Detection of chloramphenicol with an aptamer-based colorimetric assay: critical evaluation of specific and unspecific binding of analyte molecules

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作者
Xiaoqi Tao
Fan He
Xixia Liu
Fang Zhang
Xin Wang
Yuanyuan Peng
Juewen Liu
机构
[1] Southwest University,College of Food Science
[2] University of Waterloo,Department of Chemistry, Waterloo Institute for Nanotechnology
[3] South China Agricultural University,College of Food Science, Guangdong Provincial Key Laboratory of Food Quality and Safety
[4] Hubei Normal University,Hubei Key Laboratory of Edible Wild Plants Conservation and Utilization
[5] Fuzhou University,College of Biological Science and Engineering
来源
Microchimica Acta | 2020年 / 187卷
关键词
Biosensors; Colorimetric assay; Gold nanoparticles; Aptamers; Label-free detection; Antibiotics;
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学科分类号
摘要
A chloramphenicol (CAP)-binding aptamer of 80 nucleotides (nt) was reported in 2011. In 2014, it was truncated to 40 nt and has since been used by most researchers, although a careful binding study is still lacking. In this work, binding assays using isothermal titration calorimetry and various DNA-staining dyes were performed. By comparing the truncated aptamer with three control sequences, no specific binding of CAP was observed in each case. The secondary structures of the original and truncated aptamers were analyzed, and it was shown that the likelihood of the truncated aptamer to retain the same binding mechanism as the original sequence is low. We further examined gold nanoparticle (AuNP)–based label-free colorimetric assays. By quantifying the extinction ratio at 620 nm over that at 520 nm, a similar color response was observed regardless of the sequence of DNA, suggesting the color change mainly reflected other events such as the adsorption of CAP by the AuNPs, instead of aptamer binding to CAP. Salt-induced aggregation experiments suggested direct adsorption of CAP on AuNPs. CAP only weakly inhibited DNA adsorption by AuNPs but did not displace pre-adsorbed DNA. Therefore, CAP adsorption by AuNPs needs to be considered when designing related sensors, for example, by using non-aptamer sequences as controls. This work calls for careful confirmation of aptamer binding and control experiments for designing aptamer and AuNP-based biosensors.
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