Single-molecule fluorescence spectroscopy in (bio)catalysis

Roeffaers, Maarten B. J.;De Cremer, Gert;Uji-I, Hiroshi;Muls, Benlot;Hofkens, Johan;et.al.
(2007) National Academy of Sciences. Proceedings — Vol. 104, n° 31, p. 12603-12609 (2007)

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Authors
  • Roeffaers, Maarten B. J.
    Author
  • De Cremer, Gert
    Author
  • Uji-I, Hiroshi
    Author
  • Muls, Benlot
    Author
  • Hofkens, Johan
    Author
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Abstract
The ever-improving time and space resolution and molecular detection sensitivity of fluorescence microscopy offer unique opportunities to deepen our insights into the function of chemical and biological catalysts. Because single-molecule microscopy allows for counting the turnover events one by one, one can map the distribution of the catalytic activities of different sites in solid heterogeneous catalysts, or one can study time-dependent activity fluctuations of individual sites in enzymes or chemical catalysts. By experimentally monitoring individuals rather than populations, the origin of complex behavior, e.g., in kinetics or in deactivation processes, can be successfully elucidated. Recent progress of temporal and spatial resolution in single-molecule fluorescence microscopy is discussed in light of its impact on catalytic assays. Key concepts are illustrated regarding the use of fluorescent reporters in catalytic reactions. Future challenges comprising the integration of other techniques, such as diffraction, scanning probe, or vibrational methods in single-molecule fluorescence spectroscopy are suggested.
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Citations

Roeffaers, M. B. J., De Cremer, G., Uji-I, H., Muls, B., Sels, B. F., Jacobs, P. A., De Schryver, F. C., De Vos, D. E., & Hofkens, J. (2007). Single-molecule fluorescence spectroscopy in (bio)catalysis. National Academy of Sciences. Proceedings, 104(31), 12603-12609. https://doi.org/10.1073/pnas.0610755104 (Original work published 2007)