Literature DB >> 24743421

Synthesis, labeling and bioanalytical applications of a tris(2,2'-bipyridyl)ruthenium(II)-based electrochemiluminescence probe.

Xiaoming Zhou1, Debin Zhu1, Yuhui Liao1, Weipeng Liu1, Hongxing Liu1, Zhaokui Ma1, Da Xing1.   

Abstract

Assays using probes labeled with electrochemiluminescent moieties are extremely powerful analytical tools that are used in fields such as medical diagnostics, environmental analysis and food safety monitoring, in which sensitive, reliable and reproducible detection of biomolecules is a requirement. The most efficient electrochemiluminescence (ECL) reaction to date is based on tris(2,2'-bipyridyl)ruthenium(II) (Ru(bpy)3(2+)) with tripropylamine (TPrA) as the co-reactant. Here we present a detailed protocol for preparing Ru(bpy)3(2+) probes and their bioanalytical applications. This protocol includes (i) the synthesis of a biologically active Ru(bpy)3(2+)-N-hydroxysuccinimide (NHS) ester, (ii) its covalent labeling with both antibodies and DNA probes and (iii) the detection and quantification of ECL in a microfluidic system with a paramagnetic microbead solid support. In our magnetic bead-based ECL system, two probes are required: a capture probe (labeled with biotin to be captured by a streptavidin-coated magnetic bead) and a detector probe (labeled with Ru(bpy)3(2+)). The complex consisting of the analyte, the capture probe, the detector probe and the magnetic bead is brought into contact with the electrode by using a magnetic field. The Ru(bpy)3(2+) reacts with TPrA in solution to generate the ECL signal. The full protocol, including the synthesis and labeling of the bioactive Ru(bpy)3(2+), requires 5-6 d to complete. ECL immunoassays or nucleic acid tests only require 1.5-2 h, including the sample preparation time.

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Year:  2014        PMID: 24743421     DOI: 10.1038/nprot.2014.060

Source DB:  PubMed          Journal:  Nat Protoc        ISSN: 1750-2799            Impact factor:   13.491


  49 in total

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5.  Electrochemiluminescence detection for development of immunoassays and DNA probe assays for clinical diagnostics.

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7.  In vitro selection of DNA aptamers to anthrax spores with electrochemiluminescence detection.

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10.  Chemiluminescence as diagnostic tool. A review.

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Review 5.  Ruthenium polypyridine complexes combined with oligonucleotides for bioanalysis: a review.

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Review 6.  Recent advances in electrogenerated chemiluminescence biosensing methods for pharmaceuticals.

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Journal:  J Pharm Anal       Date:  2018-11-22

Review 7.  Recent Advances in Electrochemiluminescence Sensors for Pathogenic Bacteria Detection.

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8.  A conceptual framework for the development of iridium(iii) complex-based electrogenerated chemiluminescence labels.

Authors:  Lifen Chen; David J Hayne; Egan H Doeven; Johnny Agugiaro; David J D Wilson; Luke C Henderson; Timothy U Connell; Yi Heng Nai; Richard Alexander; Serena Carrara; Conor F Hogan; Paul S Donnelly; Paul S Francis
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9.  A Comparison of Commercially Available Screen-Printed Electrodes for Electrogenerated Chemiluminescence Applications.

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