki-Epoxidierung durchgeführt werden; ein besonderes Augenmerk lag dabei auf der Fragestellung, welche Faktoren dazu führen, dass bei der Umsetzung von cis-Olefinen ein Gemisch aus cis- und trans-Epoxiden erhalten wird. Eine Auswahl arylsubstituierter Allylalkohole IIa-f wurde mit den Katalysatoren Ia und Ib,c und 0.8 bzw. 0.6 Äquivalenten an Iodosobenzol als Sauerstoffdonor umgesetzt (Gl. I), wobei es zu einer kinetischen Racematspaltung kommt. Die Oxidation verläuft für beide Katalysatorsysteme sowohl chemoselektiv (vorwiegend Epoxidierung) als auch diastereoselektiv (dr bis zu > 95:5). Als Hauptprodukte werden für die offenkettigen Allylalkohole IIa,e,f die threo-konfigurierten Epoxyalkohole III erhalten, während die cyclischen Allylakohole IIb-d die entsprechenden cis-Epoxyalkohole III lieferen. 1,1-Dimethyl-1,2-dihydro-2-naphthol (IIc) ist hierbei eine Ausnahme, da die CH-Oxidation dieses Substrats eine beachtliche Nebenreaktion darstellt. Der Hauptunterschied zwischen den Fe- und Mn-Katalysatoren liegt in der Enantioselektivität: Während mit dem Fe(porph*)-Komplex Ia nur Selektivitäten von maximal 43 Prozent ee (krel = 2.7) erzielt werden, erwiesen sich die Mn(salen*)-Komplexe Ib,c als geeignete Katalysatoren, mit denen ee-Werte von bis zu 80 Prozent (krel = 12.9) erreicht werden. Die in der kinetischen Racematspaltung erzielten Selektivitäten können durch ein synergistisches Zusammenwirken von hydroxy-dirigierendem Effekt einerseits und sterischen Wechselwirkungen zwischen Substrat und Eisen-Komplex oder, im Falle des Mangan-Komplexes, Angriff des Olefins entlang der so genannten Katsuki-Trajektorie andererseits erklärt werden. Fazit: Die chiralen Mn(salen*)-Komplexe Ib,c sind wirkungsvolle Katalysatoren für die asymmetrische Epoxidierung racemischer sekundärer Allylalkohole II. In exzellenten Chemo- und Diastereoselektivitäten entstehen die entsprechenden Epoxyalkohole III mit ee-Werten bis zu 80 Prozent. Die zurückbleibenden Allylalkohole werden dabei bis zu 53 Prozent ee angereichert. Im Vergleich dazu weist der Eisenkomplex Ia eine ungleich geringere Enantioselektivität auf. Mechanistische Untersuchungen mit Vinylcyclopropan Va ergeben, dass die Jacobsen-Katsuki-Epoxidierung nicht über ein kationisches, sondern über ein radikalisches Intermediat abläuft. Dies wird anhand von Produktstudien durch reversed phase-HPLC-Analytik belegt. In weitergehenden Untersuchungen mit cis-Stilben (Vb) und cis--Methylstyrol (Vc) als Sonden zur cis/trans-Isomerisierung wurde festgestellt, dass die Diastereoselektivität der Epoxidierung nicht nur vom Gegenion des Mangankatalysators Ib, sondern auch von der eingesetzten Sauerstoffquelle [OxD] abhängt. Daher musste der Katalysezyklus (Schema A) um eine diastereoselektivitäts-bestimmende Gabelung erweitert werden: Das primär entstehende MnIII(OxD)-Addukt kann entweder unter Abspaltung der Fluchtgruppe zum etablierten MnV(oxo)-Komplex reagieren (Weg 1) oder direkt das Olefin epoxidieren (Weg 2). Während die Sauerstoffübertragung durch die Oxo-Spezies stufenweise über ein Radikalintermediat verläuft und damit zu einer Mischung aus cis- und trans-Epoxid führt, erfolgt der Lewisäure-aktivierte Sauerstofftransfer konzertiert. Der Gegenion-Effekt auf die cis/trans-Isomerisierung erklärt sich dahingehend, dass die Natur des Anions (koordinierend oder nicht-koordinierend) die Lebensdauer des Radikalintermediats und/oder die Lage und Selektivität der Energiehyperflächen der verschiedenen Spinzustände des MnV(oxo)-Oxidans beeinflusst. Fazit: In der Jacobsen-Katsuki-Epoxidierung existiert neben dem etablierten MnV(oxo)-Oxidans zumindest noch ein weiteres; dabei handelt es sich um das MnIII(OxD)-Addukt, dessen Sauerstoff Lewissäure-aktiviert übertragen wird. Ein unterschiedlicher Anteil der beiden Reaktionskanäle erklärt die Unterschiede im Ausmaß der cis/trans-Isomerisierung. Auch das Gegenion des Mangan-Komplexes Ib beeinflusst die cis/trans-Diastereoselektivität. Mit koordinierenden Gegenionen dominiert Isomerisierung zum trans-Epoxid, während nicht-koordinierende Gegenionen bevorzugt zum cis-Epoxid führen.
Aufbauend auf einen Datensatz von etwa 70 antimalaria-aktiven Verbindungen wurde mit Hilfe des CoMSIA-Verfahrens ein QSAR(Qantitative Structure Activity Relationship)-Modell erstellt, das in der Lage ist antiplasmodiale Aktivitäten von Verbindungen aus der Substanzklasse der Naphthylisochinolin-Alkaloide vorherzusagen. Da die behandelten Strukturen ein sehr kompliziertes konformatives Verhalten aufweisen, mussten für ein möglichst flexibles Alignment (unter Verwendung von FLEXS und GASP) eigene Abläufe entwickelt werden, die schließlich weitestgehend automatisiert werden konnten. Das erstellte Modell erlaubte es darüber hinaus, die für die Aktivität verantwortlichen strukturellen Merkmale zu identifizieren und so entscheidende Anregungen zur Vereinfachung des relativ komplizierten Grundgerüsts zu geben. Die Vorschläge wurden zu einem großen Teil bereits synthetisch verwirklicht, wobei die anschließend experimentell gefundenen Aktivitäten die vorher berechneten sehr gut bestätigten. Die neu entwickelten Substanzen befinden sich derzeit im Patentprüfungsverfahren.
