Detection of Reverse Transcriptase LAMP-Amplified Nucleic Acid from Oropharyngeal Viral Swab Samples Using Biotinylated DNA Probes through a Lateral Flow Assay
Abstract
:1. Introduction
2. Materials and Methods
2.1. SARS-CoV-2 Swab Sample
2.2. Reverse Transcriptase LAMP
2.3. RT-LAMP Programme
2.4. N-Gene-Specific Probe Design
2.5. Biotin-Labelled Probe Hybridization with the RT-LAMP Amplicon
2.6. Lateral Flow Assay
2.7. Agarose Gel Electrophoresis
2.8. Smartphone-Based In Vitro Diagnostic Device-Based LFA Readout
2.9. Analytical Efficacy Calculations
3. Results and Discussion
3.1. RT-LAMP for SARS-CoV-2 Positive and Negative Throat Swab Samples as Template Optimisation
Optimisation of Processing Times for Swab Sample Amplification with RT-LAMP
3.2. Bi-Labelled RT-LAMP-Amplified Product for an LFA Readout
3.2.1. Hybridization of Biotin-Labelled Probes with FITC-Labelled RT-LAMP Products
3.2.2. Individual Specificity Test for Each Probe
3.2.3. Positive and Negative Swab Sample RT-LAMP-LFA Readouts
3.3. Analytical Efficacy
3.4. Digitalization of the LFA Test Band Intensity Readout Using a Smartphone-Based IVD Device
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
Primers | Sequences (5′ -> 3′) | Length (nt) |
---|---|---|
F3 | CCCAAAATCAGCGAAATGCA | 20 |
B3 | AGCCAATTTGGTCATCTGGA | 20 |
FIP | TGTTTTGATCGCGCCCCACTGATTACGTTTGGTGGACCCTC | 41 |
BIP | TGCGTCTTGGTTCACCGCTCATTGGAACGCCTTGTCCTC | 39 |
FITC-LF | FITC—TCCATTCTGGTTACTGCCAGTTGAA | 25 |
LB | ACTCAACATGGCAAGGAAGACCTTA | 25 |
Fwd_PCR | GACCCCAAAATCAGCGAAAT | 20 |
Rev_PCR | TGTAGCACGATTGCAGCATTG | 20 |
Reagent | Stock Concentration | End Concentration | Company |
---|---|---|---|
10X Isothermal buffer | 10 X | 1 X | New England BioLabs Inc. |
MgSO4 | 100 mM | 6 mM | |
ATP | 10 mM | 0.4 mM | |
dNTP mix | 40 mM | 5 mM | |
F3 Primer | 10 µM | 0.6 µM | Biomers.net GmbH |
B3 Primer | 10 µM | 1 µM | |
FIP Primer | 10 µM | 0.6 µM | |
BIP Primer | 10 µM | 0.6 µM | |
FITC-LF Primer | 20 µM | 1 µM | |
LB Primer | 10 µM | 0.6 µM | |
Tte UvrD Helicase | 20 µg/ml | 0.8 µg/ml | New England BioLabs Inc. |
WarmStart® RTx Reverse Transcriptase | 15 U/µL | 0.6 U/µL | |
Bst 3.0 DNA polymerase | 8 U/µL | 0.32 U/µL | |
Nuclease free PCR grade water | — | — | Roth Industries Inc. |
Swab Sample | CT 18 to CT 32 | In.vent Diagnostics GmbH |
Lid Temperature 72 °C | ||
---|---|---|
Step | Temperature (°C) | Duration (min) |
Annealing | 65 | 20 |
Inactivation | 83 | 2 |
Cooling | 4 | 2 |
Probe | Sequences (5′ → 3′) | Tm (°C) | Length (nt) | GC % |
---|---|---|---|---|
A | Biotin-TAAACCTTGGGGC | 40 | 13 | 53.8 |
B | Biotin-ACCAAGACGCAG | 38 | 12 | 58.3 |
C | Biotin-GAGAGCGGTGA | 36 | 11 | 63.6 |
Step | Temperature (°C) | Duration (min) | |
---|---|---|---|
1. Denaturation of amplified products | 52 | 2 | |
2. Biotin probe (0.25 μM) | Probe A | 46 | 2 |
Probe B | 39 | 2 | |
Probe C | 39 | 2 | |
All 3 probes | 46 | 2 | |
3. Cooling | RT | 5 |
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Organism | Template | Sample Size | Amplification Technique | Processing Time | Readout | Efficacy | References |
---|---|---|---|---|---|---|---|
SARS-CoV-2 E-gene | Extracted RNA | 55 positive 55 negative | RT-LAMP | 30 min (63 °C) | Fluorometric detection | 97.2% sensitivity 100% specificity | [9] |
SARS-CoV-2 | Extracted RNA | 25 positive 25 negative | RT-HDA | 30 to 90 min (42 °C) | LFA | 100% sensitivity 100% specificity | [12] |
SARS-CoV-2 E- and N-gene | Extracted RNA | 25 positive 25 negative | RT-LAMP | 60 min (65 °C) | LFA | 100% sensitivity 83.3% specificity | [12] |
SARS-CoV-2 N-gene | Extracted RNA | 150 positive 110 negative | RT-LAMP | 1 h (65 °C) | pH based colorimetric | 92.7% sensitivity 93.6% specificity | [18] |
SARS-CoV-2 N and ORF1ab gene | Lysed RNA | 12 synthetic positive samples, 8 positive swab samples, 4 negative swab samples from healthy individuals, 6 negative samples (Mycoplasma infection) | RT-LAMP | 30 min (60–65 °C) | LFA | 100% sensitivity 100% specificity | [22] |
SARS-CoV-2 N-gene | Extracted RNA and cDNA | 82 positive and non-template control | RT-LAMP | 15 min (65 °C) | LFA | 95.4% sensitivity 96.5% specificity | [27] |
SARS-CoV-2 N-gene | Swab sample in uVTM | 54 positive and 51 negative SARS-CoV-2 throat swab samples | RT-LAMP | 20 min (65 °C) | LFA | 98.11% sensitivity 96.15% specificity | This study |
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Agarwal, S.; Hamidizadeh, M.; Bier, F.F. Detection of Reverse Transcriptase LAMP-Amplified Nucleic Acid from Oropharyngeal Viral Swab Samples Using Biotinylated DNA Probes through a Lateral Flow Assay. Biosensors 2023, 13, 988. https://doi.org/10.3390/bios13110988
Agarwal S, Hamidizadeh M, Bier FF. Detection of Reverse Transcriptase LAMP-Amplified Nucleic Acid from Oropharyngeal Viral Swab Samples Using Biotinylated DNA Probes through a Lateral Flow Assay. Biosensors. 2023; 13(11):988. https://doi.org/10.3390/bios13110988
Chicago/Turabian StyleAgarwal, Saloni, Mojdeh Hamidizadeh, and Frank F. Bier. 2023. "Detection of Reverse Transcriptase LAMP-Amplified Nucleic Acid from Oropharyngeal Viral Swab Samples Using Biotinylated DNA Probes through a Lateral Flow Assay" Biosensors 13, no. 11: 988. https://doi.org/10.3390/bios13110988
APA StyleAgarwal, S., Hamidizadeh, M., & Bier, F. F. (2023). Detection of Reverse Transcriptase LAMP-Amplified Nucleic Acid from Oropharyngeal Viral Swab Samples Using Biotinylated DNA Probes through a Lateral Flow Assay. Biosensors, 13(11), 988. https://doi.org/10.3390/bios13110988