Chan J W, Esposito A P, Talley C E, Hollars C W, Lane S M, Huser T
Physics and Advanced Technologies Directorate, Chemistry and Materials Science Directorate, Lawrence Livermore National Laboratory, 7000 East Avenue, Livermore, CA 94550, USA.
Anal Chem. 2004 Feb 1;76(3):599-603. doi: 10.1021/ac0350155.
We demonstrate that optical trapping combined with confocal Raman spectroscopy using a single laser source is a powerful tool for the rapid identification of micrometer-sized particles in an aqueous environment. Optical trapping immobilizes the particle while maintaining it in the center of the laser beam path and within the laser focus, thus maximizing the collection of its Raman signals. The single particle is completely isolated from other particles and substrate surfaces, therefore eliminating any unwanted background signals and ensuring that information is collected only from the selected, individual particle. In this work, an inverted confocal Raman microscope is combined with optical trapping to probe and analyze bacterial spores in solution. Rapid, reagentless detection and identification of bacterial spores with no false positives from a complex mixed sample containing polystyrene and silica beads in aqueous suspension is demonstrated. In addition, the technique is used to analyze the relative concentration of each type of particle in the mixture. Our results show the feasibility for incorporating this technique in combination with a flow cytometric-type scheme in which the intrinsic Raman signatures of the particles are used instead of or in addition to fluorescent labels to identify cells, bacteria, and particles in a wide range of applications.
我们证明,使用单一激光源将光镊与共焦拉曼光谱相结合,是在水性环境中快速识别微米级颗粒的强大工具。光镊将颗粒固定,同时使其保持在激光束路径的中心并处于激光焦点内,从而最大限度地收集其拉曼信号。单个颗粒与其他颗粒和基底表面完全隔离,因此消除了任何不需要的背景信号,并确保仅从选定的单个颗粒收集信息。在这项工作中,倒置共焦拉曼显微镜与光镊相结合,用于探测和分析溶液中的细菌孢子。结果表明,该方法能够从含有聚苯乙烯和二氧化硅珠的水性悬浮液的复杂混合样品中快速、无需试剂地检测和鉴定细菌孢子,且无假阳性结果。此外,该技术还用于分析混合物中每种颗粒的相对浓度。我们的结果表明,将该技术与流式细胞术方案相结合具有可行性,在该方案中,颗粒的固有拉曼特征可用于替代荧光标记或作为荧光标记的补充,以在广泛的应用中识别细胞、细菌和颗粒。