5 resultados para Ester Hydrolysis

em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha


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On the pathway to synthesizing synthetic model systems for human cartilage, macroinitiators for the ATRP of styrene sulfonate esters with different chain lengths and initiation site densities from 10 % to 100 % were synthesized. Polymer brushes from styrene sulfonate ethyl ester and styrene sulfonate dodecyl ester with varying grafting density, backbone length and side chain length were synthesized and characterized by 1H-NMR, AUC, AFM, TEM, and in the case of the ethyl esters, GPC-MALLS. Polyelectrolyte brushes from styrene sulfonate were synthesized from the corresponding esters. These brushes were characterized in solution (GPC-MALLS, static and dynamic light scattering, SANS, 1H-NMR) and on solid interfaces (AFM and TEM). It was shown that these brushes may form extended aggregates in solution. The aggregation behavior and the size and shape of the aggregates depend on the side chain length and the degree of saponification. For samples with identical backbone and side chain length, but varying degrees of ester hydrolysis, marked differences in the aggregation behavior were observed. A functionalized ATRP macroinitiator with a positively charged head group was synthesized and employed for the synthesis of a functionalized polyelectrolyte brush. These brushes were found to form complexes with negatively charged latex particles and are thus suitable as proteoglycan models in the proteoglycan-hyaluronic acid complex.

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Die sekretorischen Phospholipasen A2 (sPLA2) sind Enzyme, welche die Hydrolyse der Esterbindung an der sn-2-Position von Phospholipiden katalysieren, wodurch freie Fettsäuren, welche als Vorläufermolekül von Eicosanoiden dienen, freiwerden. Außerdem wurde gezeigt, dass sPLA2s auch unabhängig von ihrer katalytischen Aktivität durch die Bindung an einen spezifischen sPLA2-M-Typ-Rezeptor (MTR) intrazelluläre Signalwege, wie z.B. die Induktion von proinflammatorischen Genen, aktivieren können. Deshalb wurden in dieser Arbeit weiterführende Studien zur Aufklärung der Lokalisation und der Signaltransduktion der sPLA2s sowie die Bedeutung des MTR durchgeführt. Als Zellmodell für in-vitro-Studien wurden glomeruläre Mesangiumzellen verwendet, da diese Zellen eine zentrale Rolle bei entzündlichen Nierenerkrankungen, wie z.B. der Glomerulonephritis spielen. Durch Isolierung von Mesangiumzellen aus MTR-knockout-Mäusen (C57BL/6) sollten potentielle Unterschiede in der MTR-vermittelten Signaltransduktion im Vergleich zu Mesangiumzellen isoliert aus (C57BL/6) Wildtyp-Mäusen herausgearbeitet werden. Die Untersuchungen dieser Arbeit zeigen, dass verschiedene sPLA2-Enzyme in Maus-Mesangiumzellen exprimiert werden und diese an der konstitutiven Biosynthese von Prostaglandinen beteiligt sind. Der spezifische M-Typ-Rezeptor wird in diesen Zellen im Gegensatz zu Ratten-Mesangiumzellen weder unter physiologischen noch unter proinflammatorischen Bedingungen exprimiert und spielt daher vermutlich keine Rolle bei der Signaltransduktion durch sPLA2s.

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Im Rahmen dieser Arbeit wurden verschiedene funktionale, polymerisierbare Tenside (Surfmere) synthetisiert, um unmittelbar und exklusiv die Partikeloberfläche in der Miniemulsionspolymerisation mit der gewünschten Funktion für weitere Anwendungen auszurüsten. Hierdurch ist es möglich, auf konventionelle Tenside, welche bedingt durch ihre Mobilität in einigen Anwendungen zu Schwierigkeiten führen, gänzlich zu verzichten. Zusätzlich bietet der Einsatz von Surfmeren eine höhere Kontrolle über die Lokalisation und Verteilung der Funktionalitäten auf der Partikeloberfläche, im Vergleich zum Einsatz von klassischen Comonomeren. rnThematische Schwerpunkte der Arbeit lagen in der Ausrüstung von Partikeloberflächen mit Haftgruppen (Phosphonsäuren) oder Fluoreszenzmarkern sowie der Aufbringung von Initiatorgruppen über Surfmere zur Synthese von Kern-Schale-Partikeln in einem zweistufigen Prozess. Bei allen neu synthetisierten Surfmeren wurde als polymerisierbare Einheit eine Methacrylamidgruppe gewählt, um Funktionalitätenverlust durch Hydrolyse auszuschließen.rnIm Bereich der Haftgruppen wurde gezeigt, dass der Einsatz von phosphonathaltigen Surfmeren die Kontrolle der Partikelgröße und Funktionalisierungsdichte in weiten Bereichen ermöglicht und langzeitstabile Dispersionen erhalten werden. Die Partikel wurden auf ihre Cytotoxizität und ihre biomimetische Mineralisierbarkeit hin untersucht.rnZum Nachweis der Copolymerisation des Surfmers mit dem Hauptmonomer wurde ein Phosphonsäure-Surfmer mit einem Farbstoff auf Naphthalimidbasis synthetisiert. Dies ermöglichte den Nachweis der Copolymerisation mittels Gelpermeationschromatographie.rnZur Fluoreszenzmarkierung von Partikeloberfläche wurden erstmals Surfmere realisiert, die in der Kopfgruppe eine BODIPY-Einheit, welche in 2 oder 2,6-Position sulfoniert wurde, als Fluorophor tragen. Der Polymerisationsbeweis wurde durch HPLC-Messungen geführt und die Lokalisation auf der Partikeloberfläche durch Quenchungsexperimente verifiziert. rnDes Weiteren wurde ein kationisches Surfmer synthetisiert, welches nahe der Kopfgruppe eine Bromo iso-buttersäureeinheit zur AGET-ATRP-Initiierung trägt und somit potentiell zum Aufbau von Kern-Schale-Morphologien befähigt ist.