Die vorliegende Arbeit beschäftigt sich mit der Entwicklung von künstlichen Rezeptoren für biologisch relevante Oligopeptide und besteht aus drei Teilen. Im ersten Teil wurde auf der Basis von computergestützten de novo Berechnungen ein künstlicher Rezeptor für den D-Alanin-D-Alanin-C-Terminus entwickelt. Diese Peptidsequenz befindet sich in bakteriellen Zellwänden und nimmt eine Schlüsselfunktion in der Wirkungsweise des Antibiotikums Vancomycin ein. Zur Entwicklung dieses Rezeptors wurde ein Guanidiniocarbonylpyrrol als Bindungsmotiv für Carboxylate mit einer Cyclotribenzylen-Einheit verknüpft. Letztere ist entsprechend der theoretischen Berechnungen in der Lage, die Methylreste des Alanins größenselektiv durch hydrophobe Wechselwirkungen zu koordinieren. Dieser Rezeptor wurde in umfangreichen Bindungsstudien bezüglich seiner Affinität in Wasser und seiner Substratselektivität untersucht. Zur Erhöhung der Löslichkeit und zur Bestimmung der Komplexstruktur mit NMR-Techniken in Wasser wurde ein weiteres Derivat des Rezeptors synthetisiert, welches in peripherer Position mit Triethylenglykolseitenketten substituiert ist. Auf diese Weise gelang es, einen hoch affinen (log K = 4,7) und hoch selektiven künstlichen Rezeptor für den D-Ala-D-Ala-Terminus darzustellen und umfassend zu charakterisieren. So konnte gezeigt werden, dass ein de novo Design derartiger Rezeptoren prinzipiell möglich ist. In einem weiteren Teilprojekt wurde ein künstlicher Rezeptor für die interne RGD-Peptidsequenz entwickelt. Diese nimmt eine zentrale Funktion in Zell-Zell- und Zell-Matrix-Erkennungsprozessen ein. Dieses Teilprojekt wurde in Zusammenarbeit mit dem Arbeitskreis Schrader (Universität Marburg) durchgeführt. Dazu wurde ein Bindungsmotiv für Alkylguanidine (in der Seitenkette von Arg, R) über einen geeigneten Spacer mit einem Bindungsmotiv für Carboxylate (in der Seitenkette von Asp, D) verknüpft. Nach der Synthese und Charakterisierung einer Reihe von vier Rezeptoren konnte die grundsätzliche Anwendbarkeit dieses Ansatzes bestätigt werden. Dabei konnte gezeigt werden, dass der verwendete Spacer für die Effektivität der Koordinierung von besonderer Bedeutung ist. Auf der Grundlage dieser Ergebnisse wurde in einem dritten Teilprojekt ein kombinatorisches Festphasenprotokoll zur Optimierung derartiger Spacer entwickelt. Dabei wurde das Carboxylat-Bindungsmotiv (ein Guanidiniocarbonylpyrrol) auf einem polymeren Träger immobilisiert. Zu diesem Zweck wurden umfangreiche Studien zur Synthese von Pyrrol-Tricarboxylaten und zur Verwendung verschiedener Schutzgruppen unternommen. Die Eigenschaften von drei Schutzgruppen unterschiedlicher Sensitivität (basisch, stark sauer und photolytisch spaltbar) auf dem Acylguanidin wurden in Lösung und an der festen Phase untersucht. Zu diesem Zweck wurde ein umfangreiches HPLC-Protokoll zur Charakterisierung der Reaktion entwickelt. So gelang die Entwicklung und Etablierung eines universell einsetzbaren Protokolls zur Optimierung derartiger Rezeptoren, womit zahlreiche Anwendungsmöglichkeiten in der kombinatorischen Chemie aber auch in weiteren Teilbereichen wie der Katalyse oder der Chromatographie ermöglicht werden.
Although a broad variety of classes of bioactive compounds have already been isolated from seaweeds of the genus Dictyota, most different species are still chemically and biologically unexplored. Dictyota species are well-known brown seaweeds belonging to the Dictyotaceae (Phaeophyta). The phytochemical composition within the genus Dictyota has recently received considerable interest, and a vast array of components, including diterpenes, sesquiterepenes, sterols, amino acids, as well as saturated and polyunsaturated fatty acids, have been characterized. The contribution of these valued metabolites to the biological potential, which includes anti-proliferative, anti-microbial, antiviral, antioxidant, anti-inflammatory, and anti-hyperpigmentation activities, of the genus Dictyota has also been explored. Therefore, this is the most comprehensive review, focusing on the published literature relevant to the chemically and pharmacologically diverse biopharmaceuticals isolated from different species of the genus Dictyota during the period from 1976 to now.
Artificial light-harvesting (LH) systems have been obtained by self-assembly of naphthalene diimide-functionalized zinc chlorin dyads and triad in nonpolar, aprotic solvents. UV-vis, CD, and steady-state emission spectroscopy as well as atomic force microscopy showed that rod-like structures are formed by excitonic interactions of zinc chlorin units, while the appended naphthalene diimide dyes do not aggregate at the periphery of the cylinders. In all cases, photoexcitation of the enveloping naphthalene diimides at 540 and 620 nm, respectively, was followed by highly efficient energy-transfer processes to the inner zinc chlorin backbone, as revealed by time-resolved fluorescence spectroscopy on the picosecond time-scale. As a consequence, the LH efficiencies of zinc chlorin rod aggregates were increased by up to 63%. The effective utilization of solar energy recommends these biomimetic systems for an application in electronic materials on the nanoscale.
Molecular functionality can be often directly attributed to given properties of the electronic wavefunction. Analogous to the potential energy surface, these properties can be represented as a function of the nuclear coordinates, giving rise to molecular “functional landscapes.” However, so far there has been no possibility for their systematic investigation. This perspective aims to discuss the development of new theoretical methods based on the multistate extension of the metadynamics approach, employing electronic collective variables. This emerging methodology allows to explore functional landscapes and to gain a deeper understanding of the structure–function relation in molecules and complex molecular systems in the ground and excited electronic state.
