Ultrahigh-Resolution Multicolor Colocalization of Single Fluorescent Probes

An optical ruler based on ultrahigh-resolution colocalization of single fluorescent probes is described in this paper. It relies on the use of two unique families of fluorophores, namely energy-transfer fluorescent beads (TransFluoSpheres) and semiconductor nanocrystal quantum dots, that can be exci...

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Veröffentlicht in:Proceedings of the National Academy of Sciences - PNAS 2000-08, Vol.97 (17), p.9461-9466
Hauptverfasser: Lacoste, Thilo D., Michalet, Xavier, Pinaud, Fabien, Chemla, Daniel S., Alivisatos, A. Paul, Weiss, Shimon
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Sprache:eng
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Zusammenfassung:An optical ruler based on ultrahigh-resolution colocalization of single fluorescent probes is described in this paper. It relies on the use of two unique families of fluorophores, namely energy-transfer fluorescent beads (TransFluoSpheres) and semiconductor nanocrystal quantum dots, that can be excited by a single laser wavelength but emit at different wavelengths. A multi-color sample-scanning confocal microscope was constructed that allows one to image each fluorescent light emitter, free of chromatic aberrations, by scanning the sample with nanometer scale steps with a piezo-scanner. The resulting spots are accurately localized by fitting them to the known shape of the excitation point-spread function of the microscope. We present results of two-dimensional colocalization of TransFluoSpheres (40 nm in diameter) and of nanocrystals (3-10 nm in diameter) and demonstrate distance-measurement accuracy of better than 10 nm using conventional far-field optics. This ruler bridges the gap between fluorescence resonance energy transfer, near- and far-field imaging, spanning a range of a few nanometers to tens of micrometers.
ISSN:0027-8424
1091-6490
DOI:10.1073/pnas.170286097