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The prologue of this thesis (Chapter 1.0) gives a general overview on lactone based poly(ester) chemistry with a focus on advanced synthetic strategies for ring-opening polymerization, including the emerging field of organo catalysis. This section is followed by a presentation of the state-of the art regarding the two central fields of the thesis: (i) polyfunctional and branched poly(ester)s in Chapter 1.1 as well as (ii) the development of new poly(ester) based block copolymers with functional methacrylates (Chapter 1.2). Chapter 2 deals with the synthesis of new, non-linear poly(ester) structures. In Chapter 2.1, the synthesis of poly(lactide)-based multiarm stars, prepared via a grafting-from method, is described. The hyperbranched poly(ether)-poly(ol) poly(glycerol) is employed as a hydrophilic core molecule. The resulting star block copolymers exhibit potential as phase transfer agents and can stabilize hydrophilic dyes in a hydrophobic environment. In Chapter 2.2, this approach is expanded to poly(glycolide) multiarm star polymers. The problem of the poor solubility of linear poly(glycolide)s in common organic solvents combined with an improvement of the thermal properties has been approached by the reduction of the total chain length. In Chapter 2.3, the first successful synthesis of hyperbranched poly(lactide)s is presented. The ring-opening, multibranching copolymerization of lactide with the “inimer” 5HDON (a hydroxyl-functional lactone monomer) was carefully examined. Besides a precise molecular characterization involving the determination of the degree of branching, we were able to put forward a reaction model for the formation of branching during polymerization. Several innovative approaches to amphiphilic poly(ester)/poly(methacrylate)-based block copolymers are presented in the third part of the thesis (Chapter 3). Block copolymer build-up especially relies on the combination of ring-opening and living radical polymerization. Atom transfer radical polymerization has been successfully combined with lactide ring-opening, using a “double headed” initiator. This strategy allowed for the realization of poly(lactide)-block-poly(2-hydroxyethyl methacrylate) copolymers, which represent promising materials for tissue engineering scaffolds with anti-fouling properties (Chapter 3.1). The two-step/one-pot approach forgoes the use of protecting groups for HEMA by a careful selection of the reaction conditions. A series of potentially biocompatible and partially biodegradable homo- and block copolymers is described in Chapter 3.2. In order to create a block copolymer with a comparably strong hydrophilic character, a new acetal-protected glycerol monomethacrylate monomer (cis-1,3- benzylidene glycerol methacrylate/BGMA) was designed. The hydrophobic poly(BGMA) could be readily transformed into the hydrophilic and water-soluble poly(iso-glycerol methacrylate) (PIGMA) by mild acidic hydrolysis. Block copolymers of PIGMA and poly(lactide) exhibited interesting spherical aggregates in aqueous environment which could be significantly influenced by variation of the poly(lactide)s stereo-structure. In Chapter 3.3, pH-sensitive poly(ethylene glycol)-b-PBGMA copolymers are described. At slightly acidic pH values (pH 4/37°C), they decompose due to a polarity change of the BGMA block caused by progressing acetal cleavage. This stimuli-responsive behavior renders the system highly attractive for the targeted delivery of anti-cancer drugs. In Chapter 3.4, which was realized in cooperation, the concept of biocompatible, amphiphilic poly(lactide) based polymer drug conjugates, was pursued. This was accomplished in the form of fluorescently labeled poly(HPMA)-b-poly(lactide) copolymers. Fluorescence correlation spectroscopy (FCS) of partially biodegradable block copolymer aggregates exhibited fast cellular uptake by human cervix adenocarcinoma cells without showing toxic effects in the examined concentration range (Chapter 4.1). The current state of further projects which will be pursued in future studies is addressed in Chapter 4. This covers the synthesis of biocompatible star block copolymers (Chapter 4.2) and the development of new methacrylate monomers for biomedical applications (Chapters 4.3 and 4.4). Finally, the further investigation of hydroxyl-functional lactones and carbonates which are promising candidates for the synthesis of new hydrophilic linear or hyperbranched biopolymers, is addressed in Chapter 4.5.

