Yang Liu, Zhongrui Ma, Zhi Zeng, Huiwen Gu, Xiao Luo, Xiaoli Yin, Ying Chen
The rapid and accurate detection of foodborne pathogenic bacteria is critical for ensuring public health and mitigating the global burden of foodborne diseases. Here, we present a multimodal sensing platform enabled by a novel bimetallic hybrid nanomaterial, Au/MOF-919/Ti 3 C 2 T X , which integrates intrinsic electrochemical properties with dual enzyme-mimetic activities. This innovative material serves as the cornerstone of a highly sensitive and selective biosensor for the detection of Staphylococcus aureus ( S. aureus ), a major foodborne pathogen. The detection mechanism leverages a catalytic hairpin assembly cascade reaction on magnetic nanoparticles, amplified by the multifunctional Au/MOF-919/Ti 3 C 2 T X , to generate electrochemical and colorimetric signals proportional to the target concentration. Convolutional neural networks were employed to classify and quantify S. aureus concentrations from captured images, enabling intelligent, real-time pathogen identification with precision. The biosensor demonstrates exceptional performance, with a broad linear detection range (10–10 8 CFU mL −1 ) and low detection limits of 5.5 CFU mL −1 (electrochemical) and 6.6 CFU mL −1 (colorimetric). Validated in complex food matrices, this platform represents a transformative advance in food safety monitoring, offering a robust, rapid, and scalable solution for pathogen detection. Its integration of nanotechnology, artificial intelligence, and multimodal sensing heralds a new era in biosensing technology, with far-reaching implications for public health and food security.