Institut für Organische Chemie
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- International Max Planck Research School Molecular Biology, University of Göttingen, Germany (2)
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- Cluster of Excellence "Multiscale Bioimaging: from Molecular Machines to Networks of Excitable Cells, Göttingen (1)
Diese Arbeit beschäftigt sich mit der Selbstorganisation von Zinkchlorin-Farbstoffen, welche sich strukturell von Chlorophyllen ableiten. Im Gegensatz zu allen anderen bakteriellen und pflanzlichen Lichtsammelpigmenten ist es den Bakteriochlorophyllen c, d und e der Lichtsammelsysteme grüner phototropher Bakterien möglich, allein durch nichtkovalente Wechselwirkungen zwischen den Farbstoff-Molekülen, ohne die Beteiligung von Proteinen, röhrenförmige Antennensysteme auszubilden, welche die am dichtest gepackten und effizientesten Lichtsammelsysteme in der Natur darstellen. Um einen Betrag zur Aufklärung dieser biologisch wichtigen Aggregate zu leisten, wurden im ersten Teil dieser Arbeit Zinkchlorine als Modellverbindungen für BChl c hergestellt. Mit den neu synthetisierten Zinkchlorinen ist es gelungen, Modellsysteme der natürlichen BChl-Selbstorganisate herzustellen, welche sich im Gegensatz zu den bisher in der Literatur beschriebenen Zinkchlorin-Aggregaten durch eine gute und dauerhafte Löslichkeit auszeichnen. Diese Eigenschaft erlaubte es sowohl spektroskopische als auch mikroskopische Untersuchungen zur Aufklärung der Aggregatstruktur durchzuführen. Durch Rasterkraftmikroskopie an den Zinkchlorin Aggregaten konnte erstmals ein mikroskopischer Beweis der stabförmigen Struktur von Aggregaten dieser Substanzklasse erhalten werden. Der zweite Teil dieser Arbeit beschäftigt sich mit Zinkchlorinen, denen aufgrund einer methylierten 31-Hydroxy-Gruppe die Fähigkeit zur Röhrenbildung fehlt, die aber durch Koordinationsbindungen und p-p-Wechselwirkungen weiterhin Stapel bilden können. Temperaturabhängige UV/Vis- und CD-spektroskopische Studien offenbarten die reversible Bildung von löslichen, chiralen Zinkchlorin-Stapelaggregaten. Rasterkraft- und rastertunnelmikroskopische Untersuchungen zeigen die Bildung von zwei Typen p-gestapelter Aggregate auf hoch geordnetem Graphit.
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.
Oxygen-centered radicals are important intermediates in photobiological, mechanistic and synthetic studies. The majority of precursors of reactive oxyl radicals are labile and thus delicate to handle. Therefore N-(alkoxy)-pyridinethiones and N-(Alkoxy)-thiazolethiones have attracted attention as "mild'' photochemical source of alkoxyl radicals, in the last few years. A disadvantage of the pyridine compounds, is their sensibility to daylight. Despite of their similarities, both molecules behave surprisingly different, if photolyzed in the absence of trapping reagents. The pyridinethione compounds undergo highly efficient radical chain reactions under such conditions while the corresponding thiazolethiones react surprisingly sluggish and give rise to several unwanted side products. The properties of both compounds should be understood and optimized in the frame of this work. Additionally new compounds should be suggested that can also be applied in the photochemical alkoxyl radical generation. Some background information about the generation and application of alkoxyl radicals is provided in chapter 2. Electronic excitations and UV/vis spectroscopy together with a description of quantum chemical approaches