1] Faculty of Engineering, Bar-Ilan University, Ramat-Gan 5290002, Israel [2] Bar-Ilan Institute of Nanotechnologies and Advanced Materials, Ramat-Gan, 52900, Israel [3].
Sci Rep. 2013;3:2499. doi: 10.1038/srep02499.
A new paradigm for an effective delivery of therapeutics into cancer cells is presented. Degradable porous silicon carriers, which are tailored to carry and release a model anti-cancer drug, are biolistically bombarded into in-vitro cancerous targets. We demonstrate the ability to launch these highly porous microparticles by a pneumatic capillary gene gun, which is conventionally used to deliver cargos by heavy metal carriers. By optimizing the gun parameters e.g., the accelerating gas pressure, we have successfully delivered the porous carriers, to reach deep targets and to cross a skin barrier in a highly spatial resolution. Our study reveals significant cytotoxicity towards the target human breast carcinoma cells following the delivery of drug-loaded carriers, while administrating empty particles results in no effect on cell viability. The unique combination of biolistics with the temporal control of payload release from porous carriers presents a powerful and non-conventional platform for designing new therapeutic strategies.
提出了一种将治疗药物有效递送至癌细胞的新范例。定制的可降解多孔硅载体可携带和释放模型抗癌药物,然后通过弹道式微粒子喷射仪将其喷射到体外癌变靶标中。我们证明了可以通过气动毛细管基因枪发射这些高度多孔的微粒子,该基因枪通常用于通过重金属载体输送有效载荷。通过优化喷枪参数,例如加速气体压力,我们已经成功地输送了多孔载体,以实现深层目标并以高空间分辨率穿透皮肤屏障。我们的研究表明,在递药载体后,负载药物的载体对靶人乳腺癌细胞具有显著的细胞毒性,而施用空载体对细胞活力没有影响。弹道式微粒子喷射与多孔载体中有效载荷释放的时间控制的独特结合,为设计新的治疗策略提供了一种强大而非常规的平台。