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Highly penetrative, drug-loaded nanocarriers improve treatment of glioblastoma

Authors :
Ming-Qiang Zheng
Nha Duong
Richard E. Carson
Thomas Schafbauer
Rachael W. Sirianni
Joseph M. Piepmeier
Anita Huttner
W. Mark Saltzman
Ying Zhang
Jiangbing Zhou
David J. Sullivan
Garth W. Strohbehn
Toral R. Patel
Yiyun Huang
Publication Year :
2013
Publisher :
National Academy of Sciences, 2013.

Abstract

Current therapy for glioblastoma multiforme is insufficient, with nearly universal recurrence. Available drug therapies are unsuccessful because they fail to penetrate through the region of the brain containing tumor cells and they fail to kill the cells most responsible for tumor development and therapy resistance, brain cancer stem cells (BCSCs). To address these challenges, we combined two major advances in technology: ( i ) brain-penetrating polymeric nanoparticles that can be loaded with drugs and are optimized for intracranial convection-enhanced delivery and ( ii ) repurposed compounds, previously used in Food and Drug Administration-approved products, which were identified through library screening to target BCSCs. Using fluorescence imaging and positron emission tomography, we demonstrate that brain-penetrating nanoparticles can be delivered to large intracranial volumes in both rats and pigs. We identified several agents (from Food and Drug Administration-approved products) that potently inhibit proliferation and self-renewal of BCSCs. When loaded into brain-penetrating nanoparticles and administered by convection-enhanced delivery, one of these agents, dithiazanine iodide, significantly increased survival in rats bearing BCSC-derived xenografts. This unique approach to controlled delivery in the brain should have a significant impact on treatment of glioblastoma multiforme and suggests previously undescribed routes for drug and gene delivery to treat other diseases of the central nervous system.

Details

Language :
English
Database :
OpenAIRE
Accession number :
edsair.doi.dedup.....42bcbc8b106df60eb2433dc8b5dcc6a7