No abstract available
In this communication we describe a helically chiral push-pull molecule named 9,10-dimethoxy-[7]helicene diimide, displaying fluorescence (FL) and circularly polarised luminescence (CPL) over nearly the entire visible spectrum dependent on solvent polarity. The synthesised molecule exhibits an unusual solvent polarity dependence of FL quantum yield and nonradiative rate constant, as well as remarkable gabs and glum values along with high configurational stability.
This thesis included the synthesis of conformationally stable chiral perylene bisimide (PBI) dyes, the study of their optical properties in solution and their chiral self-sorting behaviour in nonpolar solvents in which dimerization via pi-pi-stacking takes place. Furthermore, the influence of PBI core chirality on the properties of these dyes in the condensed state has been also studied. We have demonstrated and quantified the prevalence of chiral self-recognition over self-discrimination in pi-stacking dimerization of PBIs. It has been shown that this self-recognition event is compromised by the increasing flexibility of the structures related to the size of the OEG bridging units. Moreover, the inherent chirality of these PBIs has been proven to strongly influence their condensed state properties, for which large differences between the pure enantiomers and the racemates were revealed, as well as between the different bridged macrocyclic PBIs.
Two series of organic–inorganic composite materials were synthesized through solvothermal imine condensation between diketopyrrolopyrrole dialdehyde DPP-1 and 5,10,15,20-tetrakis(4-aminophenyl)porphyrin (TAPP) in the presence of varying amounts of either amino- or carboxy-functionalized superparamagnetic iron oxide nanoparticles (FeO). Whereas high FeO loading induced cross-linking of the inorganic nanoparticles by amorphous imine polymers, a lower FeO content resulted in the formation of crystalline covalent organic framework domains. All hybrid materials were analyzed by magnetization measurements, powder X-ray diffraction, electron microscopy, IR, and UV/Vis absorption spectroscopy. Crystallinity, chromophore stacking, and visible absorption features are directly correlated to the mass fraction of the components, thus allowing for a fine-tuning of materials properties.
Inspired by the fact that sufficient solubility in aqueous media can be achieved by functional substitution of perylene bisimides (PBIs) with polar groups, one of the essential aims of this thesis was the design and successful synthesis of the new water-soluble PBI cyclophanes [2PBI]-1m and [2PBI]-1p, which are appended with branched, hydrophilic oligoethylene glycol (OEG) chains. Subsequently, the focus was set on the elucidation of properties of PBI cyclophane hosts which are also of relevance for recognition processes in biological systems. The performance of the new amphiphilic PBI cyclophane [2PBI]-1p as synthetic receptors for various natural aromatic alkaloids in aqueous media was thoroughly investigated. Alkaloids represent a prominent class of ubiquitous nitrogen containing natural compounds with a great structural variety and diverse biological activity. As of yet, no chromophore host acting as a molecular probe for a range of alkaloids such as harmine or harmaline is known. In addition, the self-association behavior of cyclophane host [2PBI]-1m and its reference monomer in water was studied in order to gain insights into the thermodynamic driving forces affecting the self-assembly process of these two PBI systems in aqueous environment. Moreover, the chirality transfer upon guest binding previously observed for a PBI cyclophane was investigated further. The assignment of the underlying mechanism of guest recognition to either the induced fit or conformational selection model was of particular interest.
Für die Aufklärung der absoluten Stereostruktur von chiralen Molekülen, die ein Chromophorsystem besitzen, hat sich die Kombination der experimentellen und theoretischen Spektroskopie des elektronischen Circulardichroismus (ECD) als Methode bewährt. In der vorliegenden Arbeit wurden die chiroptischen Eigenschaften von Bisbibenzyl-Makrocyclen, Mono- und Bis(cycloketo)porphyrinen, der Mohnblütenpigmente Nudicaulin I und II sowie von Bordipyrrol-Dimeren mit quantenchemischen Methoden untersucht. Zu diesem Zweck wurden verschiedene dichtefunktionaltheoretische (DFT) Ansätze und post-HF-Methoden, wie z. B. der Coupled-Cluster-Ansatz RI-CC2, bezüglich ihrer Eignung, die Grund- und angeregten Zustände (UV/vis- und ECD-Eigenschaften) der einzelnen Verbindungen korrekt wiederzugeben, evaluiert. Da bei quantenchemischen UV- und ECD-Rechnungen an ausgedehnten π-Systemen aufgrund energetisch nah beieinander liegender Anregungen die Wahrscheinlichkeit für ghost states und charge-transfer-Übergänge sowie Multireferenz-Problematiken steigt, wurden diese Aspekte genauer betrachtet. Die ersten zwei Phänomene lassen sich bereits auf TD-DFT-Niveau durch genaue Analyse der theoretischen spektroskopischen Daten ermitteln und unter Umständen durch entsprechend korrigierte Funktionale sogar sehr gut beschreiben. Im Gegensatz dazu können Doppelanregungsanteile überhaupt erst durch Rechnungen mit geeigneten Methoden, wie z. B. das hier verwendete SORCI-Verfahren, erfasst werden. Zusätzlich wurde das zur Auswertung von UV und ECD-Daten entwickelte Programm SpecDis um Funktionalitäten erweitert, welche die Berechnung des Übereinstimmungsgrades zweier UV- bzw. ECD-Kurven ermöglichen, und dadurch ein zusätzliches quantitatives Kriterium für die Verlässlichkeit des Spektrenvergleichs und folglich für die Zuordnung der absoluten Konfiguration bieten.
Although solid-state nuclear magnetic resonance (NMR) is a versatile analytical tool to study polymorphs and phase transitions of pharmaceutical molecules and products, this work summarizes examples of spontaneous and unexpected (and unwanted) structural rearrangements and phase transitions (amorphous-to-crystalline and crystalline-to-crystalline) under magic angle spinning (MAS) conditions, some of them clearly being due to the pressure experienced by the samples. It is widely known that such changes can often be detected by X-ray powder diffraction (XRPD); here, the capability of solid-state NMR experiments with a special focus on \(^{1}\)H-\(^{13}\)C frequency-switched Lee–Goldburg heteronuclear correlation (FSLG HETCOR)/MAS NMR experiments to detect even subtle changes on a molecular level not observable by conventional 1D NMR experiments or XRPD is presented. Furthermore, it is shown that a polymorphic impurity combined with MAS can induce a crystalline-to-crystalline phase transition. This showcases that solid-state NMR is not always noninvasive and such changes upon MAS should be considered in particular when compounds are studied over longer time spans.
