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Liquid Crystal@Nanosilver Catalytic Amplification-Aptamer Trimode Biosensor for Trace Pb2.
Yiyi Shu1,2, Sha Li1,2, Chongning Li1,2
1School of Public Health, Guilin Medical University, Guilin 541199, China.
International Journal of Molecular Sciences
|February 11, 2023
Summary
This study introduces a novel biosensing platform using liquid crystal nanoparticles (LC-NPs) loaded with nanosilver. This platform enables highly sensitive detection of inorganic pollutants through a unique trimode spectral assay.
Area of Science:
- Materials Science
- Analytical Chemistry
- Nanotechnology
Background:
- Liquid crystals (LCs) are primarily used in display technologies.
- The application of LC-loaded nanoparticles as catalysts in analytical assays, particularly for signal amplification, is underexplored.
- Developing sensitive and selective detection methods for inorganic pollutants remains a critical challenge.
Purpose of the Study:
- To investigate the catalytic activity of five liquid crystals (LCs) and develop a novel LC-nanosilver catalyst.
- To construct a highly sensitive and selective trimode molecular spectral assay for detecting inorganic pollutants.
- To explore the potential of LC-nanoparticles in advanced analytical and biosensing applications.
Main Methods:
- Molecular spectroscopy was employed to study five LCs, including cholesteryl benzoate (CB).
- CB-loaded nanosilver (CB@AgNPs) sol was synthesized and characterized for its catalytic properties.
- A trimode biosensing platform was developed by coupling the CB@AgNPs catalytic reaction with aptamer recognition for detecting inorganic pollutants (Pb2+, Cd2+, Hg2+, As3+).
Main Results:
- A highly catalytic and stable CB@AgNPs sol was successfully prepared.
- The CB@AgNPs demonstrated catalytic activity in an indicator reaction, producing silver nanoparticles (AgNPs) with distinct Abs (450 nm), RRS (370 nm), and SERS (1618 cm-1) signals.
- The integrated biosensing platform exhibited high sensitivity and selectivity for detecting target inorganic pollutants.
Conclusions:
- Liquid crystal-loaded nanosilver presents a promising new catalytic system for analytical applications.
- The developed trimode biosensing platform offers a novel approach for the sensitive and selective detection of inorganic pollutants.
- This research expands the utility of liquid crystals beyond display materials into advanced sensing technologies.