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Poly(ethylene glycol) (PEG) is used in a broad range of applications due to its unique combination of properties and is approved use in formulations for body-care products, edibles and medicine. This thesis aims at the synthesis and characterization of novel heterofunctional PEG structures and the establishment of diethyl squarate as a suitable linker for the covalent attachment to proteins. Chapter 1 is an introduction on the properties and applications of PEG as well as the fascinating chemistry of squaric acid derivatives. In Chapter 1.1, the synthesis and properties of PEG are described, and the versatile applications of PEG derivatives in everyday products are emphasized with a focus on PEG-based pharmaceuticals and nonionic surfactants. This chapter is written in German, as it was published in the German Journal Chemie in unserer Zeit. Chapter 1.2 deals with PEGs major drawbacks, its non-biodegradability, which impedes parenteral administration of PEG conjugates with polyethers exceeding the renal excretion limit, although these would improve blood circulation times and passive tumor targeting. This section gives a comprehensive overview of the cleavable groups that have been implemented in the polyether backbone to tackle this issue as well as the synthetic strategies employed to accomplish this task. Chapter 1.3 briefly summarizes the chemical properties of alkyl squarates and the advantages in protein conjugation chemistry that can be taken from its use as a coupling agent. In Chapter 2, the application of diethyl squarate as a coupling agent in the PEGylation of proteins is illustrated. Chapter 2.1 describes the straightforward synthesis and characterization of squaric acid ethyl ester amido PEGs with terminal hydroxyl functions or methoxy groups. The reactivity and selectivity of theses activated PEGs are explored in kinetic studies on the reactions with different lysine and other amino acid derivatives, followed by 1H NMR spectroscopy. Further, the efficient attachment of the novel PEGs to a model protein, i.e., bovine serum albumin (BSA), demonstrates the usefulness of the new linker for the PEGylation with heterofunctional PEGs. In Chapter 2.3 initial studies on the biocompatibility of polyether/BSA conjugates synthesized by the squaric acid mediated PEGylation are presented. No cytotoxic effects on human umbilical vein endothelial cells exposed to various concentrations of the conjugates were observed in a WST-1 assay. A cell adhesion molecule - enzyme immunosorbent assay did not reveal the expression of E-selectin or ICAM-1, cell adhesion molecules involved in inflammation processes. The focus of Chapter 3 lies on the syntheses of novel heterofunctional PEG structures which are suitable candidates for the squaric acid mediated PEGylation and exhibit superior features compared to established PEGs applied in bioconjugation. Chapter 3.1 describes the synthetic route to well-defined, linear heterobifunctional PEGs carrying a single acid-sensitive moiety either at the initiation site or at a tunable position in the polyether backbone. A universal concept for the implementation of acetal moieties into initiators for the anionic ring-opening polymerization (AROP) of epoxides is presented and proven to grant access to the degradable PEG structures aimed at. The hydrolysis of the heterofunctional PEG with the acetal moiety at the initiating site is followed by 1H NMR spectroscopy in deuterium oxide at different pH. In an exploratory study, the same polymer is attached to BSA via the squarate acid coupling and subsequently cleaved from the conjugate under acidic conditions. Furthermore, the concept for the generation of acetal-modified AROP initiators is demonstrated to be suitable for cholesterol, and the respective amphiphilic cholesteryl-PEG is cleaved at lowered pH. In Chapter 3.2, the straightforward synthesis of α-amino ω2-dihydroxyl star-shaped three-arm PEGs is described. To assure a symmetric length of the hydroxyl-terminated PEG arms, a novel AROP initiator is presented, who’s primary and secondary hydroxyl groups are separated by an acetal moiety. Upon polymerization of ethylene oxide for these functionalities and subsequent cleavage of the acid-labile unit no difference in the degree of polymerization is seen for both polyether fragments.