4 resultados para Quaternized chitosans

em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha


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Zusammenfassung: Es sollten zum einen strukturell fixierte, perlenkettenartige Polyelektrolyte dargestellt werden. Dazu wurde lineares Poly-2-vinylpyridin(PVP) mit vinylfunktionalisierten, hydrophoben Quaternisierungsagentien zu einer Polyseife umgesetzt. Bei der Quaternisierungsreaktion ließ sich der Gehalt an hydrophoben Gruppen variieren, wodurch Polyseifen mit unterschiedlichen Ladungsdichten zugänglich wurden. Trotz vielfältiger Versuche war es dennoch nicht möglich, eine polymerisationsfähige Polyseife herzustellen, welche in wäßriger Lösung intramolekular micellisiert und die Überstruktur einer Perlenkette annimmt. Durch die Herstellung hochreiner PVP-Makromonomere konnten zylindrische Bürsten hergestellt werden. Durch Umsetzung der PVP-Bürsten mit Methyltosylat sind unter milden Reaktionsbedingungen nahezu vollständig umgesetzte positiv geladene Polyelektrolyte zugänglich. Durch eine Sulfonierung von Polystyrol-Polymakromonomeren wurden negativ geladene zylindrische Polyelektrolyte erhalten.Das Verhalten dieser Polyelektrolyte in verdünnter wäßriger Lösung wurde mit der statischen und der dynamischen Lichtstreuung untersucht. Dabei deuten die statischen Messungen darauf hin, daß deren Verhalten in verdünnter wäßriger Lösung maßgeblich durch die osmotische Aktivität der Gegenionen bestimmt wird.Durch eine Quaternisierung der PVP-Bürsten mit langkettigen Reagentien konnten hochverzweigte Polyelektrolytarchitekturen hergestellt werden. Dabei läßt sich die Tatsache, daß eine Quaternisierung mit solchen Reagentien einen nur unwesentlichen Einfluß auf die Struktur der Bürste hat, nicht durch einfache Überlegungen erklären. Dennoch scheinen die langkettigen Seitenketten die Ausbildung geordneter Strukturen innerhalb von Domänen an der Oberfläche zu induzieren.

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The collapse of linear polyelectrolyte chains in a poor solvent: When does a collapsing polyelectrolyte collect its counter ions? The collapse of polyions in a poor solvent is a complex system and is an active research subject in the theoretical polyelectrolyte community. The complexity is due to the subtle interplay between hydrophobic effects, electrostatic interactions, entropy elasticity, intrinsic excluded volume as well as specific counter-ion and co-ion properties. Long range Coulomb forces can obscure single molecule properties. The here presented approach is to use just a small amount of screening salt in combination with a very high sample dilution in order to screen intermolecular interaction whereas keeping intramolecular interaction as much as possible (polyelectrolyte concentration cp ≤ 12 mg/L, salt concentration; Cs = 10^-5 mol/L). This is so far not described in literature. During collapse, the polyion is subject to a drastic change in size along with strong reduction of free counterions in solution. Therefore light scattering was utilized to obtain the size of the polyion whereas a conductivity setup was developed to monitor the proceeding of counterion collection by the polyion. Partially quaternized PVP’s below and above the Manning limit were investigated and compared to the collapse of their uncharged precursor. The collapses were induced by an isorefractive solvent/non-solvent mixture consisting of 1-propanol and 2-pentanone, with nearly constant dielectric constant. The solvent quality for the uncharged polyion could be quantified which, for the first time, allowed the experimental investigation of the effect of electrostatic interaction prior and during polyion collapse. Given that the Manning parameter M for QPVP4.3 is as low as lB / c = 0.6 (lB the Bjerrum length and c the mean contour distance between two charges), no counterion binding should occur. However the Walden product reduces with first addition of non solvent and accelerates when the structural collapse sets in. Since the dielectric constant of the solvent remains virtually constant during the chain collapse, the counterion binding is entirely caused by the reduction in the polyion chain dimension. The collapse is shifted to lower wns with higher degrees of quaternization as the samples QPVP20 and QPVP35 show (M = 2.8 respectively 4.9). The combination of light scattering and conductivity measurement revealed for the first time that polyion chains already collect their counter ions well above the theta-dimension when the dimensions start to shrink. Due to only small amounts of screening salt, strong electrostatic interactions bias dynamic as well as static light scattering measurements. An extended Zimm formula was derived to account for this interaction and to obtain the real chain dimensions. The effective degree of dissociation g could be obtained semi quantitatively using this extrapolated static in combination with conductivity measurements. One can conclude the expansion factor a and the effective degree of ionization of the polyion to be mutually dependent. In the good solvent regime g of QPVP4.3, QPVP20 and QPVP35 exhibited a decreasing value in the order 1 > g4.3 > g20 > g35. The low values of g for QPVP20 and QPVP35 are assumed to be responsible for the prior collapse of the higher quaternized samples. Collapse theory predicts dipole-dipole attraction to increase accordingly and even predicts a collapse in the good solvent regime. This could be exactly observed for the QPVP35 sample. The experimental results were compared to a newly developed theory of uniform spherical collapse induced by concomitant counterion binding developed by M. Muthukumar and A. Kundagrami. The theory agrees qualitatively with the location of the phase boundary as well as the trend of an increasing expansion with an increase of the degree of quaternization. However experimental determined g for the samples QPVP4.3, QPVP20 and QPVP35 decreases linearly with the degree of quaternization whereas this theory predicts an almost constant value.

