4.8 Article

Biochip functionalization using electrowetting-on-dielectric digital microfluidics for surface plasmon resonance imaging detection of DNA hybridization

Journal

BIOSENSORS & BIOELECTRONICS
Volume 24, Issue 7, Pages 2218-2224

Publisher

ELSEVIER ADVANCED TECHNOLOGY
DOI: 10.1016/j.bios.2008.11.031

Keywords

Digital microfluidics; Electrowetting-on-dielectric; Surface plasmon resonance imaging; DNA biochips; DNA hybridization detection

Funding

  1. Fonds quebecois de la recherche sur la nature et les technologies (FQRNT)
  2. FQRNT-Centre for Biorecognition and Biosensors
  3. Natural Sciences and Engineering Council of Canada
  4. NanoQuebec
  5. Industrial Materials Institute of National Research Council of Canada

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This work reports on a dynamically configurable micro-array surface plasmon resonance biochip platform. The platform comprises a digital electrowetting-on-dielectric (EWOD) microfluidic device tailored to surface plasmon resonance imaging (SPRi). We demonstrate its application for simultaneous immobilization of different DNA probes at the designated detection sites on-chip from sub-mu L volume solutions in combination with multichannel label-free real-time detection of subsequent hybridization reactions. Successful on-chip DNA probe dilution and immobilization is also demonstrated using SPRi hybridization detection. Furthermore, active control of the immobilized probe density and orientation is achieved under an applied potential using the electric interface of the EWOD device. For low probe densities, under negative applied potential, the DNA hybridization efficiency is enhanced compared to passive probe immobilization, yielding a two-fold SPR signal increase within only 8 min of hybridization. EWOD microfluidic platform coupled with SPRi promises to dramatically increase the speed of detection and quantification of biomolecular interactions while reducing reagent consumption. The proposed system would enable the development of high-throughput, rapid and ultrasensitive detection of biomolecules beyond DNA microarray applications. (C) 2008 Elsevier B.V. All rights reserved.

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