SULSA, School of Biology, University of St Andrews, St Andrews KY169TS, UK.
J Biophotonics. 2010 Oct;3(10-11):696-705. doi: 10.1002/jbio.201000052.
We demonstrate the advantages of a dynamic diffractive optical element, namely a spatial light modulator (SLM) for the controlled and enhanced optoinjection and phototransfection of mammalian cells with a femtosecond light source. The SLM provides full control over the lateral and axial positioning of the beam with sub-micron precision. Fast beam translation enables time-sequenced irradiation, which is shown to enhance the optoinjection efficiency and alleviate the problem of exact beam positioning on the cell membrane. We show that irradiation in three axial positions doubles the number of viably optoinjected cells when compared with a single dose. The presented system also enables untargeted raster scan irradiation which provides a higher throughput transfection of adherent cells at the rate of 1 cell per second. Additionally, fluorescent imaging is used to demonstrate cell selective two-step gene therapy.
我们展示了动态衍射光学元件(即空间光调制器,SLM)的优势,它可用于利用飞秒光源对哺乳动物细胞进行受控和增强的光转染和光转导。SLM 可实现对光束的横向和轴向位置的完全控制,精度达到亚微米级。快速光束平移可实现时间顺序照射,这被证明可以提高光转染效率,并减轻在细胞膜上精确定位光束的问题。我们表明,与单次剂量相比,在三个轴向位置照射可将活细胞的光转染数量增加一倍。所提出的系统还可以实现非靶向光栅扫描照射,以 1 秒 1 个细胞的速度对贴壁细胞进行更高通量的转染。此外,荧光成像用于演示细胞选择性两步基因治疗。