998 resultados para Particulate systems


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Polymeric particulate-systems are of great relevance due to their possible biomedical applications, among them as carriers for the nano- or microencapsulation of drugs. However, due to their unique specific properties, namely small size range, toxicity issues must be discarded before allowing its use on health-related applications. Several polymers, as poly(methyl methacrylate) (PMMA), have proved to be suitable for the preparation of particulate-systems. However, a major drawback of its use refers to incomplete drug release from particles matrix. Recent strategies to improve PMMA release properties mention the inclusion of other acrylic polymers as Eudragit (EUD) on particles formulation. Though PMMA and EUD are accepted by the FDA as biocompatible, their safety on particle composition lacks sufficient toxicological data. The main objective of this thesis was to evaluate the biological effects of engineered acrylic particulate-systems. Preparation, physicochemical characterization and in vitro toxicity evaluation were assessed on PMMA and PMMA-EUD (50:50) particles. The emulsification-solvent evaporation methodology allowed the preparation of particles with spherical and smooth surfaces within the micrometer range (±500 nm), opposing surface charges and different levels of hydrophobicity. It was observed that particles physicochemical properties (size and charge) were influenced by biological media composition, such as serum concentration, ionic strength or pH. In what concerns to the in vitro toxicological studies, particle cellular uptake was observed on different cell lines (macrophages, osteoblasts and fibroblasts). Cytotoxicity effects were only found after 72 h of cells exposure to the particles, while no oxidative damage was observed neither on osteoblasts nor fibroblasts. Also, no genotoxicity was found in fibroblast using the comet assay to assess DNA damage. This observation should be further confirmed with other validated genotoxicity assays (e.g. Micronucleus Assay). The present study suggests that the evaluated acrylic particles are biocompatible, showing promising biological properties for potential use as carriers in drug-delivery systems.

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Magdeburg, Univ., Fak. für Mathematik, Diss., 2006

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Mo-doped TiO2 powders were prepared using a dry mixture of TiO2 and MoO3 oxides with several compositions, followed by a calcination step at several temperatures. The resulting oxide system develops yellow and green tones. The XRD patterns showed only traces of MoO 3; however, EDS results, combined with TG/DTA data, confirmed the presence of molybdenum ions, suggesting that the changes in optical properties of the oxide system is due to the incorporation of Mo ions into the TiO 2 matrix, substituting Ti+4 with Mo+6 ions. The band gap decreased with increasing of MoO3 content; on the other hand, the band gap reached a maximum value at about 850°C to 910°C when plotted as a function of the calcination temperature. The glazes produced showed that the oxide system under study is a potential material for use as abinary ceramic pigment. Copyright © 2013 Taylor & Francis Group, LLC.

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Particulate adjuvant systems are largely classified according to their functional characteristics, such as the nature of the typical immune response they induce, or their perceived mode of action. From a formulation science perspective, it is practical to classify antigen delivery systems according to the physical nature of the formulations. This article discusses lipid based particulate systems, grouped according to the nature of their predominant lipid constituent.

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Vaccines remain a key tool in the defence against major diseases. However, in the development of vaccines a trade off between safety and efficacy is required with newer vaccines, based on sub-unit proteins and peptides, displaying improved safety profiles yet suffering from low efficacy. Adjuvants can be employed to improve their potency, but currently there are only a limited number of adjuvant systems licensed for clinical use. Of the new adjuvants being investigated, particulate systems offer several advantages including: passive targeting to the antigen-presenting cells within the immune system, protection against adjuvant degradation, and ability for sustained antigen release. There has been a range of particulate vaccine delivery systems outlined in recent patents including polymer-based microspheres (which are generally more focused on the use of synthetic polymers, in particular the polyesters) and surfactant-based vesicles. Within these formulations, several patented systems are exploiting the use of cationic lipids which, despite their limitations in gene therapy, clearly offer strong potential as adjuvants. Within this review, the current range of particulate system technologies being investigated as potential adjuvants are discussed with regard to both their respective advantages and the potential hurdles which must be overcome for such systems to be converted into successful pharmaceutical products.

