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Updated: Aug 6, 2026

Imaging Membrane Potential with Two Types of Genetically Encoded Fluorescent Voltage Sensors
Published on: February 4, 2016
Live bacterial specific fluorescence quantification via switchable exogenous electric field induced change in
Jeongeun Lee1, Brian Minsoo Lee2, Beelee Chua2
1Department of Environmental Science and Engineering, Ewha Womans University, Seoul, 03760, Republic of Korea.
Abstract:
We have demonstrated the feasibility of using exogenous electric-field enabled fluorescence measurement to detect and quantify live Escherichia coli K12 bacterial sample in a cuvette on a bespoke sensor platform. The exogenous electric field (100 V/cm) across the cuvette switched off and on to induce changes in the bacterial membrane potential in live bacterial cells. This allowed the voltage-sensitive dye (VSD) dipropylthiodicarbocyanine iodide (diS-C3-(5)) to enter and then be expelled from the live bacterial membrane. The movement of the diS-C3-(5) in and out of live cells were simultaneously captured by fluorescence measurement via a custom sensor platform. The detection and quantification of live bacteria was demonstrated over a range of concentrations (OD600nm = 0 to 1.0) with a measurement duration of 180 s (R2 = 0.85, linear fit). Between the concentrations of OD600nm = 0.25 to 1.0, live bacteria yielded VSD signal that ranged from 3.56 ± 0.62 to 16.54 ± 0.28%. In comparison, dead bacteria (sonicated for 30 s) yield VSD signal that ranged -0.09 ± 0.74 to 0.93 ± 0.71%. In the event where commercial adenosine triphosphate (ATP) kit was not able to differentiate between live and dead bacteria, resulting in a false positive. However, the proposed method is able to differentiate and quantify live and dead bacteria, hence avoids both false negative and positive results. More importantly, this work has re-purposed and expanded the role of voltage-sensitive dyes from niche microscopy visualization to the broader family of fluorescence-based bacterial biosensors and quantification assays.