The focus of this work was the development and application of highly efficient RNA catalysts for the site-specific modification of RNA with special focus on methylation. In the course of this thesis, the first methyltransferase ribozyme (MTR1), which uses m6G as the methyl group donor was developed and further characterized. The RNA product was identified as the natural modification m1A. X-Ray crystallography was used to solve the 3D structure of the ribozyme, which directly suggested a plausible reaction meachnism. The MTR1 ribozyme was also successfully repurposed for a nucleobase transformation reaction of a purine nucleoside. This resulted in a formyl-imidazole moiety directly on the intact RNA, which was directly used for further bioconjugation reactions. Finally, additional selections and reselections led to the identification of highly active alkyltransferase ribozymes that can be used for the labeling of various RNA targets
Deoxyribozymes (DNAzymes) are small, synthetic, single-stranded DNAs capable of catalysing chemical reactions, including RNA ligation. Herein, we report a novel class of RNA ligase deoxyribozymes that utilize 5’-adenylated RNA (5’-AppRNA) as the donor substrate, mimicking the activated intermediates of protein-catalyzed RNA ligation. Four new DNAzymes were identified by in vitro selection from an N40 random DNA library and were shown to catalyze the intermolecular linear RNA-RNA ligation via the formation of a native 3’-5’-phosphodiester linkage. The catalytic activity is distinct from previously described RNA-ligating deoxyribozymes. Kinetic analyses revealed the optimal incubation conditions for high ligation yields and demonstrated a broad RNA substrate scope. Together with the smooth synthetic accessibility of 5’-adenylated RNAs, the new DNA enzymes are promising tools for the protein-free synthesis of long RNAs, for example containing precious modified nucleotides or fluorescent labels for biochemical and biophysical investigations.
RNA-catalysed RNA methylation was recently shown to be part of the catalytic repertoire of ribozymes. The methyltransferase ribozyme MTR1 catalyses the site-specific synthesis of 1-methyladenosine (m\(^1\)A) in RNA, using O\(^6\)-methylguanine (m\(^6\)G) as methyl group donor. Here we report the crystal structure of MTR1 at a resolution of 2.8 Å, which reveals a guanine binding site reminiscent of natural guanine riboswitches. The structure represents the postcatalytic state of a split ribozyme in complex with the m1A-containing RNA product and the demethylated cofactor guanine. The structural data suggest the mechanistic involvement of a protonated cytidine in the methyl transfer reaction. A synergistic effect of two 2'-O-methylated ribose residues in the active site results in accelerated methyl group transfer. Supported by these results, it seems plausible that modified nucleotides may have enhanced early RNA catalysis and that metabolite-binding riboswitches may resemble inactivated ribozymes that have lost their catalytic activity during evolution.
Site-specific introduction of biorthogonal handles into RNAs is in high demand for decorating RNAs with fluorophores, affinity labels or other modifications. Aldehydes represent attractive functional groups for post-synthetic bioconjugation reactions. Here, we report a ribozyme-based method for the synthesis of aldehyde-functionalized RNA by directly converting a purine nucleobase. Using the methyltransferase ribozyme MTR1 as an alkyltransferase, the reaction is initiated by site-specific N1 benzylation of purine, followed by nucleophilic ring opening and spontaneous hydrolysis under mild conditions to yield a 5-amino-4-formylimidazole residue in good yields. The modified nucleotide is accessible to aldehyde-reactive probes, as demonstrated by the conjugation of biotin or fluorescent dyes to short synthetic RNAs and tRNA transcripts. Upon fluorogenic condensation with a 2,3,3-trimethylindole, a novel hemicyanine chromophore was generated directly on the RNA. This work expands the MTR1 ribozyme’s area of application from a methyltransferase to a tool for site-specific late-stage functionalization of RNA.
Nearly all classes of coding and non-coding RNA undergo post-transcriptional modification including RNA methylation. Methylated nucleotides belong to the evolutionarily most conserved features of tRNA and rRNA.1,2 Many contemporary methyltransferases use the universal cofactor S-adenosylmethionine (SAM) as methyl group donor. This and other nucleotide-derived cofactors are considered as evolutionary leftovers from an RNA World, in which ribozymes may have catalysed essential metabolic reactions beyond self-replication.3 Chemically diverse ribozymes seem to have been lost in Nature, but may be reconstructed in the laboratory by in vitro selection. Here, we report a methyltransferase ribozyme that catalyses the site-specific installation of 1-methyladenosine (m1A) in a substrate RNA, utilizing O6-methylguanine (m6G) as a small-molecule cofactor. The ribozyme shows a broad RNA sequence scope, as exemplified by site-specific adenosine methylation in tRNAs. This finding provides fundamental insights into RNA’s catalytic abilities, serves a synthetic tool to install m1A in RNA, and may pave the way to in vitro evolution of other methyltransferase and demethylase ribozymes.
