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Jul 2026

Nanozyme-catalyzed dual-potential electrochemiluminescence immunosensor for simultaneous detection of CEA and NSE as lung cancer biomarkers.

Creating a dual-target detection system capable of independent signal output holds potential for enhancing the analytical reliability of biomarker detection, which may aid in early-stage cancer screening. Herein, a nanozyme-catalyzed dual-potential electrochemiluminescence (ECL) immunosensor was described for the simultaneous detection of lung cancer biomarkers: carcinoembryonic antigen (CEA) and neuron-specific enolase (NSE). Au-luminol functionalized CoFe2O4 nanoflowers (CoFe2O4@Au-luminol) served as the anodic probe, while CdS quantum dot-decorated hollow CeO2 nanospheres (CeO2@CdS QDs) constituted the cathodic probe. CoFe2O4 and CeO2 featuring multivalent elements (Co2+/3+, Fe2+/3+, Ce3+/4+), with their exceptional peroxidase (POD)-like activity, drove H2O2 co-reactant decomposition into abundant hydroxyl radicals (•OH) and superoxide anions (O2•-), thereby boosting dual-potential ECL signals. Changes in the ECL responses at two different excitation potentials allowed CEA and NSE to be determined on the nanozyme-assisted immunosensor surface, respectively. The assay exhibited a linear range of 0.005-100 ng/mL, with detection limits of 0.87 pg/mL for CEA and 0.41 pg/mL for NSE. The nanozyme-enhanced ECL biosensing platform, characterized by superior specificity, stability, and practicability, offers significant potential for detecting multiple biomarkers.

Chen Cui, Na Liu, Qiurui Nian et al. · 0 citations
Jul 2026

Performance comparison of solution anode glow discharge coupled with Pt/gas jet cathode for determining the Pb and Zn in blood.

A solution anode glow discharge (SAGD) was developed using either a Pt rod or gas (N2, Ar, He) jet. Taking the detection of Pb and Zn as an example, the relationship between plasma characteristics and analytical performance is clarified. The results showed that there is a significant hierarchical difference in analytical performance, namely He > Ar > N2 > Pt. This difference stems from the spatial distribution of the plasma and the efficiency of plasma energy conversion into analyte excitation rather than just the power consumption, which provides mechanistic guidance for designing next-generation miniaturized excitation sources. The helium jet-SAGD (He-SAGD) generates a spatially uniform plasma with efficient energy utilization and minimal molecular energy loss, thereby reducing the spectral interference. Compared with Pt rod-SAGD, the He-SAGD enhances the sensitivity by 8.4-10.8 times and improves the limit of detection by 9.2-11.4 times, along with good precision (RSD <2.5%), outstanding stability and strong anti-interference. The measurement results of He-SAGD for blood samples are good agreement with ICP-AES and satisfactory recovery (86.3%-112.1%). The He-SAGD features a compact device, low cost, and high precision, which has great potential for in-situ and online monitoring of trace heavy metals in complex samples.

Jie Yu, Kai Wang, Jiaqi Shi et al. · 0 citations

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