Maximum likelihood trajectories from single molecule fluorescence resonance energy transfer experiments

2003 | journal article

Jump to: Cite & Linked | Documents & Media | Details | Version history

Cite this publication

​Maximum likelihood trajectories from single molecule fluorescence resonance energy transfer experiments​
Schröder, G. F. & Grubmüller, H. ​ (2003) 
The Journal of Chemical Physics119(18) pp. 9920​-9924​.​ DOI: https://doi.org/10.1063/1.1616511 

Documents & Media

License

GRO License GRO License

Details

Authors
Schröder, Gunnar F.; Grubmüller, Helmut 
Abstract
Single molecule fluorescence resonance energy transfer (FRET) experiments are a powerful and versatile tool for studying conformational motions of single biomolecules. However, the small number of recorded photons typically limits the achieved time resolution. We develop a maximum likelihood theory that uses the full information of the recorded photon arrival times to reconstruct nanometer distance trajectories. In contrast to the conventional, intensity-based approach, our maximum likelihood approach does not suffer from biased a priori distance distributions. Furthermore, by providing probability distributions for the distance, the theory also yields rigorous error bounds. Applied to a burst of 230 photons obtained from a FRET dye pair site-specifically linked to the neural fusion protein syntaxin-1a, the theory enables one to distinguish time-resolved details of millisecond fluctuations from shot noise. From cross validation, an effective diffusion coefficient is also determined from the FRET data.
Issue Date
2003
Journal
The Journal of Chemical Physics 
ISSN
0021-9606
Language
English

Reference

Citations


Social Media