Im Rahmen dieser Arbeit wurden Elektronentransferprozesse in Systemen, die auf Triphenylaminredoxzentren basieren, mit Hilfe spektroskopischer und elektrochemischer sowie spektroelektrochemischer Methoden studiert. Im ersten Teil der vorliegenden Arbeit wurden Bistriarylaminsysteme analog zu N,N,N’,N’-Tetra(4-methoxyphenyl)-1,4-phenylendiamin (1) untersucht, deren Radikalkationen eine für gemischtvalente Systeme typische breite und insbesondere bei 1 stark asymmetrische IVCT-Absorptionsbande zeigen. Die Analyse dieser Banden nach Hush sowie einem modifizierten Modell, das der Vibronic coupling-Theorie angelehnt ist, deutet auf die Abnahme der elektronischen Kopplung mit zunehmender Vergrößerung des zentralen Phenylenspacers durch Naphthalin- (2) bzw. Anthracenspacer (3) und damit größerer sterischer Hinderung hin. Gleichzeitig nimmt aber mit der Vergrößerung des -Systems des Spacers auch die Reorganisationsenergie  ab. Insgesamt verhalten sich alle drei Verbindungen sehr ähnlich, was insbesondere das Verhältnis von Absorptionsmaximum der IVCT-Bande zum zweifachen Wert der elektronischen Kopplung betrifft. Legt man vor allem das modifizierte Vibronic coupling-Modell zugrunde, so liegt dieses Verhältnis bei 1+, 2+ und 3+ sehr nahe bei 1, so daß alle drei Systeme sehr nahe am Übergang von Robin-Day-Klasse II zu Klasse III liegen. Weiterhin wurden über einen 1,4-Diethinylphenyl-Spacer verbrückte Bistriarylaminsysteme untersucht, bei denen durch Variation der Spacereinheit (1,4-Diethinylphenyl (5), 1,4-Diethinylnaphthalin (6), 1,4-Diethinyl-2,5-dimethoxyphenyl (10)) die Energie eines Brückenzustandes im Vergleich zu Zuständen, bei denen das Radikal an einem Triarylaminzentrum lokalisiert ist, schrittweise abgesenkt wird. Die auftretenden Elektronentransferprozesse können mit Hilfe eines Dreiniveaumodells mit zwei voneinander unabhängigen Elektronentransferkoordinaten beschrieben werden. Es zeigt sich, daß bei elektronenarmen Spacern, wie z.B. bei 5+, der Elektronentransfer nach einem Superexchange-Mechanismus erfolgt. Bei der Verwendung einer elektronenreichen Dimethoxy-substituierten Brücke wie in 10+ kann der Elektronentransfer neben dem Superexchange- auch nach einem Hopping-Mechanismus erfolgen. Bei Verbindungen, die einen 9,10-Diethinylanthracenspacer (8+ und 9+) enthalten, liegt der Brückenzustand energetisch sogar deutlich tiefer als der Zustand mit einem oxidierten Triphenylaminredoxzentrum. Im zweiten Abschnitt wurden gerichtete Elektronentransferprozesse an Redoxkaskaden und Dendrimeren, die auf Triarylaminredoxzentren basieren, studiert. Die Möglichkeit, die Redoxpotentiale von Triphenylaminzentren durch Substituenten zu beeinflussen, erlaubt die Synthese von Kaskaden mit einem vorgegebenen Redoxgradienten. Innerhalb einer Kaskade, die ein Acridin-Fluorophor, ein 4-Chlor-substituiertes sowie ein 4-Methoxy-substituiertes Triphenylaminredoxzentrum enthält (18), kann nach Anregung des Acridin-Chromophors in polaren Lösungsmitteln ein ladungsgetrennter Zustand erreicht werden, worauf sowohl statische und zeitaufgelöste Fluoreszenzmessungen als auch transientenspektroskopische Untersuchungen hinweisen. Die Lebensdauer kann durch Verlängerung der Redoxkaskade durch ein weiteres Aminzentrum deutlich vergrößert werden. In unpolaren Lösungsmitteln erfolgt dagegen keine Ladungstrennung über die gesamte Kaskade. Ebenso tritt bei 20 (Kaskade aus Acridin, 4 Methoxy-substituiertem Triphenylamin und 4-Chlor-substituiertem Aminzentrum), wo der Redoxgradient entgegen zu 18 gerichtet ist, kein Ladungstransfer auf. Im dritten Teil dieser Arbeit wurden Verbindungen untersucht, die neben 1,4 Phenylendiamineinheiten in para-Position unsubstituierte Triphenylamine enthalten und sich elektrochemisch polymerisieren lassen. Die Eigenschaften der dotierten redoxaktiven Polymere werden durch die enthaltenen p-Phenylendiamin- und Benzidin-Substrukturen dominiert, wofür hauptsächlich die geringe Wechselwirkung der einzelne Redoxzentren untereinander verantwortlich ist. Impedanzspektroskopische Untersuchungen zeigen eine Zunahme der Leitfähigkeit der dotierten Polymerfilme, wobei der Ladungstransfer vermutlich durch Hopping zwischen den p-Phenylendiamin- und Benzidinuntereinheiten erfolgt.
Two dipolar merocyanines consisting of the same π‐conjugated chromophore but different alkyl substituents adopt very different packing arrangements in their respective solid state with either H‐ or J‐type exciton coupling, leading to ultranarrow absorption bands at 477 and 750 nm, respectively, due to exchange narrowing. The social self‐sorting behavior of these push‐pull chromophores in their mixed thin films is evaluated and the impact on morphology as well as opto‐electronical properties is determined. The implementation of this well‐tuned two‐component material with tailored optical features allows to optimize planar heterojunction organic photodiodes with fullerene (C\(_{60}\)) with either dual or single wavelength selectivity in the blue and NIR spectral range with ultranarrow bandwidths of only 11 nm (200 cm\(^{-1}\)) and an external quantum efficiency of up to 18% at 754 nm under 0 V bias. The application of these photodiodes as low‐power consuming heart rate monitors is demonstrated by a reflectance‐mode photoplethysmography (PPG) sensor.
Tropische Infektionskrankheiten sind noch immer die Haupttodesurache in vielen Ländern der Dritten Welt. Unter ihnen ist Malaria neben der Immunschwächekrankheit AIDS und Tuberkulose am weitesten verbreitet. Laut WHO erkrankten allein im Jahr 2016 rund 216 Millionen Menschen an Malaria und weltweit verstarben 445.000 Menschen an den Folgen dieser Infektion. Solange die Wirksamkeit des Impfstoffs RTS,S/AS01 gegen Malaria noch Schwachstellen aufweist und andere Impfstoff-Kanditaten sich noch in präklinischen Testphasen befinden, ist vor allem die Entwicklung neuer Wirkstoffe, auch im Hinblick auf die rasante Ausbreitung von Resistenzen gegen herkömmliche Medikamente, weiterhin eine dringende Aufgabe.
