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Preparation, characterization, and in vitro testing of poly(lactide-co-glycolide) and dextran magnetic microspheres for in vivo applications.

机译:用于体内应用的聚丙交酯-共-乙交酯和葡聚糖磁性微球的制备,表征和体外测试。

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Many research groups are investigating degradable magnetic particles for magnetic resonance imaging (MRI) contrast agents and as carriers for magnetic drug guidance. These particles are composite materials with a degradable polymer matrix and iron oxide nanoparticles for magnetic properties. The degradable polymer matrix acts to provide colloidal stability and, for drug delivery applications, provides a reservoir for the storage and release of drugs. Natural polymers, like albumin and dextran, which degrade by the action of enzymes; have been used for the polymer matrix. Iron oxide nanoparticles are used for magnetic properties since they can be digested in vivo and have low toxicities.; Polylactic acid (PLA) and its copolymers with polyglycolic acid (PLGA) are versatile polymers that degrade by simple hydrolysis without the aid of enzymes. Microspheres are easily formed using the solvent extraction/evaporation method and a wide range of drugs can be encapsulated in them. Magnetic PLGA microspheres suitable for applications were synthesized for the first time in this dissertation. This was accomplished by coating iron oxide nanoparticles with oleic acid to make them dispersible in the organic solvents used in the extraction/evaporation microsphere preparation method.; In addition to the magnetic PLGA microspheres, a novel all-aqueous method for preparing crosslinked dextran magnetic microspheres was developed in this dissertation. This method uses free radical polymerization for crosslinking and does not require the use of flammable and harmful solvents.; For efficient MRI contrast and magnetic drug guidance, maximized iron oxide content of microspheres is desirable. The two different microsphere preparation methods were optimized for iron oxide content. The effect of iron oxide content on microsphere size and morphology was studied. In addition, an in vitro circulation model was used to evaluate the ability of magnetic microspheres to be guided at physiologic blood flow velocities. The MRI contrast effect was studied as a function of microsphere concentration.
机译:许多研究小组正在研究可降解的磁性颗粒,以用于磁共振成像(MRI)造影剂,并作为磁性药物指导的载体。这些颗粒是具有可降解聚合物基质和具有磁性的氧化铁纳米颗粒的复合材料。可降解的聚合物基质起到提供胶体稳定性的作用,并且对于药物递送应用,提供了用于储存和释放药物的贮存器。天然聚合物,如白蛋白和右旋糖酐,通过酶的作用降解;已经用于聚合物基质。氧化铁纳米粒子具有磁性,因为它们可以在体内被消化并且毒性低。聚乳酸(PLA)及其与聚乙醇酸(PLGA)的共聚物是多用途聚合物,可通过简单水解而无需酶的作用而降解。使用溶剂萃取/蒸发方法可以轻松形成微球,并且可以将多种药物封装在其中。本文首次合成了适合应用的磁性PLGA微球。这通过用油酸涂覆氧化铁纳米颗粒以使其可分散在萃取/蒸发微球制备方法中使用的有机溶剂中来实现。除了磁性PLGA微球,本文还开发了一种新颖的全水制备交联葡聚糖磁性微球的方法。该方法使用自由基聚合进行交联,不需要使用易燃有害的溶剂。为了获得有效的MRI对比和磁性药物引导,需要最大程度地增加微球的氧化铁含量。针对氧化铁含量优化了两种不同的微球制备方法。研究了氧化铁含量对微球尺寸和形态的影响。另外,使用体外循环模型评估磁性微球在生理血流速度下被引导的能力。研究了MRI对比效应与微球浓度的关系。

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