Ray Krishanu, Chowdhury Mustafa H, Lakowicz Joseph R
Center for Fluorescence Spectroscopy, Department of Biochemistry and Molecular Biology, University Maryland School of Medicine, 725 West Lombard Street, Baltimore, Maryland 21201, USA.
Anal Chem. 2008 Sep 15;80(18):6942-8. doi: 10.1021/ac800760z. Epub 2008 Aug 9.
In this paper, we report on steady-state and time-resolved single-molecule fluorescence measurements performed on a phycobiliprotein, R-phycoerythrin (RPE), assembled on silver nanostructures. Single-molecule measurements clearly show that RPE molecules display a 10-fold increase in fluorescence intensity, with a 7-fold decrease in lifetime when they are assembled on silver nanostructured surfaces, as compared to control glass slides. The emission spectrum of individual RPE molecules also displays a significant fluorescence enhancement on silver nanostructures as compared to glass. From intensity and lifetime histograms, it is clear that the intensities as well as lifetimes of individual RPE molecules on silver nanostructures are more heterogeneously distributed than that on glass. This single-molecule study provides further insight on the heterogeneity in the fluorescence intensity and lifetimes of the RPE molecules on both glass and SiFs surfaces, which is otherwise not possible to observe using ensemble measurements. Finite-difference time-domain calculations have been performed to study the enhanced near-fields induced around silver nanoparticles by a radiating excited-state fluorophore, and the effect of such enhanced fields on the fluorescence enhancement observed is discussed.
在本文中,我们报告了对组装在银纳米结构上的藻胆蛋白R-藻红蛋白(RPE)进行的稳态和时间分辨单分子荧光测量。单分子测量清楚地表明,与对照载玻片相比,RPE分子组装在银纳米结构表面时,荧光强度增加了10倍,寿命缩短了7倍。与玻璃相比,单个RPE分子的发射光谱在银纳米结构上也显示出显著的荧光增强。从强度和寿命直方图可以清楚地看出,银纳米结构上单个RPE分子的强度和寿命比玻璃上的分布更不均匀。这项单分子研究进一步深入了解了RPE分子在玻璃和硅基荧光表面上荧光强度和寿命的异质性,而使用总体测量方法则无法观察到这种异质性。已经进行了时域有限差分计算,以研究由辐射激发态荧光团在银纳米颗粒周围诱导的增强近场,并讨论了这种增强场对观察到的荧光增强的影响。