999 resultados para Sistemas de liberação específica


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Chitosan is a natural biodegradable polymer with great potential for pharmaceutical applications due to its biocompatibility, high charge density , nontoxicity and mucoadhesion. Gel formation can be obtained by the interactions of chitosans with low molecular counterions such as polyphosphates, sulphates and crosslinking with glutaraldehyde. This gelling property of chitosan allows a wide range of applications such as coating of pharmaceuticals and food products, gel entrapment of biochemicals, whole cells, microorganisms and algae. One of its main applications is the synthesis of microspheres for coating of pharmaceuticals , magnetic particles an other substances. In such a way, we can build targeted drug delivery systems. In the present work, we applied the method of spraying and coagulation. The resulting microspheres, then, were characterized by optical microscopy

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Nas últimas décadas tem ocorrido um aumento expressivo da incidência de doenças fúngicas. Porém, o tratamento destas infecções pode não ser efetivo, pois os fármacos antifúngicos disponíveis causam sérios efeitos adversos, recorrência ou resistência. Algumas doenças fúngicas causam lesões cutâneas e o medicamento, geralmente administrado por via oral, dificulta a chegada do fármaco no local de ação. Adicionalmente, muitos antifúngicos tópicos não são eficazes, pois o tempo de residência no local de ação é curto e a solubilidade do fármaco nos sistemas é baixa. Uma alternativa muito explorada nos anos recentes é o desenvolvimento de sistemas de liberação de fármacos, e as microemulsões (ME) e os cristais líquidos (CL) mostraram-se promissores, pois podem aumentar o tempo de residência no local de aplicação e a solubilidade de fármacos pouco solúveis em água, como ocorre com o fluconazol (F) e o itraconazol (I). Sistemas nanoestruturados foram desenvolvidos empregando o ácido oleico (AO), álcool cetílico etoxilado 20 OE e propoxilado 5 OP (PROC) e água. Estes sistemas foram caracterizados por microscopia de luz polarizada (MLP), comportamento reológico, análise do perfil de textura (TPA), bioadesão e capacidade de incorporação dos fármacos pelos sistemas. A MLP foi utilizada na caracterização dos sistemas quanto a isotropia e anisotropia, diferenciando as ME dos CL. O comportamento reológico das ME foi Newtoniano e viscoso, e dos CL foi pseudoplástico e elástico e a temperatura não influenciou o comportamento reológico dos sistemas. As propriedades mecânicas das formulações, como dureza, compressibilidade e adesividade, foram avaliadas utilizando um analisador de textura no modo TPA. Os CL de fase hexagonal são os mais bioadesivos. As quantidades incorporadas dos fármacos nos sistemas aumentaram, principalmente comparando-se com... (Resumo completo, clicar acesso eletrônico abaixo)

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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Este trabalho apresenta o estudo de dois sistemas de liberação prolongada, microemulsão e lipossomas, contendo peptídeo regulatório de fatores de crescimento, “osteogenic growth peptide” OGP, para aplicação em regeneração óssea. A base de adsorção para estes sistemas de liberação foi a celulose bacteriana (CB) produzida pela bactéria Gluconacetobacter xylinus. Foi escolhida devido às suas propriedades físicas e químicas, tais como como alta resistência à corrosão química, bio absorção, biocompatibilidade, porosidade e ainda boa resistência mecânica, o que a torna um biopolímero com grande potencial a ser explorado pela ciência biomédica. Estudos in vitro foram realizados para avaliar o perfil de liberação do peptídeo dos diferentes sistemas de liberação prolongada. O peptídeo OGP foi sintetizado pelo método da fase sólida (estratégia SPFS Fmoc); foi purificado e caracterizado por HPLC, espectrometria de massas e análise de aminoácidos e, em seguida, marcados com 5,6 carboxifluoresceína (CF) para análise por espectroscopia de fluorescência. O peptídeo marcado foi incorporado aos sistemas de liberação no momento do respectivo preparo, foram adsorvidos na CB por um período de 72h, seguido de sua liberação prolongada em sistema fechado de fluxo constante contendo tampão PBS pH 7,4, por um período de 24h. Após a análise da liberação, observou se que o sistema que obteve melhor resultado foi a microemulsão, sendo sua liberação prolongada nas primeiras 6,5 h, liberando 21,5% do valor teórico de peptídeo incorporado, seguido de uma liberação constante a partir desse período. Dessa forma, tem se que a microemulsão pode ser um sistema promissor para liberação prolongada do OGP em processos de regeneração óssea

