Saiki Patricia Yukari, Rufino Fernando Cesar, de Almeida Cassio Roberto, Sales Geovana Manzan, de Oliveira Arthur Noin, Larrude Dunieskys Roberto Gonzalez, Teixeira Ricardo Cotrin, Diniz José Alexandre, Catharino Rodrigo Ramos
Innovare Biomarkers Laboratory, Faculty of Pharmaceutical Sciences, University of Campinas, CEP 13083-970, Campinas, SP, Brazil.
Centre for Semiconductor Components and Nanotechnologies, University of Campinas, CEP 13083-870, Campinas, SP, Brazil.
Food Res Int. 2025 Oct;217:116801. doi: 10.1016/j.foodres.2025.116801. Epub 2025 Jun 9.
Food quality and safety have always been major concerns worldwide, impacting directly the lives of millions of people. Our study aims to propose an innovative approach to differentiate freshly packaged Agaricus bisporus mushrooms from expired Agaricus bisporus using a graphene field-effect transistor (GFET) sensor. Commercial samples analyzed with GFET sensor demonstrated distinct electrical current measurements, presenting a difference of nearly one order of magnitude between fresh and expired groups. Results obtained with the device are considered promising and are attributed to the innovative layout adopted for the graphene channel structure in the GFET, which enabled direct contact between the analyte and the titanium dioxide (TiO₂) surface. Protonation and deprotonation processes were possible due to such interactions between the analyte and the GFET sensor surface, which in turn led to the release and capture of electrons, modulating the device electrical outputs, according to the analyzed sample. Sensor performance was corroborated by Fourier-transform infrared (FTIR) spectroscopy and ultra-high-resolution mass spectrometry (UHRMS) techniques. FTIR analysis revealed subtle spectral differences between fresh and expired samples, particularly in protein and carbohydrate regions. UHRMS analysis enabled the identification of differentiating compounds, including sugars, nucleotides, peptides, and fungal contaminants, providing molecular insights into changes that led to expiration after storage. This novel approach boasts potential to enhance the predictability of shelf life in fresh products, which may contribute to promote food waste reduction, as well as to assist in decision-making processes to put food safety measures into place.
食品质量与安全一直是全球主要关注的问题,直接影响着数百万人的生活。我们的研究旨在提出一种创新方法,利用石墨烯场效应晶体管(GFET)传感器区分新鲜包装的双孢蘑菇和过期的双孢蘑菇。用GFET传感器分析的商业样品显示出明显的电流测量值,新鲜组和过期组之间的差异近一个数量级。该设备获得的结果被认为很有前景,这归因于GFET中石墨烯通道结构采用的创新布局,该布局使分析物与二氧化钛(TiO₂)表面直接接触。由于分析物与GFET传感器表面之间的这种相互作用,质子化和去质子化过程成为可能,这反过来又导致电子的释放和捕获,根据分析的样品调节设备的电输出。傅里叶变换红外(FTIR)光谱和超高分辨率质谱(UHRMS)技术证实了传感器的性能。FTIR分析揭示了新鲜样品和过期样品之间细微的光谱差异,特别是在蛋白质和碳水化合物区域。UHRMS分析能够识别区分化合物,包括糖、核苷酸、肽和真菌污染物,为储存后导致过期的变化提供分子层面的见解。这种新方法有望提高新鲜产品保质期的可预测性,这可能有助于减少食物浪费,并协助制定食品安全措施的决策过程。