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Polykationen bilden mit DNA spontan Komplexe. Triebkraft ist der Entropiegewinn durch Freisetzung der Gegenionen auf den Polyelektrolyten. Solche Komplexe können in der Gentechnik verwendet werden, um fremde DNA in eine Zelle einzuschleusen. Dies bezeichnet man als Gentransfektion. In dieser Arbeit werden erstmals bürstenförmige Polykationen mit wurmförmiger Topologie zur Gentransfektion verwendet. Dazu wurde die Komplexierung von DNA mit Bürstenpolymeren mit Poly-L-Lysin- und Polyvinylpyridinium-Seitenketten und linearen Polykationen untersucht. Die Komplexbildung verläuft in allen Fällen kinetisch kontrolliert, alle Polykationen bilden sphärische Komplexe, die Topologie hat keinen Einfluss auf die Komplexgröße. Komplexe aus Bürstenpolymeren transfizieren mehr als 25% der gesamten Zellpopulation bei Schweinehirnendothelzellen. Gegenüber dem kommerziellen Transfektionsmittel Lipofektamin konnte eine deutliche Steigerung um bis zu 400% erreicht werden. Komplexe, die mit linearen Analoga gebildet wurden, zeigten bei gleicher Komplexgröße Transfektionsraten unter 5%. Freisetzungsversuche zeigen, dass die Komplexe, die gut transfizieren, recht labil sind, also die DNA unter Kompetitoreinfluss freisetzen können. Stabile Komplexe haben geringe Transfektionseffizienzen. Ebenso wichtig ist der Schutz der DNA vor Abbau durch DNase. Die PVP-Bürste bietet als einziges der untersuchten Polykationen diesen Schutz und zeigt auch die besten Transfektionsraten. Zusätzlich zu der medizinischen Anwendung wurde die Kinetik der Komplexbildung untersucht. Dazu wurde ein spezieller Aufbau entwickelt, der es ermöglicht die Streuintensität der Komplexlösung bei kleinen Streuwinkeln zeitaufgelöst im Millisekundenbereich zu detektieren. Die Komplexbildung verläuft diffusionskontrolliert, im Bereich von Ladungsverhältnissen (positive zu negativen Ladungen) von 1.8 bis 4.0 schließt sich ein fraktales Wachstum an.

