Chen Hongtao, Gratton Enrico, Digman Michelle A
Laboratory for Fluorescence Dynamics, Department of Biomedical Engineering, University of California, Irvine.
Microsc Res Tech. 2015 Apr;78(4):283-93. doi: 10.1002/jemt.22473. Epub 2015 Feb 13.
Gold nanorods (NRs) with tunable plasmon-resonant absorption in the near-infrared region have considerable advantages over organic fluorophores as imaging agents due to their brightness and lack of photobleaching. However, the luminescence spectral properties of NRs have not been fully characterized at the single particle level due to lack of proper analytic tools. Here, we present a spectral phasor analysis method that allows investigations of NRs' spectra at single particle level showing the spectral variance and providing spatial information during imaging. The broad phasor distribution obtained by the spectral phasor analysis indicates that spectra of NRs are different from particle to particle. NRs with different spectra can be identified in images with high spectral resolution. The spectral behaviors of NRs under different imaging conditions, for example, different excitation powers and wavelengths, were revealed by our laser-scanning multiphoton microscope using a high-resolution spectrograph with imaging capability. Our results prove that the spectral phasor method is an easy and efficient tool in hyper-spectral imaging analysis to unravel subtle changes of the emission spectrum. We applied this method to study the spectral dynamics of NRs during direct optical trapping and by optothermal trapping. Interestingly, different spectral shifts were observed in both trapping phenomena.
在近红外区域具有可调谐等离子体共振吸收的金纳米棒(NRs),作为成像剂,相较于有机荧光团具有显著优势,因其具有高亮度且无光漂白现象。然而,由于缺乏合适的分析工具,NRs的发光光谱特性在单颗粒水平上尚未得到充分表征。在此,我们提出一种光谱相量分析方法,该方法能够在单颗粒水平上研究NRs的光谱,展示光谱变化并在成像过程中提供空间信息。通过光谱相量分析获得的宽泛相量分布表明,不同NRs颗粒的光谱存在差异。在具有高光谱分辨率的图像中,可以识别出具有不同光谱的NRs。我们使用具有成像能力的高分辨率光谱仪的激光扫描多光子显微镜,揭示了NRs在不同成像条件下(例如不同激发功率和波长)的光谱行为。我们的结果证明,光谱相量方法是超光谱成像分析中一种简便有效的工具,可用于揭示发射光谱的细微变化。我们应用此方法研究了NRs在直接光阱捕获和光热捕获过程中的光谱动力学。有趣的是,在这两种捕获现象中均观察到了不同的光谱位移。