3 resultados para Dosy

em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha


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The aim of this work presented here is the characterization of structure and dynamics of different types of supramolecular systems by advanced NMR spectroscopy. One of the characteristic features of NMR spectroscopy is based on its high selectivity. Thus, it is desirable to exploit this technique for studying structure and dynamics of large supramolecular systems without isotopic enrichment. The observed resonance frequencies are not only isotope specific but also influenced by local fields, in particular by the distribution of electron density around the investigated nucleus. Barbituric acid are well known for forming strongly hydrogen-bonded complexes with variety of adenine derivatives. The prototropic tautomerism of this material facilitates an adjustment to complementary bases containing a DDA(A = hydrogen bond acceptor site, D = hydrogen bond donor site) or ADA sequences, thereby yielding strongly hydrogen-bonded complexes. In this contribution solid-state structures of the enolizable chromophor "1-n-butyl-5-(4-nitrophenyl)-barbituric acid" that features adjustable hydrogen-bonding properties and the molecular assemblies with three different strength of bases (Proton sponge, adenine mimetic 2,6-diaminopyridine (DAP) and 2,6-diacetamidopyridine (DAC)) are studied. Diffusion NMR spectroscopy gives information over such interactions and has become the method of choice for measuring the diffusion coefficient, thereby reflecting the effective size and shape of a molecular species. In this work the investigation of supramolecular aggregates in solution state by means of DOSY NMR techniques are performed. The underlying principles of DOSY NMR experiment are discussed briefly and more importantly two applications demonstrating the potential of this method are focused on. Calix[n]arenes have gained a rather prominent position, both as host materials and as platforms to design specific receptors. In this respect, several different capsular contents of tetra urea calix[4]arenes (benzene, benzene-d6, 1-fluorobenzene, 1-fluorobenzene-d5, 1,4-difluorobenzene, and cobaltocenium) are studied by solid state NMR spectroscopy. In the solid state, the study of the interaction between tetra urea calix[4]arenes and guest is simplified by the fact that the guests molecule remains complexed and positioned within the cavity, thus allowing a more direct investigation of the host-guest interactions.

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Diese Arbeit legt, im Rahmen eines interdisziplinären BMBF Projekts, die Grundlage für eine neue, potentielle Früherkennungsmethode für Prostatakrebs. Ausgehend von der Idee, einen sensitiv detektierbaren Farbstoff in selektiv, Hepsin-spaltbare Kapseln einzubringen, wurde ein Modellsystem erarbeitet. Als Zielsubstrat für das Enzym Hepsin wurde die Sequenz RQLRVVGG identifiziert. Basierend auf dem hier entwickelten Modell, könnte in Zukunft eine Detektion von Hepsin und damit von Prostatakrebs im Frühstadium in vivo erfolgen. rnUm das Konzept der Enzymspaltbarkeit zu zeigen,wurden, basierend auf einem Modell,enzymatisch-spaltbare, polymere Nanopartikeldargestellt. In dieser Arbeit konnte die Synthese von vier Generationen spezifisch Protease-spaltbarer, hydrophober Nanopartikel gezeigt werden. Die Enzyme Pepsin und Trypsin, die selektiv die Peptidsequenz GFF spalten, wurden als Modellenzyme für das im Prostatakarzinom überexprimierte Hepsin eingesetzt. rnrnAls Ausgangspolymer diente Poly(styrol-co-acrylsäure), das in freier, radikalischer Polymerisation hergestellt und mit Molekulargewichten zwischen 8500 und 49400 g/mol erhalten wurde. Der Funktionalisierungsgrad wurde zwischen 5 und 16%-Gew. variiert. Die Charakterisierung erfolgte mittels GPC und NMR-Spektroskopie. In einer polymeranalogen Reaktion wurden die Säurefunktionen zu Aminogruppen umgesetzt. Die resultierendenPolymere wurden unter Einsatz der über Jahrzehnte entwickelten, effektiven Peptidkupplungschemie mit enzymspaltbarenPeptiden gekuppelt, um dadurch definierte Peptid-Polymer-Konjugate zu erhalten.Als enzymatisch spaltbarer Teil des Konjugats, wurden mithilfe der Festphasenpeptidsynthese (SPPS),FRET(Fluoreszenz-Resonanz-Energie-Transfer)-markiertePeptide synthetisiert, die auf der Trypsin-spaltbaren Sequenz GFF basierten. Zum Nachweis der Vernetzung der späteren Nanopartikel, wurde zusätzlich einern15N-markierte Aminosäure (Fmoc-(15N)-Glycin) am N-Terminus der Peptide eingebaut, um die Reaktion des Amins zu einem Amid verfolgen zu können.Die Charakterisierung der Peptide erfolgte mittels1H-, 13C-NMR-Spektroskopie, MALDI TOF-MS und HPLC. Aus den Polymeren und dem Peptid wurden Peptid-Polymer-Konjugate hergestellt und die erfolgreiche Anbindung mittels DOSY-NMR-Spektroskopie und HPLC nachgewiesen. Aus den Konjugaten konnten im nächsten Schritt, durch Anwendung des inversen Miniemulsionsprozesses, Nanopartikel formuliertund diese in wässriges Milieu überführt werden. Die Dispersionen konnten mittels PCCS, REM und Zetapotentialmessungen charakterisiert werden, wobei Partikeldurchmesser um 230 nm resultierten. Der Nachweis der Vernetzung des Polymers in den Partikeln konnte durch die Reaktion desrn15N-Amins zu einem 15N-Amid mittels 15N-Festkörper-NMR-Spektroskopie nachverfolgt werden. Abschließend konnten die Partikel durch Trypsin gespalten werden, was durch das eingebaute FRET-Paar über eine in situ Detektion der relativen Fluoreszenz erfolgte. rnIn dieser Arbeit konnten Peptid-vernetzte, Polystyrol basierte Nanopartikel hergestellt und in Heterophase von Trypsin gespalten werden.rn