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Chapter 1 of this thesis comprises a review of polyether polyamines, i.e., combinations of polyether scaffolds with polymers bearing multiple amino moieties. Focus is laid on controlled or living polymerization methods. Furthermore, fields in which the combination of cationic, complexing, and pH-sensitive properties of the polyamines and biocompatibility and water-solubility of polyethers promise enormous potential are presented. Applications include stimuli-responsive polymers with a lower critical solution temperature (LCST) and/or the ability to gel, preparation of shell cross-linked (SCL) micelles, gene transfection, and surface functionalization.rnIn Chapter 2, multiaminofunctional polyethers relying on the class of glycidyl amine comonomers for anionic ring-opening polymerization (AROP) are presented. In Chapter 2.1, N,N-diethyl glycidyl amine (DEGA) is introduced for copolymerization with ethylene oxide (EO). Copolymer microstructure is assessed using online 1H NMR kinetics, 13C NMR triad sequence analysis, and differential scanning calorimetry (DSC). The concurrent copolymerization of EO and DEGA is found to result in macromolecules with a gradient structure. The LCSTs of the resulting copolymers can be tailored by adjusting DEGA fraction or pH value of the environment. Quaternization of the amino moieties by methylation results in polyelectrolytes. Block copolymers are used for PEGylated gold nanoparticle formation. Chapter 2.2 deals with a glycidyl amine monomer with a removable protecting group at the amino moiety, for liberation of primary amines at the polyether backbone, which is N,N-diallyl glycidyl amine (DAGA). Its allyl groups are able to withstand the harsh basic conditions of AROP, but can be cleaved homogeneously after polymerization. Gradient as well as block copolymers poly(ethylene glycol)-PDAGA (PEG-PDAGA) are obtained. They are analyzed regarding their microstructure, LCST behavior, and cleavage of the protecting groups. rnChapter 3 describes applications of multi(amino)functional polyethers for functionalization of inorganic surfaces. In Chapter 3.1, they are combined with an acetal-protected catechol initiator, leading to well-defined PEG and heteromultifunctional PEG analogues. After deprotection, multifunctional PEG ligands capable of attaching to a variety of metal oxide surfaces are obtained. In a cooperative project with the Department of Inorganic and Analytical Chemistry, JGU Mainz, their potential is demonstrated on MnO nanoparticles, which are promising candidates as T1 contrast agents in magnetic resonance imaging. The MnO nanoparticles are solubilized in aqueous solution upon ligand exchange. In Chapter 3.2, a concept for passivation and functionalization of glass surfaces towards gold nanorods is developed. Quaternized mPEG-b-PqDEGA diblock copolymers are attached to negatively charged glass surfaces via the cationic PqDEGA blocks. The PEG blocks are able to suppress gold nanorod adsorption on the glass in the flow cell, analyzed by dark field microscopy.rnChapter 4 highlights a straightforward approach to poly(ethylene glycol) macrocycles. Starting from commercially available bishydroxy-PEG, cyclic polymers are available by perallylation and ring-closing metathesis in presence of Grubbs’ catalyst. Purification of cyclic PEG is carried out using α-cyclodextrin. This cyclic sugar derivative forms inclusion complexes with remaining unreacted linear PEG in aqueous solution. Simple filtration leads to pure macrocycles, as evidenced by SEC and MALDI-ToF mass spectrometry. Cyclic polymers from biocompatible precursors are interesting materials regarding their increased blood circulation time compared to their linear counterparts.rnIn the Appendix, A.1, a study of the temperature-dependent water-solubility of polyether copolymers is presented. Macroscopic cloud points, determined by turbidimetry, are compared with microscopic aggregation phenomena, monitored by continuous wave electron paramagnetic resonance (CW EPR) spectroscopy in presence of the amphiphilic spin probe and model drug (2,2,6,6-tetramethylpiperidin-1-yl)oxyl (TEMPO). These thermoresponsive polymers are promising candidates for molecular transport applications. The same techniques are applied in Chapter A.2 to explore the pH-dependence of the cloud points of PEG-PDEGA copolymers in further detail. It is shown that the introduction of amino moieties at the PEG backbone allows for precise manipulation of complex phase transition modes. In Chapter A.3, multi-hydroxyfunctional polysilanes are presented. They are obtained via copolymerization of the acetal-protected dichloro(isopropylidene glyceryl propyl ether)methylsilane monomer. The hydroxyl groups are liberated through acidic work-up, yielding versatile access to new multifunctional polysilanes.