908 resultados para Polyelectrolyte complexes
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The goal of this study was to find a new approach to modify chemically the properties of paper by improving fiber quality. This Master’s thesis includes the multiple polymer treatment in general and themeasurement methods with which the formation of multilayers and complexes can be noticed. The treatment by an oppositely charged dual polymer system is a good approach to increase paper strength. In this work, starch, a cationic polymer, and carboxymethyl cellulose (CMC), an anionic polymer, were used step-by-step to improve paper strength. The adsorption of cationic starch and CMC on cellulose fibers were analyzed via polyelectrolyte titration. The results showed that paper strength was enhanced slightly with a layer-by-layer assembly of the polymers. However, if the washing stage, which was required for layer-by-layer assembly, was eliminated, the starch/CMC complex was deposited on fibers more efficiently, and the paper strength was improved more significantly.
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Thèse numérisée par la Division de la gestion de documents et des archives de l'Université de Montréal.
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This work aimed at the production of stabilized derivatives of Thermomyces lanuginosus lipase (TLL) by multipoint covalent immobilization of the enzyme on chitosan-based matrices. The resulting biocatalysts were tested for synthesis of biodiesel by ethanolysis of palm oil. Different hydrogels were prepared: chitosan alone and in polyelectrolyte complexes (PEC) with kappa-carrageenan, gelatin, alginate, and polyvinyl alcohol (PVA). The obtained supports were chemically modified with 2,4,6-trinitrobenzene sulfonic acid (TNBS) to increase support hydrophobicity, followed by activation with different agents such as glycidol (GLY), epichlorohydrin (EPI), and glutaraldehyde (GLU). The chitosan-alginate hydrogel, chemically modified with TNBS, provided derivatives with higher apparent hydrolytic activity (HA(app)) and thermal stability, being up to 45-fold more stable than soluble lipase. The maximum load of immobilized enzyme was 17.5 mg g(-1) of gel for GLU, 7.76 mg g(-1) of gel for GLY, and 7.65 mg g(-1) of gel for EPI derivatives, the latter presenting the maximum apparent hydrolytic activity (364.8 IU g(-1) of gel). The three derivatives catalyzed conversion of palm oil to biodiesel, but chitosan-alginate-TNBS activated via GLY and EPI led to higher recovered activities of the enzyme. Thus, this is a more attractive option for both hydrolysis and transesterification of vegetable oils using immobilized TLL, although industrial application of this biocatalyst still demands further improvements in its half-life to make the enzymatic process economically attractive.
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The focus of the work reported in this thesis was to study and to clarify the effect of polyelectrolyte multilayer surface treatment on inkjet ink spreading, absorption and print quality. Surface sizing with a size press, film press with a pilot scale coater, and spray coating, have been used to surface treat uncoated wood-free, experimental wood-free and pigmentcoated substrates. The role of the deposited cationic (polydiallydimethylammonium chloride, PDADMAC) and anionic (sodium carboxymethyl cellulose, NaCMC) polyelectrolyte layers with and without nanosilica, on liquid absorption and spreading was studied in terms of their interaction with water-based pigmented and dye-based inkjet inks. Contact angle measurements were made in attempt to explain the ink spreading and wetting behavior on the substrate. First, it was noticed that multilayer surface treatment decreased the contact angle of water, giving a hydrophilic character to the surface. The results showed that the number of cationic-anionic polyelectrolyte layers or the order of deposition of the polyelectrolytes had a significant effect on the print quality. This was seen for example as a higher print density on layers with a cationic polyelectrolyte in the outermost layer. The number of layers had an influence on the print quality; the print density increased with increasing number of layers, although the increase was strongly dependent on ink formulation and chemistry. The use of nanosilica clearly affected the rate of absorption of polar liquids, which also was seen as a higher density of the black dye-based print. Slightly unexpected, the use of nanosilica increased the tendency for lateral spreading of both the pigmented and dye-based inks. It was shown that the wetting behavior and wicking of the inks on the polyelectrolyte coatings was strongly affected by the hydrophobicity of the substrate, as well as by the composition or structure of the polyelectrolyte layers. Coating only with a cationic polyelectrolyte was not sufficient to improve dye fixation, but it was demonstrated that a cationic-anionic-complex structure led to good water fastness. A threelayered structure gave the same water fastness values as a five-layered structure. Interestingly, the water fastness values were strongly dependent not only on the formed cation-anion polyelectrolyte complexes but also on the tendency of the coating to dissolve during immersion in water. Results showed that by optimizing the chemistry of the layers, the ink-substrate interaction can be optimized.