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Intravitreal administration has been widely used since 20 years and has been shown to improve the treatment of diseases of the posterior segment of the eye with infectious origin or in edematous maculopathies. This route of administration allows to achieve high concentration of drug in the vitreous and avoids the problems resulting from systemic administration. However, two basic problems limit the use of intravitreal therapy. Many drugs are rapidly cleared from the vitreous humor; therefore, to reach and to maintain effective therapy repeated injections are necessary. Repeated intravitreal injections increase the risk of endophthalmitis, damage to lens, retinal detachment. Moreover, some drugs provoke a local toxicity at their effective dose inducing side-effects and possible retinal lesions. In this context, the development and the use of new drug delivery systems for intravitreal administration are necessary to treat chronic ocular diseases. Among them, particulate systems such as liposomes have been widely studied. Liposomes are easily injectable and permit to reduce the toxicity and to increase the residence time of several drugs in the eye. They are also able to protect in vivo poorly-stable molecules from degradation such as peptides and nucleic acids. Some promising results have been obtained for the treatment of retinitis induced by cytomegalovirus in human and more recently for the treatment of uveitis in animal. Finally, the fate of liposomes in ocular tissues and fluids after their injection into the vitreous and their elimination routes begin to be more known.

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An overview of ocular implants with therapeutic application potentials is provided. Various types of implants can be used as slow release devices delivering locally the needed drug for an extended period of time. Thus, multiple periocular or intraocular injections of the drug can be circumvented and secondary complications minimized. The various compositions of polymers fulfilling specific delivery goals are described. Several of these implants are undergoing clinical trials while a few are already commercialized. Despite the paramount progress in design, safety and efficacy, the place of these implants in our clinical therapeutic arsenal remains limited. Miniaturization of the implants allowing for their direct injection without the need for a complicated surgery is a necessary development avenue. Particulate systems which can be engineered to target specifically certain cells or tissues are another promising alternative. For ocular diseases affecting the choroid and outer retina, transscleral or intrasscleral implants are gaining momentum.

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This work studies the development, implementation and improvement of a macroscopic model to describe the behavior of the spouted bed dryer with continuous feeding for pastes and suspensions drying. This model is based on the CST model (Freire et al., 2009) and the model of Fernandes (2005), whose theoretical foundation is based on macroscopic mass and heat balances for the three phases involved in the process: gas, liquid and solid. Because this technique is quite relevant, the studies of modeling and simulation of spouted bed drying are essential in the analysis of the process as a whole, because through them it is possible to predict and understand the behavior of the process, which contributes significantly to more efficient project and operation. The development and understanding of the phenomena involved in the drying process can be obtained by comparing the experimental data with those from computer simulations. Such knowledge is critical for choosing properly the process conditions in order to obtain a good drying efficiency. Over the past few years, researches and development of works in the field of pastes and suspensions drying in spouted bed has been gaining ground in Brazil. The Particulate Systems Laboratory at Universidade Federal do Rio Grande do Norte, has been developing several researches and generating a huge collection of experimental data concerning the drying of fruit pulps, vegetables pastes, goat milk and suspensions of agro-industrial residues. From this collection, some data of goat milk and residue from acerola (Malpighia glabra L.) drying were collected. For the first time, these data were used for the development and validation of a model that can describe the behavior of spouted bed dryer. Thus, it was possible to model the dryer and to evaluate the influence of process variables (paste feeding, temperature and flow rate of the drying air) in the drying dynamics. We also performed water evaporation experiments in order to understand and to study the behavior of the dryer wall temperature and the evaporation rate. All these analysis will contribute to future works involving the implementation of control strategies in the pastes and suspensions drying. The results obtained in transient analysis were compared with experimental data indicating that this model well represents the process

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This work presents simulations of the Electrofluid Dynamic energy conversion process in slender channel devices having very small particles (in both micro and nano scales) as charge carriers. Solutions are discussed for a system composed by coupled differential equations, which includes the equation for the total current along the channel, the equations for total energy and momentum of the mixture (gas and solid particles), the continuity equation and the equations for energy and momentum of a single particle. Results for suspended particles of higher diameters have been previously published in the Literature, but the simulations here presented exhibit an appreciable increase in the values for output currents.

