Volume 31, Issue 2 p. 279-286
Nucleic Acids

Thermophoresis of single stranded DNA

Philipp Reineck

Philipp Reineck

Department of Physics, Systems Biophysics, Center for Nanoscience, Ludwig Maximilians Universität München, München, Germany

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Christoph J. Wienken

Christoph J. Wienken

Department of Physics, Systems Biophysics, Center for Nanoscience, Ludwig Maximilians Universität München, München, Germany

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Dieter Braun

Corresponding Author

Dieter Braun

Department of Physics, Systems Biophysics, Center for Nanoscience, Ludwig Maximilians Universität München, München, Germany

Department of Physics, Systems Biophysics, Center for Nanoscience, Ludwig Maximilians Universität München, Amalienstr. 54, 80799 München, Germany Fax: +49-89-2180-16558===Search for more papers by this author
First published: 18 January 2010
Citations: 77

Abstract

The manipulation and analysis of biomolecules in native bulk solution is highly desired; however, few methods are available. In thermophoresis, the thermal analog to electrophoresis, molecules are moved along a microscopic temperature gradient. Its theoretical foundation is still under debate, but practical applications for analytics in biology show considerable potential. Here we measured the thermophoresis of highly diluted single stranded DNA using an all-optical capillary approach. Temperature gradients were created locally by an infrared laser. The thermal depletion of oligonucleotides of between 5 and 50 bases in length were investigated by fluorescence at various salt concentrations. To a good approximation, the previously tested capacitor model describes thermophoresis: the Soret coefficient linearly depends on the Debye length and is proportional to the DNA length to the power of 0.35, dictated by the conformation-based size scaling of the diffusion coefficient. The results form the basis for quantitative DNA analytics using thermophoresis.