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This work addresses the development and characterization of porous chitosan-alginate based polyelectrolyte complexes, obtained by using two different proportions of the biocompatible surfactant Pluronic F68. These biomaterials are proposed for applications as biodegradable and biocompatible wound dressing and/or scaffolds. The results indicate that thickness, roughness, porosity and liquid uptake of the membranes increase with the amount of surfactant used, while their mechanical properties and stability in aqueous media decrease. Other important properties such as color and surface hydrophilicity (water contact angle) are not significantly altered or did not present a clear tendency of variation with the increase of the amount of surfactant added to the polyelectrolyte complexes, such as real density, average pore diameter, total pore volume and surface area. The prepared biomaterials were not cytotoxic to L929 cells. In conclusion, it is possible to tune the physicochemical properties of chitosan-alginate polyelectrolyte complexes, through the variation of the proportion of surfactant (Pluronic F68) added to the mixture, so as to enable the desired application of these biomaterials.
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Implantable devices must exhibit mechanical properties similar to native tissues to promote appropriate cellular behavior and regeneration. Herein, we report a new membrane manufacture method based on the synthesis of polyelectrolyte complexes (PECs) that exhibit saloplasticity, i.e. variable physical-chemistry using salt as a plasticizer. This is a Green Chemistry approach, as PECs generate structures that are stabilized solely by reversible electrostatic interactions, avoiding the use of harmful crosslinkers completely. Furthermore, natural polyelectrolytes - chitosan and alginate - were used. Upon mixing them, membranes were obtained by drying the PECs at 37ºC, yielding compact PECs without resorting to organicsolvents. The plasticizing effect of salt after synthesis was shown by measuring tensile mechanical properties, which were lower when samples were immersed in high ionic strength solutions.Salt was also used during membrane synthesis in different quan- tities (0 M, 0.15 M and 0.5 M in NaCl) yielding structures with no significant differences in morphology and degradation (around 15% after 3 months in lysozyme). However, swelling was higher (about 10x) when synthesized in the presence of salt. In vitro cell studies using L929 fibroblasts showed that cells adhered and proliferated preferentially in membranes fabricated in the presence of salt (i.e. the membranes with lower tensile strength). Structures with physical-chemical properties controlled with precision open a path to tissue engineering strategies depending on fine tuning mechanical properties and cellular adhesion simply by changing ionic strength during membrane manufacture
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The regeneration of soft biological tissues requires new substitutes that exhibit mechanical properties similar to the native tissue. Herein, thin saloplastic membranes with tunable physical properties are prepared by complexation of chitosan and alginate solutions containing different concentrations of sodium chloride. Polyelectrolyte complexes (PECs) are transferred to flat Petri dishes for compaction into membrane shapes by sedimentation and solvent evaporation. All membranes are resistant to degradation by lysozyme and are stable in solutions with pH values between 1 and 13. Immersing the different membranes in new doping solutions of increasing salt concentrations triggers the typical saloplastic behavior, with a high water absorption and decrease of the rigidity and ultimate tensile strength. The range of such variations is tuned by the sodium chloride amount used in the synthesis: high salt concentrations increase water uptake and tensile moduli, while decreasing the ultimate strength. Cellular assays demonstrate high proliferation rates and viability of L929 fibroblasts seeded onto the most rigid membranes. The results validate the use of saloplastic membranes as soft tissue substitutes for future biomedical applications.
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Water-soluble cationic copolymers and hydrogels were synthesized by radical copolymerization of [2-(methacryloyloxy)ethyl]trimetilylammonium chloride (MADQUAT) and 2-hydroxyethylacrylate (HEA). The kinetics of copolymerization has been studied and the reactivity ratios were determined. It was found that MADQUAT exhibits higher reactivity in copolymerization. The complexation between linear MADQUAT-HEA and linear poly(acrylic acid) (PAA) has been studied in aqueous solutions at different pH. It results in the formation of insoluble polyelectrolyte complexes, whose composition and stability to aggregate depends on MADQUAT content in copolymers and pH. The hydrogels were synthesized by three-dimensional radical copolymerization of MADQUAT and HEA in the presence of a crosslinker. The effects of the feed mixture composition on yield and swelling properties of the hydrogels were studied. The interactions of these hydrogels with linear PAA result in formation of gel-polyelectrolyte complexes and contraction of the samples. It was found that the contraction depends on copolymer composition, PAA molecular weight, and solution pH. (c) 2006 Wiley Periodicals, Inc.
