Issue 8, 2024

One-tube B7-H3 detection based on isothermal exponential amplification and dendritic hybridization chain reaction

Abstract

We have developed a one-tube fluorescence strategy for the detection of B7-H3 based on a proximity hybridization-mediated protein-to-DNA signal transducer, isothermal exponential amplification (EXPAR), and dendritic hybridization chain reaction (D-HCR). In this assay, a protein signal transducer was employed to convert the input protein to output single-stranded DNA with a nicking site. Antibody-conjugated DNA1 was first hybridized with the output DNA (DNA3). The binding of antibodies conjugated DNA1 and DNA2 to the same protein was able to increase the local concentrations, resulting in strand displacement between DNA3 and DNA2. DNA3 with a nicking endonuclease recognition sequence at the 5′ end then hybridized with hairpin probe 1 to mediate EXPAR in the presence of nicking endonuclease and DNA polymerase. A large number of single-strand DNA were produced in the circle of nicking, polymerization, and strand displacement. The resulting ssDNA products were further amplified by D-HCR to produce many large-molecular concatemers. The resulting DNA products can be monitored in real-time fluorescence signaling. Our proposed assay can realize one-tube detection due to the same reaction temperature of the protein-to-DNA signal transducer, EXPAR, and DHCR. This assay has a linear range from 100 fg mL−1 to 1 μg mL−1 with a detection limit down to 100 fg mL−1. This work shows a good performance in clinical specimen detection.

Graphical abstract: One-tube B7-H3 detection based on isothermal exponential amplification and dendritic hybridization chain reaction

Supplementary files

Article information

Article type
Paper
Submitted
21 Nov 2023
Accepted
15 Mar 2024
First published
15 Mar 2024
This article is Open Access
Creative Commons BY-NC license

Nanoscale Adv., 2024,6, 2129-2135

One-tube B7-H3 detection based on isothermal exponential amplification and dendritic hybridization chain reaction

X. Chen, C. Xuan, J. Lin, Z. Pan, X. Wu, P. Wu, Z. Liang, L. Yu and C. Qiu, Nanoscale Adv., 2024, 6, 2129 DOI: 10.1039/D3NA01025B

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