Publications
ProcessesNov 2020 |
8
(
11
),
1425
DOI:
10.3390/pr8111425

Microfluidic Nano-Scale qPCR Enables Ultra-Sensitive and Quantitative Detection of SARS-CoV-2

Xie, Xin; Gjorgjieva, Tamara; Attieh, Zaynoun; Dieng, Mame Massar; Arnoux, Marc; Khair, Mostafa; Moussa, Yasmine; Al Jallaf, Fatima; Rahiman, Nabil; Jackson, Christopher A.; Messery, Lobna El; Pamplona, Khristine; Victoria, Zyrone; Zafar, Mohammed; Ali, Raghib; Piano, Fabio; Gunsalus, Kristin C.; Idaghdour, Youssef
Product Used
NGS
Abstract
A major challenge in controlling the COVID-19 pandemic is the high false-negative rate of the commonly used RT-PCR methods for SARS-CoV-2 detection in clinical samples. Accurate detection is particularly challenging in samples with low viral loads that are below the limit of detection (LoD) of standard one- or two-step RT-PCR methods. In this study, we implemented a three-step approach for SARS-CoV-2 detection and quantification that employs reverse transcription, targeted cDNA preamplification, and nano-scale qPCR based on a commercially available microfluidic chip. Using SARS-CoV-2 synthetic RNA and plasmid controls, we demonstrate that the addition of a preamplification step enhances the LoD of this microfluidic RT-qPCR by 1000-fold, enabling detection below 1 copy/µL. We applied this method to analyze 182 clinical NP swab samples previously diagnosed using a standard RT-qPCR protocol (91 positive, 91 negative) and demonstrate reproducible and quantitative detection of SARS-CoV-2 over five orders of magnitude (
Product Used
NGS

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