Nanocarriers for the treatment of glioblastoma multiforme: Current state-of-the-art

纳米载体 药物输送 血脑屏障 胶质瘤 药品 纳米囊 胶质母细胞瘤 脑瘤 医学 药理学 微泡 靶向给药 脂质体 脑癌 癌症 化学 中枢神经系统 纳米技术 癌症研究 病理 内科学 纳米颗粒 材料科学 小RNA 生物化学 基因
作者
Reatul Karim,Claudio Palazzo,Brigitte Évrard,Géraldine Piel
出处
期刊:Journal of Controlled Release [Elsevier BV]
卷期号:227: 23-37 被引量:223
标识
DOI:10.1016/j.jconrel.2016.02.026
摘要

Glioblastoma multiforme, a grade IV glioma, is the most frequently occurring and invasive primary tumor of the central nervous system, which causes about 4% of cancer-associated-deaths, making it one of the most fatal cancers. With present treatments, using state-of-the-art technologies, the median survival is about 14 months and 2 year survival rate is merely 3-5%. Hence, novel therapeutic approaches are urgently necessary. However, most drug molecules are not able to cross the blood-brain barrier, which is one of the major difficulties in glioblastoma treatment. This review describes the features of blood-brain barrier, and its anatomical changes with different stages of tumor growth. Moreover, various strategies to improve brain drug delivery i.e. tight junction opening, chemical modification of the drug, efflux transporter inhibition, convection-enhanced delivery, craniotomy-based drug delivery and drug delivery nanosystems are discussed. Nanocarriers are one of the highly potential drug transport systems that have gained huge research focus over the last few decades for site specific drug delivery, including drug delivery to the brain. Properly designed nanocolloids are capable to cross the blood-brain barrier and specifically deliver the drug in the brain tumor tissue. They can carry both hydrophilic and hydrophobic drugs, protect them from degradation, release the drug for sustained period, significantly improve the plasma circulation half-life and reduce toxic effects. Among various nanocarriers, liposomes, polymeric nanoparticles and lipid nanocapsules are the most widely studied, and are discussed in this review. For each type of nanocarrier, a general discussion describing their composition, characteristics, types and various uses is followed by their specific application to glioblastoma treatment. Moreover, some of the main challenges regarding toxicity and standardized evaluation techniques are narrated in brief.
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