Eine vielversprechende Wirkstoffklasse mit interessanten strukturellen Eigenschaften und einer ungewöhnlichen Biosynthese aus Acetat-Einheiten sind die Naphthylisochinolin-Alkaloide aus den beiden paläotropischen Pflanzenfamilien der Dioncophyllaceae und Ancistrocladaceae. Die Naphthylisochinolin-Alkaloide sind hervozuheben aufgrund ihrer exzellenten Aktivität gegen Plasmodium falciparum, den Erreger der Malaria tropica, sowie wegen ihrer Wirksamkeit gegen Erreger weiterer Krankheiten wie beispielsweise AIDS, Leishmaniose und Afrikanische Trypanosomiasis. Auch im Kampf gegen maligne Erkrankungen wie Leukämie und pankreatischen Krebs werden sie aufgrund ihrer cytotoxischen Eigenschaften als vielversprechende Leitstrukturen betrachtet.
Die strukturell beeindruckendsten Naphthylisochinolin-Alkaloide sind die dimeren Mbandakamine, die von unserer Arbeitsgruppe vor einiger Zeit aus einer kongolesischen Ancistrocladus-Liane isoliert wurden. Sie besitzen sieben stereogene Elemente und sind die ersten natürlich vorkommenden Dimere mit einer höchst unsymmetrischen 6',1''-gekuppelten zentralen Biarylachse. Diese impliziert eine außergewöhnlich hohe sterische Hinderung an der zentralen Achse, wie sie noch in keinem anderen dimeren Naphthylisochinolin-Alkaloid gefunden wurde. Verbunden mit ihren bemerkenswerten und vielseitigen pharmakologischen Wirkeigenschaften sind sie ausgesprochen interessante Moleküle für eine synthetische Erschließung.
Ziel dieser Arbeit war die erstmalige Totalsynthese von Mbandakamin A und B sowie die Synthese ihrer monomeren Hälften 5-epi-Korupensamin E und 8-O-Methylkorupensamin A. Zudem sollten weitere Naphthylisochinolin-Dimere, die bei der Synthese der Mbandakamine anfallen, isoliert und charakterisiert werden. Alle neuen mono- und dimeren Naphthylisochinoline sollten abschließend am Schweizerischen Tropen- und Public-Health-Institut auf ihre biologische Aktivität getestet werden.
Zusätzlich gelang im Rahmen eines Kooperationsprojekts erstmals die stereochemische Charakterisierung des strukturell ganz neuartigen, inhärent chiralen Wolframbiscorrols durch online HPLC-ECD-Analyse in Kombination mit quantenchemischen Rechnungen.
In terms of the need of environmentally benign renewable and storable energy sources, splitting of water into hydrogen and oxygen by using sunlight is a promising approach. Hereby, water oxidation catalysts (WOCs) are required to perform the water oxidation comprising the transfer of four electrons to provide the reducing equivalents for producing hydrogen. The class of Ru(bda) (bda = 2,2'-bipyridine-6,6'-dicarboxylate) catalysts has proven to be efficient for this reaction.
In this thesis, ligand exchange processes in Ru(bda) complexes have been analyzed and the formation of multinuclear macrocyclic WOCs was studied. Based on the knowledge acquired by these studies, new multinuclear cyclic Ru(bda) complexes have been synthesized and their catalytic efficiencies in homogeneous water oxidation have been investigated. Going one step further for setting up functional devices, molecular WOCs have been immobilized on conducting or semiconducting supporting materials. Direct anchoring on carbon nanotubes generated a promising materials for further applications.
Catalytic water splitting is a viable process for the generation of renewable fuels. Here it is reported for the first time that a trinuclear supramolecular Ru(bda) (bda: 2,2′‐bipyridine‐6,6′‐dicarboxylate) catalyst, anchored on multi‐walled carbon nanotubes and subsequently immobilized on glassy carbon electrodes, shows outstanding performance in heterogeneous water oxidation. Activation of the catalyst on anodes by repetitive cyclic voltammetry (CV) scans results in a catalytic current density of 186 mA cm\(^{−2}\) at a potential of 1.45 V versus NHE. The activated catalyst performs water oxidation at an onset overpotential of 330 mV. The remarkably high stability of the hybrid anode is demonstrated by X‐ray absorption spectroscopy and electrochemically, revealing the absence of any degradation after 1.8 million turnovers. Foot of the wave analysis of CV data of activated electrodes with different concentrations of catalyst indicates a monomolecular water nucleophilic attack mechanism with an apparent rate constant of TOFmax (turnover frequency) of 3200 s\(^{−1}\).
Two di- and tetranuclear Ru(bda) (bda: 2,2′-bipyridine-6,6′-dicarboxylate) macrocyclic complexes were synthesized and their catalytic activities in chemical and photochemical water oxidation investigated in a comparative manner to our previously reported trinuclear congener. Our studies have shown that the catalytic activities of this homologous series of multinuclear Ru(bda) macrocycles in homogeneous water oxidation are dependent on their size, exhibiting highest efficiencies for the largest tetranuclear catalyst. The turnover frequencies (TOFs) have increased from di- to tetranuclear macrocycles not only per catalyst molecule but more importantly also per Ru unit with TOF of 6 \(^{-1}\) to 8.7 \(^{-1}\) and 10.5 s\(^{-1}\) in chemical and 0.6 s\(^{-1}\) to 3.3 \(^{-1}\) and 5.8 \(^{-1}\) in photochemical water oxidation per Ru unit, respectively. Thus, for the first time, a clear structure–activity relationship could be established for this novel class of macrocyclic water oxidation catalysts.
Poorly water-soluble drugs frequently solubilize into bile colloids and this natural mechanism is key for efficient bioavailability. We tested the impact of pharmaceutical polymers on this solubilization interplay using proton nuclear magnetic resonance spectroscopy, dynamic light scattering, and by assessing the flux across model membranes. Eudragit E, Soluplus, and a therapeutically used model polymer, Colesevelam, impacted the bile-colloidal geometry and molecular interaction. These polymer-induced changes reduced the flux of poorly water-soluble and bile interacting drugs (Perphenazine, Imatinib) but did not impact the flux of bile non-interacting Metoprolol. Non-bile interacting polymers (Kollidon VA 64, HPMC-AS) neither impacted the flux of colloid-interacting nor colloid-non-interacting drugs. These insights into the drug substance/polymer/bile colloid interplay potentially point towards a practical optimization parameter steering formulations to efficient bile-solubilization by rational polymer selection.