that are able to calculate such phenomena are outlined in chapter 3. Chapter 4 deals with the description of the vertical excitation spectra. During the validation CASSCF, CASPT2, TD-DFT and RI-CC2 were tested with respect to their ability to describe the vertical excitations in both compounds. The CASPT2 approach gives accurate descriptions of the electronic excitation spectra of all compounds. The time-dependent DFT results are very sensitive on the choice of the functional and a validation of the results should be always done. On the basis of these computations the spectroscopic visible absorption bands of both compounds were assigned to a pi-->pi* transition in the thiohydroxamic acid functionality. In chapter 5 the mechanism of the thermally and the photochemically induced N,O homolysis in both compounds is unveiled. The near UV-induced N,O homolysis will start from the S2 state. The expected relaxation from the S2- to the S1-state and the dissociation process is expected to be very fast in the case of the thiazolethione compound. The potential surfaces of the pyridine compound in contrast point to a slower N,O bond dissociation. Due to the resulting faster dissociation process the excess energy which results from the photochemical activation is quenched only to small amounts. The maximal possible excess energy of the fragments is lower and a quenching is much more likely in the case of the pyridinethione compounds. This explaines the different reactivities of both compounds. For the also already successfully applied precursor system N-(alkoxy)-pyridineones the computed dissociation paths show courses that clearly predict a slow bond dissociation process. Chapter 6 deals with the tuning of the initial excitation wave length of the known pyridinethiones und thiazolethiones. In the first part the effects of substituents on the thiazolethione heterocycle was examined. The UV/vis spectra of 4 and 5 substituted thiazolethiones can be interpreted like the spectrum of the parent compound. The second part of chapter 6 deals with the identification of a substitution pattern on the pyridine heterocycle which induces a blue shift of the photo active band. The computations showed that electron rich and electron poor substituents result the same effects on the electronic excitation spectra. These substituent effects are additive, but the steric orientation of the substituents has to be taken into account. Chapter 7 describes a computer aided design of new alkoxyl radical precursors. Combining the advantages of both compounds the radical formation should be initiated by an irradiation with light at about 350 nm, and the amount of side products during the radical formation process should be small. To achieve this 18 test candidates were obtained by a systematic variation of the parent compound of the thiazolethione precursor. To identify the promising new precursor systems a screening of the lower electronic excitations of all resulting 18 systems was performed with TD-DFT. For promising systems the N,O or P,O dissociation paths, respectively, were analyzed according to the developed model. N-(methoxy)-azaphospholethione and N-(methoxy)-pyrrolethione seem to be the most promising candidates. The computations predict a strong absorption at about 350 nm respectively 320 nm. Due to the amounts of maximal excess energy and the shapes of the potential surfaces of the N,O bond dissociation paths their reactivity should resemble more the behavior of the pyridinethiones.
