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Cell-specific optoporation with near-infrared ultrafast laser and functionalized gold nanoparticles

机译:特异性optoporation与近红外超快激光和功能化金纳米粒子

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Selective targeting of diseased cells can increase therapeutic efficacy and limit off-target adverse effects. We developed a new tool to selectively perforate living cells with functionalized gold nanoparticles (AuNPs) and near-infrared (NIR) femtosecond (fs) laser. The receptor CD44 strongly expressed by cancer stem cells was used as a model for selective targeting. Citrate-capped AuNPs (100 nm in diameter) functionalized with 0.01 orthopyridyl-disulfide-poly(ethylene glycol) (5 kDa)-N-hydroxysuccinimide (OPSS-PEG-NHS) conjugated to monoclonal antibodies per nm(2) and 5 mu M HS-PEG (5 kDa) were colloidally stable in cell culture medium containing serum proteins. These AuNPs attached mostly as single particles 115 times more to targeted CD44+ MDA-MB-231 and CD44+ ARPE-19 cells than to non-targeted CD44-661W cells. Optimally functionalized AuNPs enhanced the fs laser (800 nm, 80-100 mJ cm(-2) at 250 Hz or 60-80 mJ cm(-2) at 500 Hz) to selectively perforate targeted cells without affecting surrounding non-targeted cells in co-culture. This novel highly versatile treatment paradigm can be adapted to target and perforate other cell populations by adapting to desired biomarkers. Since living biological tissues absorb energy very weakly in the NIR range, the developed non-invasive tool may provide a safe, cost-effective clinically relevant approach to ablate pathologically deregulated cells and limit complications associated with surgical interventions.
机译:选择性靶向病变的细胞可以增加治疗效果,并限制非目标不利效果。穿孔与功能化金活细胞纳米颗粒(AuNPs)和近红外(NIR)飞秒激光(fs)。使用强烈表达了癌症干细胞作为选择性定位模型。Citrate-capped AuNPs(直径100纳米)携带0.01orthopyridyl-disulfide-poly(乙二醇)(5kDa) -N-hydroxysuccinimide (OPSS-PEG-NHS)共轭每海里(2)和单克隆抗体5μM HS-PEG (5 kDa)胶体稳定细胞培养基含有血清蛋白质。这些AuNPs连接主要是单粒子针对CD44 + 115倍mda - mb - 231和CD44 + ARPE-19细胞比一道cd44 - 661 w细胞。增强fs激光(800海里,80 - 100年乔丹厘米(2)在250赫兹或60 - 80 mJ厘米(2)在500赫兹)选择性地靶向细胞没有穿孔影响周围的一道细胞共培养。模式可以适应目标和穿孔其他由适应所需的细胞群生物标志物。在近红外光谱范围内,吸收能量很弱开发了非侵入性的工具可能会提供一个安全、成本效益的临床相关的方法切除病理管制细胞和限制与手术相关的并发症干预措施。

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