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Pós-graduação em Ciências Farmacêuticas - FCFAR

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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)

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Pós-graduação em Biociências - FCLAS

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Conselho Nacional de Desenvolvimento Científico e Tecnológico (CNPq)

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Biodegradable microspheres used as controlled release systems are important in pharmaceutics. Chitosan biopolymer represents an attractive biomaterial alternative because of its physicochemical and biological characteristics. Chitosan microspheres are expected to become promising carrier systems for drug and vaccine delivery, especially for non-invasive ways oral, mucosal and transdermal routes. Controlling the swelling rate and swelling capacity of the hydrogel and improving the fragile nature of microspheres under acidic conditions are the key challenges that need to be overcomed in order to enable the exploration of the full pharmaceutical potential use of these microparticles. Many studies have focused on the modification of chitosan microsphere structures with cross-linkers, various polymers blends and new organic-inorganic hybrid systems in order to obtain improved properties. In this work, microspheres made of chitosan and nanosized hydrophobic silica (Aerosil R972) were produced by a method consisting of two steps. First, a preparation of a macroscopically homogeneous chitosan-hydrophobic silica dispersion was prepared followed by spray drying. FTIR spectroscopy, X-ray powder diffraction, differential scanning calorimetry, thermal gravimetric analysis, scanning electron microscopy (SEM) and high-resolution transmission electron microscopy (TEM) were used to characterize the microspheres. Also, the were conducted acid stability, moisture sorption capacity, release properties and biological assays. The chitosan-hydrophobic silica composite microspheres showed improved thermal degradation, lower water affinity, better acid stability and ability to retard rifampicin and propranolol hydrochloride (drug models) release under simulated physiological conditions. In vitro biocompatibility studies indicated low cytotoxicity and low capacity to activate cell production of the pro-inflammatory mediator nitric oxide. The results show here encourage further studies on the use of the new chitosan-hydrophobic silica composite microspheres as drug carrier systems via oral or nasal routes.

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Chitosan is a polymer biocompatibility and biodegradability widely used in drug delivery systems. The co-crosslinking of chitosan with sodium sulfate and genipin, to form particulate systems is related of making them more resistant to acidic pH and to modulate the release kinetics for the oral route. Triamcinolone is a glucocorticoid with anti-inflammatory and immunosuppressive actions. The nanoparticles were prepared by co-crosslinking and characterized for particle size, PDI, zeta potential, crosslinking degree, encapsulation rate, morphology, infrared spectroscopy, thermal analysis, release kinetics and cells studies. The nanoparticles were prepared initially without genipin with sodium sulphate and the particles parameters were monitored in function of different ratio of drug / polymer, different concentrations of sodium sulfate and polysorbate 80 and the drip mode of crosslinkers on polymers. After optimizing conditions, the chosen system parameters without genipin included mean diameter of 312.20 ± 5.70 nm, PDI 0.342 ± 0.013 and zeta potential of 20.18 ± 2.28 mV. The genipin was introduced into the system analyzing different concentrations (0.5, 1.0 and 2.0 mM) and crosslinking times (3, 6, 12 and 24 h). Evaluating crosslinking time with genipin (0.5 mM) it was showed that varying the genipin reaction time the systems size ranged from 235.1 to 334.4 nm, the PDI from 0.321 to 0.392 and zeta potential 20.92 to 30.39 mV. The crosslinking degree that coud vary from 14 to 30 %. Nanoparticles without genipina, 6 h and 24 h crosslinking time were dried by spray-drying method. Analysis by scanning electron micrograph (SEM) revealed that the microparticles showed spherical morphology. The encapsulation rate was 75 ± 2.3 % using validated HPLC methodology. The infrared analysis showed chemical interactions between the components of the formulation. Thermal analysis showed that systems with a higher degree of crosslinking had a higher thermal stability. On release kinetics, increasing the degree of crosslinking was able to decrease the concentration and rate of release of triamcinolone. In studies with liver cancer cells (HepG2) and colon (HT-29), the microparticulate prepared with triamcinolone and 24 h of crosslinking with genipin showed a potential for antitumor activity in hepatic cell line HepG2. Therefore, a new delivery system for triamcinolone on polymeric nanoparticles of chitosan cocrosslinked with genipin and sodium sulfate was obtained with hepatic antitumor potential.

