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首页> 外文期刊>ACS applied materials & interfaces >Sub-Micrometer Magnetic Nanocomposites: Insights into the Effect of Magnetic Nanoparticles Interactions on the Optimization of SAR and MRI Performance
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Sub-Micrometer Magnetic Nanocomposites: Insights into the Effect of Magnetic Nanoparticles Interactions on the Optimization of SAR and MRI Performance

机译:亚微米级磁性纳米复合材料:磁性纳米粒子相互作用对SAR和MRI性能优化的影响的见解

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摘要

There is increasing interest in the development of new magnetic polymeric carriers for biomedical applications such as trigger controlled drug release,, magnetic hyperthermia (MH) for the treatment of cancer, and as contrast agents in magnetic resonance imaging (MRI). This work describes the synthesis of sub-micrometer and magnetic polymer nanocomposite capsules (MPNCs) by combining in one single platform the biodegradable polymer poly-epsilon-caprolactone (PCL) and different concentrations of similar to 8 nm oleic acid (OA)-functionalized magnetite nanoparticles (Fe3O4@OA), employing the oil-in-water emulsion/solvent evaporation method. The MPNCs showed a significant increase in particle size from similar to 400 to similar to 800 nm as the magnetic loading in the organic inorganic hybrids increases from 1.0% to 10%. The MPNCs presented high incorporation efficiency of Fe3O4@OA nanoparticles, good colloidal stability, and super-paramagnetic properties. Interestingly, electron microscopy results showed that the Fe3O4@OA nanoparticles were preferentially located at the surface of the capsules. Evaluation of the magnetic properties showed that the saturation magnetization and the blocking temperature of the MPNCs samples increased as a function of the Fe3O4@OA loading. All the MPNCs exhibited heating when subjected to MH, and showed good specific absorption rates. Use of the formulations decreased the longitudinal (T-1) and transverse (T-2) relaxation times of water protons' nuclei, with excellent transverse relaxivity (r(2)) values, especially in the case of the formulation with lowest Fe3O4@OA loading. Furthermore, the MPNCs-cell interaction was studied, and MPNCs showed lower cellular toxicity to normal cells compared to cancer cells. These findings help in understanding the relationships between magnetic nanoparticles and polymeric capsules, opening perspectives for their potential clinical uses as simultaneous heating sources and imaging probes in MH and MRI, respectively.
机译:人们对开发用于生物医学应用的新型磁性聚合物载体(例如触发控制的药物释放),用于治疗癌症的磁性热疗(MH)以及在磁共振成像(MRI)中用作造影剂的兴趣日益增长。这项工作描述了在一个单一平台上将可生物降解的聚合物聚ε-己内酯(PCL)和不同浓度的类似于8 nm油酸(OA)功能化的磁铁矿相结合,从而合成了亚微米级和磁性聚合物纳米复合物胶囊(MPNC)的方法。纳米粒子(Fe3O4 @ OA),采用水包油乳液/溶剂蒸发法。随着有机无机杂化物中的磁性负载从1.0%增加到10%,MPNC的粒径显着增加,从相似的400 nm增加到相似的800 nm。 MPNCs表现出高的Fe3O4 @ OA纳米粒子掺入效率,良好的胶体稳定性和超顺磁性。有趣的是,电子显微镜结果显示Fe3O4 @ OA纳米颗粒优先位于胶囊的表面。磁性的评估表明,MPNCs样品的饱和磁化强度和阻断温度随Fe3O4 @ OA含量的增加而增加。所有的MPNC在受到MH加热时均会发热,并具有良好的比吸收率。使用配方减少了水质子核的纵向(T-1)和横向(T-2)弛豫时间,具有优异的横向弛豫性(r(2))值,尤其是在Fe3O4 @最低的情况下OA加载。此外,研究了MPNC与细胞的相互作用,与癌细胞相比,MPNC对正常细胞的毒性更低。这些发现有助于理解磁性纳米粒子与聚合物胶囊之间的关系,为它们分别作为MH和MRI的同时加热源和成像探针的潜在临床应用开辟了前景。

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