Institut für Organische Chemie
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- Supramolekulare Chemie (30)
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- Farbstoff (17)
- Naphthylisochinolinalkaloide (16)
- Chemische Synthese (15)
- Fluoreszenz (13)
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- Institut für Organische Chemie (225)
- Graduate School of Life Sciences (4)
- Abteilung für Funktionswerkstoffe der Medizin und der Zahnheilkunde (2)
- Institut für Pharmazie und Lebensmittelchemie (1)
- Institut für Physikalische und Theoretische Chemie (1)
- Institut für Virologie und Immunbiologie (1)
- Julius-von-Sachs-Institut für Biowissenschaften (1)
- Physikalisches Institut (1)
- Theodor-Boveri-Institut für Biowissenschaften (1)
Sonstige beteiligte Institutionen
- Center for Computational and Theoretical Biology (CCTB), Universität Würzburg (1)
- Center for Nanosystems Chemistry (1)
- Chemical Biology Laboratory, National Cancer Institue, Frederick (USA) (1)
- Hochschule Aalen (1)
- Lehrstuhl für Chemie, Brooklyn College, City University of New York, Brooklyn (1)
- Zentrale Abteilung für Mikroskopie, Universität Würzburg (1)
Our research group focusses on the isolation, structural elucidation, and synthesis of bioactive natural products, among others, the naphthylisoquinoline alkaloids from tropical lianas. This intriguing class of compounds comprises representatives with activities against, e.g. P. falciparum, the cause of Malaria tropica, against the neglected disease leishmaniasis, and, as discovered more recently, against different types of cancer cells. Based on the high potency of theses extraordinary secondary metabolites, this thesis was devoted to the total synthesis of bioactive natural products and closely related analogs.
The research presented in this thesis illustrates that self-assembly of organic molecules guided by intermolecular forces is a versatile bottom-up approach towards functional materials. Through the specific design of the monomers, supramolecular architectures with distinct spatial arrangement of the individual building blocks can be realized. Particularly intriguing materials can be achieved when applying the supramolecular approach to molecules forming liquid-crystalline phases as these arrange in ordered, yet mobile structures. Therefore, they exhibit anisotropic properties on a macroscopic level. It is pivotal to precisely control the interchromophoric arrangement as functions originate in the complex structures that are formed upon self-assembly. Consequently, the aim of this thesis was the synthesis and characterization of liquid-crystalline phases with defined supramolecular arrangements as well as the investigation of the structure-property relationship. For this purpose, perylene bisimide and diketopyrrolopyrrole chromophores were used as they constitute ideal building blocks towards functional supramolecular materials due to their thermal stability, lightfastness, as well as excellent optical and electronic features desirable for the application in, e.g., organic electronics.
Nucleic acids are one of the important classes of biomolecules together with carbohydrates, proteins and lipids. Both deoxyribonucleic acid (DNA) and ribonucleic acid (RNA) are most well known for their respective roles in the storage and expression of genetic information.
Over the course of the last decades, nucleic acids with a variety of other functions have been discovered in biological organisms or created artificially. Examples of these functional nucleic acids are riboswitches, aptamers and ribozymes. In order to gain information regarding their function, several analytical methods can be used.
Electron paramagnetic resonance (EPR) spectroscopy is one of several techniques which can be used to study nucleic acid structure and dynamics. However, EPR spectroscopy requires unpaired electrons and because nucleic acids themselves are not paramagnetic, the incorporation of spin labels which carry a radical is necessary.
Here, three new spin labels for the analysis of nucleic acids by EPR spectroscopy are presented. All of them share two important design features. First, the paramagnetic center is located at a nitroxide, flanked by ethyl groups to prevent nitroxide degradation, for example during solid phase synthesis. Furthermore, they were designed with rigidity as an important quality, in order to be useful for applications like pulsed electron double resonance (PELDOR) spectroscopy, where independent motion of the spin labels relative to the macromolecule has a noticeable negative effect on the precision of the measurements.
Benzi-spin is a spin label which differs from most previous examples of rigid spin labels in that rather than being based on a canonical nucleoside, with a specific base pairing partner, it is supposed to be a universal nucleoside which is sufficiently rigid for EPR measurements when placed opposite to a number of different nucleosides. Benzi-spin was successfully incorporated into a 20 nt oligonucleotide and its base pairing behavior with seven different nucleosides was examined by UV/VIS thermal denaturation and continuous wave (CW) EPR experiments. The results show only minor differences between the different nucleosides, thus confirming the ability of benzi-spin to act as a universally applicable spin label.
Lumi-spin is derived from lumichrome. It features a rigid scaffold, as well as a free 2'-hydroxy group, which should make it well suited for PELDOR experiments once it is incorporated into RNA oligonucleotides.
EÇr is based on the Ç family of spin labels, which contains the most well known rigid spin labels for nucleic acids to this day. It is essentially a version of EÇm with a free 2'-hydroxy group. It was converted to triphosphate EÇrTP and used for primer extension experiments to test the viability of enzymatic incorporation of rigid spin labels into oligonucleotides as an alternative to solid-phase synthesis. Incorporation into DNA by Therminator III DNA polymerase in both single-nucleotide and full-length primer extensions was achieved.