Water‐soluble multinuclear complexes based on ruthenium 2,2′‐bipyridine‐6,6′‐dicarboxylate (bda) and ditopic bipyridine linker units are investigated in three‐component visible light‐driven water oxidation catalysis. Systematic studies revealed a strong enhancement of the catalytic efficiency in the absence of organic co‐solvents and with increasing oligomer length. In‐depth kinetic and morphological investigations suggest that the enhanced performance is induced by the self‐assembly of linear Ru(bda) oligomers into aggregated superstructures. The obtained turnover frequencies (up to 14.9 s\(^{−1}\)) and turnover numbers (more than 1000) per ruthenium center are the highest reported so far for Ru(bda)‐based photocatalytic water oxidation systems.
Eine Reihe von Acetylen-verknüpften Perylenbisimid(PBI)-Makrozyklen mit unterschiedlicher Ringgröße wurde durch Palladium-katalysierte Homokupplung synthetisiert und mit Hilfe von Recycling-GPC getrennt. Diese Makrozyklen wurden durch NMR-Spektroskopie und Massenspektrometrie charakterisiert und weiterhin die photophysikalischen Eigenschaften durch UV/Vis-Absorptions- und Fluoreszenzemissions-Messungen untersucht. Die Selbstorganisation dieser PBI-Makrozyklen zu hochgeordneten Nanostrukturen auf HOPG-Oberflächen wurde mittels Rasterkraftmikroskopie untersucht.
It is demonstrated that the di‐\(\pi\)‐methane (DPM) rearrangement of carbonyl‐substituted dibenzobarrelene (9,10‐dihydro‐9,10‐ethenoanthracene) derivatives is induced by visible‐light‐induced triplet photosensitization with Ir(ppy)\(_{3}\), Ir(dFppy)\(_{3}\) or 1‐butyl‐7,8‐dimethoxy‐3‐methylalloxazine as catalysts, whereas derivatives that lack carbonyl substituents are photoinert under these conditions. Notably, the products are formed almost quantitatively.
The effective binding of anions like carboxylates and phosphates in aqueous solutions is of particular interest for various reasons. The natural archetypes of effective anion receptors are enzymes that contain often arginine as relevant amino acid in the binding pocket. For this reason, one class of artificial anion receptors that emerged more than two decades ago mimics the anion binding with the guanidinium group present in the amino acid side chain. In 1999, Schmuck and coworkers developed a new class of guanidinium-based oxo anion receptor that binds carboxylates even in aqueous media. The binding modes of the 2-(guanidiniocarbonyl)-1H-pyrroles are based on individually weak non-covalent interaction between artificial host and substrate like ion pairing and multiple hydrogen bonds. The zwitterionic derivative with substitution of a carboxylate group in position 5 of the pyrrole ring system shows a strong self-assembly to discrete dimers (dimer 1) with an estimated association constant of 170 M-1 even in water. In order to further improve the structure motif for an effective oxo anion binding it is therefore of great interest to quantify the different intermolecular interactions between two monomeric units of 1. Against this background several theoretical ab initio studies were conducted in order to elucidate the influences of intrinsic properties as well as solvent effects on the stability of self-assembled dimers. In chapter 4.1 the molecular interactions in dimer 1 were investigated by comparison to various “knock-out” analogues. In these analogues single hydrogen bonds were switched off by substitution of hydrogen donor atoms with either methylene groups or ether bridges. The calculations were done for vacuum and solvation, as represented by a conductor-like polarizable continuum. It could be shown that the application of a simple continuum solvent model fails to predict the absolute energies of the knock-out analogues in strongly polar solvents. However, the calculated trends can explain the relative stabilities. In chapter 4.2 the structural similarity of arginine with structure 1 was used in order to examine the dependence of self-assembly from the flexibility of the molecular structure. In chapter 4.2.1 new global minimum structures of the canonical and zwitterionic arginine in gas phase were found by means of exhaustive force field based conformational searches in conjunction with ab initio structure optimizations of the lowest energy conformers. Most of the newly identified minimum conformers of both the zwitterionic and canonical tautomer revealed geometrical arrangements with hitherto unreported stacked orientations of the terminal groups. Finally a novel global minimum structure was detected that is more than 8 kJ mol-1 lower in energy than the previously published conformers. The same strategy for finding minimum energy conformers of the arginine monomer has also been employed for the arginine dimer structures. While previous theoretical studies favoured directed hydrogen bonds the new global minimum structure MMFF1 is about 60 kJ mol-1 more stable and exhibits a stacked orientation of the guanidinium and carboxylate groups. The importance of rigidity on the dimer stability was proven by calculations of an artificially stiffened arginine dimer system. The high binding affinity dimer 1 results by about 50% from the rigidity of the monomers which prevents any intramolecular stabilization. In chapter 4.3 novel structure motifs with varying ring systems have been examined on a DFT level of theory in order to make proposals for an improved carboxylate binding motif. The direct dependency of the dimerization energy on an increasing dipole moment was demonstrated by various anellated ring structures. The influence of the delocalization in the monomer on the dimerization energy was examined by variation of the electronic structure of electronically decoupled biphenylenes. With the aid of various substituted 7-guanidinioindole-2-carboxylate derivatives we could show that the carbonyl function is mainly responsible for the advantageous preorganisation, whereas the effect on the acidity seems to be only of minor importance. In the last chapter cooperativity effects in supramolecular assemblies have been investigated. This was achieved by NMR shift calculations of adenosine-carboxylic acid complexes as model systems and comparison to experimental low-temperature NMR studies. We could demonstrate that only by applying vibrational averaged NMR shifts the experimental proton shifts obtained at very low temperatures in the hydrogen bond exchange regime could be reproduced.
Protein-like enwrapped perylene bisimide chromophore as bright microcrystalline emitter material
(2019)
Strongly emissive solid‐state materials are mandatory components for many emerging optoelectronic technologies, but fluorescence is often quenched in the solid state owing to strong intermolecular interactions. The design of new organic pigments, which retain their optical properties despite their high tendency to crystallize, could overcome such limitations. Herein, we show a new material with monomer‐like absorption and emission profiles as well as fluorescence quantum yields over 90 % in its crystalline solid state. The material was synthesized by attaching two bulky tris(4‐tert‐butylphenyl)phenoxy substituents at the perylene bisimide bay positions. These substituents direct a packing arrangement with full enwrapping of the chromophore and unidirectional chromophore alignment within the crystal lattice to afford optical properties that resemble those of their natural pigment counterparts, in which chromophores are rigidly embedded in protein environments.
