Projekt
Synergistic enzyme-nanozyme catalysis on a porous carbon electrode for sensitive L-phenylalanine sensing
Tandem catalysis that integrates enzymes with abiotic catalysts (nanozymes) offers a promising strategy for advanced biosensing applications. However, its analytical performance is highly dependent on the electrode architecture, which determines the efficiency of cascade catalysis and signal transduction. Here, we rep…
Tandem catalysis that integrates enzymes with abiotic catalysts (nanozymes) offers a promising strategy for advanced biosensing applications. However, its analytical performance is highly dependent on the electrode architecture, which determines the efficiency of cascade catalysis and signal transduction. Here, we report a confined enzyme-nanozyme cascade system in which an L-Phe-selective amino acid oxidase and Prussian blue nanoparticles are co-localized within a macroporous carbon framework. The macroporous architecture promotes rapid mass transport while creating a confined microenvironment that enriches enzymatically generated H2O2 near the nanozyme active sites, thereby enhancing cascade efficiency. As a result, the platform exhibits substantially amplified electrochemical signals compared with micro-mesoporous carbon and planar electrode architectures. The enhancement is particularly pronounced at low L-Phe concentrations, where an approximately sixfold increase in current response is achieved. The resulting biosensor exhibits a clinically relevant linear detection range of L-Phe and a low limit of detection of 17.1 +/- 1.4 mu M. In addition, it demonstrates excellent selectivity against various amino acids and retains 72% of its initial sensitivity after 25 days of dry storage under repeated-use conditions. Furthermore, the sensor enables continuous monitoring of L-Phe, exhibiting no noticeable decay in current response during 3 h of continuous operation, highlighting its excellent operational stability and suitability for real-time sensing applications. These findings highlight the potential of confined enzyme-nanozyme cascade systems as a versatile platform for electrochemical biosensors.
Themengebiete
- Gesundheit Gesundheit – Überblick über Forschungsprojekte, Patente und Akteure im TechnologieAtlas.
Hochschulen
- University of Tsukuba University of Tsukuba – Hochschule bzw. Forschungseinrichtung mit Aktivitäten in Forschung und Innovation.