TY - JOUR A1 - Chea, Sany A1 - Schade, Kristin A1 - Reinicke, Stefan A1 - Bleul, Regina A1 - Rosencrantz, Ruben R. T1 - Synthesis and self-assembly of cytidine- and guanosine-based copolymers JF - Polymer Chemistry N2 - The base pairing property and the "melting" behavior of oligonucleotides can take advantage to develop new smart thermoresponsive and programmable materials. Complementary cytidine- (C) and guanosine- (G) based monomers were blockcopolymerized using RAFT polymerization technique with poly-(N-(2-hydroxypropyl) methacrylamide) (pHPMA) as the hydrophilic macro chain transfer agent (macro-CTA). C-C, G-G and C-G hydrogen bond interactions of blockcopolymers with respectively C and G moieties have been investigated using SEM, DLS and UV-Vis. Mixing and heating both complementary copolymers resulted in reforming new aggregates. Due to the ribose moiety of the isolated nucleoside-bearing blockcopolymers, the polarity is increased for better solubility. Self-assembly investigations of these bioinspired compounds are the crucial basis for the development of potential future drug delivery systems. Y1 - 2022 U6 - https://doi.org/10.1039/d2py00615d SN - 1759-9954 SN - 1759-9962 VL - 13 IS - 35 SP - 5058 EP - 5067 PB - Royal Society of Chemistry CY - Cambridge ER - TY - JOUR A1 - Chea, Sany A1 - Nguyen, Khac Toan A1 - Rosencrantz, Ruben R. T1 - Microwave-Assisted Synthesis of 5 '-O-methacryloylcytidine Using the Immobilized Lipase Novozym 435 JF - Molecules N2 - Nucleobase building blocks have been demonstrated to be strong candidates when it comes to DNA/RNA-like materials by benefiting from hydrogen bond interactions as physical properties. Modifying at the 5 ' position is the simplest way to develop nucleobase-based structures by transesterification using the lipase Novozym 435. Herein, we describe the optimization of the lipase-catalyzed synthesis of the monomer 5 '-O-methacryloylcytidine with the assistance of microwave irradiation. Variable reaction parameters, such as enzyme concentration, molar ratio of the substrate, reaction temperature and reaction time, were investigated to find the optimum reaction condition in terms of obtaining the highest yield. KW - microwave irradiation KW - Novozym 435 KW - cytidine KW - monomer KW - smart materials Y1 - 2022 U6 - https://doi.org/10.3390/molecules27134112 SN - 1420-3049 VL - 27 IS - 13 PB - MDPI CY - Basel ER - TY - THES A1 - Chea, Sany T1 - Glycomaterials: From synthesis of glycoconjugates to potential biomedical applications T1 - Glykomaterialien: Von der Synthese von Glykokonjugaten zu potenziellen biomedizinischen Anwendungen N2 - The importance of carbohydrate structures is enormous due to their ubiquitousness in our lives. The development of so-called glycomaterials is the result of this tremendous significance. These are not exclusively used for research into fundamental biological processes, but also, among other things, as inhibitors of pathogens or as drug delivery systems. This work describes the development of glycomaterials involving the synthesis of glycoderivatives, -monomers and -polymers. Glycosylamines were synthesized as precursors in a single synthesis step under microwave irradiation to significantly shorten the usual reaction time. Derivatization at the anomeric position was carried out according to the methods developed by Kochetkov and Likhorshetov, which do not require the introduction of protecting groups. Aminated saccharide structures formed the basis for the synthesis of glycomonomers in β-configuration by methacrylation. In order to obtain α-Man-based monomers for interactions with certain α-Man-binding lectins, a monomer synthesis by Staudinger ligation was developed in this work, which also does not require protective groups. Modification of the primary hydroxyl group of a saccharide was accomplished by enzyme-catalyzed synthesis. Ribose-containing cytidine was transesterified using the lipase Novozym 435 and microwave irradiation. The resulting monomer synthesis was optimized by varying the reaction partners. To create an amide bond instead of an ester bond, protected cytidine was modified by oxidation followed by amide coupling to form the monomer. This synthetic route was also used to isolate the monomer from its counterpart guanosine. After obtaining the nucleoside-based monomers, they were block copolymerized using the RAFT method. Pre-synthesized pHPMA served as macroCTA to yield cytidine- or guanosine-containing block copolymer. These isolated block copolymers were then investigated for their self-assembly behavior using UV-Vis, DLS and SEM to serve as a potential thermoresponsive drug delivery system. N2 - Die Bedeutung von Kohlenhydratstrukturen ist immens, da sie in unserem Leben allgegenwärtig sind. Die Entwicklung sogenannter Glykomaterialien ist das Ergebnis dieser großen Bedeutung. Diese werden nicht nur zur Erforschung grundlegender biologischer Prozesse eingesetzt, sondern unter anderem auch als Hemmstoffe für Krankheitserreger oder als Wirkstofftransportsysteme. Die vorliegende Arbeit beschreibt die Entwicklung von Glycomaterialien durch die Synthese von Glycoderivaten, -monomeren und -polymeren. Glycosylamine wurden als Vorstufen in einem einzigen Syntheseschritt unter Mikrowellenbestrahlung synthetisiert, um die übliche Reaktionszeit deutlich zu verkürzen. Die Derivatisierung an der anomeren Position wurde nach den von Kochetkov und Likhorshetov entwickelten Methoden durchgeführt, die keine Einführung von Schutzgruppen erfordern. Die aminierten Saccharidstrukturen bildeten die Grundlage für die Synthese von Glycomonomeren in β-Konfiguration durch Methacrylierung. Um α-Man-basierte Monomere für Interaktionen mit bestimmten α-Man-bindenden Lektinen zu erhalten, wurde in dieser Arbeit eine Monomersynthese durch Staudinger-Ligation entwickelt, die ebenfalls keine Schutzgruppen erfordert. Die Modifizierung der primären Hydroxylgruppe eines Saccharids wurde durch enzymkatalysierte Synthese erreicht. Ribosehaltiges Cytidin wurde mit Hilfe der Lipase Novozym 435 und Mikrowellenbestrahlung umgeestert. Die resultierende Monomersynthese wurde durch Variation der Reaktionspartner optimiert. Um eine Amidbindung anstelle einer Esterbindung zu erzeugen, wurde geschütztes Cytidin durch Oxidation und anschließende Amidkupplung modifiziert, um das Monomer zu bilden. Dieser Syntheseweg wurde auch zur Isolierung des Monomers aus seinem Gegenstück Guanosin verwendet. Nach der Gewinnung der nukleosidbasierten Monomere wurden diese mit Hilfe der RAFT-Methode blockcopolymerisiert. Vorsynthetisiertes pHPMA diente als MakroCTA, um Cytidin- oder Guanosin-haltige Blockcopolymere zu erhalten. Diese isolierten Blockcopolymere wurden dann mit UV-Vis, DLS und SEM auf ihr Selbstorganisationsverhalten untersucht, um als potenzielles thermoresponsives Drug-Delivery-System zu dienen. KW - polymer chemistry KW - glyco chemistry KW - glycomonomer KW - glycopolymer KW - lectin KW - drug delivery KW - thermoresponsive KW - glycoconjugate KW - Glykochemie KW - Glykokonjugat KW - Glykomonomer KW - Glykopolymer KW - Lektin KW - Polymerchemie KW - thermoresponsiv KW - Drug Delivery Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-574240 ER -