纳米载体
紫杉醇
结合
药物输送
体内
材料科学
胶束
PEG比率
组合化学
化学
生物物理学
纳米技术
有机化学
化疗
水溶液
医学
外科
生物
数学分析
生物技术
经济
数学
财务
作者
Peng Zhang,Yixian Huang,Hao Liu,Rebecca T. Marquez,Jianqin Lu,Wenchen Zhao,Xiaolan Zhang,Xiang Gao,Jiang Li,Raman Venkataramanan,Liang Xu,Song Li
出处
期刊:Biomaterials
[Elsevier]
日期:2014-05-22
卷期号:35 (25): 7146-7156
被引量:55
标识
DOI:10.1016/j.biomaterials.2014.04.108
摘要
We report here that a simple, well-defined, and easy-to-scale up nanocarrier, PEG5000-lysyl-(α-Fmoc-ε-t-Boc-lysine)2 conjugate (PEG-Fmoc), provides high loading capacity, excellent formulation stability and low systemic toxicity for paclitaxel (PTX), a first-line chemotherapeutic agent for various types of cancers. 9-Fluorenylmethoxycarbonyl (Fmoc) was incorporated into the nanocarrier as a functional building block to interact with drug molecules. PEG-Fmoc was synthesized via a three-step synthetic route, and it readily interacted with PTX to form mixed nanomicelles of small particle size (25-30 nm). The PTX loading capacity was about 36%, which stands well among the reported micellar systems. PTX entrapment in this micellar system is achieved largely via an Fmoc/PTX π-π stacking interaction, which was demonstrated by fluorescence quenching studies and (13)C NMR. PTX formulated in PEG-Fmoc micelles demonstrated sustained release kinetics, and in vivo distribution study via near infrared fluorescence imaging demonstrated an effective delivery of Cy5.5-labled PTX to tumor sites. The maximal tolerated dose for PTX/PEG-Fmoc (MTD > 120 mg PTX/kg) is higher than those for most reported PTX formulations, and in vivo therapeutic study exhibited a significantly improved antitumor activity than Taxol, a clinically used formulation of PTX. Our system may hold promise as a simple, safe, and effective delivery system for PTX with a potential for rapid translation into clinical study.
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