» Articles » PMID: 32911860

Electrochemical Affinity Biosensors Based on Selected Nanostructures for Food and Environmental Monitoring

Overview
Journal Sensors (Basel)
Publisher MDPI
Specialty Biotechnology
Date 2020 Sep 11
PMID 32911860
Citations 7
Authors
Affiliations
Soon will be listed here.
Abstract

The excellent capabilities demonstrated over the last few years by electrochemical affinity biosensors should be largely attributed to their coupling with particular nanostructures including dendrimers, DNA-based nanoskeletons, molecular imprinted polymers, metal-organic frameworks, nanozymes and magnetic and mesoporous silica nanoparticles. This review article aims to give, by highlighting representative methods reported in the last 5 years, an updated and general overview of the main improvements that the use of such well-ordered nanomaterials as electrode modifiers or advanced labels confer to electrochemical affinity biosensors in terms of sensitivity, selectivity, stability, conductivity and biocompatibility focused on food and environmental applications, less covered in the literature than clinics. A wide variety of bioreceptors (antibodies, DNAs, aptamers, lectins, mast cells, DNAzymes), affinity reactions (single, sandwich, competitive and displacement) and detection strategies (label-free or label-based using mainly natural but also artificial enzymes), whose performance is substantially improved when used in conjunction with nanostructured systems, are critically discussed together with the great diversity of molecular targets that nanostructured affinity biosensors are able to quantify using quite simple protocols in a wide variety of matrices and with the sensitivity required by legislation. The large number of possibilities and the versatility of these approaches, the main challenges to face in order to achieve other pursued capabilities (development of antifouling, continuous operation, wash-, calibration- and reagents-free devices, regulatory or Association of Official Analytical Chemists, AOAC, approval) and decisive future actions to achieve the commercialization and acceptance of these devices in our daily routine are also noted at the end.

Citing Articles

AI-optimized electrochemical aptasensors for stable, reproducible detection of neurodegenerative diseases, cancer, and coronavirus.

Tayfour Ahmed A, Dhahi T, Attia T, Elhassan Ali F, Elobaid M, Adam T Heliyon. 2025; 11(1):e41338.

PMID: 39834418 PMC: 11742820. DOI: 10.1016/j.heliyon.2024.e41338.


Applications of chemically modified screen-printed electrodes in food analysis and quality monitoring: a review.

Kamalasekaran K, K Sundramoorthy A RSC Adv. 2024; 14(38):27957-27971.

PMID: 39224631 PMC: 11367709. DOI: 10.1039/d4ra02470b.


Anti-Fouling Strategies of Electrochemical Sensors for Tumor Markers.

Song G, Han H, Ma Z Sensors (Basel). 2023; 23(11).

PMID: 37299929 PMC: 10256055. DOI: 10.3390/s23115202.


Nanozymes towards Personalized Diagnostics: A Recent Progress in Biosensing.

Kurup C, Ahmed M Biosensors (Basel). 2023; 13(4).

PMID: 37185536 PMC: 10136715. DOI: 10.3390/bios13040461.


Antibody-Conjugated Electrospun Nanofibers for Electrochemical Detection of Methamphetamine.

Atik G, Kilic N, Horzum N, Odaci D, Timur S ACS Appl Mater Interfaces. 2023; 15(20):24109-24119.

PMID: 37184103 PMC: 10214377. DOI: 10.1021/acsami.3c02266.


References
1.
Eissa S, Zourob M . In vitro selection of DNA aptamers targeting β-lactoglobulin and their integration in graphene-based biosensor for the detection of milk allergen. Biosens Bioelectron. 2016; 91:169-174. DOI: 10.1016/j.bios.2016.12.020. View

2.
Dong S, Zhao R, Zhu J, Lu X, Li Y, Qiu S . Electrochemical DNA Biosensor Based on a Tetrahedral Nanostructure Probe for the Detection of Avian Influenza A (H7N9) Virus. ACS Appl Mater Interfaces. 2015; 7(16):8834-42. DOI: 10.1021/acsami.5b01438. View

3.
Lee I, Kim S, Lee J, Woo D, Lee S, Pyo H . A self-calibrating electrochemical aptasensing platform: Correcting external interference errors for the reliable and stable detection of avian influenza viruses. Biosens Bioelectron. 2020; 152:112010. DOI: 10.1016/j.bios.2020.112010. View

4.
Wei M, Zhang W . The determination of Ochratoxin A based on the electrochemical aptasensor by carbon aerogels and methylene blue assisted signal amplification. Chem Cent J. 2018; 12(1):45. PMC: 5915985. DOI: 10.1186/s13065-018-0415-4. View

5.
Farzin L, Shamsipur M, Samandari L, Sheibani S . Advances in the design of nanomaterial-based electrochemical affinity and enzymatic biosensors for metabolic biomarkers: A review. Mikrochim Acta. 2018; 185(5):276. DOI: 10.1007/s00604-018-2820-8. View