All three of these spin labels represent further additions to the expanding toolbox of EPR spectroscopy on nucleic acids and might prove valuable for future research.
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.
The present thesis demonstrates how different thermodynamic aspects of self-assembly and stimuli-responsive properties in water can be encoded on the structure of π-amphiphiles, consisting of perylene or naphthalene bisimide cores. Initially, quantitative thermodynamic insights into the entropically-driven self-assembly was studied for a series of naphthalene bisimides with UV/Vis and ITC measurements, which demonstrated that their thermodynamic profile of aggregation is heavily influenced by the OEG side chains. Subsequently, a control over the bifurcated thermal response of entropically driven and commonly observed enthalpically driven self-assembly was achieved by the modulation of glycol chain orientation. Finally, Lower Critical Solution Temperature (LCST) phenomenon observed for these dyes was investigated as a precise control of this behavior is quintessential for self-assembly studies as well as to generate ‘smart’ materials. It could be shown that the onset of phase separation for these molecules can be encoded in their imide substituents, and they are primarily determined by the supramolecular packing, rather than the hydrophobicity of individual monomers.
The aim of the first part of this thesis was to investigate (R,R)-PBI as a model system for polymorphism at its origin by a supramolecular approach. The pathway complexity of (R,R)-PBI was fine-tuned by experimental parameters such as solvent, temperature and concentration to make several supramolecular polymorphs accessible. Mechanistic and quantum chemical studies on the kinetics and thermodynamics of the supramolecular polymerization of (R,R)-PBI were conducted to shed light on the initial stages of polymorphism. The second part of this work deals with mechanistic investigations on the supramolecular polymerization of the racemic mixture of (R,R)- and (S,S)-PBI with regard to homochiral and heterochiral aggregation leading to conglomerates and a racemic supramolecular polymer, respectively.
Squaraine dyes have attracted more attention in the past decade due to their strong and narrow absorption and fluorescence along with the easily functionalized molecular structure. One successful approach of core functionalization is to replace one oxygen of the squaric carbonyl group with a dicyanomethylene group, which shifts the absorption and emission into the near infrared (NIR) region and at the same time leads to a rigid, planar structure with C2v symmetry. However, such squaraines tend to aggregate cofacially in solution due to dispersion forces and dipole-dipole interactions, usually leading to H-type exciton coupling with undesired blue-shifted spectrum and quenched fluorescence. Therefore, the goal of my research was the design of dicyanomethylene-substituted squaraine dyes that self-assemble into extended aggregates in solution with J-type coupling, in order to retain or even enhance their outstanding optical properties. Toward this goal, bis(squaraine) dyes were envisioned with two squaraine units covalently linked to trigger a slip-stacked packing motif within the aggregates to enable J-type coupling.
In my first project, bis(squaraine) dye BisSQ1 was synthesized, in which two dicyanomethylene squaraine chromophores are covalently linked. Concentration and temperature-dependent UV/Vis/NIR spectroscopy experiments reveal that BisSQ1 undergoes cooperative self-assembly resulting in J-type aggregates in a solvent mixture of toluene/1,1,2,2-tetrachloroethane (TCE) (98:2, v/v). The J type exciton coupling is evident from the significantly red shifted absorption maximum at 886 nm and the fluorescence peak at 904 nm. In conclusion, this was a first example to direct squaraine dye aggregation in solution to the more desired slip-stacked packing leading to J-type exciton coupling by simply connecting two dyes in a head-to-tail bis chromophore structure.
Connecting two squaraine dyes with an additional phenylene spacer (BisSQ2) leads to two different polymorphs with very distinct absorption spectra upon cooling down a solution of BisSQ2 in a solvent mixture of toluene/TCE (98:2, v/v) with different rates. Accordingly, rapid cooling resulted in rigid helical nanorods with an absorption spectrum showing a panchromatic feature, while slow cooling led to a sheet-like structure with a significant bathochromic shift in the absorption spectrum.
It was discovered that the conventional molecular exciton model failed to explain the panchromatic absorption features of the nanorods for the given packing arrangement, therefore more profound theoretical investigations based on the Essential States Model (ESM) were applied to unveil the importance of intermolecular charge transfer (ICT) to adequately describe the panchromatic absorption spectrum. Moreover, the red-shift observed in the spectrum for the sheet-like structure can be assigned to the interplay of Coulomb coupling and ICT-mediated coupling.
Furthermore, the same bis-chromophore strategy was adopted for constructing an NIR-II emitter with a bathochromically-shifted spectrum. In chloroform, BisSQ3 exhibits an absorption maximum at 961 nm with a significant bathochromic shift (1020 cm−1) compared to the reference mono-squaraine SQ, indicating intramolecular J-type coupling via head-to-tail arrangement of two squaraine dyes. Moreover, BisSQ3 shows a fluorescence peak at 971 nm with a decent quantum yield of 0.33%. In less polar toluene, BisSQ3 self-assembles into nanofibers with additional intermolecular J-type coupling, causing a pronounced bathochromic shift with absorption maximum at 1095 nm and a fluorescence peak at 1116 nm. Thus, connecting two quinoline-based squaraines in a head-to-tail fashion leads to not only intra-, but also intermolecular J-type exciton coupling, which serves as a promising strategy to shift the absorption and emission of organic fluorophores into the NIR-II window while retaining decent quantum yields.
