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Review

Modern Electrochemical Biosensing Based on Nucleic Acids and Carbon Nanomaterials

by
Anna Szymczyk
1,2,
Robert Ziółkowski
1,* and
Elżbieta Malinowska
1,3
1
Chair of Medical Biotechnology, Faculty of Chemistry, Warsaw University of Technology, Stanisława Noakowskiego 3, 00-664 Warsaw, Poland
2
Doctoral School, Warsaw University of Technology, Plac Politechniki 1, 00-661 Warsaw, Poland
3
Center for Advanced Materials and Technologies, Warsaw University of Technology, Poleczki 19, 02-822 Warsaw, Poland
*
Author to whom correspondence should be addressed.
Sensors 2023, 23(6), 3230; https://doi.org/10.3390/s23063230
Submission received: 6 February 2023 / Revised: 10 March 2023 / Accepted: 16 March 2023 / Published: 17 March 2023

Abstract

To meet the requirements of novel therapies, effective treatments should be supported by diagnostic tools characterized by appropriate analytical and working parameters. These are, in particular, fast and reliable responses that are proportional to analyte concentration, with low detection limits, high selectivity, cost-efficient construction, and portability, allowing for the development of point-of-care devices. Biosensors using nucleic acids as receptors has turned out to be an effective approach for meeting the abovementioned requirements. Careful design of the receptor layers will allow them to obtain DNA biosensors that are dedicated to almost any analyte, including ions, low and high molecular weight compounds, nucleic acids, proteins, and even whole cells. The impulse for the application of carbon nanomaterials in electrochemical DNA biosensors is rooted in the possibility to further influence their analytical parameters and adjust them to the chosen analysis. Such nanomaterials enable the lowering of the detection limit, the extension of the biosensor linear response, or the increase in selectivity. This is possible thanks to their high conductivity, large surface-to-area ratio, ease of chemical modification, and introduction of other nanomaterials, such as nanoparticles, into the carbon structures. This review discusses the recent advances on the design and application of carbon nanomaterials in electrochemical DNA biosensors that are dedicated especially to modern medical diagnostics.
Keywords: nanomaterials; graphene; nanotubes; carbon dots; aptasensors; NA sensors; electrochemistry; biosensing; medical diagnostics nanomaterials; graphene; nanotubes; carbon dots; aptasensors; NA sensors; electrochemistry; biosensing; medical diagnostics

Share and Cite

MDPI and ACS Style

Szymczyk, A.; Ziółkowski, R.; Malinowska, E. Modern Electrochemical Biosensing Based on Nucleic Acids and Carbon Nanomaterials. Sensors 2023, 23, 3230. https://doi.org/10.3390/s23063230

AMA Style

Szymczyk A, Ziółkowski R, Malinowska E. Modern Electrochemical Biosensing Based on Nucleic Acids and Carbon Nanomaterials. Sensors. 2023; 23(6):3230. https://doi.org/10.3390/s23063230

Chicago/Turabian Style

Szymczyk, Anna, Robert Ziółkowski, and Elżbieta Malinowska. 2023. "Modern Electrochemical Biosensing Based on Nucleic Acids and Carbon Nanomaterials" Sensors 23, no. 6: 3230. https://doi.org/10.3390/s23063230

APA Style

Szymczyk, A., Ziółkowski, R., & Malinowska, E. (2023). Modern Electrochemical Biosensing Based on Nucleic Acids and Carbon Nanomaterials. Sensors, 23(6), 3230. https://doi.org/10.3390/s23063230

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