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Synthesis and Characterization of a Fe3O4@PNIPAM-Chitosan Nanocomposite and Its Potential Application in Vincristine Delivery

机译:Fe3O4甲基壳聚糖纳米复合材料的合成与表征及其在血管荷载作用下的潜在应用

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摘要

In this research, we conducted a systematic evaluation of the synthesis parameters of a multi-responsive core-shell nanocomposite (Fe3O4 nanoparticles coated by poly(N-isopropylacrylamide) (PNIPAM) in the presence of chitosan (CS) (Fe3O4@PNIPAM-CS). Scanning electron microscopy (SEM) was used to follow the size and morphology of the nanocomposite. The functionalization and the coating of Fe3O4 nanoparticles (Nps) were evaluated by the ζ-potential evolution and Fourier Transform infrared spectroscopy (FTIR). The nanocomposite exhibited a collapsed structure when the temperature was driven above the lower critical solution temperature (LCST), determined by dynamic light scattering (DLS). The LCST was successfully shifted from 33 to 39 °C, which opens the possibility of using it in physiological systems. A magnetometry test was performed to confirm the superparamagnetic behavior at room temperature. The obtained systems allow the possibility to control specific properties, such as particle size and morphology. Finally, we performed vincristine sulfate loading and release tests. Mathematical analysis reveals a two-stage structural-relaxation release model beyond the LCST. In contrast, a temperature of 25 °C promotes the diffusional release model. As a result, a more in-depth comprehension of the release kinetics was achieved. The synthesis and study of a magnetic core-shell nanoplatform offer a smart material as an alternative targeted release therapy due to its thermomagnetic properties.
机译:在该研究中,我们在壳聚糖(CS)(Cs)(Fe3O4 @ PNIPAM-CS的情况下,对多响应核 - 壳纳米复合物(Fe3O4纳米颗粒)的合成参数进行了系统评价)。使用扫描电子显微镜(SEM)来遵循纳米复合材料的尺寸和形态。通过β-电位演化和傅里叶变换红外光谱(FTIR)评价Fe3O4纳米颗粒(NPS)的官能化和涂层。纳米复合材料当温度在低临界溶液温度(LCST)上方被驱动时,通过动态光散射(DLS)确定。LCST成功地从33至39°C转移,这打开了在生理系统中使用它的可能性。进行磁体试验以确认室温下的超顺磁性行为。所获得的系统允许控制特异性的特性,例如partl e大小和形态。最后,我们进行了硫酸盐加载和释放试验。数学分析揭示了超出LCST的两级结构松弛释放模型。相反,25°C的温度促进扩散释放模型。结果,实现了释放动力学的更深入的理解。磁芯 - 壳纳米片的合成和研究由于其热磁性特性提供了一种作为替代靶向释放疗法的智能材料。

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