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A Indústria Farmacêutica utiliza polímeros em forma de nanopartículas em formulações de liberação controlada e vetorizada por possuírem baixo custo em relação a demais métodos de preparações de formas farmacêuticas, aparentemente não serem reconhecidos pelo sistema de defesa do organismo, proporcionar melhora da eficácia, diminuição da toxicidade e da dose de fármaco administrado. O sulfato de condroitina-co-Nisopropilacrilamida (SCM + NIPAAm) é um copolímero proposto para este fim, a partir da reação de um polímero sintético, o poli N-isopropilacrilamida (PNIPAAm), com características termossensíveis, com um natural, o Sulfato de Condroitina (SC), com características bioadesivas. Assim, a copolimerização pode ser capaz de somar estas propriedades e aperfeiçoar o seu uso como um veículo para liberação controlada. Este trabalho objetivou, portanto, realizar a caracterização fisico-quimica das partículas de sulfato de condroitina e Nisopropilacrilamida e do copolímero SCM+NIPAAm (2,5 % e 5%) e do SCM+PNIPAAm 2,5% e uma avaliação toxicológica parcial de um destes copolímeros que apresentar as melhores propriedades de um eficiente carreador de fármacos, selecionado a partir dos ensaios de caracterização físico-química. Para determinar a estrutura química dos sistemas particulados e analisar os seus componentes químicos, foi realizada a Espectroscopia de Ressonância Magnética Nuclear (RMN) e Espectroscopia do Infravermelho com Transformada de Fourrier (FTIR); Para analisar a morfologia das partículas, foi usado a Microscopia Eletrônica de Varredura (MEV); A Termogravimetria/ Termogravimetria Derivada e Análise Térmica Diferencial (TG/DTG) foi usada para avaliar o comportamento térmico dos sistemas particulados, bem como auxiliar na análise de Cinética de Degradação (CD, método de Flynn-Wall-Ozawa); Foi ainda realizado a técnica de degradação in vitro e a determinação carga superficial e tamanho de partículas (análise do Potencial Zeta, PZ). Para avaliar a toxicidade, foi realizado o bioensaio em microcrustáceo Artemia salina (24 e 48 h), viabilidade celular (citotoxicidade) em células PC-12 (método do MTT) e também a toxicidade aguda oral em camundongos. As análises de RMN, FTIR e MEV demonstraram semelhança quanto ao aspecto estrutural e morfológico entre os copolímeros estudados. As análises de TG demonstraram que o SCM+NIPAAm 5% apresentou maior estabilidade térmica em relação aos demais copolímeros avaliados, uma vez que sua decomposição polimérica ocorre em temperaturas superiores, em torno de 233ºC. O DTA demonstrou valores de temperaturas concordantes com os eventos térmicos de decomposição apresentados pelas curvas das análises TG. Sua estabilidade foi confirmada através da CD e estudo de degradação in vitro, apresentando, respectivamente, Ea > 100 kJ mol-1 e perda de 48% da sua massa inicial após três meses. Além disso, SCM+NIPAAm 5% apresentou diâmetro de partícula inferior a 200 nm e índice de polidispersão de 0,35, além do PZ > -30mV, caracteristicas de um promissor candidato a carreador de fármacos. Em relação às avaliações toxicológicas, o SCM+NIPAAm 5% não apresentou toxicidade no bioensaio de A. salina (CL50 > 1000) e no modelo celular avaliado, dentro das concentrações e circunstâncias de exposição estudadas. O SCM+NIPAAm 5%, na dose oral de 2000 mg/kg, não apresentou nenhum sinal evidente de toxicidade em camundongos, o que foi corroborado pela ausência de alterações anatomo-histopatológicas. A copolimerização do Sulfato de Condroitina e N-isopropilacrilamida na concentração estudada, dada suas características físico-químicas e toxicológicas preliminares, apresenta propriedades que contribuem para a proposta de um sistema que constitui uma nova forma de liberação controlada, especialmente de fármacos.

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Abstract Background Particulate systems are well known to be able to deliver drugs with high efficiency and fewer adverse side effects, possibly by endocytosis of the drug carriers. On the other hand, cationic compounds and assemblies exhibit a general antimicrobial action. In this work, cationic nanoparticles built from drug, cationic lipid and polyelectrolytes are shown to be excellent and active carriers of amphotericin B against C. albicans. Results Assemblies of amphotericin B and cationic lipid at extreme drug to lipid molar ratios were wrapped by polyelectrolytes forming cationic nanoparticles of high colloid stability and fungicidal activity against Candida albicans. Experimental strategy involved dynamic light scattering for particle sizing, zeta-potential analysis, colloid stability, determination of AmB aggregation state by optical spectra and determination of activity against Candida albicans in vitro from cfu countings. Conclusion Novel and effective cationic particles delivered amphotericin B to C. albicans in vitro with optimal efficiency seldom achieved from drug, cationic lipid or cationic polyelectrolyte in separate. The multiple assembly of antibiotic, cationic lipid and cationic polyelctrolyte, consecutively nanostructured in each particle produced a strategical and effective attack against the fungus cells.

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The study of particulate systems is of great interest in many fields of science and technology. Soil, sediments, powders, granular materials, colloidal and particulate suspensions are examples of systems involving many size particles. For those systems, the statistical description of the particle size distribution (PSD), that is, the mathematical distribution that defines the relative amounts of particles present, sorted according to size, is a crutial issue. The PSD can be important in understanding soil hydraulic properties, the geological origin or sediments or the physical and chemical properties of granular materials and ceramics, among others.

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Polymers constitute a distinct class of anisotropic particles with unique dynamical, rheological and mechanical properties.