Construction of an ultrasensitive electrochemiluminescent aptasensor for ractopamine detection
Literature Information
Huiwen Xiong, Jingwen Gao, Ying Wang, Ziyi Chen, Miao-Miao Chen, Xiuhua Zhang, Shengfu Wang
In this study, an ultrasensitive electrochemiluminescence (ECL) aptasensor based on Ru(bpy)32+-doped silica nanoparticles (Ru@SiO2 NPs) coupled with gold nanoparticles (Au NPs) was developed for the determination of ractopamine (Rac). TPrA is used as the coreactant, the Ru@SiO2 NPs serve as the ECL luminophores, and the Au NPs work as a catalyzer in the redox reaction as well as the carrier that immobilizes the aptamer. Meanwhile, the complete incorporation of the Ru@SiO2 NPs and Au NPs increases the localized surface plasmon resonance (LSPR) probability, thus promoting ECL emission. The ractopamine (Rac) target molecules are specifically captured on the electrode surface by aptamer recognition. The ECL signal is quenched by energy transfer from the luminophore to benzoquinone compounds, which are oxidative products of Rac from the electrochemical scanning process. The proposed ECL aptasensor exhibits ultrahigh sensitivity and excellent selectivity for Rac detection. The linear response ranged over Rac concentrations from 1.5 × 10−12 M to 1.5 × 10−8 M with a detection limit of 4.1 × 10−14 M (S/N = 3). The detection recovery of Rac in real meat samples confirmed the satisfactory performance of the method. This study describes a versatile ECL aptasensor based on the combined functions of luminous nanospheres and Au NPs, indicating its potential application for the ultrasensitive analysis of targets in diverse systems.
Related Literature
Quantifying the working stroke of tetrathiafulvalene-based electrochemically-driven linear motor-molecules
Amar H. Flood, Camilla N. Hansen, Jan O. Jeppesen, J. Fraser Stoddart
DOI: 10.1039/B511575B
Co2+/Co0 redox couple revealed by EPR spectroscopy triggers preferential coordination of reactants during SCR of NOx with propene over cobalt-exchanged zeolites
Piotr Pietrzyk
DOI: 10.1039/B703088F
The first insoluble polymer-bound palladium complexes of 2-pyridyldiphenylphosphine: highly efficient catalysts for the alkoxycarbonylation of terminal alkynes
Simon Doherty, Julian G. Knight, Michael Betham
DOI: 10.1039/B512556A
Direct visualisation, by aberration-corrected electron microscopy, of the crystallisation of bimetallic nanoparticlecatalysts
Edmund P. W. Ward, Ilke Arslan, Paul A. Midgley, Andrew Bleloch
DOI: 10.1039/B511004A
A recipe for new organometallic polymers and oligomers? Synthesis and structure of an oligo- and a polymeric arrangement of P–S anions‡
Maryam Shafaei-Fallah, Weifeng Shi
DOI: 10.1039/B617177J
Playing with podands based on cone-shaped cavities. How can a cavity influence the properties of an appended metal centre?
Catherine Jeunesse, Dominique Armspach, Dominique Matt
DOI: 10.1039/B509825B
Hydroxy-cruciforms
Psaras L. McGrier, Kyril M. Solntsev, Jan Schönhaber, Scott M. Brombosz, Laren M. Tolbert, Uwe H. F. Bunz
DOI: 10.1039/B702883K
Cross-metathesis of unsaturated natural oils with 2-butene. High conversion and productive catalyst turnovers
Jim Patel, Jomana Elaridi, W. Roy Jackson, Andrea J. Robinson, Algirdas K. Serelis, Chris Such
DOI: 10.1039/B511626K
Lanthanide–transition metal coordination polymers based on multiple N- and O-donor ligands
Youfu Zhou, Maochun Hong, Xintao Wu
DOI: 10.1039/B509458P
You might also like
What precautions should be taken when handling lithium chloride hydrate (1:1:1) (CAS: 16712-20-2)?
When handling lithium chloride hydrate (1:1:1) (CAS: 16712-20-2), it is importan...
Is 4-(4H-1,2,4-Triazol-4-yl)piperidine (CAS: 690261-92-8) safe?
4-(4H-1,2,4-Triazol-4-yl)piperidine is generally considered safe for use in phar...
How should waste containing 1,3-Thiazole-2-carboxamide (CAS: 16733-85-0) be handled?
Waste containing 1,3-Thiazole-2-carboxamide (CAS: 16733-85-0) should be collecte...
What regulatory guidelines apply to 5-(Difluoromethyl)-2-fluorobenzonitrile (CAS: 934175-58-3)?
5-(Difluoromethyl)-2-fluorobenzonitrile (CAS: 934175-58-3) is subject to regulat...
How is Methyl 3-acetamido-2-thiophenecarboxylate (CAS: 22288-79-5) typically synthesized?
Methyl 3-acetamido-2-thiophenecarboxylate can be synthesized by the reaction of ...
What is 4-Isoquinolinecarbonitrile (CAS: 34846-65-6)?
4-Isoquinolinecarbonitrile is a chemical compound with the CAS number 34846-65-6...
How should Methyl 1H-1,2,3-triazole-4-carboxylate (CAS: 877309-59-6) be stored?
Store Methyl 1H-1,2,3-triazole-4-carboxylate (CAS: 877309-59-6) in a cool, dry p...
What regulatory guidelines apply to 6-Bromo[1,3]thiazolo[5,4-b]pyridin-2-amine (CAS: 1160791-13-8)?
6-Bromo[1,3]thiazolo[5,4-b]pyridin-2-amine (CAS: 1160791-13-8) is subject to the...
Is (2S,3S)-2-Ammonio-3-(3,4-dihydroxyphenyl)-3-hydroxypropanoate (CAS: 23651-95-8) safe?
(2S,3S)-2-Ammonio-3-(3,4-dihydroxyphenyl)-3-hydroxypropanoate (CAS: 23651-95-8) ...
What are the physical and chemical properties of 7-bromo-3-methyl-3,4-dihydroquinazolin-4-one (CAS: 1293987-84-4)?
7-Bromo-3-methyl-3,4-dihydroquinazolin-4-one is a solid with a crystalline form....
Source Journal
Analyst

Analyst publishes analytical and bioanalytical research that reports premier fundamental discoveries and inventions, and the applications of those discoveries, unconfined by traditional discipline barriers.














