Skip to content
Research Article Open access CC BY 4.0

Revolutionizing Food Safety and Crop Production: Harnessing Novel Biosensors

Rabeen Abdul Gafoor, Sharu S.R., Shalini Pillai P., Usha C. Thomas, Gayathri G., Pratheesh P. Gopinath

Journal of Advances in Biology & Biotechnology · pp. 157–177 · Published 23 Sep 2024

10.9734/jabb/2024/v27i101440

Abstract

Farmers and food manufacturers are under immense pressure from consumers and food safety regulations to deliver pollutant-free, high-quality foods. The extensive use of chemicals in food production poses ecological as well as health risks. In order to meet the demand for safe, preservative-free foods, rapid sensing techniques are required. Traditional analysis methods are time consuming, laboratory bound, expensive and require highly skilled personnel. Alternative analysis systems such as biosensors, which are user-friendly and enable real-time monitoring in the field should also be used. Biosensors have been developed to detect foodborne pathogens such as Salmonella typhimurium, Escherichia coli, Listeria monocytogenes, etc. that cause food contamination, and a large number of cases are reported annually. Mycotoxin-contaminated food presents a serious threat to food safety. Biosensors have been utilised to identify Penicillium and aflatoxin infections, which are major mycotoxins found in food. Additionally, biosensors for identifying artificially ripened fruits have also been developed. Biosensors have been developed to detect pesticide residues such as atrazine, glyphosate, 2,4-D, methyl parathion, lindane, etc. Early identification of plant pathogens, including bacteria, viruses, and fungi, is crucial because it enables farmers to take the necessary precautions to control the disease. Pathogens such as Fusarium sp., Phytophthora palmivora, tomato leaf curl virus are among some of the pathogens that have been successfully detected using novel biosensors. They can also be used for detecting heavy metals as they are cheaper, faster, more reliable and selective than traditional analysis methods. A bacterial biosensor was developed using Bacillus megaterium, which was sensitive to heavy metals like cadmium, copper and zinc in soil. Additionally, biosensors have been developed to detect heavy metal pollution in plants as well as irrigation water.

Biosensor food safety pollution disease detection heavy metal detection pesticide residue

Cited by 2

Nanoscale innovations in agri-food systems: A multisectoral paradigm for eradicating global food scarcity

Md. Saiful Islam, Sams Uddin Sams, Sadit Bihongo Malitha · Plant Nano Biology · 2025

Article metrics

Real usage data collected on this platform.

0

Page views

0

PDF downloads

0

Outbound clicks

2

Citations

Views by country

Approximate, from request IP at view time — not citizenship or institution. Countries with fewer than 5 views are grouped as "Other".

No views recorded yet.

Traffic sources

Referring site, by host.

No traffic recorded yet.

Views and downloads exclude known bots/crawlers. Citations combines this platform's own DOI-resolved index with each external source's own reported total — see Cited by above for individually listed citing works. Last refreshed 0 seconds ago.