DocumentCode :
2206581
Title :
Dielectrophoretic tweezers as a platform for molecular force spectroscopy in a highly parallel format
Author :
Cheng, Peng ; Barrett, Michael J. ; Oliver, Piercen M. ; Cetin, Deniz ; Vezenov, Dmitri
Author_Institution :
Lehigh Univ., Bethlehem, PA, USA
fYear :
2012
fDate :
16-18 March 2012
Firstpage :
281
Lastpage :
282
Abstract :
Miniaturization has driven down the cost of tools used in bioanalysis and diagnostics, with single molecules becoming the ultimate detection limit. Our aim is to build a force-spectroscopy-on-a-chip device that can detect and manipulate many (millions) single molecules in parallel. We demonstrate placement of single DNA molecules on a surface with controlled spacing and subsequent attachment of microscopic force probes to those molecules. We used dielectrophoresis (DEP) in a simple planar-electrode geometry as a form of molecular force spectroscopy in a highly parallel format. We determined the approximate crossover frequency between negative and positive DEP using electrodes without dielectric microstructures - a simplification over standard experimental methods involving quadrupoles or optical trapping. We applied the DEP tweezers to the stretching of a short DNA oligomer and detected its extension using total-internal reflection fluorescence microscopy. The combination of a simple device fabrication, molecule-bead alignment, uniform distribution of high axial forces, and simultaneous detection of molecular extensions makes DEP tweezers ideal for highly parallel detection of stretching or unbinding of biomolecules.
Keywords :
DNA; biochemistry; biological techniques; electrochemical electrodes; electrophoresis; fluorescence; molecular biophysics; optical microscopy; radiation pressure; DEP tweezers; approximate crossover frequency; controlled spacing; dielectric microstructures; dielectrophoresis; dielectrophoretic tweezers; force-spectroscopy-on-a-chip device; high axial forces; highly parallel detection; highly parallel format; microscopic force probes; miniaturization; molecular extensions; molecular force spectroscopy; molecule-bead alignment; optical trapping; quadrupoles; short DNA oligomer; simple device fabrication; simple planar-electrode geometry; simultaneous detection; single DNA molecules; standard experimental methods; total-internal reflection fluorescence microscopy; ultimate detection limit; DNA; Electrodes; Fluorescence; Force; Probes; Spectroscopy; Surface topography;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Bioengineering Conference (NEBEC), 2012 38th Annual Northeast
Conference_Location :
Philadelphia, PA
ISSN :
2160-7001
Print_ISBN :
978-1-4673-1141-0
Type :
conf
DOI :
10.1109/NEBC.2012.6207074
Filename :
6207074
Link To Document :
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