Practical Implementation, Characterization and Applications of a Multi-Colour Time-Gated Luminescence Microscope

Time-gated luminescence microscopy using long-lifetime molecular probes can effectively eliminate autofluorescence to enable high contrast imaging. Here we investigate a new strategy of time-gated imaging for simultaneous visualisation of multiple species of microorganisms stained with long-lived co...

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Veröffentlicht in:Scientific reports 2014-10, Vol.4 (1), p.6597-6597, Article 6597
Hauptverfasser: Zhang, Lixin, Zheng, Xianlin, Deng, Wei, Lu, Yiqing, Lechevallier, Severine, Ye, Zhiqiang, Goldys, Ewa M., Dawes, Judith M., Piper, James A., Yuan, Jingli, Verelst, Marc, Jin, Dayong
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Sprache:eng
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Zusammenfassung:Time-gated luminescence microscopy using long-lifetime molecular probes can effectively eliminate autofluorescence to enable high contrast imaging. Here we investigate a new strategy of time-gated imaging for simultaneous visualisation of multiple species of microorganisms stained with long-lived complexes under low-background conditions. This is realized by imaging two pathogenic organisms ( Giardia lamblia stained with a red europium probe and Cryptosporidium parvum with a green terbium probe) at UV wavelengths (320–400 nm) through synchronization of a flash lamp with high repetition rate (1 kHz) to a robust time-gating detection unit. This approach provides four times enhancement in signal-to-background ratio over non-time-gated imaging, while the average signal intensity also increases six-fold compared with that under UV LED excitation. The high sensitivity is further confirmed by imaging the single europium-doped Y 2 O 2 S nanocrystals (150 nm). We report technical details regarding the time-gating detection unit and demonstrate its compatibility with commercial epi-fluorescence microscopes, providing a valuable and convenient addition to standard laboratory equipment.
ISSN:2045-2322
2045-2322
DOI:10.1038/srep06597