In conclusion, my research illustrates based on squaraine dyes how a simple modification of the molecular structure can significantly affect the aggregation behavior and further alter the optical properties of dye aggregates. Elongated supramolecular structures based on dicyanomethylene substituted squaraine dyes were successfully established by covalently linking two squaraine units to form a bis-chromophore structure. Then, a simple but efficient general approach was established to direct squaraine dye aggregation in solution to the more desired slip-stacked packing leading to J-type exciton coupling by directly connecting two squaraine dyes in a head-to-tail fashion without spacer units. Moreover, the additional spacer between the squaraine dyes in BisSQ2 allowed different molecular conformations, which leads to two different morphologies depending on the cooling rates for a hot solution. Hence, this is a promising strategy to realize supramolecular polymorphism.
In general, it is expected that the concept of constructing J-aggregates by the bis-chromophore approach can be extended to entirely different classes of dyes since J-aggregates possess a variety of features such as spectral shifts into the NIR window, fluorescence enhancement, and light harvesting, which are commonly observed and utilized for numerous fundamental studies and applications. Moreover, the insights on short-range charge transfer coupling for squaraine dyes is considered of relevance for all materials based on alternating donor-acceptor π-systems. The panchromatic spectral feature is in particular crucial for acceptor-donor-acceptor (ADA) dyes, which are currently considered as very promising materials for the development of bulk heterojunction solar cells.
Main objectives of the present dissertation can be divided in two parts. The first part deals with setting up a spectroscopic technique for reliable and accurate measurements of the two-photon absorption (2PA) cross section spectra. In the second part, this firmly established experimental technique together with conventional spectroscopic characterization, quantum-chemical computations and theoretical modelling calculations was combined and therefore used as a tool to gain information for the so-called structure-property relationship through several molecular compounds.
In light of the rapidly increasing global demand of energy and the negative effects of climate change, innovative solutions that allow an efficient transition to a carbon-neutral economy are urgently needed. In this context, artificial photosynthesis is emerging as a promising technology to enable the storage of the fluctuating energy of sunlight in chemical bonds of transportable “solar fuels”. Thus, in recent years much efforts have been devoted to the development of robust water oxidation catalysts (WOCs) leading to the discovery of the highly reactive Ru(bda) (bda: 2,2’-bipyridine-6,6’-dicarboxylic acid) catalyst family. The aim of this thesis was the study of chemical and photocatalytic water oxidation with functionalized Ruthenium macrocycles to explore the impact of substituents on molecular properties and catalytic activities of trinuclear macrocyclic Ru(bda) catalysts. A further objective of this thesis comprises the elucidation of factors that influence the light-driven water oxidation process with this novel class of supramolecular WOCs.
Durch stetige Entwicklung der Mikroskopiemethoden in den letzten Jahrzehnten ist es nun möglich Strukturen und Abläufe in biologischen Systemen detaillierter darzustellen als mit der von Abbe entdeckten maximalen Auflösungsgrenze. Oft werden dabei Fluoreszenzmarker benutzt, welche die unsichtbare Welt der Mikrobiologie und deren biochemische Prozesse illuminieren. Diese werden entweder durch Expression, wie z.B. das grün fluoreszierende Protein (GFP), in das zu untersuchende Objekt eingebracht oder durch klassische Markierungsmethoden mithilfe von fluoreszierenden Immunkonjugaten installiert. Jedoch gewinnt eine alternative Strategie, die von der interdisziplinären Zusammenarbeit zwischen Chemikern, Physikern und Biologen profitiert, immer mehr an Bedeutung – die bioorthogonale Click-Chemie. Sie ermöglicht eine effiziente Fluoreszenzmarkierung der biologischen Strukturen unter minimalem Eingriff in die Abläufe der Zelle. Dazu müssen allerdings sowohl Farbstoffe als auch die biologisch aktiven Substanzen chemisch modifiziert werden, da nur dadurch die Bioorthogonalität gewährleistet werden kann.
Mittlerweile existiert eine breite Palette an fluoreszierenden Farbstoffen, die das komplette sichtbare Spektrum abdecken und sich für diverse Mikroskopiemethoden eignen. Allerdings gibt es zwei Farbstoffklassen, die sich aus der gesamten Fülle abheben und sich für hochauflösende bildgebende Experimente auf Einzelmolekülebene eignen. Zum einen ist es die Farbstofffamilie der Cyanine und insbesondere der wasserlöslichen Pentamethincyanine, die reversibel und kontrolliert zum Photoschalten animiert werden können und in der stochastisch optischen Rekonstruktionsmikroskopie Anwendung finden. Zum anderen ist es die Gruppe, der Rhodamine und Fluoresceine, die zu Xanthenfarbstoffen gehören und sich durch gute photophysikalische Eigenschaften auszeichnen.
