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Updated: Aug 24, 2026

Fabrication of Electrochemical-DNA Biosensors for the Reagentless Detection of Nucleic Acids, Proteins and Small Molecules
Published on: June 1, 2011
A 3D Printed Mini-Gel Electrophoresis System for Rapid and Inexpensive DNA Nanoswitch Biosensing
Vinod Morya1, Andrew Hayden1, Lifeng Zhou1,2
1The RNA Institute, University at Albany, State University of New York,Albany,New York 12222, United States.
Abstract:
Gel electrophoresis has been a cornerstone laboratory technique for decades, yet it is often viewed as cumbersome and costly and confined to laboratory settings. Recent advances in DNA nanotechnology have used electrophoresis as a primary readout for some biosensing applications such as DNA nanoswitches, where a conformational change in a DNA structure indicates the presence of a target molecule. Conventional gel electrophoresis setups are not ideal for such targeted applications, with moderate equipment cost, excessive reagent use, and time-consuming processes. Here, we adopt a reductionist, application-driven approach to redesign gel electrophoresis specifically for DNA-nanoswitch-based detection. We present a fully 3D printable mini-gel electrophoresis system that incorporates conductive plastic electrodes, demonstrating performance comparable to conventional systems using platinum electrodes. By optimizing the interelectrode distance and running parameters, our system resolves the on/off states of DNA nanoswitches in as little as 1 min. We further show that the device operates reliably at low voltages, including when powered by a USB power bank, and even enables instrument-free nanoswitch readout using an LED with a cell phone camera. Our design substantially reduces the cost, voltage requirements, material usage, operational complexity, and experimental time. These improvements make gel-based biosensing more practical outside traditional laboratory environments, paving the way for the broader adoption of gel electrophoresis in point-of-care and resource-limited settings.

