RPB0042

Pathogen Description

Target Pathogen Pathogen Name NCBI Taxonomy ID Order Family Genus Species Pathogen type
MERS-CoV Middle East respiratory syndrome-related coronavirus, MERS coronavirus, MERS virus, Middle East Respiratory Syndrome Coronavirus, Middle East respiratory syndrome coronavirus 1335626 Nidovirales Coronaviridae Betacoronavirus Nidovirales Virus

Primer Description

Primer Name Sequence(5'-3') Length(bp) Primer Final Concentration(μM) GC Content(%) Predicted Melting Temperature(℃) Molecular Weight(g/moles) Positions in GenBank accession number
F-E-gene TTACACTAGCCATCCTTACTGCGCTTCGAT 30 \ 46.7 62.71 9067.95 \
R-E-gene GCTAAAATTAAAGTTCCAAACAGAAAAACT 30 \ 26.7 52 9208.12 \
exo-probe-E-gene AGACCAGAAGATCAGGAACTCTAGAAGAAT[THF]GATTTTTAACACGAG 45 \ 37.8 62.38 13943.16 \

Gene Description

Target Gene GenBank ID
E gene \

Assay Description

Application Assay Primer Designing Software Reaction Time(min) Assay Temperature(℃) Readout System(s) Limit of Detection(LoD) Sensitivity(%) Specificity(%)
\ \ \ 30 37 RPA-LF and exo probe 9.5 RNA copies per reaction for the E gene 100 100

Publication Description

Year of Publication Title Author(s) Journal PMID DOI
2021 Harnessing recombinase polymerase amplification for rapid multi-gene detection of SARS-CoV-2 in resource-limited settings. Cherkaoui, Dounia; Huang, Da; Miller, Benjamin S; Turbé, Valérian; McKendry, Rachel A; BIOSENS BIOELECTRON 34051382 10.1016/j.bios.2021.113328

Harnessing recombinase polymerase amplification for rapid multi-gene detection of SARS-CoV-2 in resource-limited settings.

Author(s):

Cherkaoui, Dounia; Huang, Da; Miller, Benjamin S; Turbé, Valérian; McKendry, Rachel A;

Journal:

BIOSENS BIOELECTRON

Year:

2021

Abstract:

The COVID-19 pandemic is challenging diagnostic testing capacity worldwide. The mass testing needed to limit the spread of the virus requires new molecular diagnostic tests to dramatically widen access at the point-of-care in resource-limited settings. Isothermal molecular assays have emerged as a promising technology, given the faster turn-around time and minimal equipment compared to gold standard laboratory PCR methods. However, unlike PCR, they do not typically target multiple SARS-CoV-2 genes, risking sensitivity and specificity. Moreover, they often require multiple steps thus adding complexity and delays. Here we develop a multiplexed, 1-2 step, fast (20-30 min) SARS-CoV-2 molecular test using reverse transcription recombinase polymerase amplification to simultaneously detect two conserved targets - the E and RdRP genes. The agile multi-gene platform offers two complementary detection methods: real-time fluorescence or dipstick. The analytical sensitivity of the fluorescence test was 9.5 (95% CI: 7.0-18) RNA copies per reaction for the E gene and 17 (95% CI: 11-93) RNA copies per reaction for the RdRP gene. The analytical sensitivity for the dipstick method was 130 (95% CI: 82-500) RNA copies per reaction. High specificity was found against common seasonal coronaviruses, SARS-CoV and MERS-CoV model samples. The dipstick readout demonstrated potential for point-of-care testing in decentralised settings, with minimal or equipment-free incubation methods and a user-friendly prototype smartphone application. This rapid, simple, ultrasensitive and multiplexed molecular test offers valuable advantages over gold standard tests and in future could be configurated to detect emerging variants of concern.