Trotz der Beliebtheit stellt ihre Darstellung immer noch eine Herausforderung dar und limitiert deren Einsatz. Deshalb war es notwendig im Rahmen der vorliegenden Arbeit Möglichkeiten zur Syntheseoptimierung beider Farbstoffklassen zu finden, damit diese im Folgenden weiterentwickelt und an die biologische Fragestellung angepasst werden können. Die Arbeit unterteilt sich deshalb in Relation an die oben genannten Farbstoffklassen in zwei Bereiche. Im ersten Teil wurden Projekte basierend auf den wasserlöslichen Pentamethincyaninen behandelt. Im zweiten Teil beschäftigte sich die Arbeit mit Projekten, die auf Xanthen-Farbstoffen aufbauen.
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.
Herein described is the discovery of three novel types of dimeric naphthylisoquinoline alkaloids, named mbandakamines, cyclombandakamines, and spirombandakamines. They were found in the leaves of a botanically as yet unidentified, potentially new Ancistrocladus species, collected in the rainforest of the Democratic Republic of the Congo (DRC). Mbandakamines showed an exceptional 6′,1′′-coupling, in the peri-position neighboring one of the outer axes, leading to an extremely high steric hindrance at the central axis, and to U-turn-like molecular shape, which – different from all other dimeric NIQs, whose basic structures are all quite linear – brings three of the four bicyclic ring systems in close proximity to each other. This created an unprecedented follow-up chemistry, involving ring closure reactions, leading to two further, structurally even more intriguing subclasses, the cyclo- and the spirombandakamines, displaying eight stereogenic elements (the highest total number ever found in naphthylisoquinoline alkaloids). The metabolites exhibited pronounced antiplasmodial and antitrypanosomal activities. Likewise reported in this doctoral thesis are the isolation and structural elucidation of naphthylisoquinoline alkaloids from two further potentially new Ancistrocladus species from DRC. Some of these metabolites have shown pronounced antiausterity activities against human pancreatic cancer PANC-1 cells.
Within this PhD thesis, chromophore-bridged biradicals were synthesised and their properties characterised. Therefore, it was necessary to develop novel synthetic procedures and implement several experimental characterisation methods. In summary, within this thesis the scope of pigment chromophore phenoxyl radical decoration was further explored and expanded to IIn as well as DPP colourants. HOMA analysis highlighted the importance of aromaticity in order to understand the spin crossover from heteroaromatic quinoidal to aromatic open shell DPPs. Finally, PBI, IIn and DPP biradicals were advanced towards stable materials by introduction of nitronyl nitroxide radical centres.
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.
In dieser Arbeit ist die Synthese von funktionalisiertem Nanodiamant mit bioaktiven Substanzen, welche vor allem als Wirkstofftransporter eingesetzt werden sollen, beschrieben. Dazu werden zum einen bereits bekannte Anbindungsmöglichkeiten an Nanodiamant, wie zum Beispiel die Klick-Reaktion, sowie die Ausbildung von Amidbrücken verwendet. Zum anderen werden neuartige Funktionalisierungsmöglichkeiten wie Protein Ligation und Thioharnstoffbrücken verwendet und somit das Repertoire an bekannten Anbindungsreaktion erweitert.
Des weiteren wurde ein multifunktionales Nanodiamantsystem synthetisiert. Dieses ist in der Lage, zwei verschiedene Moleküle auf einem Partikel zu immobilisieren. Die verwendeten Methoden ermöglichen die Anbindung verschiedener Substanzen aus unterschiedlichen Molekülgruppen an Nanodiamanten und sind somit universell einsetzbar.
Die vorliegende Dissertation befasst sich mit den Struktur-Eigenschafts-Beziehungen von sternförmigen Mesogenen mit kontrollierbaren Konformationen in den LC-Phasen. Zunächst sollte mithilfe verschiedener Moleküldesigns geklärt werden, wie eine Faltung der Arme verhindert werden kann, und somit, ob sternförmige Konformationen in den kolumnaren Packungen realisiert werden können. Hierzu wurde erfolgreich eine Bibliothek von dreiarmigen Amidsternen, semiflexiblen Oligoestersternen mit hexasubstituiertem Benzolkern und formtreuen hexasubstituierten Benzolen synthetisiert. Die besondere Herausforderung bei der Darstellung letzterer lag in der C3-Symmetrie der Verbindungen und konnte durch Optimierung der Synthesestrategie mittels aufeinander folgender Wittig-Horner- und Suzuki-Reaktionen in einem divergenten Ansatz gemeistert werden. Ein herausragendes Ergebnis ist die Flüssigkristallinität dieser formtreuen hexasubstituierten Strukturen, wenn sie mindestens neun bzw. zwölf periphere Ketten besitzen. Die detaillierte Auswertung der Kolumnendurchmesser mithilfe von äquatorialen Reflexen sowie der Dichte und der meridionalen Beugungsmuster zeigen, dass lediglich für die formtreuen hexasubstituierten Benzolderivate eine Faltung verhindert werden kann. Intrinsische Freiräume (Kävitäten) zwischen den Oligo(phenylenvinylen)-Armen werden durch außergewöhnliche Dimerenbildung und helikale Packung der Moleküle kompensiert.