Aus dem Bromfluorcarben-Addukt des Indens wurden durch HPLC an Chiralcel OD die reinen Enantiomere erhalten. Damit stand erstmals eine enantiomerenreine Vorstufe für die Freisetzung eines Sechsringallens im Sinne der Doering-Moore-Skattebol Reaktion zur Verfügung. Die Behandlung dieser Vorstufen, die in 2,5-Dimethyl, 2-tert-Butyl-5-methyl- or 2,5-Di-tert-butylfuran gelöst waren, mit Methyllithium lieferte die [4+2]-Cycloaddukte des Isonaphthalins an die Furane. Durch HPLC an Chiralcel OD wurde gezeigt, dass die Produkt-Enantiomerenpaare mit ca. 40% ee anfielen und dass dieser Wert praktisch unabhängig von der Art des Furans und seiner Konzentration, sowie von der Raktionstemperatur war. Die absoluten Konfigurationen der Vorstufe sowie der [4+2]-Cycloaddukte wurden durch Vergleich der gemessenen und berechneten CD-Spektren ermittelt, was in Zusammenarbeit mit der Arbeitsgruppe von Prof. Dr. B. Engels erfolgte. Erzeugt durch Methyllithium aus dem Dibromcarben-Addukt des Indens wurde das Isonaphthalin erstmals durch Inden abgefangen. Die Konstitution diese [2+2]-Cycloaddukts wurde durch Röntgenstrukturanalyse bestimmt. Erstmals wurde das Bromfluorcarben-Addukt des 1-Phenylcyclopentens hergestellt und erfolgreich daraufhin geprüft, ob es als Vorstufe für 1-Phenylcyclohexa-1,2-dien geeignet ist. Mit Hilfe von HPLC an Chiralcel OJ-H wurden die reinen Enantiomere erhalten. Die Umsetzung eines solchen reinen Enantiomers mit Methyllithium in Gegenwart von 2,5-Dimethylfuran erbrachte das [4+2]-Cycloaddukt als reines Enantiomer. Die Umsetzung einer reinen Vorstufe mit Methyllithium in Gegenwart von Inden erbrachte das [2+2]-Cycloaddukt mit einem Enantiomerenverhältnis von 95:5. Überraschend wurden auch relativ hohe Enantioselektivitäten beim Abfang dieser Vorstufe mit Styrol beobachtet. Bei der Umsetzung des reinen Enantiomers mit Methyllithium und Styrol ergab sich ein Gemisch der zwei endo- und exo-Enantiomere des [2+2]-Cycloaddukts von 50:3:40:7, was ee-Werten von 89 bzw. 79% entspricht. Geht man von einem zweistuifigen Mechanismus der Reaktion von 1-Phenylcyclohexa-1,2-dien mit Styrol aus, dann spielt die achirale Konformation des intermediären Diradikals, wenn überhaupt, keine große Rolle. Die Reduktion des bekannten 1,6-Dibrom-2-phenylcyclohex-1-ens mit Lithiumaluminiumhydrid erbrachte mit 78% Ausbeute die Monobromide 1-Brom-2-phenylcyclohexen and 1-Brom-6-phenylcyclohexen, die bei der Behandlung mit Kalium-tert-butoxid ebenfalls das Cycloallen 1-Phenylcyclohexa-1,2-dien liefern. Dies zeigte die Ausführung dieser Reaktion in Gegenwart von Furan und 2,5-Dimethylfuran.
Ausgehend von Benzvalen wurden zwei an der Doppelbindung difunktionalisierte Bicyclo[2.1.1]hex-2-ene synthetisiert, die in Anlehnung an Literaturmethoden jeweils zu einem Benzolderivat trimerisiert werden sollten. Durch dreifachen Ringschluss in den Anellanden unter Ausbildung von Bicyclobutansystemen sollte daraus dann ein Octahydro-trimetheno-trinden hervorgehen, von dem aufgrund der Spannungsenergie in den anellierten Systemen eine signifikante Bindungslängenalternanz im Benzolring erwartet wurde. Zur Untersuchung der Natur der zentralen Bindung in [1.1.1]Propellanen wurde aus Benzvalen und Adamantanon in Anlehnung an die Literatur ein neues [1.1.1]Propellan dargestellt. Weiterhin wurden verschiedene aromatische Azide in einer 1,3-dipolaren Cycloaddition an Hexamethyl-Dewar-Benzol (HMDB) addiert. Unter Thermolysebedingungen lagerten die resultierenden Produkte in Abhängigkeit vom aromatischen Rest zu unterschiedlichen Verbindungen um.