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Oral route of administration is considered to be the most comfortable, safe and greater adaptation for patients. But, oral route presents some disadvantages such as drugs bioavailability and side effects on the stomach. Some technologies are studied to soften and/or resolve these problems, such as coating with polymeric films, which are able to protect the pharmaceutical form of the acid stomachic environment and to act in the drug release, and mucoadhesive systems, which allow the pharmaceutical form remains a greater time interval in the intestine, increasing the effectiveness of the drug. Cellulose triacetate (CTA) films were produced from cellulose extracted from sugar cane bagasse. The films were prepared with different morphologies (with and without water, acting as non-solvent) and concentrations (3, 6.5 and 10%) of CTA and characterized using scanning electron microscopy (SEM), water vapor permeability (WVP), puncture resistance (PR), enzymatic digestion (DE), and mucoadhesive force evaluation (MF). Microscopy showed the formation of symmetric and asymmetric morphologies. WVP data showed that more concentrated films have higher values for WVP; moreover, asymmetric films had higher values than symmetric films. PR measurements showed that symmetric membranes are more resistant than asymmetric ones. More concentrated films were also more puncture resistant, except for symmetric membranes with CTA concentrations of 6.5 and 10% that did not show significant differences. All of the films presented large mucoadhesive capacities independent of their morphology and CTA concentration. From the results of WVP and RP, a symmetric filme with 6.5% CTA showed better ability and mechanical resistance, therefore, was selected to serve as coating of gellan gum (GG) particles incorporating ketoprofen (KET), which was confirmed by SEM. The selected film presented low values in measurements of the swelling index (SI) and in a dissolution test (DT). TGA analysis showed that the CTA coating does not influence the thermal stability of the particles and there is no incompatibility evidence between CTA, GG and KET. Coated particles released 100% of the ketoprofen in 24 h, while uncoated particles released the same amount in 4 h. The results of this study highlight the potential of CTA in the development of new controlled oral delivery systems.

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This thesis was devoted to the development of innovative oral delivery systems for two different molecules. In the first part, microparticles (MPs) based on xylan and Eudragit® S- 100 were produced and used to encapsulate 5-aminosalicylic acid for colon delivery. Xylan was extracted from corn cobs and characterized in terms of its physicochemical, rheological and toxicological properties. The polymeric MPs were prepared by interfacial cross-linking polymerization and spray-drying and characterized for their morphology, mean size and distribution, thermal stability, crystallinity, entrapment efficiency and in vitro drug release. MPs with suitable physical characteristics and satisfactory yields were prepared by both methods, although the spray-dried systems showed higher thermal stability. In general, spraydried MPs would be preferable systems due to their thermal stability and absence of toxic agents used in their preparation. However, drug loading and release need to be optimized. In the second part of this thesis, oil-in-water microemulsions (O/W MEs) based on mediumchain triglycerides were formulated as drug carriers and solubility enhancers for amphotericin B (AmB). Phase diagrams were constructed using surfactant blends with hydrophiliclipophilic balance values between 9.7 and 14.4. The drug-free and drug-loaded MEs presented spherical non-aggregated droplets around 80 and 120 nm, respectively, and a low polydispersity index. The incorporation of AmB was high and depended on the volume fraction of the disperse phase. These MEs did not reduce the viability of J774.A1 macrophage-like cells for concentrations up to 25 μg/mL of AmB. Therefore, O/W MEs based on propylene glycol esters of caprylic acid may be considered as suitable delivery systems for AmB

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Conselho Nacional de Desenvolvimento Científico e Tecnológico