In die Kavitäten der Trispyridylverbindungen können Carbonsäure-funktionalisierte Gäste unter Ausbildung von Wasserstoffbrücken eingelagert werden. Mit zunehmender Gastkonzentration wird die helikale Dimerphase des Wirts kontinuierlich in eine neue kolumnare Phase von monomeren Supermesogenen ohne helikale Struktur umgewandelt. Da die Gäste in den Supermesogenen vollständig von den Oligo(phenylenvinylen)-Armen und den aliphatischen Ketten umschlossen sind, handelt es sich bei der Wirtverbindung erstmals um einen flüssigkristallinen Endorezeptor mit drei Bindungsstellen. Das Sternmesogen mit größeren intrinsischen Freiräumen ermöglicht die Einlagerung von funktionalen Bausteinen wie z.B. Anthracenchromophoren. Aus Untersuchungen mittels Festkörper-NMR- und Fluoreszenzspektroskopie geht hervor, dass sich die Mesophase mit drei Anthracengästen langsam in eine doppelt nanosegregierte Struktur umwandelt, in der intrakolumnar Oligo(phenylenvinylen)-Arme und Anthracene Seite an Seite segregiert stapeln und so segmentierte Kolumnen bilden. Diese Art von doppelter Nanosegregation offenbart das Potential des verwendeten Moleküldesigns im Bezug auf die Entwicklung mesomorpher Multikabelstrukturen.
Im Vergleich zu den Supermesogenen weisen die analogen Sternverbindungen mit kovalent gebundenen Pseudogästen um über 100 °C höhere Klärpunkte auf, was unter Berücksichtigung der strukturellen Ähnlichkeit der kolumnaren Phasen und der ähnlichen Mischungsenthalpien in unterschiedlichen Werten der Mischungsentropie begründet liegen muss. Der Vergleich mit einer 1:3-Mischung ohne spezifische Wirt-Gast-Wechselwirkung bestätigt in diesem Zusammenhang den Einfluss der Bindungsart der Gäste auf die Mesophasenstabilität. Die Klärtemperaturen der Sternmesogene lassen sich folglich über die Art der Bindung der Gastmoleküle kontrollieren. Dies ist vor allem für die Orientierung kolumnarer Phasen in dünnen Filmen großer funktionaler Mesogene, die häufig erst bei sehr hohen Temperaturen unter Zersetzung in die isotrope Phase übergehen, interessant.
Enzym-Modifikationen finden in der Natur in Form von posttranslationalen Protein-Modifikationen statt und sind ein faszinierender Mechanismus, um die biologische Vielfalt und Funktion von Proteinen um ein Vielfaches zu erhöhen. Daher ist es für ein ganzheitliches Verständnis bestimmter biologischer Prozesse oder enzymatischer Struktur-Funktions-Beziehungen unerlässlich, chemische Methoden zu entwickeln, die in der Lage sind, diese natürliche Diversität nachzuahmen.[61] Die wohl größte Herausforderung der chemischen Protein-Konjugation ist die chemo- und regioselektive Modifikation einer gezielten Aminosäure bei gleichzeitig milden und physiologischen Reaktionsbedingungen. Trotz zahlreich beschriebener Ansätze zur selektiven Protein-Modifikation, bedarf es weiterhin neuer Methoden, da viele bestehende Herangehens¬weisen auf ein spezielles System zugeschnitten sind.[9, 63]
Aus diesem Grund sollte im Rahmen dieser Arbeit eine breit anwendbare Methode zur selektiven chemischen Tyrosin-Modifikation am Modell der Levansucrase aus Bacillus megaterium entwickelt werden. Durch eine zweistufige Protein-Modifikation, bestehend aus einer En-Reaktion im ersten Schritt und einer Click-Reaktion im zweiten Konjugationsschritt, gelang es die Produktspezifität der Bm Levansucrase rational zu beeinflussen. Zunächst wurde die Tyrosin-spezifische En-Reaktion mit der Luminol-Verbindung 1 an natürlich vorkommenden Tyrosin-Seitenketten der Levansucrase erprobt und analysiert. Hierbei zeigte sich durch massenspektrometrische Untersuchungen, dass hauptsächlich zwei der 25 vorhandenen Tyrosin-Reste mit dem Luminol-Tag 1 modifiziert wurden, zu denen die Seitenketten Y247 und Y196 gehörten. Um die Auswirkungen der Tyrosin-Modifikation leichter interpretieren zu können und eine gegenseitige Beeinflussung auszuschließen, wurde vorerst mit der Einzelmutante Y247F gearbeitet. Da nach der ersten Modifikation der Variante Y247F geringe Veränderungen im Produkt¬spektrum beobachtet wurden, insbesondere im hoch-molekularen Bereich, wurde die Click-Reaktion im zweiten Schritt mit der Intention durchgeführt, diesen Effekt zu verstärken. Schließlich bewirkte die Click-Reaktion mit Azidoglucose (AzGlc) bei Variante Y247F-1-AzGlc eine erhebliche Verschiebung der Produktverteilung von kleinen Fructooligosacchariden (ca. 1100 Da) hin zu hoch-molekularem Levan (ca. 2,1∙106 Da).