This thesis deals with the isolation and structural elucidation of bioactive naphthylisoquinoline alkaloids and related analogs. The mode of action of the antiplasmodial activity exhibited by the naphthylisoquinoline alkaloids was explored and compared to that of the antimalarial drug chloroquine. Furthermore, the phase 1 and 2 metabolism of dioncophyllines A and C and dioncopeltine A were investigated. In detail the following results have been obtained: • From the leaves of the recently discovered East African liana A. tanzaniensis six naphthylisoquinoline alkaloids were isolated. • The leaves of a botanical yet undescribed Ancistrocladus species, collected by Prof. Dr. V. Mudogo in the Democratic Republic of Congo in the habitat Yeteto near the town Ikela, were analyzed for naphthylisoquinoline alkaloids for the first time. The isolation work led to the first identification of an N,C-coupled naphthyldihydroisoquinoline alkaloid; ancistrocladinium B. Phytochemical investigation of the roots of the Congolese Ancistrocladus species (habitat Yeteto), , afforded five new derivatives of known naphthylisoquinoline alkaloids, namely 5'-O-demethylhamatine, 5'-O-demethylhamatinine, 6-O-demethylancistroealaine A, 6,5'-O,O-didemethylancistroealaine A, and 5-epi-6-O-methylancistrobertsonine A, along with six known naphthylisoquinoline alkaloids. • The antiplasmodial activity guided purification of 60Co irradiated samples containing commercially available naphthylisoquinoline related substances, afforded the isolation of the irradiation products 3,4-dihydro-1-isoquinolinone, 3,4-dihydro-1-isoquinolineamine, and 1,2,3,4-tetrahydro-1,2-diazirino-isoquinoline. The compounds were found to be more active than the starting material, although only exhibiting weak antiplasmodial activity against P. falciparum. • The effect on the absorption spectrum of FPIX due to complex formation with the naphthylisoquinoline alkaloids dioncophyllines A and C, dioncopeltine A korupensamine A, and ancistrocladine was examined by a titration study. Job's plot analyses by UV-spectroscopy determined the stoichiometry for the complex formation of FPIX and naphthylisoquinoline alkaloids to be 2:1. Furthermore, the dissociation constants for the complexation with FPIX were determined for each of the naphthylisoquinoline alkaloids investigated. Dioncophylline C and dioncopeltine A were found to possess dissociation constants, which are comparable to the one reported for the antimalarial drug chloroquine. The ability of ESI to transfer noncovalent solution-phase assemblies intact into the gas phase, was conducted on solution mixtures of naphthylisoquinoline alkaloid and FPIX, as well as on mixtures of chloroquine and FPIX. The mass spectrometry analyses revealed several peaks, which corresponded to the complex formation of FPIX to the respective ligands investigated. The most interesting results obtained were the detection of peaks corresponding to the complex formation between a chelated dimer of FPIX and dioncophylline Cand of peaks corresponding to a double protonated tetramer of FPIX – consisting of two chelated -oxo dimers of FPIX – in complex formation with two molecules of chloroquine. • Two phase 1 metabolism products of dioncophylline A were identified. Coelution in combination with HPLC-MS/MS, NMR, and CD investigations assigned the major metabolic product as 5'-O-demethyldioncophylline A. The minor metabolic product was only present in small amounts, which disabled an unambiguous structural characterization of the compound. However, as deduced from the mass spectrometry analyses and exclusion of a possible metabolic oxidation product by coelution with authentic reference material, the metabolite should possess a 4-hydroxylated isoquinoline portion and is assumed to be represented by structure. Dioncophylline C and dioncopeltine A were found to be stable to phase 1 metabolism reactions caused by rat liver microsomes.
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.
