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Targeted Theranostic Nanoparticles for Brain Tumor Treatment

机译:靶向治疗性纳米治疗脑肿瘤

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摘要

The poor prognosis and rapid recurrence of glioblastoma (GB) are associated to its fast-growing process and invasive nature, which make difficult the complete removal of the cancer infiltrated tissues. Additionally, GB heterogeneity within and between patients demands a patient-focused method of treatment. Thus, the implementation of nanotechnology is an attractive approach considering all anatomic issues of GB, since it will potentially improve brain drug distribution, due to the interaction between the blood–brain barrier and nanoparticles (NPs). In recent years, theranostic techniques have also been proposed and regarded as promising. NPs are advantageous for this application, due to their respective size, easy surface modification and versatility to integrate multiple functional components in one system. The design of nanoparticles focused on therapeutic and diagnostic applications has increased exponentially for the treatment of cancer. This dual approach helps to understand the location of the tumor tissue, the biodistribution of nanoparticles, the progress and efficacy of the treatment, and is highly useful for personalized medicine-based therapeutic interventions. To improve theranostic approaches, different active strategies can be used to modulate the surface of the nanotheranostic particle, including surface markers, proteins, drugs or genes, and take advantage of the characteristics of the microenvironment using stimuli responsive triggers. This review focuses on the different strategies to improve the GB treatment, describing some cell surface markers and their ligands, and reports some strategies, and their efficacy, used in the current research.
机译:胶质母细胞瘤(GB)的不良预后和快速复发与其快速发展的过程和侵袭性有关,这使得很难完全清除浸润癌的组织。另外,患者内部和患者之间的GB异质性要求以患者为中心的治疗方法。因此,考虑到GB的所有解剖学问题,纳米技术的实施是一种有吸引力的方法,因为由于血脑屏障和纳米颗粒(NPs)之间的相互作用,它有可能改善脑部药物的分布。近年来,还提出了治疗诊断技术,并被认为是有前途的。 NP由于其各自的尺寸,易于表面修饰和多功能性而在该系统中集成了多种功能组件,因此对该应用程序具有优势。专注于治疗和诊断应用的纳米颗粒的设计已呈指数增长,用于治疗癌症。这种双重方法有助于了解肿瘤组织的位置,纳米颗粒的生物分布,治疗的进展和功效,对于基于个性化药物的治疗干预非常有用。为了改善治疗方法,可以使用不同的主动策略来调节纳米热粒子的表面,包括表面标记,蛋白质,药物或基因,并利用刺激响应性触发器利用微环境的特征。这篇综述着重于改善GB治疗的不同策略,描述了一些细胞表面标志物及其配体,并报道了当前研究中使用的一些策略及其功效。

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