Drei weitere Positionen, die in der dritten Zone des Enzyms liegen, wurden für die gentechnische Substitution gegen nicht-native Tyrosin-Reste ausgewählt. Dadurch wurden die Varianten E314Y, D248Y sowie F445Y erhalten und anschließend wie zuvor in zwei Schritten chemisch modifiziert. Die Modifikation dieser Varianten führte hinsichtlich der Veränderung des Produktprofils zu ähnlichen Ergebnissen, wie sie mit dem Enzym Y247F erhalten wurden (Übersicht 1, A). Um den Einfluss verschiedener Seitenketten zu analysieren, wurden neben der Azidoglucose vier weitere Azido-Verbindungen in der Click-Reaktion getestet.
Die Resultate aus den genannten Untersuchungen und die Einbeziehung molekular¬-dynamischer Simulationen ließen erste Rückschlüsse auf die mechanistischen Prozesse der Bm Levansucrase und deren gezielte Manipulation zu: Die Größe der eingeführten Seitenkette sowie die Fähigkeit des Tags polare Wechselwirkungen auszubilden, spielen eine entscheidende Rolle zur rationalen Modulation der Produkt¬spezifität. Insbesondere die räumliche Orientierung und Bewegung der Seitenkette 1 AzGlc und die damit einhergehende sterische Hinderung trugen dazu bei, eine vorzeitige Dissoziation der wachsenden Fructane zu verhindern und ermöglichten dadurch die prozessive Polymersynthese.
Weitere Erkenntnisse über den Levan-Elongationsmechanismus wurden durch die Modifikation der Varianten N126Y und S125Y erhalten. Diese lagen im Gegensatz zu den zuvor untersuchten Tyrosin-Resten nicht im Wachstumsverlauf des Substrats und besaßen zudem eine kürzere Distanz zum aktiven Zentrum. In beiden Fällen führte bereits die erste Modifikation mit Luminol-Derivat 1 zu völlig unter¬schiedlichen Produktprofilen im Vergleich zu den zuvor untersuchten Enzym-Varianten. Während mit der Variante N126Y-1 eine signifikante Akkumulation (bis zu 800 % Zunahme) verschiedener Oligosaccharide erzielt wurde, synthetisierte die Variante S125Y-1 schon nach dem ersten Modifikationsschritt Levan-Polymer (Übersicht 1, B/C). Die zugrunde-liegenden Interaktionen und Trajektorien der eingeführten Seitenkette wurden ebenfalls mit Hilfe von MD Simulationen analysiert und bestätigten die zuvor getroffenen Annahmen. Durch die räumliche Nähe zur Substrat-Bindungstasche reichte bei Variante S125Y 1 bereits die Luminol-Verbindung aus, um die Substrat-Dissoziation zu verhindern und damit die Polymer¬synthese zu induzieren. Hingegen dazu ergaben die Simulationen eine sehr dynamische und fluktuierende Seitenkette für N126Y-1, was vermutlich zur Destabilisierung initialer Wechselwirkungen zwischen Substrat und der Protein¬oberfläche führte und dadurch die Freisetzung und Akkumulation kurzer Oligo-saccharide begünstigte.
Durch die bioorthogonale chemische Einführung einer artifiziellen Seitenkette war es schließlich möglich, das Produktspektrum der Bm Levansucrase sowohl in Richtung Polymersynthese als auch in Richtung kurzer Oligosaccharide zu lenken. Unter Verwendung der Tyrosin-spezifischen En-Reaktion wurden dafür gezielt native und nicht-native Tyrosin-Reste selektiv modifiziert und in einer Folge¬reaktion mittels Click-Chemie zusätzlich derivatisiert. Die Auswirkungen der Modifikations-Reaktionen auf den Elongationsmechanismus des Substrats konnten durch MD-Simulationen aufgeklärt werden. Das Ziel, die Produktspezifität der Levansucrase rational zu beeinflussen und in eine gezielte Richtung zu steuern, wurde damit erfolgreich umgesetzt.
Ein weiterer Fokus dieser Arbeit lag darin, eine effiziente und einfache Methode zur Reinigung eines Fructan-Gemisches zu entwickeln, um damit den Zugang zu Oligo-sacchariden definierter Größen zu vereinfachen. Die Verfügbarkeit bestimmter Oligosaccharide in ausreichender Menge und Reinheit würde die Untersuchung von Fructanen auf ihre präbiotischen Eigenschaften erleichtern und zum Verständnis der Korrelation zwischen dem Darmmikrobiom und verschiedenen Krankheits¬bildern beitragen.[125] Mit Hilfe der Levansucrase-Variante K373L wurde ein Fructan-Gemisch synthetisiert, das im Vergleich zum Produkt¬profil des Wildtyps einen höheren Anteil kurzkettiger Oligosaccharide aufwies. In einem dreistufigen Reinigungsprozess wurde das Produktgemisch im ersten Schritt von den Monosacchariden Glucose und Fructose sowohl fermentativ durch den Hefe¬stamm H. polymorpha als auch chromatographisch per Silicagel separiert. Anschließend erfolgte eine grobe Trennung der Oligosaccharide nach dem Größen¬ausschlussprinzip mit einer Bio-Gel®P2-Säule. Im letzten Schritt wurde die Oligosaccharidfraktion, die hauptsächlich Tri- und Tetrasaccharide enthielt, schließlich mittels Umkehrphasen-Säulenchromatographie (RP18-HPLC) in die gewünschten Produkte aufgetrennt. Auf diese Weise gelang es, die Oligosaccharide 1 Kestose (28 %), 6 Kestose (56 %) und 6 Nystose (20 %) in hoher Reinheit (> 95 %) und moderaten Ausbeuten zu isolieren (Übersicht 2).
