Exosomes are extracellular vesicles of 30-200 nm in diameter that inherit molecular markers from their parent cells, including proteins, lipids, nucleic acids, and glycoconjugates. The detection and protein profiling of exosome could provide noninvasive access to disease diagnosis and treatment. In recent years, it has been found that Zr-MOFs can capture exosomes by forming Zr-O-P bonds through the phospholipid bilayer of exosomes. In addition, gold nanoparticles with optical response are used for colorimetric biological analysis, such as proteins, peptides, DNA. In this work, we proposed an aptasensor for exosome capture and sensitive colorimetric detection. The Zr-MOF (PCN-224) is innovatively used to capture exosome by Zr-O-P bond, and sodium tripolyphosphate (STPP) is used to block the non-specific adsorption of DNA aptamers on the surface of PCN-224 by site occupying effect. The aptamer binds to exosome immunity, and the remaining aptamer binds to Au NPs, resulting in an increase in steric hindrance and electrostatic repulsion, which makes the dispersion of Au NPs better and avoids the aggregation of Au NPs induced by dopamine (DA). The ratio of absorbance A/A represents the aggregate degree of Au NPs, which correlates with the concentration of exosomes, and achieves sensitive colorimetric detection of exosomes with a linear range of 1.0 × 10-1.0 × 10 particles/mL. Further studies reveal that our work has excellent selectivity and anti-interference, breast cancer patients and healthy individuals can be distinguished by analyzing the differences in the expression of CD63 protein on exosome. The proposed biosensor integrates the capture and detection of exosomes, the multiple colors of Au NPs changed significantly from red to gray, which was conducive to the naked-eye identification of exosome detection.
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http://dx.doi.org/10.1016/j.aca.2024.343234 | DOI Listing |
J Fluoresc
January 2025
Department of Basic Sciences, Sari University of Agricultural Sciences and Natural Resources, P.O.Box 578, Sari, Iran.
Among the various cations, the Fe ion is one of the most critical transition metal ions in living cells for many cellular functions and enzymatic activities. The decrease or overloading of Fe can lead to different disruptions in humans. Also, Fe, highly toxic, is very common in all industrial wastewater.
View Article and Find Full Text PDFDalton Trans
January 2025
Key Laboratory of Nonferrous Metal Chemistry and Resources Utilization of Gansu Province and State Key Laboratory of Applied Organic Chemistry, Frontiers Science Center for Rare Isotopes, College of Chemistry and Chemical Engineering, Lanzhou University, 73000 Lanzhou, China.
Hydrogen peroxide, phenols, amines, aldehydes, and other substances can easily damage intracellular biomacromolecules. Although natural peroxidases can convert these harmful substances into benign ones, the high costs, poor stabilities, and stringent application conditions associated with these enzymes necessitate the exploration of artificial mimics. In this study, Ce-doped MIL-101(Fe)-NH and MIL-101(Fe)-NO were synthesized with varying compositions a solvothermal method.
View Article and Find Full Text PDFRSC Adv
January 2025
School of Chemistry and Chemical Engineering, Yancheng Institute of Technology Jiangsu 224051 P. R. China +86-515-88298190 +86-515-88298190.
Developing a highly sensitive approach for neurotransmitter analysis is of vital significance due to their essential role in clinical diagnosis and treatment of disease. Herein, bovine serum albumin templated copper nanoparticles (BSA-Cu NPs) with peroxidase-mimicking activity are designed and synthesized for dopamine detection through the fluorometric/colorimetric dual-mode technique. The experimental results suggest that as-fabricated BSA-Cu NPs can strongly catalyze the decomposition of hydrogen peroxide to produce oxidized substances, accompanied by remarkable color changes of chromogenic agent 3,3',5,5'-tetramethylbenzidine from colorless to blue, revealing peroxidase-like activities of BSA-Cu NPs.
View Article and Find Full Text PDFACS Omega
December 2024
Post-Graduate and Research Department of Chemistry, The New College, University of Madras, Chennai 600014, India.
Four dual-responsive probe molecules 1,5-bis(thiophene-2-carbaldehyde)carbohydrazone (R1), 1,5-bis(thiophene-2-carbaldehyde)thiocarbohydrazone (R2), 1,5-bis(indole-3-carbaldehyde)carbohydrazone (R3), and 1,5-bis(indole-3-carbaldehyde)thiocarbohydrazone (R4) were synthesized, characterized, and investigated for their sensing efficacy. The initial sensing behavior of the probes was tested by colorimetric signaling, followed by spectral and theoretical techniques, which supported the dual-sensing ability of the selected inorganic ions. The probes exhibited highly selective optical recognition for Cu/Fe cations and F/ClO anions compared to the tested cations and anions.
View Article and Find Full Text PDFFood Chem X
January 2025
Faculty of Food Science and Engineering, Kunming University of Science and Technology, Kunming 650500, China.
Herein, the miniaturized thermal purge-and-trap (MTPT) device combined with self-calibration colorimetric/surface-enhanced Raman spectroscopy (SERS) dual-model optical sensors were designed for effective analysis of sulfur dioxide (SO) in wine. The SO can be rapidly separated from wine and enriched by MTPT device, ensuring colorimetric/SERS dual-model optical sensing based on Karl Fischer reaction. The high separation efficiency of miniaturized MTPT device combined with self-calibration of dual-model optical sensors significantly alleviate matrix interference and improve the detection accuracy.
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