Advanced Cytometry Laboratories at Macquarie, MQ Biofocus Research Centre, Faculty of Science, Macquarie University, NSW 2109 Australia.
Cytometry A. 2011 May;79(5):392-7. doi: 10.1002/cyto.a.21052. Epub 2011 Mar 29.
Lanthanide bioprobes offer a number of novel advantages for advanced cytometry, including the microsecond luminescence lifetime, sharp spectral emission, and large stokes shift. However, to date, only the europium-based bioprobes have been broadly studied for time-gated luminescence cell imaging, though a wide range of efficient terbium bioprobes have been synthesized and some of them are commercially available. We analyze that the bottleneck problem was due to the lack of an efficient microscope with pulsed excitation at wavelengths of 300-330 nm. We investigate a recently available 315 nm ultraviolet (UV) light emitting diode to excite an epifluorescence microscope. Substituting a commercial UV objective (40×), the 315 nm light efficiently delivered the excitation light onto the uncovered specimen. A novel pinhole-assisted optical chopper unit was attached behind the eyepiece for direct lifetime-gating to permit visual inspection of background-free images. We demonstrate the use of a commercial terbium complex for high-contrast imaging of an environmental pathogenic microorganism, Cryptosporidium parvum. As a result of effective autofluorescence suppression by a factor of 61.85 in the time domain, we achieved an enhanced signal-to-background ratio of 14.43. This type of time-gating optics is easily adaptable to the use of routine epifluorescence microscopes, which provides an opportunity for high-contrast imaging using multiplexed lanthanide bioprobes.
镧系生物探针为高级细胞术提供了许多新颖的优势,包括微秒级的荧光寿命、尖锐的光谱发射和大的斯托克斯位移。然而,迄今为止,只有基于铕的生物探针被广泛研究用于时间门控荧光细胞成像,尽管已经合成了广泛的高效铽生物探针,其中一些已经商业化。我们分析认为,瓶颈问题是由于缺乏能够在 300-330nm 波长下进行脉冲激发的有效显微镜。我们研究了最近可用的 315nm 紫外(UV)发光二极管来激发落射荧光显微镜。用商业 UV 物镜(40×)替换,315nm 光有效地将激发光传输到未覆盖的标本上。一个新颖的小孔辅助光斩波器单元连接在目镜后面,用于直接寿命门控,以允许无背景图像的目视检查。我们展示了一种商业铽配合物在高对比度成像环境病原体微生物微小隐孢子虫中的应用。由于在时域中有效抑制了 61.85 倍的自发荧光,我们实现了 14.43 的增强信号与背景比。这种类型的时间门控光学器件很容易适应常规落射荧光显微镜的使用,这为使用多路复用镧系生物探针进行高对比度成像提供了机会。