Der letzte Teil dieser Arbeit sollte die verschiedenen Disziplinen der Biokatalyse, chemischen Protein-Modifikation und Click-Reaktion mit einer neuen Kompontente, der Photokatalyse, verbinden und in einem innovativen Konzept die Grundlage für die Kombination dieser Forschungsbereiche schaffen. In diesem Kontext wurde einerseits eine lineare photo-biokatalysierte Kaskaden-Reaktion entworfen und vorbereitet, während andererseits die Synthese eines clickbaren Photokatalysators durchgeführt wurde (Übersicht 3). Für den enzymatischen Teil der Kaskaden-Reaktion wurden die Halogenasen RebH und RadH mit den zugehörigen Regenerationssystemen Fre und GDH erfolgreich in E. coli exprimiert, gereinigt und deren Aktivität nachgewiesen. Darüber hinaus wurde ein aktiver Alkin-funktionalisierter Photokatalysator synthetisiert, dessen Aktivität auch nach der Click-Reaktion mit einer Aminosäure und einem Peptid erhalten blieb. Damit wurden die Grundlagen geschaffen, um z. B. photoaktive Bausteine in ein Enzym einzubringen und somit neue lichtabhängige Reaktionszentren oder sogenannte Designer-Enzyme zu erzeugen.
Fluorogenic Aptamers and Fluorescent Nucleoside Analogs as Probes for RNA Structure and Function
(2020)
RNA plays a key role in numerous cellular processes beyond the central dogma of molecular biology. Observing and understanding this wealth of functions, discovering new ones and engineering them into purpose-built tools requires a sensitive means of observation. Over the past decade, fluorogenic aptamers have emerged to fill this niche. These short oligonucleotides are generated by in vitro selection to specifically interact with small organic fluorophores and can be utilized as genetically encoded tags for RNAs of interest.
The most versatile class of fluorogenic aptamers is based on derivatives of hydroxybenzylidene imidazolone (HBI), a conditional fluorophore mimicking the chromophore structure found in green and red fluorescent proteins. The respective aptamers are well-known by the “vegetable” nomenclature, including Spinach, Broccoli and Corn, and have found numerous applications for studying RNA function in vitro and in cells.
Their success, however, is somewhat overshadowed by individual shortcomings such as a propensity for misfolding, dependence on unphysiologically high concentrations of magnesium ions or, in the case of Corn, dimerization that might affect the function of the tagged RNA. Moreover, most fluorogenic aptamers exhibit limited ligand promiscuity by design, thereby restricting their potential for spectral tuning to a narrow window of wavelengths.
This thesis details the characterization of a new fluorogenic aptamer system nicknamed Chili. Chili is derived from an aptamer that was originally selected to bind 4-hydroxy-3,5-dimethoxy¬hydroxy-benzylidene imidazolone (DMHBI), resulting in a green fluorescent complex. Unlike other aptamers of its kind, Chili engages in a proton transfer cycle with the bound ligand, resulting in a remarkably large Stokes shift of more than 130 nm.
By means of an empirical ligand optimization approach, several new DMHBI derivatives were found that bind to Chili with high affinity, furnishing complexes up to 7.5 times brighter compared to the parent ligand. In addition, Chili binds to π-extended DMHBI derivatives that confer fluorescence in the yellow–red region of the visible spectrum. The highest affinity and degree of fluorescence turn-on for both green and red fluorogenic ligands were achieved by the incorporation of a unique, positively charged substituent into the HBI scaffold.
Supplemented by NMR spectroscopy, kinetic and thermodynamic studies showed that the binding site of Chili is loosely preorganized in the absence of ligand and likely forms a G-quadruplex upon ligand binding.
To showcase future applications, Chili was incorporated into a FRET sensor for monitoring the cleavage of an RNA substrate by a 10-23 DNAzyme.
Besides aptamers as macromolecular fluorescent complexes, fluorescent nucleobase analogs are powerful small isomorphic components of RNA suitable for studying structure and folding. Here, the highly emissive nucleobase analog 4-cyanoindole (4CI) was developed into a ribonucleoside (r4CI) for this purpose. A new phosphoramidite building block was synthesized to enable site-specific incorporation of 4CI into RNA.
Thermal denaturation experiments confirmed that 4CI behaves as a universal nucleobase, i.e. without bias towards any particular hybridization partner. Photophysical characterization established r4CI as a generally useful fluorescent ribonucleoside analog. In this work, it was employed to gain further insight into the structure of the Chili aptamer. Using several 4CI-modified Chili–HBI complexes, a novel base–ligand FRET assay was established to obtain a set of combined distance and orientation restraints for the tertiary structure of the aptamer.
In addition to their utility for interrogating structure and binding, supramolecular FRET pairs comprising a fluorescent nucleobase analog donor and an innately fluorogenic acceptor hold great promise for the construction of color-switchable RNA aptamer sensor devices.
The aim of the thesis was to develop water soluble poly(2-oxazoline) (POx) copolymers with new side group functionalities, which can be used for the formation of hydrogels in biomedical applications and for the development of peptide-polymer conjugates.
