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Transverse dielectrophoretic-based DNA nanoscale confinement.


ABSTRACT: Confinement of single molecules within nanoscale environments is crucial in a range of fields, including biomedicine, genomics, and biophysics. Here, we present a method that can concentrate, confine, and linearly stretch DNA molecules within a single optical field of view using dielectrophoretic (DEP) force. The method can convert an open surface into one confining DNA molecules without a requirement for bonding, hydrodynamic or mechanical components. We use a transverse DEP field between a top coverslip and a bottom substrate, both of which are coated with a transparent conductive material. Both layers are attached using double-sided tape, defining the chamber. The nanofeatures lie at the "floor" and do not require any bonding. With the application of an alternating (AC) electric field (2 Vp-p) between the top and bottom electrodes, a DEP field gradient is established and used to concentrate, confine and linearly extend DNA in nanogrooves as small as 100-nm in width. We also demonstrate reversible loading/unloading of DNA molecules into nanogrooves and nanopits by switching frequency (between 10?kHz to 100?kHz). The technology presented in this paper provides a new method for single-molecule trapping and analysis.

SUBMITTER: Mahshid S 

PROVIDER: S-EPMC5899125 | biostudies-other | 2018 Apr

REPOSITORIES: biostudies-other

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Transverse dielectrophoretic-based DNA nanoscale confinement.

Mahshid Sara S   Lu Jia J   Abidi Abrar A AA   Sladek Robert R   Reisner Walter W WW   Ahamed Mohammed Jalal MJ  

Scientific reports 20180413 1


Confinement of single molecules within nanoscale environments is crucial in a range of fields, including biomedicine, genomics, and biophysics. Here, we present a method that can concentrate, confine, and linearly stretch DNA molecules within a single optical field of view using dielectrophoretic (DEP) force. The method can convert an open surface into one confining DNA molecules without a requirement for bonding, hydrodynamic or mechanical components. We use a transverse DEP field between a top  ...[more]

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