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Article

Electrical Characterization of Cellulose-Based Membranes towards Pathogen Detection in Water †

1
Institute of Information and Communication Technologies, Electronics and Applied Mathematics, UCLouvain, 1348 Louvain-la-Neuve, Belgium
2
Laboratory of Food and Environmental Microbiology, Earth and Life Institute, UCLouvain, 1348 Louvain-la-Neuve, Belgium
3
Institute of Condensed Matter and Nanosciences (Bio and Soft Matter), UCLouvain, 1348 Louvain-La-Neuve, Belgium
*
Author to whom correspondence should be addressed.
This paper is an extended version of our paper published in: Le Brun, G.; Hauwaert, M.; Leprince, A.; Glinel, K.; Mahillon, J.; Raskin, J.-P. Electrochemical Characterization of Nitrocellulose Membranes towards Bacterial Detection in Water. In Proceedings of the 1st International Electronic Conference on Biosensors, 2–17 November 2020.
Biosensors 2021, 11(2), 57; https://doi.org/10.3390/bios11020057
Submission received: 31 January 2021 / Revised: 19 February 2021 / Accepted: 19 February 2021 / Published: 21 February 2021

Abstract

Paper substrates are promising for development of cost-effective and efficient point-of-care biosensors, essential for public healthcare and environmental diagnostics in emergency situations. Most paper-based biosensors rely on the natural capillarity of paper to perform qualitative or semi-quantitative colorimetric detections. To achieve quantification and better sensitivity, technologies combining paper-based substrates and electrical detection are being developed. In this work, we demonstrate the potential of electrical measurements by means of a simple, parallel-plate electrode setup towards the detection of whole-cell bacteria captured in nitrocellulose (NC) membranes. Unlike current electrical sensors, which are mostly integrated, this plug and play system has reusable electrodes and enables simple and fast bacterial detection through impedance measurements. The characterized NC membrane was subjected to (i) a biofunctionalization, (ii) different saline solutions modelling real water samples, and (iii) bacterial suspensions of different concentrations. Bacterial detection was achieved in low conductivity buffers through both resistive and capacitive changes in the sensed medium. To capture Bacillus thuringiensis, the model microorganism used in this work, the endolysin cell-wall binding domain (CBD) of Deep-Blue, a bacteriophage targeting this bacterium, was integrated into the membranes as a recognition bio-interface. This experimental proof-of-concept illustrates the electrical detection of 107 colony-forming units (CFU) mL−1 bacteria in low-salinity buffers within 5 min, using a very simple setup. This offers perspectives for affordable pathogen sensors that can easily be reconfigured for different bacteria. Water quality testing is a particularly interesting application since it requires frequent testing, especially in emergency situations.
Keywords: paper-based sensors; nitrocellulose; impedance measurements; dielectric properties; parallel-plate electrodes; interdigital electrodes; endolysins; Bacillus thuringiensis paper-based sensors; nitrocellulose; impedance measurements; dielectric properties; parallel-plate electrodes; interdigital electrodes; endolysins; Bacillus thuringiensis

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MDPI and ACS Style

Le Brun, G.; Hauwaert, M.; Leprince, A.; Glinel, K.; Mahillon, J.; Raskin, J.-P. Electrical Characterization of Cellulose-Based Membranes towards Pathogen Detection in Water. Biosensors 2021, 11, 57. https://doi.org/10.3390/bios11020057

AMA Style

Le Brun G, Hauwaert M, Leprince A, Glinel K, Mahillon J, Raskin J-P. Electrical Characterization of Cellulose-Based Membranes towards Pathogen Detection in Water. Biosensors. 2021; 11(2):57. https://doi.org/10.3390/bios11020057

Chicago/Turabian Style

Le Brun, Grégoire, Margo Hauwaert, Audrey Leprince, Karine Glinel, Jacques Mahillon, and Jean-Pierre Raskin. 2021. "Electrical Characterization of Cellulose-Based Membranes towards Pathogen Detection in Water" Biosensors 11, no. 2: 57. https://doi.org/10.3390/bios11020057

APA Style

Le Brun, G., Hauwaert, M., Leprince, A., Glinel, K., Mahillon, J., & Raskin, J.-P. (2021). Electrical Characterization of Cellulose-Based Membranes towards Pathogen Detection in Water. Biosensors, 11(2), 57. https://doi.org/10.3390/bios11020057

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