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August 20, 2025Foods0 citationsOpen Access

Electrochemical Biosensors for Oilseed Crops: Nanomaterial-Driven Detection and Smart Agriculture

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YJYouwei JiangKWKun WanACAiting Chen

Key Points

  • Electrochemical biosensors enable early detection of diseases in oilseed crops, reducing yield losses and fostering sustainable agriculture.
  • These sensors utilize nanomaterial innovations, with high sensitivity and cost-effectiveness, to detect pathogens at ultra-low concentrations.
  • Assessment of signal amplification techniques and biomolecular recognition strategies improves diagnostic capabilities for crop health.
  • Challenges remain due to interference from plant materials and the need for standardized protocols; future research on AI and biodegradable materials is essential.

Abstract

Electrochemical biosensors have emerged as a promising tool for the early detection of diseases in oilseed crops such as rapeseed, soybean, and peanut. These biosensors offer high sensitivity, portability, and cost-effectiveness. Timely diagnosis is critical, as many pathogens exhibit latent infection phases or produce invisible metabolic toxins, leading to substantial yield losses before visible symptoms occur. This review summarises recent advances in the field of nanomaterial-assisted electrochemical sensing for oilseed crop diseases, with a particular focus on sensor mechanisms, interface engineering, and biomolecular recognition strategies. The following innovations are highlighted: nanostructured electrodes, aptamer- and antibody-based probes, and signal amplification techniques. These innovations have enabled the detection of pathogen DNA, enzymes, and toxins at ultra-low concentrations. Notwithstanding these achievements, challenges persist, including signal interference from plant matrices, limitations in device miniaturization, and the absence of standardized detection protocols. Future research should explore the potential of AI-assisted data interpretation, the use of biodegradable sensor materials, and the integration of these technologies with agricultural IoT networks. The aim of this integration is to enable real-time, field-deployable disease surveillance. The integration of laboratory innovations with field applications has been demonstrated to have significant potential in supporting sustainable agriculture and strengthening food security through intelligent crop health monitoring.

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Cite This Study

Jiang et al. (2025) studied this question.

synapsesocial.com/papers/68af56f4ad7bf08b1eadcddahttps://doi.org/10.3390/foods14162881
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