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Potential of magnetic nanoparticles for targeted drug delivery

机译:磁性纳米粒子用于靶向药物输送的潜力

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Abstract: Nanoparticles (NPs) play an important role in the molecular diagnosis, treatment, and monitoring of therapeutic outcomes in various diseases. Their nanoscale size, large surface area, unique capabilities, and negligible side effects make NPs highly effective for biomedical applications such as cancer therapy, thrombolysis, and molecular imaging. In particular, nontoxic superparamagnetic magnetic NPs (MNPs) with functionalized surface coatings can conjugate chemotherapeutic drugs or be used to target ligands/proteins, making them useful for drug delivery, targeted therapy, magnetic resonance imaging, transfection, and cell/protein/DNA separation. To optimize the therapeutic efficacy of MNPs for a specific application, three issues must be addressed. First, the efficacy of magnetic targeting/guidance is dependent on particle magnetization, which can be controlled by adjusting the reaction conditions during synthesis. Second, the tendency of MNPs to aggregate limits their therapeutic use in vivo; surface modifications to produce high positive or negative charges can reduce this tendency. Finally, the surface of MNPs can be coated with drugs which can be rapidly released after injection, resulting in targeting of low doses of the drug. Drugs therefore need to be conjugated to MNPs such that their release is delayed and their thermal stability enhanced. This chapter describes the creation of nanocarriers with a high drug-loading capacity comprised of a high-magnetization MNP core and a shell of aqueous, stable, conducting polyaniline derivatives and their applications in cancer therapy. It further summarizes some newly developed methods to synthesize and modify the surfaces of MNPs and their biomedical applications.
机译:摘要:纳米粒子(NPs)在各种疾病的分子诊断,治疗和治疗结果监测中起着重要作用。它们的纳米级尺寸,大表面积,独特的功能以及可忽略的副作用,使得NP在生物医学应用(例如癌症治疗,溶栓和分子成像)中非常有效。特别是,具有功能化表面涂层的无毒超顺磁磁性NP(MNP)可以结合化学治疗药物或用于靶向配体/蛋白质,使其可用于药物输送,靶向治疗,磁共振成像,转染以及细胞/蛋白质/ DNA分离。为了针对特定应用优化MNP的治疗功效,必须解决三个问题。首先,磁性靶向/引导的功效取决于粒子磁化强度,可以通过调节合成过程中的反应条件来控制粒子磁化强度。其次,MNP聚集的趋势限制了它们在体内的治疗用途。表面修饰产生高的正或负电荷可以减少这种趋势。最后,MNPs的表面可以覆盖有药物,这些药物可以在注射后迅速释放,从而靶向低剂量的药物。因此,需要将药物与MNP偶联,以延迟其释放并增强其热稳定性。本章描述了具有高载药量的纳米载体的制备,该载体由高磁化MNP核和含水,稳定的导电聚苯胺衍生物组成,并在癌症治疗中具有应用。它进一步总结了一些新开发的方法来合成和修饰MNPs的表面及其生物医学应用。

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