Aug 2026· Biosensors· Vol 16, pp. 415· 0 citations· 53 references
Medicine
TL;DR
An aptamer-functionalized rough gold nanoparticle (RPG)-based photothermal platform that enables rapid and quantitative detection of S. aureus using a smartphone-compatible thermal imaging system in combination with a laser and an infrared thermal camera is reported.
Abstract
Foodborne infections and enterotoxin poisoning caused by S. aureus pose serious threats to food safety and public health. However, conventional detection methods are often time-consuming, technically complex, and typically require relatively large sample volumes. Herein, we report an aptamer-functionalized rough gold nanoparticle (RPG)-based photothermal platform that enables rapid and quantitative detection of S. aureus using a smartphone-compatible thermal imaging system in combination with a laser and an infrared thermal camera. RPGs were synthesized via a facile one-step method, and exhibited uniform particle size and a measured photothermal conversion efficiency of ~73.20%. After optimization of the aptamer concentration, laser irradiation time, and probe concentration, the proposed method exhibited a wide detection range from 1.0 × 102 to 1.0 × 107 cfu/mL, with an operational detection threshold of 100 CFU/mL under the optimized experimental conditions, a total assay time of less than 40 min, and a sample requirement of only 30 μL per assay, while maintaining acceptable reproducibility. Spike-and-recovery experiments in real samples, including orange juice, tap water, and milk, yielded recoveries of 91.8–105.5%, indicating suitable analytical performance in complex matrices. This work provides a rapid, portable, and low-sample-volume detection strategy for S. aureus, offering a practical approach for on-site food safety monitoring.
Rapid on-site detection of bacterial contamination remains an urgent need in public health and environmental monitoring. Herein, we report a one-step, label-free colorimetric sensor for broad-spectrum bacterial detection based on a competitive electrostatic mechanism. Cationic poly-l-lysine (PLL) induces the aggregatio...
To address the need for rapid detection and simultaneous inactivation of pathogenic bacteria, this work presents an integrated "detection-and-treatment" sensing platform. At the core of this platform is a sandwich-like structure composed of magnetic capture probes, target bacteria, and chiral SERS tags. The capture pro...
Ming-Yu Zhang, Ya-Fei Chen, Shang-Qing Zhang et al.· Talanta: The International J...· 0 citations
The excessive use of antibiotics in medicine, agriculture, and aquaculture has led to widespread environmental contamination and public health concerns, underscoring the urgent need for rapid, sensitive, and cost-effective detection methods. Here, we report a scalable surface-enhanced Raman scattering (SERS) platform b...
Jian-Jun Cao, Haoyue Yang, Tao-Hua Zhou et al.· Spectrochimica Acta Part A -...· 0 citations
A novel "low-background" biosensing platform integrating magnetic separation and hybridization chain reaction (HCR) for signal amplification, enabling ratiometric colorimetric detection and visual observation of S. typhimurium, offering a proactive defense for food safety.
A filtration-based surface-enhanced Raman scattering (SERS) platform based on a microenvironment engineering strategy, in which plasmonic nanostructures are dynamically formed within the bacterial microenvironment, that achieves low-level detection and rapid antimicrobial susceptibility testing within a single system.
Eunji Jang, Ji-Young Lee, Hoeil Chung et al.· Small Methods· 0 citations
Pathogenic bacteria are related to clinical infections and high morbidity, and they pose significant diagnostic challenges for rapid testing. Loop-mediated isothermal amplification (LAMP) is a fast, convenient, and highly sensitive nucleic acid assay but remains challenging in complex matrices as well as in strategies...
Bo Yi, Dong-Gen Zhou, He-Nan Dong et al.· In Analysis· 1 citation
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.