Wasserstoffbrückengesteuerte Ausrichtung von Merocyaninfarbstoffen für photorefraktive Materialien
(2008)
Merocyaninchromophore spielen eine herausragende Rolle bei der Entwicklung von photorefraktiven Materialien für Anwendungen in der Holographie. Der photorefraktive Effekt beruht auf einer Orientierung der dipolaren Merocyanine in einem elektrischen Feld. Diese können umso effektiver ausgerichtet werden, je größer ihr Dipolmoment ist. Folglich sollten Merocyanine mit sehr großen Dipolmomenten den gewünschten Effekt hervorbringen. Es hat sich jedoch gezeigt, dass solche Merocyanine Dimere mit antiparalleler zentrosymmetrischer Struktur bilden. In dieser Anordnung addieren sich die Dipolmomente destruktiv, so dass die dipolare Eigenschaft des Materials verloren geht. In dieser Arbeit ist es gelungen, Merocyanine über sechsfache Wasserstoffbrückenbindungen zu supramolekularen Strukturen mit großen resultierenden Dipolmomenten zu assoziieren. Diese Komplexe werden in schwach polaren Lösungsmitteln sogar bei sehr niedrigen Farbstoffkonzentrationen gebildet.
In der vorligenden Arbeit wurden Vanadium-abhängige Bromidperoxidase- (VBPO-) Modelle zur stereoselektiven Synthese funktionalisierter O-Heterocyclen entwickelt, die durch Vanadium-katalysierte Oxygenierung von Bishomoallylalkoholen mechanistisch untersucht wurden. Weiterhin wurden Bromcyclisierungen von Bishomoallylalkoholen auf enzymatischem (VBPO), oxidativem und radikalischem Weg für Referenzprodukte einer neuen Variante der Bromcyclisierung durch Vanadium-katalysierte Bromidoxidation durchgeführt. Die Selektivitätsmuster aus den Synthesen ß-hydroxylierter und ß-bromierter Tetrahydrofurane wurden anschließend innerhalb einfacher Naturstoffsynthesen genutzt. Anhand eigener Vorarbeiten wurden neue Vanadium(V)-Komplexe aus Triethoxyvanadat mit tridentaten Schiffbaseliganden, basierend auf Salicylaldehyd und Aminoalkoholen mit strukturell unterschiedlichen Seitenketten in quantitativen Ausbeuten synthetisiert und charakterisiert (51V-NMR, UV und IR). In Test-Cyclisierungen unterschiedlicher Bishomoallylalkohole eignete sich VO(salin)(OEt) mit hohen Umsätzen und guten Regio- wie Stereoselektivitäten am besten. Die relative Geschwindigkeitskonstante (krel = 120±20) der Vanadium-katalysierten Oxidation des Testsystems konnte über Konkurrenzkinetik (Alkenol versus Alken) ermittelt werden und weist deutlich auf eine Bindung des Alkenols an Vanadium während der Oxidation hin. Um die Regio- und Stereoselektivitäten Vanadium-Schiffbase-katalysierter Oxidationen von Bishomoallylalkoholen verstehen zu können, wurden stereochemische Studien anhand des Testsystems durchgeführt. Dessen Oxidation wird demnach im selektivitätsbestimmenden Schritt dem Metallzentrum abgewandt in like-Position bevorzugt gebildet und führt zu dem cis-konfigurierten Tetrahydrofuran als Hauptprodukt. Im Folgenden wurden Vanadium-katalysierte Oxidationen unterschiedlich substituierter bishomoallylischer Alkohole durchgeführt, sämtliche Oxidationen führten regioselektiv zu Tetrahydrofuranen als Hauptprodukte, die Oxygenierung Dimethyl-substituierter Pentenole lieferte durch Substitution an C-1 selektiv cis-konfigurierte Tetrahydrofurane, 2-Substitution führte ebenso wie 3-Substitution zu trans-konfigurierte Oxolanen. Alkohole nicht aktivierter Olefine wurden in der Reihenfolge C-1 ? C-3 mit höherer Selektivität zu trans-konfigurierten Tetrahydrofuranen gebildet. Die Regio- und Stereoselektivitäten der radikalischen Bromcyclisierungen folgen den schon in früheren Arbeiten unserer Arbeitsgruppe aufgestellten Richtlinien (5-exo-trig; 2,5-trans, 2,4-cis und 2,3-trans). Die ionischen Bromcyclisierungen 5,5-dimethylierter Bishomoallyl-alkohole mittels NBS verliefen komplementär zu den Radikal-Cyclisierungen regioselektiv und in Abhängigkeit der Phenylsubstituenten an C-1 - C-3 stereoselektiv zu den 2,5-trans-, 3,5-cis- und 4,5-trans-konfigurierten Tetrahydropyranen. Aus der Bromcyclisierung prochiraler Pentenole in Gegenwart eines Acetonpulvers aus Ascophyllum nodosum (A.n.A.P.) konnte das b-bromierte Tetrahydrofuran racemisch in 87proz. Ausbeute erhalten werden. Ebensowenig führte der Einsatz chiraler Liganden in der Vanadium-katalysierten Oxygenierung prochiraler Penten-1-ole bei guten Ausbeuten (>80%) zu Enantiomeren-angereicherten Tatrahydrofuranen. Innerhalb einfacher Naturstoffsynthesen wurden cis-Pityol, Linalooloxid sowie (-)-epi-Bisabololoxid selektiv unter Standardbedingungen der Vanadium-Schiffbase-katalysierten Oxidationen mit VO(salin)(OEt) und TBHP dargestellt. Die Stereoselektivitäten steigen proportional zu dem Größenunterschied der Substituenten an Position 1 der Bishomoallylalkohole. Abschließend wurde durch Vanadium-katalysierte Bromidoxiadtion mit TBHP eine neue dreistufige Totalsynthese der vier "natürlichen" Muscarin-Isomere ausgearbeitet. Die Gesamtausbeuten dieser Synthesen liegen zwischen 3.0 und 19.9%.