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This study investigates the production of alginate microcapsules, which have been coated with the polysaccharide chitosan, and evaluates some of their properties with the intention of improving the gastrointestinal viability of a probiotic (Bifidobacterium breve) by encapsulation in this system. The microcapsules were dried by a variety of methods, and the most suitable was chosen. The work described in this Article is the first report detailing the effects of drying on the properties of these microcapsules and the viability of the bacteria within relative to wet microcapsules. The pH range over which chitosan and alginate form polyelectrolyte complexes was explored by spectrophotometry, and this extended into swelling studies on the microcapsules over a range of pHs associated with the gastrointestinal tract. It was shown that chitosan stabilizes the alginate microcapsules at pHs above 3, extending the stability of the capsules under these conditions. The effect of chitosan exposure time on the coating thickness was investigated for the first time by confocal laser scanning microscopy, and its penetration into the alginate matrix was shown to be particularly slow. Coating with chitosan was found to increase the survival of B. breve in simulated gastric fluid as well as prolong its release upon exposure to intestinal pH.
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Dispersions composed of polyelectrolyte complexes based on chitosan and poly(methacrylic acid), PMAA, were obtained by the dropping method and template polymerization. The effect of molecular weight of PMAA and ionic strength on the formation of chitosan/poly(methacrylic acid), CS/PMAA, complexes was evaluated using the dropping method. The increase in molecular weight of PMAA inhibited the formation of insoluble complexes, while the increase in ionic strength first favored the formation of the complex followed by inhibiting it at higher concentrations. The polyelectrolyte complexation was strongly dependent on macromolecular dimensions, both in terms of molecular weight and of coil expansion/contraction driven by polyelectrolyte effect. The resultant particles from dropping method and template polymerization were characterized as having regions with different charge densities: chitosan predominating in the core and poly(methacrylic acid) at the surface, the particles being negatively charged, as a consequence. Albumin was adsorbed on templatepolymerized CS/PMAA complexes (after crosslinking with glutardialdehyde) and pH was controlled in order to obtain two conditions: (i) adsorption of positively charged albumin, and (ii) adsorption of albumin at its isoelectric point. Adsorption isotherms and zeta potential measurements showed that albumin adsorption was controlled by hydrogen bonding/van der Waals interactions and that brushlike structures may enhance adsorption of albumin on these particles
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Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES)
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Hochgeladene semiflexible kationische und anionische Polyelektrolyte wurden mit niedermolekularen Tensiden zu Polyelektrolyt-Tensid-Komplexen (PETK) umgesetzt und in organischen Lösungsmitteln mit Streumethoden und Rasterkraftmikroskopie charakterisiert. Die synthetisierten PETK wurden anschließend, mit dem Ziel einer strukturkontrollierten Komplexbildung, für die Bildung von Interpolyelektrolytkomplexen (IPEK) in organischen Lösungsmitteln verwendet und anhand ihres Komplexbildungsverhaltens mit wässrigen Systemen verglichen. Die Umsetzung von zylindrischen Polymerbürsten mit Poly(styrolsulfonat)-, bzw. Poly(2-vinylpyridinium)-Seitenketten mit entgegengesetzt geladenen Tensiden verlief, trotz einer Graftingdichte von eins, quantitativ. Mit Streumethoden konnte gezeigt werden, dass die gebildeten PETK in Lösung als molekulare Zylinder vorliegen. Die Synthese von pUC19-DNA-Tensidkomplexen (DNA-TK), die sich in Alkoholen gut lösen, ist nur in stark basischer Lösung gelungen. Während der Charakterisierung der DNA-TK mit Streumethoden zeigte sich eine starke Abhängigkeit des Trägheitsradius von dem Verhältnis DNA-/Salz+. Die Bildung von IPEK aus hochgeladenen Polyelektrolyt-Bürsten bzw. PETK-Bürsten wurde an verschiedenen Beispielen in Wasser und DMF durchgeführt und mit Streumethoden verfolgt. Alle Systeme zeigten ein zu der IPEK-Bildung von linearen Polyelektrolyten analoges Komplexbildungsverhalten. Bei der Komplexierung von Poly(styrolsulfonat)-Bürsten-Tensidkomplexen mit kommerziellen Polyamidoamin-G5-Dendrimeren (PAMAM) oder Poly(ethylenoxid) modifizierten Poly(ethylenimin)-Bürsten hingegen wurden über den gesamten Gewichtsbruchbereich mit Streumethoden und AFM zylindrische Aggregate gefunden, die den Dimensionen der Poly(styrolsulfonat)-Bürsten-Tensidkomplexe entsprechen. Durch statistische Höhenanalyse der AFM-Bilder wurde ein linearer Zusammenhang zwischen der Komplexhöhe und dem Gewichtsbruch an PAMAM, bzw. PEI-PEO gefunden, der auf die Zunahme der Molmasse der Komplexe durch Wachstum entlang des Zylinderdurchmessers hindeutet. Die Bildung von Aggregaten, mit mehr als einem Polyanion, wurde nicht beobachtet.
