Theoretical analysis and computer simulation of fluorescence lifetime measurements. II. Contour length dependence of single polymers
- 1 July 2004
- journal article
- research article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 121 (1) , 572-581
- https://doi.org/10.1063/1.1756578
Abstract
Fluorescence lifetime measurements in a polymer chain are modeled using a memory function expansion, computer simulations, and simple scaling arguments. Unless the quenching rate is localized and infinitely fast, the fluorescence lifetime is generally not equivalent to the first passage time. The fluorescence lifetime distribution is decomposed into memory functions that can be measured separately in single-molecule experiments. The leading order of the expansion gives the Wilemski–Fixman (WF) approximation, and the convergence of higher order terms determines its validity. Simulations of the fluorescence quenching on a Rouse chain verify the accuracy of the WF approximation at small contact radii, short contour lengths, and small quenching rates. Detailed investigation of the average fluorescence lifetime reveals two competing mechanisms: the independent motion of end-to-end vector, which dominates at small contact radius, and the slowest relaxation of polymer, which dominates at large contact radius. The Wilemski–Fixman rate is used in combination with scaling arguments to predict the dependence of fluorescence lifetime on the contour length. Our predictions for the scaling of the average lifetime with the contour length are in good agreement with both simulations and recent experiments by Eaton and his group [L. J. Lapidus, W. A. Eaton, and J. Hofrichter, Proc. Natl. Acad. Sci. U.S.A. 97, 7220 (2000)].Keywords
This publication has 28 references indexed in Scilit:
- Theoretical analysis and computer simulation of fluorescence lifetime measurements. I. Kinetic regimes and experimental time scalesThe Journal of Chemical Physics, 2004
- Diffusion-limited loop formation of semiflexible polymers: Kramers theory and the intertwined time scales of chain relaxation and closingEurophysics Letters, 2003
- Effects of Chain Stiffness on the Dynamics of Loop Formation in Polypeptides. Appendix: Testing a 1-Dimensional Diffusion Model for Peptide DynamicsThe Journal of Physical Chemistry B, 2002
- Rate of intramolecular contact formation in peptides: The loop length dependenceThe Journal of Chemical Physics, 2002
- Dynamics of Intramolecular Contact Formation in Polypeptides: Distance Dependence of Quenching Rates in a Room-Temperature GlassPhysical Review Letters, 2001
- Effect of Orientational Motion of Mobile Chromophores on the Dynamics of Förster Energy Transfer in PolymersThe Journal of Physical Chemistry B, 2001
- Two-Event Echos in Single-Molecule Kinetics: A Signature of Conformational FluctuationsThe Journal of Physical Chemistry B, 2001
- Dynamical disorder: Passage through a fluctuating bottleneckThe Journal of Chemical Physics, 1992
- Transient kinetics of chemical reactions with bounded diffusion perpendicular to the reaction coordinate: Intramolecular processes with slow conformational changesThe Journal of Chemical Physics, 1983
- Diffusion-controlled intrachain reactions of polymers. II Results for a pair of terminal reactive groupsThe Journal of Chemical Physics, 1974