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The central objective of this work was to generate weakly coordinating cations of unprecedented molecular size providing an inherently stable hydrophobic shell around a central charge. It was hypothesized that divergent dendritic growth by means of thermal [4+2] Diels-Alder cycloaddition might represent a feasible synthetic method to circumvent steric constraints and enable a drastic increase in cation size.rnThis initial proposition could be verified: applying the divergent dendrimer synthesis to an ethynyl-functionalized tetraphenylphosphonium derivative afforded monodisperse cations with precisely nanoscopic dimensions for the first time. Furthermore, the versatile nature of the applied cascade reactions enabled a throughout flexible design and structural tuning of the desired target cations. The specific surface functionalization as well as the implementation of triazolyl-moieties within the dendrimer scaffold could be addressed by sophisticated variation of the employed building block units (see chapter 3). rnDue to the steric screening provided by their large, hydrophobic and shape-persistent polyphenylene shells, rigidly dendronized cations proved more weakly coordinating compared to their non-dendronized analogues. This hypothesis has been experimentally confirmed by means of dielectric spectroscopy (see chapter 4). It was demonstrated for a series of dendronized borate salts that the degree of ion dissociation increased with the size of the cations. The utilization of the very large phosphonium cations developed within this work almost achieved to separate the charge carriers about the Bjerrum length in solvents of low polarity, which was reflected by approaching near quantitative ion dissociation even at room temperature. In addition to effect the electrolyte behavior in solution, the steric enlargement of ions could be visualized by means of several crystal structure analyses. Thus an insight into lattice packing under the effect of extraordinary large cations could be gathered. rnAn essential theme of this work focused on the application of benzylphosphonium salts in the classical Wittig reaction, where the concept of dendronization served as synthetic means to introduce an exceptionally large polyphenylene substituent at the -position. The straightforward influence of this unprecedented bulky group on the Wittig stereochemistry was investigated by NMR-analysis of the resulting alkenes. Based on the obtained data a valuable explanation for the origin of the observed selectivity was brought in line with the up-to-date operating [2+2] cycloaddition mechanism. Furthermore, a reliable synthesis protocol for unsymmetrically substituted polyphenylene alkenes and stilbenes was established by the design of custom-built polyphenylene precursors (see chapter 5).rnFinally, fundamental experiments to functionalize a polymer chain with sterically shielded ionic groups either in the pending or internal position were outlined within this work. Thus, inherently hydrophobic polysalts shall be formed so that future research can invesigate their physical properties with regard to counter ion condensation and charge carrier mobility.rnIn summary, this work demonstrates how the principles of dendrimer chemistry can be applied to modify and specifically tailor the properties of salts. The numerously synthesized dendrimer-ions shown herein represent a versatile interface between classic organic and inorganic electrolytes, and defined macromolecular structures in the nanometer-scale. Furthermore the particular value of polyphenylene dendrimers in terms of a broad applicability was illustrated. This work accomplished in an interdisciplinary manner to give answer to various questions such as structural modification of ions, the resulting influence on the electrolyte behavior, as well as the stereochemical control of organic syntheses via polyphenylene phosphonium salts. rn