Department of Biochemistry and Molecular Biology, University of Maryland School of Medicine, 108 N. Greene Street, Baltimore, MD 21201-1503, USA.
J Fluoresc. 2010 Mar;20(2):435-40. doi: 10.1007/s10895-009-0565-9. Epub 2009 Dec 2.
With the increased development and use of fluorescence lifetime-based sensors, fiber optic sensors, fluorescence lifetime imaging microscopy (FLIM), and plate and array readers, , calibration standards are essential to ensure the proper function of these devices and accurate results. For many devices that utilize a "front face excitation" geometry where the excitation is nearly coaxial with the direction of emission, scattering-based lifetime standards are problematic and fluorescent lifetime standards are necessary. As more long wavelength (red and near-infrared) fluorophores are used to avoid background autofluorescence, the lack of lifetime standards in this wavelength range has only become more apparent . We describe an approach to developing lifetime standards in any wavelength range, based on Förster resonance energy transfer (FRET). These standards are bright, highly reproducible, have a broad decrease in observed lifetime, and an emission wavelength in the red to near infrared making them well suited for the laboratory and field applications as well. This basic approach can be extended to produce lifetime standards for other wavelength regimes.
随着基于荧光寿命的传感器、光纤传感器、荧光寿命成像显微镜(FLIM)以及平板和阵列读取器的日益发展和使用,校准标准对于确保这些设备的正常功能和准确结果至关重要。对于许多采用“前向激发”几何形状的设备,其中激发几乎与发射方向同轴,基于散射的寿命标准存在问题,因此需要荧光寿命标准。随着越来越多的长波长(红色和近红外)荧光染料被用于避免背景自发荧光,在该波长范围内缺乏寿命标准的问题变得更加明显。我们描述了一种基于Förster 共振能量转移(FRET)在任何波长范围内开发寿命标准的方法。这些标准具有亮度高、重现性好、观察到的寿命明显延长以及发射波长在红色到近红外范围内的特点,非常适合实验室和现场应用。这种基本方法可以扩展到其他波长范围的寿命标准的生产。