Department of Electrical Engineering, University of California, Los Angeles (UCLA), Los Angeles, California 90095, USA.
Anal Chem. 2011 Feb 15;83(4):1321-7. doi: 10.1021/ac102532w. Epub 2011 Jan 19.
It is difficult to achieve controlled cutting of elastic, mechanically fragile, and rapidly resealing mammalian cell membranes. Here, we report a photothermal nanoblade that utilizes a metallic nanostructure to harvest short laser pulse energy and convert it into a highly localized explosive vapor bubble, which rapidly punctures a lightly contacting cell membrane via high-speed fluidic flows and induced transient shear stress. The cavitation bubble pattern is controlled by the metallic structure configuration and laser pulse duration and energy. Integration of the metallic nanostructure with a micropipet, the nanoblade generates a micrometer-sized membrane access port for delivering highly concentrated cargo (5 × 10(8) live bacteria/mL) with high efficiency (46%) and cell viability (>90%) into mammalian cells. Additional biologic and inanimate cargo over 3-orders of magnitude in size including DNA, RNA, 200 nm polystyrene beads, to 2 μm bacteria have also been delivered into multiple mammalian cell types. Overall, the photothermal nanoblade is a new approach for delivering difficult cargo into mammalian cells.
实现对弹性、机械脆弱和快速自我封闭的哺乳动物细胞膜的可控切割具有一定难度。在这里,我们报告了一种光热纳米刀,它利用金属纳米结构来收集短激光脉冲能量,并将其转化为高度局域化的爆炸蒸汽泡,通过高速流体流动和诱导的瞬态剪切力,迅速刺穿轻轻接触的细胞膜。空化泡的模式由金属结构的配置和激光脉冲的持续时间和能量控制。将金属纳米结构与微管结合,纳米刀可生成一个微米大小的细胞膜接入端口,用于将高浓度的货物(5×10(8)个活细菌/mL)高效(46%)且具有高细胞活力(>90%)地递送入哺乳动物细胞。此外,大小超过 3 个数量级的生物和无生命货物,包括 DNA、RNA、200nm 聚苯乙烯珠和 2μm 细菌,也被递送到多种哺乳动物细胞类型中。总的来说,光热纳米刀为将难处理的货物递送入哺乳动物细胞提供了一种新方法。