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Updated: Aug 6, 2026

Label-Free Surface-Enhanced Raman Scattering Bioanalysis Based on Au@Carbon Dot Nanoprobes
Published on: June 9, 2023
Quantitative analysis of H2O2-related biomarkers using surface-enhanced Raman spectroscopy technology based on
Yanglan Zhao1, Han Xia1, Yuqing Li1
1College of Pharmaceutical Science, Zhejiang University of Technology, No. 18, Chaowang Road, Hangzhou, 310014, China.
Background:
Hydrogen peroxide (H2O2), a pivotal component of reactive oxygen species, is intricately intertwined with numerous pathological and physiological processes within organisms. In the disease diagnosis domain, the precise detection of H2O2 and its associated biomarkers, which play crucial roles in discerning disease states, is of paramount importance. However, current methods often suffer from limited sensitivity and reliability. There is an urgent need for a reliable, highly accurate method to detect these substances, aiming to enhance diagnostic precision and enable early disease intervention.
Results:
A novel Surface Enhanced Raman Scattering (SERS) substrate was developed by coating Prussian blue (PB) on gold nanoparticles (Au@PB NPs) for the detection of H2O2 and biomarkers such as alanine aminotransferase (ALT), cholesterol, and uric acid. The PB Raman signal serves as an ideal and non-interfering internal standard to correct the Raman intensity fluctuations of analytes for accurate quantification. The Au@PB NPs acted as a peroxidase-mimicking enzyme, catalyzing the oxidation of 3,3',5,5'-tetramethylbenzidine (TMB) in the presence of H2O2. The method achieved a detection limit of 0.19 × 10-12 M for H2O2, with a linear range of 10-12 to 10-2 M. Linear detection ranges for ALT, cholesterol and uric acid were 0.5-100 U/L, 10-500 μM, and 5-600 μM, respectively. The specificity was assessed through interference and cross-reactivity experiments. The results showed negligible interference, stable Raman signals, and a relative error of less than 3 %. Clinical serum samples validation exhibited a high degree of consistency, ranging from 92.49 % to 105.92 %, with an average discrepancy of less than 5 %, demonstrating the method's precision and reliability.
Significance:
This study presents a highly sensitive and accurate method for detecting H2O2 and key biomarkers, offering significant potential for early diagnosis of liver and kidney damage. The approach provides a robust tool for clinical applications, enabling precise monitoring of disease-related biochemical alterations.
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