The functionalities of DNA and RNA are mainly determined by the various interactions between the pairing nucleobases. To understand the complex interplay of the various interactions model systems are needed in which the interstrand pairing is less restricted by the backbone. Such systems are peptide nucleo acids (PNA) in which the sugar phosphate backbone of DNA or RNA is replaced by a peptide backbone. Diederichsen et al. were able to synthesize a large number of systems with an alpha-alanyl backbone to which canonical and non-canonical nucleobases were attached (alpha-alanyl-PNA). These systems formed aggregates with various binding motifs which do not appear in DNA or RNA. Especially the unusual binding motifs would allow a deep insight into the complex interplay of the interactions between nucleobases but the small solubility of alpha-alanyl PNA oligomers hampers the experimental determination of the geometrical arrangement by X-Ray or NMR. Only the overall stability of the various aggregates could be determined by measurements of melting temperatures via UV spectroscopy. Since a detailed knowledge about the geometrical structure and bonding motifs are necessary to obtain insight into the interplay of the various interactions it is the goal of the present work to achieve such information with the help of theoretical approaches. Additionally we are interested in the effects which govern the trends in the stabilities of the systems. This task should be simpler than an investigation of the absolute stabilities since many contributions (e.g. entropic and dynamic effects) can be expected to be similar for similar systems. Consequently, such effects are less important for our goal. For the investigation of all experimentally tested alpha-alanyl-PNA oligomers it was essential to parameterize the noncanonical nucleobases since they were not implemented in the standard version of the Amber4.1 force field. This was achieved by adding the missing parameters to the Amber Force Field. The charges of each nucleobase were determined by the R.E.D program package. The investigation started with the construction of all possible pairing modes for alpha-alanyl-PNA dimer. It could be observed that certain pairing modes were not realizable due to the geometrical arrangement of the dimer and the restriction of the backbone. For other pairing modes a construction was possible, but due to the geometrical restrictions of the backbone the strain in the system is so high that they fall apart during a first geometry optimization. Stable systems were then simulated by various molecular dynamics (MD)-runs. Information about their geometrical arrangements for T=0 K were obtained from geometry optimizations which were started from various points of the MD-run. The resulting geometries were found to be virtually identical. Information about the interactions within a dimer at T=0 K were obtained from a two step procedure in which the effects connected with the nucleobases and the influence of the backbone are determined separately. It was performed for the optimized geometries. In a first step the backbone was removed and the resulting dangling bonds were saturated by methyl groups. The total interaction energy between the nucleobases can now be estimated by the difference between the energy of the complete system and the sum of the energies of the single nucleobases computed at the geometries they take in the whole system. According to the carried out investigation and the resulting correlation of the melting temperature with the calculated stabilization energies the presented method seems to represent a reliable tool for the description of the PNA systems. Despite this success additional experimental verifications of our method are necessary to ensure its applicability. Such verifications could be based on geometrical information obtained via X-Ray or NMR investigations. More detailed data about entropic an enthalpic contribution to the stability of the various complexes would also be very helpful to verify and improve our approach. Such information could be either obtained from a careful analysis of shape of the melting temperature curve or from microcalorimetric investigations. If such tests confirm our predictions the approach could be extended and applied to neighboring fields as for examples beta-alanyl-PNA, DNA or RNA systems with unusual nucleobases. Such information is also necessary to extend our approach in a way that dynamic and/or entropic effects are also taken into account.
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.
Polyketide stellen aufgrund ihrer großen strukturellen Vielfalt nach wie vor Leit- und Wirkstoffe für die Pharma- und Pflanzenschutzforschung in den Industrieländern dar und bilden außerdem eine der wichtigsten Klassen von Naturstoffen (Sekundärmetaboliten) überhaupt. Besonders die Biosynthese aromatischer Polyketide und die hierbei involvierten Enzyme, die Polyketidsynthasen (PKS), wurden von Biosyntheseforschern als hervorragendes Modellsystem zur Untersuchung von Struktur-Funktions-Beziehungen von Multienzymkomplexen erkannt. Für annelierte aromatische Polyketide existiert seit dem Jahr 2001 eine biosynthetische Klassifizierung auf Metabolitebene, das sogenannte Modus-F/S-System, mit dessen Hilfe man zwischen pro- und eukaryotischen Produzenten unterscheiden kann. Die Erforschung der detaillierten Biosynthese von aromatischen Polyketiden ist somit in mehrfacher Hinsicht ein lohnendes Ziel. In der vorliegenden Dissertation sollten die Biosynthese und die Faltungsmodi ausgewählter aromatischer Polyketide einschließlich der Charakterisierung potentieller Vorstufen in verschiedensten biologischen Systemen untersucht werden. Die dabei gewonnenen Resultate sind das Ergebnis interdisziplinärer Zusammenarbeit.