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PMID: 15740360 Published · ppublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S.

Using fluorescence resonance energy transfer to measure distances along individual DNA molecules: corrections due to nonideal transfer.

The Journal of chemical physics ·Vol. 122 ·No. 6 ·2005-02-08 ·Pages 061103

Sabanayagam CR, Eid JS, Meller A

Abstract

Single molecule fluorescence resonance energy transfer has been extensively used to measure distance changes and kinetics in various biomolecular systems. However, due to complications involving multiple de-excitation pathways of the dyes, the absolute inter-dye distance information has seldom been recovered. To circumvent this we directly probe the relative variations in the quantum yield of individual fluorophores. B-DNA was used as a scaffold to position the donor (Cy3 or TMR) at precise distances from the acceptor (Cy5) within the Forster radius. We found that the variation in the Cy3 quantum yield is approximately 5 times larger than that of TMR. By taking into account the molecule-to-molecule variability in the acceptor/donor quantum yield ratio, the apparent fluorescence resonance energy transfer efficiencies were scaled to yield the theoretical values. We obtained very good agreement with a physical model that predicts distances along B-DNA.

MeSH Terms
Carbocyanines DNA/chemistry Fluorescence Resonance Energy Transfer Fluorescent Dyes Models, Chemical Nucleic Acid Conformation Thymine/chemistry
Chemicals
Carbocyanines Fluorescent Dyes cyanine dye 5 DNA Thymine
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Sabanayagam Chandran R
Rowland Institute at Harvard, Harvard University, Cambridge, Massachusetts 02142, USA.
Eid John S
Meller Amit
Article Info
Journal
The Journal of chemical physics
Abbr.
J Chem Phys
ISSN
0021-9606
Published
2005-02-08
Pages
061103
Language
English
Region
United States
NLM ID
0375360
Subset
IM
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