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1.
Anal Chem ; 96(24): 9969-9974, 2024 06 18.
Artículo en Inglés | MEDLINE | ID: mdl-38847356

RESUMEN

Epinephrine (EP) is an essential catecholamine in the human body. Currently, most EP detection methods are not suitable for in vivo detection due to material limitations. An organic small molecule fluorescent probe based on a chemical cascade reaction for the detection of EP was designed. Anionic heptamethine cyanine dye was selected as a fluorescent dye because of its NIR fluorescence emission with excellent biocompatibility. The secondary amine of EP nucleophilically attacks the carbonate of the probe with its stronger nucleophilicity and further undergoes intramolecular nucleophilic cyclization to release the fluorophore. Other substances containing only primary amines or no ß-OH lack reaction competitiveness due to their weaker nucleophilicity or inability to undergo further cyclization. The fluorescence recovery of the probe was linearly related to the EP concentration of 2-75 µmol/L. The detection limit was 0.4 µmol/L. The recovery rate was 94.78-111.32%. Finally, we successfully achieved bioimaging of EP in living cells and EP analogue in nematodes.


Asunto(s)
Carbocianinas , Epinefrina , Colorantes Fluorescentes , Colorantes Fluorescentes/química , Colorantes Fluorescentes/síntesis química , Humanos , Epinefrina/análisis , Carbocianinas/química , Animales , Imagen Óptica , Aniones/química , Aniones/análisis , Caenorhabditis elegans , Límite de Detección , Rayos Infrarrojos , Células HeLa , Estructura Molecular
2.
Anal Chem ; 96(31): 12739-12747, 2024 08 06.
Artículo en Inglés | MEDLINE | ID: mdl-39056189

RESUMEN

The functionalization of metal-organic frameworks (MOFs) with organic small molecules by in situ postsynthetic modification has garnered considerable attention. However, the precise engineering of recognition sites using this method remains rarely explored in optically controlled bioelectronics. Herein, employing the Schiff base reaction to embed the small molecule (THBA) into a Zr-MOF, we fabricated a hydroxyl-rich MOF on the surface of titanium dioxide nanorod arrays (U6H@TiO2 NRs) to develop light-sensitive gate electrodes with tailored recognition capabilities. The U6H@TiO2 NR gate electrodes were integrated into organic photoelectrochemical transistor (OPECT) sensing systems to tailor a sensitive device for bilirubin (I-Bil) detection. In the presence of I-Bil, coordination effects, hydrogen bonding, and π-π interactions facilitated strong binding between U6H@TiO2 NRs and the target I-Bil. The electron-donating property of I-Bil influenced the gate voltage, enabling precise control of the channel status and modulation of the channel current. The OPECT device exhibited exceptional analytical performance toward I-Bil with wide linearity ranging from 1 × 10-16 to 1 × 10-9 M and a low limit detection of 0.022 fM. Leveraging the versatility of small molecules for boosting the functionalization of materials, this work demonstrates the great potential of the small molecule family for OPECT bioanalysis and holds promise for the advancement of OPECT sensors.


Asunto(s)
Bilirrubina , Técnicas Electroquímicas , Estructuras Metalorgánicas , Titanio , Estructuras Metalorgánicas/química , Bilirrubina/análisis , Técnicas Electroquímicas/instrumentación , Titanio/química , Límite de Detección , Transistores Electrónicos , Humanos , Electrodos , Procesos Fotoquímicos , Nanotubos/química , Circonio/química
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