Foods· 2026Q1
Development of an Olfactory Receptor (OR5K1)-Based Biosensor for Pyrazine Detection in Foods
- 0citations
- Q1SCImago
- 2026year
Short summary
A novel electrochemical biosensor using the olfactory receptor OR5K1 and a hybrid nanomaterial matrix (AuNPs-PB/ZIF-8@SWCNT/Ti3C2 MXene) detects pyrazines, key aroma compounds in foods, with a detection limit of 10−14 M.
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Key points
- Developed an OR5K1-based electrochemical biosensor for pyrazine detection.
- Achieved a detection limit of 10−14 M and a linear range of 10−14 to 10−9 M.
- Demonstrated high selectivity for pyrazines over ethanol, hexanal, acetone, and phenol.
- Showed good stability, retaining 79% signal after 12 days.
- Validated in malt samples, with results correlating well (R²=0.96) to GC-TOF/MS.
AI-generated from the title and abstract; the full text is not read.
Abstract
Pyrazines are the key odorants in food contributing to baked and nutty aromas. In order to improve practicality, a novel electrochemical olfactory biosensor for pyrazine analysis was developed using an olfactory receptor (OR5K1) as the recognition element and AuNPs-PB/ZIF-8@SWCNT/Ti3C2 MXene as the sensing matrix. The sensing application and molecular recognition mechanism of OR5K1 toward pyrazines were explored using molecular docking and in silico site-directed mutagenesis. We explored the sensing application and molecular recognition mechanism of OR5K1 toward pyrazines using molecular docking and in silico site-directed mutagenesis. The sensor achieved a linear detection range of 10−14 to 10−9 M with a low detection limit of 10−14 M. The biosensor exhibited significantly higher current responses toward pyrazine compounds compared to interfering substances, including ethanol, hexanal, acetone, and phenol, demonstrating excellent selectivity, and retained 79% of its initial signal after 12 days of storage, indicating good stability. The change in the reduction peak current (ΔI) in the presence of pyrazine was used as an analytical signal. When applied to four malt samples (pilsner, munich, crystal, and caramel malts), the biosensor showed ΔI responses ranging from 4.6 ± 0.2 µA to 108 ± 6 µA, which corresponded well with the total pyrazine contents determined by GC-TOF/MS (0.092–0.391 mg/kg), with a correlation coefficient of 0.96. Molecular docking revealed binding energies ranging from −3.9 to −6.0 kcal/mol, suggesting spontaneous interactions between OR5K1 and pyrazines, with Leu14, Met81, Asn84, Phe17, Phe85, and Lys90 identified as potential key residues and hydrogen bonds, hydrophobic interactions, and π−π stacking as primary driving forces. This work provides a sensitive and selective biosensor for pyrazine detection, and the elucidated recognition mechanism offers a molecular basis for understanding roasted aroma perception, supporting applications in food quality control and flavor analysis. Collectively, this study offers new insights for designing olfactory receptor-based electrochemical biosensors and facilitates future exploration of food aroma–receptor interaction mechanisms.
The authors' abstract, as published at the source. Foods, 2026 · DOI ↗
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Field: Sensory Systems
Sensory SystemsNeuroscience