Conformational transitions monitored for single molecules in solution.
- 25 June 1996
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 93 (13) , 6710-6715
- https://doi.org/10.1073/pnas.93.13.6710
Abstract
Phenomena that can be observed for a large number of molecules may not be understood if it is not possible to observe the events on the single-molecule level. We measured the fluorescence lifetimes of individual tetramethylrhodamine molecules, linked to an 18-mer deoxyribonucleotide sequence specific for M13 DNA, by time-resolved, single-photon counting in a confocal fluorescence microscope during Brownian motion in solution. When many molecules were observed, a biexponential fluorescence decay was observed with equal amplitudes. However, on the single-molecule level, the fraction of one of the amplitudes spanned from 0 to unity for a collection of single-molecule detections. Further analysis by fluorescence correlation spectroscopy made on many molecules revealed a process that obeys a stretched exponential relaxation law. These facts, combined with previous evidence of the quenching effect of guanosine on rhodamines, indicate that the tetramethylrhodamine molecule senses conformational transitions as it associates and dissociates to a guanosine-rich area. Thus, our results reveal conformational transitions in a single molecule in solution under conditions that are relevant for biological processes.Keywords
This publication has 12 references indexed in Scilit:
- Observation of Individual Chemical Reactions in SolutionScience, 1995
- Electrochemical Detection of Single MoleculesScience, 1995
- Probing Individual Molecules with Confocal Fluorescence MicroscopyScience, 1994
- Probing Single Molecule DynamicsScience, 1994
- Alterations of Single Molecule Fluorescence Lifetimes in Near-Field Optical MicroscopyScience, 1994
- Sorting single molecules: application to diagnostics and evolutionary biotechnology.Proceedings of the National Academy of Sciences, 1994
- The Energy Landscapes and Motions of ProteinsScience, 1991
- Conformational Substates in ProteinsAnnual Review of Biophysics, 1988
- Laser-induced fluorescence of flowing samples as an approach to single-molecule detection in liquidsAnalytical Chemistry, 1984
- Dynamics of ligand binding to myoglobinBiochemistry, 1975