Lin Donghai, Qin Tianqi, Wang Yunqing, Sun Xiuyan, Chen Lingxin
School of Pharmacy, Yantai University , Yantai 264005, China.
ACS Appl Mater Interfaces. 2014 Jan 22;6(2):1320-9. doi: 10.1021/am405396k. Epub 2014 Jan 8.
As novel optical nanoprobes, surface-enhanced Raman scattering (SERS) tags have drawn growing interests in the application of biomedical imaging and phototherapies. Herein, we demonstrated a novel in situ synthesis strategy for GO wrapped gold nanocluster SERS tags by using a tris(2,2'-bipyridyl)ruthenium(II) chloride (Rubpy)/GO nanohybrid as a complex Raman reporter, inspired by the role of GO as an artificial receptor for various dyes. The introduction of GO in the synthesis procedure provided systematic solutions for controlling several key parameters of SERS tags, including reproducibility, sensitivity, and colloidal and signal stability. An additional interesting thermal-sensitive SERS property (SERS intensity decreased upon increasing the temperature) was also achieved due to the heat-induced release/redistribution of reporter molecules adsorbed on GO. Combining the synergic effect of these features, we further fabricated multifunctional, aldehyde group conjugated Au@Rubpy/GO SERS tags for optical labeling and photothermal ablation of bacteria. Sensitive Raman imaging of gram-positive (Staphylococcus aureus) and gram-negative (Escherichia coli) bacteria could be realized, and satisfactory photothermal killing efficacy for both bacteria was achieved. Our results also demonstrated the correlation among the SERS intensity decrease ratio, bacteria survival rate, and the terminal temperature of the tag-bacteria suspension, showing the possibility to use SERS assay to measure antibacterial response during the photothermal process using this tag.
作为新型光学纳米探针,表面增强拉曼散射(SERS)标签在生物医学成像和光疗应用中引起了越来越多的关注。在此,受氧化石墨烯(GO)作为各种染料的人工受体的作用启发,我们展示了一种通过使用三(2,2'-联吡啶)钌(II)氯化物(Rubpy)/GO纳米杂化物作为复合拉曼报告分子来原位合成GO包裹金纳米团簇SERS标签的新策略。在合成过程中引入GO为控制SERS标签的几个关键参数提供了系统的解决方案,包括重现性、灵敏度以及胶体和信号稳定性。由于吸附在GO上的报告分子受热诱导释放/重新分布,还实现了一种额外有趣的热敏SERS特性(SERS强度随温度升高而降低)。结合这些特性的协同效应,我们进一步制备了用于细菌光学标记和光热消融的多功能、醛基共轭的Au@Rubpy/GO SERS标签。可以实现革兰氏阳性(金黄色葡萄球菌)和革兰氏阴性(大肠杆菌)细菌的灵敏拉曼成像,并且对两种细菌都实现了令人满意的光热杀灭效果。我们的结果还证明了SERS强度降低率、细菌存活率和标签-细菌悬浮液的最终温度之间的相关性,表明使用该标签在光热过程中利用SERS测定来测量抗菌反应的可能性。