TY - JOUR
T1 - A multiplexed electrochemical quantitative polymerase chain reaction platform for single-base mutation analysis
AU - Wang, Yang
AU - Sun, Hong
AU - Xu, Gaolian
AU - Guan, Mengdi
AU - Zhang, Qingyang
AU - Wang, Zhiying
AU - Dong, Zaizai
AU - Chen, Wenhui
AU - Yang, Xiaoxiao
AU - Qiao, Anbang
AU - Fan, Yubo
AU - Cai, Xinxia
AU - Chen, Zhou
AU - Chang, Lingqian
AU - Wei, Bo
N1 - Publisher Copyright:
© 2022 Elsevier B.V.
PY - 2022/10/15
Y1 - 2022/10/15
N2 - Detection of single-based mutation (SbM), which is of ultra-low abundance against wild-type alleles, are typically constrained by the level of multiplexing, sensitivity for single-base resolution and quantification accuracy. In this work, an electrochemical quantitative polymerase chain reaction (E-PCR) platform was developed for multiplexed and quantitative SbM analysis in limited and precious samples with single-nucleotide discrimination. A locked nucleic acid (LNA)-mediated multiplexed PCR system in a single, closed tube setup was firstly constructed to selectively amplify the SbM genes while suppressing the wild-type alleles. The amplicons were detected simultaneously through hybridization with the sequence-specific hairpin probes anchored on a reduced graphene oxide-gold nanoparticles functionalized electrode surface. With the inclusion of an LNA-mediated PCR step upstream of the electrochemical detection, we improved the limit of detection (LOD) by 2 orders of magnitude, down to an ultralow-level of 5 copies μL−1. The platform achieved an ultra-sensitive and specific detection with 0.05% against a background of 10, 000 copies of wild-type alleles. It is highly adaptive and has the potential to enable expanded multiplexed detection in parallel, thus providing a universal tool for multiplexed SbM identification.
AB - Detection of single-based mutation (SbM), which is of ultra-low abundance against wild-type alleles, are typically constrained by the level of multiplexing, sensitivity for single-base resolution and quantification accuracy. In this work, an electrochemical quantitative polymerase chain reaction (E-PCR) platform was developed for multiplexed and quantitative SbM analysis in limited and precious samples with single-nucleotide discrimination. A locked nucleic acid (LNA)-mediated multiplexed PCR system in a single, closed tube setup was firstly constructed to selectively amplify the SbM genes while suppressing the wild-type alleles. The amplicons were detected simultaneously through hybridization with the sequence-specific hairpin probes anchored on a reduced graphene oxide-gold nanoparticles functionalized electrode surface. With the inclusion of an LNA-mediated PCR step upstream of the electrochemical detection, we improved the limit of detection (LOD) by 2 orders of magnitude, down to an ultralow-level of 5 copies μL−1. The platform achieved an ultra-sensitive and specific detection with 0.05% against a background of 10, 000 copies of wild-type alleles. It is highly adaptive and has the potential to enable expanded multiplexed detection in parallel, thus providing a universal tool for multiplexed SbM identification.
KW - E-PCR platform
KW - LNA-Mediated PCR
KW - Multiplexed detection
KW - Single-based mutation
UR - http://www.scopus.com/inward/record.url?scp=85134631714&partnerID=8YFLogxK
U2 - 10.1016/j.bios.2022.114496
DO - 10.1016/j.bios.2022.114496
M3 - 文章
C2 - 35803152
AN - SCOPUS:85134631714
SN - 0956-5663
VL - 214
JO - Biosensors and Bioelectronics
JF - Biosensors and Bioelectronics
M1 - 114496
ER -