Toehold-aided DNA recycling amplification using hemin and G-quadruplex reporter DNA on magnetic beads as tags for chemiluminescent determination of riboflavin

被引:0
作者
Yan Meng
Xu Hun
Yue Zhang
Xiliang Luo
机构
[1] Qingdao University of Science and Technology,Key Laboratory of Sensor Analysis of Tumor Marker, Ministry of Education, State Key Laboratory Base of Eco
来源
Microchimica Acta | 2016年 / 183卷
关键词
Toehold amplification; Aptamer; Chemiluminescence; Luminol;
D O I
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中图分类号
学科分类号
摘要
A toehold-aided DNA recycling amplification technology was developed based on the combination of toehold-aided DNA recycling and the hemin/G-quadruplex label. The dsDNA formed between aptamer and DNA1 was first immobilized on magnetic beads. On addition of target analyte (exemplified here for riboflavin), the aptamer-riboflavin complex is formed and DNA1 is released by the beads. After magnetic separation, the supernatant containing the released DNA1 is added to a solution containing the hairpin capture DNA on magnetic beads. DNA1 will hybridize with the hairpin capture DNA via toehold binding and branch migration. This process will open the hairpin structure, and an external toehold is formed in the newly formed dsDNA. On addition of reporter DNA containing the G-quadruplex, it will interact with the formed dsDNA via toehold binding and branch migration, resulting in the releasing of DNA1 and capturing of reporter DNA on the magnetic beads. The released DNA1 will bind to another hairpin capture DNA which can start another round of DNA1 recycling. Chemiluminescence (CL) is generated by the G-quadruplex-hemin-luminol CL reaction system. Under optimal conditions, the calibration plot is linear in the 0.1 to 700 nM riboflavin concentration range, with a 30 pM detection limit (at a signal-to-noise ratio of 3). The method was successfully applied to the quantitation of riboflavin in spiked urine samples.
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页码:2965 / 2971
页数:6
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共 236 条
[1]  
Tseng H-Y(2014)Development of an electrochemical biosensor array for quantitative polymerase chain reaction utilizing three-metal printed circuit board technology Sens Actuators B: Chem 204 459-466
[2]  
Adamik V(2014)Reagentless, ratiometric electrochemical DNA sensors with improved robustness and reproducibility Anal Chem 86 8010-8016
[3]  
Parsons J(2016)Detection of Puccinia kuehnii causing sugarcane orange rust with a Loop-mediated isothermal amplification-based assay Mol Biotechnol 58 188-196
[4]  
Lan S-S(2016)Surveillance for Western Equine Encephalitis, St. Louis Encephalitis, and West Nile Viruses Using Reverse Transcription Loop-mediated isothermal amplification PloS One 11 e0147962-2581
[5]  
Malfesi S(2016)Cascade signal amplification based on copper nanoparticle-reported rolling circle amplification for ultrasensitive electrochemical detection of the prostate cancer biomarker ACS Appl Mater Interfaces 8 2573-684
[6]  
Lum J(2016)"Light-up" Sensing of human 8-oxoguanine DNA glycosylase activity by target-induced autocatalytic DNAzyme-generated rolling circle amplification Biosens Bioelectron 79 679-2713
[7]  
Shannon L(2016)Target-induced and Equipment-free DNA Amplification with a simple paper device Angew Chem (Int ed Eng) 55 2709-10436
[8]  
Gray B(2015)Versatile and amplified biosensing through enzymatic cascade reaction by coupling alkaline phosphatase in situ generation of photoresponsive nanozyme Anal Chem 87 10429-542
[9]  
Du Y(2016)Integration of target responsive hydrogel with cascaded enzymatic reactions and microfluidic paper-based analytic devices (microPADs) for point-of-care testing (POCT) Biosen Bioelectron 77 537-2951
[10]  
Lim BJ(2015)Chemical-oxidation cleavage triggered isothermal exponential amplification reaction for attomole gene-specific methylation analysis Anal Chem 87 2945-2271