研究目的
Developing a novel, simple, and free-label dual-signal responsive optical sensor for sensitive detection of glutathione (GSH) by using MnO2 nanoflakes as the GSH recognizer and signal transducer of resonance Rayleigh scattering (RRS) and colorimetry.
研究成果
A novel dual-signal responsive optical sensor for GSH detection was developed, combining RRS and colorimetry advantages. The sensor is simple, free-label, and highly sensitive, with successful application in detecting GSH in glutathione injection samples. This study not only offers a new approach for GSH detection but also broadens the application of RRS technique.
研究不足
The sensor's principle is based on the redox reaction between MnO2 nanoflakes and GSH, which may also be triggered by other reducing species, potentially affecting selectivity. The method requires optimization of experimental conditions for best performance.
1:Experimental Design and Method Selection:
The sensor utilizes MnO2 nanoflakes as both GSH recognizer and signal transducer for RRS and colorimetry. The principle is based on the reduction of MnO2 to Mn2+ and etching of MnO2 nanoflakes to small nanoparticles by GSH, causing changes in RRS and absorption signals.
2:Sample Selection and Data Sources:
GSH samples were prepared in buffer solution and glutathione injection samples. The detection was performed in Tris-HCl buffer at pH 7.
3:List of Experimental Equipment and Materials:
4.
3. List of Experimental Equipment and Materials: MnO2 nanoflakes synthesized via a chemical oxidation method, GSH, and other chemicals were used. Equipment included a spectrofluorometer for RRS signals and a UV-vis spectrophotometer for absorption spectra.
4:Experimental Procedures and Operational Workflow:
MnO2 nanoflakes solution was mixed with GSH in Tris-HCl buffer, incubated, and then RRS and absorption spectra were recorded.
5:Data Analysis Methods:
The change in RRS signal and absorbance was analyzed to determine GSH concentration, with detection limits calculated based on signal-to-noise ratio.
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