First, random copolymers of the monomer MeOx or EtOx with ButEnOx and EtOx with DecEnOx were synthesized and characterized. The vinyl functionality brought into the copolymer by the monomers ButEnOx and DecEnOx would later serve for post-polymerization functionalization. The synthesized copolymers were further functionalized with thiols via post-polymerization functionalization using a newly developed synthesis protocol or with a protected catechol molecule for hydrogel formation. For the formation of peptide-polymer conjugates, a cyclic thioester, namely thiolactone acrylamide and an azlactone precursor, whose synthesis was newly developed, were attached to the side chain of P(EtOx-co-ButEnOx) copolymers.
The application of the functionalized thiol copolymers as hydrogels using thiol-ene chemistry for cross-linking was demonstrated. The swelling behavior and mechanical properties were characterized. The hydrophilicity of the network as well as the cross-linking density strongly influenced the swelling behavior and the mechanical strength of the hydrogels. All hydrogels showed good cell viability results.
The hydrogel networks based on MeOx and EtOx were loaded with two dyes, fluorescein and methylene blue. It was observed that the uptake of the more hydrophilic dye fluorescein depended more on the ability of the hydrogel to swell. In contrast, the uptake of the more hydrophobic dye methylene blue was less dependent on the swelling degree, but much more on the hydrophilicity of the network.
For the potential application as cartilage glue, (biohybrid) hydrogels were synthesized based on the catechol-functionalized copolymers, with and without additional fibrinogen, using sodium periodate as the oxidizing agent. The system allowed for degradation due to the incorporated ester linkages at the cross-linking points. The swelling behavior as well as the mechanical properties were characterized. As expected, hydrogels with higher degrees of cross-linking showed less swelling and higher elastic modulus. The addition of fibrinogen however increased the elasticity of the network, which can be favorable for the intended application as a cartilage glue. Biological evaluation clearly demonstrated the advantage of degradable ester links in the hydrogel network, where chondrocytes were able to bridge the artificial gap in contrast to hydrogels without any ester motifs.
Lastly, different ways to form peptide-polymer conjugates were presented. Peptides were attached with the thiol of the terminal cysteine group to the vinyl side chain of P(EtOx-co-ButEnOx) copolymers by radical thiol-ene chemistry. Another approach was to use a cyclic thioester, thiolactone, or an azlactone functionality to bind a model peptide via native chemical ligation. The two latter named strategies to bind peptides to POx side chains are especially interesting as one and in the case of thiolactone two free thiols are still present at the binding site after the reaction, which can, for example, be used for further thiol-ene cross-linking to form POx hydrogels.
In summary, side functional poly(oxazoline) copolymers show great potential for numerous biomedical applications. The various side chain functionalities can be introduced by an appropriate monomer or by post-polymerization functionalization, as demonstrated. By their multi-functionality, hydrogel characteristics, such as cross-linking degree and mechanical strength, can be fine-tuned and adjusted depending on the application in the human body. In addition, the presented chemoselective and orthogonal reaction strategies can be used in the future to synthesize polymer conjugates, which can, for example, be used in drug delivery or in tissue regeneration.
The initial goal was the conversion of Bifidobacterium adolescentis Sucrose Phosphorylase (BaSP) into a polyphenol glucosidase by structure based enzyme engineering. BaSP was chosen because of its ability to utilize sucrose, an economically viable and sustainable donor substrate, and transfer the glucosyl moiety to various acceptor substrates. The introduction of aromatic residues into the active site was considered a viable way to render it more suitable for aromatic acceptor compounds by reducing its polarity and potentially introducing π-π-interactions with the polyphenols. An investigation of the active site revealed Gln345 as a suitable mutagenesis target. As a proof of concept BaSP Q345F was employed in the glycosylation of (+)-catechin, (-)-epicatechin and resveratrol. The variant was selective for the aromatic acceptor substrates and the glucose disaccharide side reaction was only observed after almost quantitative conversion of the aromatic substrates. A crystal structure of BaSP Q345F in complex with glucose was obtained and it displayed an unexpected shift of an entire domain by 3.3 Å. A crystal structure of BaSP D192N-Q345F, an inactive variant in complex with resveratrol-3-α-D-glucosid, the glucosylation product of resveratrol, synthesized by BaSP Q345F was solved. It proved that the domain shift is in fact responsible for the ability of the variant to glycosylate aromatic compounds. Simultaneously a ligand free crystal structure of BaSP Q345F disproved an induced fit effect as the cause of the domain shift. The missing link, a crystal structure of BaSP Q345F in the F-conformation is obtained. This does not feature the domain shift, but is in outstanding agreement with the wildtype structure. The domain shift is therefore not static but rather a step in a dynamic process. It is further conceivable that the domain shifted conformation of BaSP Q345F resembles the open conformation of the wild type and that an adjustment of a conformational equilibrium as a result of the Q345F point mutation is observed. An investigation into the background reaction, the formation of glucose-glucose disaccharides of BaSP Q345F and three further variants that addressed the same region (L341C, D316C-L341C and D316C-N340C) revealed the formation of nigerose by BaSP Q345F.