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Microparticelle a base di complessi polielettrolitici di Chitosano/Pectina per il rilascio nasale di Tacrina cloridrato. Lo scopo di questo studio è stata la ricerca di nuove formulazioni solide per la somministrazione nasale di Tacrina cloridrato allo scopo di ridurre l’eccessivo effetto di primo passaggio epatico ed aumentarne la biodisponibilità a livello del Sistema Nervoso Centrale. La Tacrina è stata incapsulata in microparticelle mucoadesive a base di complessi elettrolitici di chitosano e pectina. Le microparticelle sono state preparate mediante due diversi approcci tecnologici (spray-drying e spray-drying/liofilizzazione) e analizzate in termini di caratteristiche dimensionali, morfologiche e chimico-fisiche. Nanoparticelle di Chitosano reticolate con Sodio Cromoglicato per il trattamento della rinite allergica. Il Sodio Cromoglicato è uno dei farmaci utilizzati per il trattamento della rinite allergica. Come noto, la clearance mucociliare provoca una rapida rimozione dei farmaci in soluzione dalla cavità nasale, aumentando così il numero di somministrazioni giornaliere e, di conseguenza, riducendo la compliance del paziente. Per ovviare a tale problema, si è pensato di includere il sodio cromoglicato in nanoparticelle di chitosano, un polimero capace di aderire alla mucosa nasale, prolungare il contatto della formulazione con il sito di applicazione e ridurre il numero di somministrazioni giornaliere. Le nanoparticelle ottenute sono state caratterizzate in termini di dimensioni, resa, efficienza di incapsulazione e caricamento del farmaco, potenziale zeta e caratteristiche mucoadesive. Analisi quantitativa di Budesonide amorfa tramite calorimetria a scansione differenziale. È stato sviluppato un nuovo metodo quantitativo allo stato solido basato sulla Calorimetria a Scansione Differenziale (DSC) in grado di quantificare in modo selettivo e accurato la quantità di Budesonide amorfa presente in una miscela solida. Durante lo sviluppo del metodo sono stati affrontati problemi relativi alla convalida di metodi analitici su campioni solidi quali la miscelazione di polveri solide per la preparazione di miscele standard e il calcolo della precisione.
