胶质瘤
PLGA公司
外渗
药物输送
血管生成
渗透(战争)
紫杉醇
癌症研究
材料科学
纳米囊
脐静脉
体外
化学
医学
纳米颗粒
化疗
病理
纳米技术
生物化学
外科
运筹学
工程类
作者
Ting Kang,Xiaoling Gao,Quanyin Hu,Di Jiang,Xingye Feng,Xue Zhang,Qingxiang Song,Lei Yao,Meng Huang,Zhiqing Pang,Zhiqing Pang,Hongzhuan Chen,Jun Chen
出处
期刊:Biomaterials
[Elsevier]
日期:2014-05-01
卷期号:35 (14): 4319-4332
被引量:81
标识
DOI:10.1016/j.biomaterials.2014.01.082
摘要
A major cross-cutting problem for glioma therapy is the poor extravasation and penetration of the payload drug in target glioma parenchyma. Here, to overcome these obstacles, a tumor vessel recognizing and tumor penetrating system is developed by functionalizating the poly (ethyleneglycol)-poly (l-lactic-co-glycolic acid) nanoparticles with an iNGR moiety (iNGR-NP). The nanoparticulate formulation is expected to achieve specific deep penetration in the tumor tissue by initially binding to aminopeptidase N, with iNGR proteolytically cleaved to CRNGR, and then bind with neuropilin-1 to mediate deep penetration in the tumor parenchyma. iNGR-NP exhibits significantly enhanced cellular uptake in human umbilical vein endothelial cells, improves the anti-proliferation and anti-tube formation abilities of paclitaxel in vitro. Following intravenous administration, iNGR-NP present favorable pharmacokinetic and tumor homing profiles. Glioma distribution and penetration assays confirm that iNGR-NP achieve the highest accumulation and deepest penetration at the glioma sites. The anti-glioma efficacy of paclitaxel-loaded iNGR-NP is verified by its improved anti-angiogenesis activity and the significantly prolonged survival time in mice bearing intracranial glioma. These evidences highlight the potential of iNGR-decorated nanoparticles in overcoming the leading edge problem in anti-glioma drug delivery.
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