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April 3, 2026Analytical Chemistry2 citations

Multiresponsive Intelligent Probe Based on Catalase@MOF-Copper for Dynamic On-Site Sensing

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NFNiu FengXPXuewen PengYDYiming Dong

Key Points

  • The aim is to develop a sensitive sensor for on-site detection of various biological and chemical targets using a metal-organic framework.
  • Synthesis of a copper hyperprobe (MATCH) using a metal-organic framework (MOF) and mercaptosuccinic acid.
  • Encapsulation of catalase within the MOF to create a CAT@MOF complex.
  • Integration of CRISPR/Cas systems to improve sensor performance.
  • Evaluation of sensor sensitivity and efficiency against standard methods.
  • MATCH shows high responsiveness to hydrogen peroxide and metal ions.
  • The CAT@MOF complex enhances sensor stability and activity.
  • MATCH performs better than traditional sensors in sensitivity and efficiency.
  • Significantly reduces costs and dependence on complex instrumentation.

Abstract

The determination of biological and chemical factors is important to public health. Herein, we present a metal–organic framework (MOF)-assisted tunable copper hyperprobe (MATCH) for the dynamic on-site detection of diverse targets, including nucleic acids, proteins, antibiotics, and ions. MATCH is synthesized in an ultrafast and mild process by utilizing a MOF to assist mercaptosuccinic acid in capping and reducing Cu2+ into a composite hybrid. It exhibits high color-responsiveness to metal ions and hydrogen peroxide. Subsequently, catalase (CAT) is encapsulated within the MOF, forming a CAT@MOF complex, which not only enhances stability and activity but also acts as a signal transducer in MATCH. Through integration with clustered regularly interspaced short palindromic repeats/Cas or immune recognition, the CAT@MOF-mediated MATCH sensor exhibits greater sensitivity and efficiency than gold-standard sensors and remarkably reduces instrument dependence and analysis costs. MATCH provides a multiresponse to H2O2, metal ions, nucleic acids, proteins, and antibiotics, which holds great promise for in vitro diagnostics, food safety, and environmental monitoring, thus advancing public health protection.

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Cite This Study

Feng et al. (2026) studied this question.

synapsesocial.com/papers/69cf5e115a333a821460c31dhttps://doi.org/10.1021/acs.analchem.5c08208
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