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Interpolyelektrolytkomplexe bilden sich spontan bei Mischung von Lösungen entgegengesetzt geladener Polyelektrolyte. Dabei sind die Haupttriebkräfte der Entropiegewinn durch die Freisetzung von niedermolekularen Gegenionen sowie die elektrostatischen Wechselwirkungen. In der letzten Zeit sind sie aufgrund ihrer zahlreichen biologischen und technischen Anwendungen in den Fokus des wissenschaftlichen Interesses gerückt. Vor allem die Anwendung von Komplexen aus DNA und kationischen Polyelektrolyten in der nonviralen Gentherapie wird vielfältig diskutiert. rnIn dieser Arbeit wird eine Polystyrolsulfonat-Bürste mit einer Pfropfdichte von 100 % mit einem kationischen Tensid komplexiert und der Komplex in verschiedenen organischen Lösungsmitteln charakterisiert. Dabei zeigt sich eine signifikante Abhängigkeit des Lösungsverhaltens von der Art und der Konzentration zugesetzter Salze. Dieser Polyelektrolyt-Tensid-Komplex wird anschließend als vereinfachtes Modellsystem für die Komplexierung von DNA verwendet. Als kationische Komponente dient zunächst ein kommerzielles PAMAM-Dendrimer der 5. Generation. Dabei steht die Erhaltung der zylindrischen Topologie der anionischen Polyelektrolytbürste in den gebildeten Komplexen im Vordergrund. Durch Variation des Lösungsmittels und des Protonierungsgleichgewichts werden die experimentellen Bedingungen eingegrenzt, bei denen eine solche topologische Kontrolle möglich ist. Es zeigt sich, dass durch die Verwendung von aprotischen organischen Lösungsmitteln gute Erfolge erzielt werden können. Des Weiteren wird das Komplexierungsverhalten stark durch den Zusatz einer Säure oder einer Base beeinflusst, sodass eine topologische Kontrolle mit einem großen Überschuss einer organischen Base auch in protischen Lösungsmitteln wie Wasser und Methanol möglich wird. Anschließend wird das gleiche Polyanion noch mit einer geschützten Polylysin-Bürste in DMF komplexiert, was zur Bildung von kinetisch kontrollierten Aggregaten führt. Die Bildung dieser Aggregate kann durch den Zusatz eines großen Überschusses an Base verhindert werden und es werden zylindrische Komplexe erhalten, die nur aus einer Polylysin-Bürste bestehen. rn
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Der Einsatz von den Polyelektrolytkomplexen von DNA / RNA mit Polykationen oder Lipiden in der Gen-Therapie ist für Wissenschaftler von besonderem Interesse, da sie als Träger für den Transport von genetischem Material in lebende Zellen fungieren können. Interessant ist auch die Komplexbildung aus Gadolinium und Polykation, hier können die stabil gebildeten Aggregate als Kontrastmittel zur Anwendung in der Magnetresonanztomographie eingeführt werden. Ziel der vorliegenden Arbeit war es, strukturdefinierte, positiv geladene, polyvalente sperminanaloge Polymere zu synthetisieren. Durch die polyelektrolytische Natur erlauben solche Polymere die Komplexierung von mehr Gadolinium-Polyoxometalaten und wären deshalb sehr gut als Kontrastmittel geeignet. Aufbauend auf den Vorarbeiten, wurde insbesondere die Komplexbildung von kationischem Polymer mit der Green Fluorescent Protein DNA in physiologischem Salzgehalt untersucht. Die Beschreibung der Synthese im Rahmen dieser Arbeit zeigt, dass es mit dem entwickelten Syntheseprinzip, also unter Einsatz von orthogonaler Schutzgruppenchemie und funktionaler Transformation gelungen ist, durch einfache nukleophile Substitution die Kopplung der Elementareinheiten zu komplexeren, auch ionischen Tensiden durchzuführen. Die Komplexierung von Gadolinium-Polyoxometalat mit kationisch geladenem Polymer in reinem Wasser und in physiologischem Salzgehalt hat gezeigt, dass bei einem Ladungsverhältnis von ungefähr 2:1 stabile sphärische Komplexe gebildet werden. HeLa-Zellen zeigen keine hohe Empfindlichkeit gegenüber Polykation-POM-Komplexen, da deren toxische Wirkung nur einen Anteil toter Zellen von maximal 24 % zur Folge hatte. Die Bildqualität einer MRT-Aufnahme der gebildeten Polykation-POM-Komplexe wurde im Vergleich zu den reinen Gadolinium-Polyoxometalat-Lösungen erheblich verbessert. Die Komplexierung von DNA mit dem im Überschuss vorliegenden kationisch geladenen Polymer wurde mittels Rasterkraftmikroskopie, statischer sowie dynamischer Lichtstreuung untersucht. Die Molmasse und Größe der Polykation-DNA-Komplexe geben eindeutige Hinweise darauf, dass sich in physiologischer Salzlösung Multi-Ketten-Komplexe bilden. Neben der Untersuchung der Polymer-Komplexe wurde eine Reihe neuartiger multivalenter kationischer Tenside hergestellt, wobei ihre Eigenschaften beispielsweise mit Tensid B (C12N4), Tensid C (EG8N4) und Tensid F (EG8C12N4) in wässriger Lösung bei verschiedener Salzkonzentration im Vordergrund stehen.