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◆ Talanta2026-09-21

Pore-confined synthesis of ultra-small Pt nanozymes on gold nanobipyramids for electrochemical detection of cancer cell-derived H2O2.

Yu Pan, Amin Zhang, Chengliang Qi, Yueming Wang, Xin Chen, Wenli Wang, Xichang Wang, Yuan Liu

原始摘要(英文原文)· Original abstract
Accurate quantification of H2O2 released by tumor cells is important for characterizing cancer-associated oxidative stress, yet conventional biosensors often face an intrinsic trade-off between catalytic activity and structural stability. Herein, we present a rational strategy for real-time electrochemical monitoring of cancer-associated oxidative stress species through the in-situ fabrication of ultrasmall Pt nanozymes confined within the mesoporous silica shell of gold bipyramids (AuPt@SiO2). In this architecture, the Au core provides conductive nucleation and anchoring sites, the mesoporous SiO2 shell regulates Pt growth and affords structural stabilization and molecular-sieving protection, and Pt serves as the catalytic center for H2O2 reduction. The resulting AuPt@SiO2 nanozyme exhibited pronounced peroxidase-like activity with a favorable Michaelis-Menten constant (Km) of 6.08 mM toward H2O2. After integration into a Nafion-based sensing interface, the enzyme-free sensor provided complementary linear ranges of 0.25-60 mM by cyclic voltammetry and 1-2100 μM by amperometry with a detection limit at 0.3 μM of H2O2. The electrochemical sensor based on AuPt@SiO2 also demonstrated excellent repeatability and exceptional stability, retaining over 85% of its initial response after 30 days. Importantly, this platform enabled label-free monitoring of phorbol 12-myristate 13-acetate (PMA)-triggered H2O2 efflux from MGC-803 gastric cancer cells and differentiated their oxidative-stress phenotype from that of normal gastric epithelial cells. The apparent H2O2-equivalent response normalized to cell number was approximately 1.72 × 10-13 M per cell. This work highlights the potential of confined nanozymes for high-performance H2O2 sensing and precise pathological profiling at the single-cell level.
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Pore-confined synthesis of ultra-small Pt nanozymes on gold nanobipyramids for electrochemical detection of cancer cell-derived H2O2. — 科研速览 Science Skim