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Single-molecule imaging at high fluorophore concentrations by local activation of dye

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posted on 2024-11-15, 00:36 authored by Hylkje J Geertsema, Aartje Schulte, Lisanne SpenkelinkLisanne Spenkelink, William McGrath, Seamus R Morrone, Jungsan Sohn, Walter Mangel, Andrew Robinson, Antonius van OijenAntonius van Oijen
Single-molecule fluorescence microscopy is a powerful tool for observing biomolecular interactions with high spatial and temporal resolution. Detecting fluorescent signals from individual labeled proteins above high levels of background fluorescence remains challenging, however. For this reason, the concentrations of labeled proteins in in vitro assays are often kept low compared to their in vivo concentrations. Here, we present a new fluorescence imaging technique by which single fluo- rescent molecules can be observed in real time at high, physiologically relevant concentrations. The technique requires a protein and its macromolecular substrate to be labeled each with a different fluorophore. Making use of short-distance energy-transfer mechanisms, only the fluorescence from those proteins that bind to their substrate is activated. This approach is demonstrated by labeling a DNA substrate with an intercalating stain, exciting the stain, and using energy transfer from the stain to activate the fluorescence of only those labeled DNA-binding proteins bound to the DNA. Such an experimental design allowed us to observe the sequence-independent interaction of Cy5-labeled interferon-inducible protein 16 with DNA and the sliding via one-dimen- sional diffusion of Cy5-labeled adenovirus protease on DNA in the presence of a background of hundreds of nanomolar Cy5 fluorophore.

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Citation

Geertsema, H. J., Schulte, A., Spenkelink, L. M., McGrath, W. J., Morrone, S. R., Sohn, J., Mangel, W. F., Robinson, A. & van Oijen, A. M. (2015). Single-molecule imaging at high fluorophore concentrations by local activation of dye. Biophysical Journal, 108 (4), 949-956.

Journal title

Biophysical Journal

Volume

108

Issue

4

Pagination

949-956

Language

English

RIS ID

107578

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