Related Experiment Video
Updated: Jul 24, 2025

Characterizing Electron Transport through Living Biofilms
Published on: June 1, 2018
Nondestructive, reagent-free, low-volume fluidic set-up to study biofilms by using a transparent electrode, allowing
Albert Saavedra1, Diana C Martínez-Casillas1, Jean R Collet-Lacoste2
1Laboratory of Biosensors and Bioanalysis (LABB), Department of Biological Chemistry and IQUIBICEN-CONICET, Science Faculty, University of Buenos Aires, Pabellón 2, Ciudad Universitaria, Ciudad Autónoma de Buenos Aires 1428, Argentina.
Aims:
The aim was to develop an electrochemical/optical set-up and correlate it (as validation) with other chemical and physical methods to obtain a simple and cost-effective system to study biofilm formation.
Methods And Results:
A simple microfluidic cell and methods allowed continuous monitoring of the first, critical steps of microbial attachment. We monitored sulfate-reducing bacteria (SRB) at the early stages of biofilm formation. Herein, we studied the formation and adherence of SRB consortium biofilms over an indium tin oxide (ITO) conducting surface using microbiological and chemical methods, microscopic observations [scanning electron microscopy (SEM) and optical], and electrochemical impedance spectroscopy (EIS) measurements. The SRB biofilm formation was evaluated for 30 d by SEM and EIS. Charge transfer resistance decreased when the microbial population colonized the electrode. The monitoring of early-stage biofilm formation was performed using EIS at a single frequency of 1 Hz during the first 36 h.
Conclusions:
The simultaneous use of optical, analytical, and microbiological methods allowed us to connect the kinetics of the growth of the microbial consortium to the values obtained via the electrochemical technique. The simple setup we present here can help laboratories with limited resources to study biofilm attachment and facilitates the development of various strategies to control biofilm development in order to avoid damage to metallic structures (microbiologically influenced corrosion, MIC) or the colonization of other industrial structures and medical devices.
More Related Videos
13:42Dry Film Photoresist-based Electrochemical Microfluidic Biosensor Platform: Device Fabrication, On-chip Assay Preparation, and System Operation
Published on: September 19, 2017
07:09Use of a High-throughput In Vitro Microfluidic System to Develop Oral Multi-species Biofilms
Published on: December 1, 2014