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Published on: June 1, 2012
Copper-Deficient Cu2-xSe/g-C3N4 Immobilizing Lactate Oxidase Cascade Catalytic Chemiluminescence for Lactate
Xiaoxiao Li1, Meihan Guo1, Chenlei Gu1
1Key Laboratory of Luminescence Analysis and Molecular Sensing (Southwest University), Ministry of Education, Chongqing Key Laboratory of Luminescent and Real-Time Analysis System, Chongqing Science and Technology Commission, College of Pharmaceutical Sciences, Southwest University, Chongqing 400715, China.
Abstract:
Integrating distinct catalytic processes to develop novel cascade catalytic systems, thereby enhancing catalytic efficiency, holds significant promise for biosensing applications, owing to its superior advantages in signal transduction and amplification. Herein, we constructed an integrated enzyme and copper-deficient semiconductor heterojunction system by immobilizing lactate oxidase (LOx) onto Cu2-xSe/g-C3N4 (denoted as Cu2-xSe/g-C3N4-LOx) to enable cascade-catalyzed chemiluminescence (CL) for the sensitive detection of lactate (LA). The Cu2-xSe/g-C3N4 heterojunction was fabricated via electrostatic self-assembly of copper-deficient Cu2-xSe nanoparticles and graphitic carbon nitride (g-C3N4) nanosheets. The nanocomplex exhibited enhanced catalytic activity owing to efficient carrier transfer, which promoted the generation of reactive oxygen species (ROS). The immobilized LOx converted LA into H2O2, which was subsequently catalyzed by Cu2-xSe/g-C3N4 in the presence of luminol, generating enhanced CL signals for the rapid and sensitive detection of LA. The system achieved a linear detection range of 0.01-200 μmol/L and a limit of detection (LOD) of 6.86 nmol/L for LA. Furthermore, the Cu2-xSe/g-C3N4-LOx cascade catalytic system was successfully applied to quantify LA in human serum samples. Notably, LA levels in lung cancer patients were significantly higher than in healthy individuals, suggesting its potential as a diagnostic biomarker for lung cancer.

