Corona-Structured Magnetic Nanozymes Enable Dual-Mode Immunochromatographic Analysis for Flexible and Ultrasensitive Detection of Emerging Viruses

Abstract Real-time and highly sensitive monitoring of pathogens in environmental and host-derived samples is critical for controlling emerging and acute infectious diseases, yet remains technically challenging. Here, we report a multifunctional nanozyme-based immunochromatographic assay (ICA) that enables rapid, universal, and multiplex detection in different scenarios through visual readouts. We constructed a corona-structured magnetic nanozyme (CSMN) with a triple signal-amplification mechanism involving “magnetic enrichment-synergistic enhancement-multiple catalytic sites,” enabling efficient enrichment of trace pathogens in complex matrices and generation of dual visual outputs (colorimetric and catalytically enhanced signals) on ICA. The CSMN-based nanozyme ICA requires only 2 min of catalysis to achieve a ≥92.65-fold increase in sensitivity and a 100-fold expansion of the detection range. Based on this platform, dual-mode detection strategies were developed for SARS-CoV-2 and monkeypox virus. The direct mode enables rapid screening within 12 min, with detection limits as low as 19.4 and 22.5 pg/mL for the two targets, respectively. The enrichment mode enables ultrasensitive detection within 20 min, with detection ranges of 0.0012–1000 ng/mL and 0.0026–1000 ng/mL, respectively, while mitigating interference from the hook effect, making it suitable for detecting low-abundance targets in complex samples. The method demonstrated high accuracy and reliability across environmental and clinical samples, with a detection time approximately one-sixth that of qPCR and ELISA, indicating strong potential for infectious disease surveillance and outbreak control.

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Publication Details

Journal
Analytical Chemistry
Published
2026-09-11
DOI
https://doi.org/10.1021/acs.analchem.6c03394
Primary Topic
Advanced Nanomaterials in Catalysis
Type
article
Field-Weighted Citation Impact
0.00

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article

Corona-Structured Magnetic Nanozymes Enable Dual-Mode Immunochromatographic Analysis for Flexible and Ultrasensitive Detection of Emerging Viruses

Jierong Chen, Chongwen Wang, Bing Gu, Jiaxuan Li et al.
Analytical Chemistry
Advanced Nanomaterials in Catalysis
article

Corona-Structured Magnetic Nanozymes Enable Dual-Mode Immunochromatographic Analysis for Flexible and Ultrasensitive Detection of Emerging Viruses

Jierong Chen, Chongwen Wang, Bing Gu, Jiaxuan Li, Jia Xue, Xingsheng Yang, Qudi Qiao, Meirou Lu, Changyue Xu
article en

Abstract

Abstract Real-time and highly sensitive monitoring of pathogens in environmental and host-derived samples is critical for controlling emerging and acute infectious diseases, yet remains technically challenging. Here, we report a multifunctional nanozyme-based immunochromatographic assay (ICA) that enables rapid, universal, and multiplex detection in different scenarios through visual readouts. We constructed a corona-structured magnetic nanozyme (CSMN) with a triple signal-amplification mechanism involving “magnetic enrichment-synergistic enhancement-multiple catalytic sites,” enabling efficient enrichment of trace pathogens in complex matrices and generation of dual visual outputs (colorimetric and catalytically enhanced signals) on ICA. The CSMN-based nanozyme ICA requires only 2 min of catalysis to achieve a ≥92.65-fold increase in sensitivity and a 100-fold expansion of the detection range. Based on this platform, dual-mode detection strategies were developed for SARS-CoV-2 and monkeypox virus. The direct mode enables rapid screening within 12 min, with detection limits as low as 19.4 and 22.5 pg/mL for the two targets, respectively. The enrichment mode enables ultrasensitive detection within 20 min, with detection ranges of 0.0012–1000 ng/mL and 0.0026–1000 ng/mL, respectively, while mitigating interference from the hook effect, making it suitable for detecting low-abundance targets in complex samples. The method demonstrated high accuracy and reliability across environmental and clinical samples, with a detection time approximately one-sixth that of qPCR and ELISA, indicating strong potential for infectious disease surveillance and outbreak control.

Analytical Chemistry
First Affiliated Hospital of Bengbu Medical College (CN), Southern Medical University (CN), South China University of Technology (CN)
National Natural Science Foundation of China, Guangdong Provincial People's Hospital, National Science and Technology Major Project
Openalex Percentile: Top 24%
Advanced Nanomaterials in Catalysis
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