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Synthesis, Characterization and Drug Delivery Profile of Magnetic PLGA-PEG-PLGA/Maghemite Nanocomposite

机译:磁力PLGA-PEG-PLGA /磁性纳米复合材料的合成,表征和药物递送谱

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The antibiotic cotrimoxazole was associated to the multi-block copolymer containing poly(D,L-lactic-glycolic acid) (PLGA) and poly(ethylene glycol) (PEG) segments, PLGA-PEG-PLGA, aiming to reach a controlled drug release system. Block copolymer was synthesized via polycondensation of lactic acid and glycolic acid with PEG in situ. In turn, maghemite was synthesized through the co-precipitation method. The drug cotrimoxazole was inserted in the composite through melting mixing method. Several techniques were used to characterize the materials. The materials were characterized by Nuclear magnetic resonance (NMR), Fourier transform infrared spectroscopy (FTIR), X-ray diffraction (XRD) and magnetic force, this last according to the methodology developed by our group. In addition, dissolution profile was studied. These dissolution tests were performed with and without magnetic field, aiming to study the influence of themagnetic field on the dissolution profile. The dissolution was monitored and quantified using the ultraviolet-visible spectrophotometry (UV-Vis), following the USP method for cotrimoxazole tablets. Results demonstrated that nanocomposites presented a good magnetic force, able to keep the magnetic composite trapped in a specific place or tissue. Furthermore, in the presence of a magnetic field, the magnetic nanoparticles were able to perform a magnetic constriction of the material, making the drug release faster than in the absence of the magnetic field. This phenomenon may be useful to perform a fine tuning of the system, allowing the easier adjust of the speed and amount of released drug, useful to improve medical treatments and even the welfare of the patients.
机译:抗生素COTrimoxazole与含有聚(D,L-乙醇酸)(PLGA)和聚(乙二醇)(PEG)段,PLGA-PEG-PLGA的多嵌段共聚物,旨在达到受控药物释放的多嵌段共聚物系统。通过用PEG原位通过乳酸和乙醇酸的缩聚合成嵌段共聚物。反过来,通过共沉淀法合成了磁性石。通过熔融混合方法将药物COTrimoxazole插入复合材料中。几种技术用于表征材料。该材料的特征在于核磁共振(NMR),傅里叶变换红外光谱(FTIR),X射线衍射(XRD)和磁力,这根据我们组开发的方法。此外,研究了溶出谱。这些溶出试验在没有磁场的情况下进行,旨在研究基本场对溶出曲线的影响。使用紫外 - 可见分光光度法(UV-VI)进行监测和定量溶解,按照Cotrimoxazole片剂的USP方法。结果证明纳米复合材料呈现出良好的磁力,能够将磁性复合物保持在特定的地方或组织中。此外,在存在磁场的情况下,磁性纳米颗粒能够对材料进行磁性收缩,使得药物释放得比在不存在磁场中。这种现象可以用于执行系统的微调,允许更容易调整释放药物的速度和量,可用于改善医疗治疗甚至患者的福利。

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