Cost-effective in-house COVID-19 reverse transcription-polymerase chain reaction testing with yeast-derived Taq polymerase

被引:0
作者
Zhra, Mahmoud [1 ]
Al Saud, Aljohara [1 ]
Alzayer, Maha [1 ]
Okdah, Liliane [2 ]
Tamim, Hani [1 ]
Fakhoury, Hana M. A. [1 ]
Aljada, Ahmad [1 ]
机构
[1] Alfaisal Univ, Dept Biochem & Mol Med, Coll Med, Riyadh, Saudi Arabia
[2] King Abdullah Int Med Res Ctr, Dept Infect Dis Res, Riyadh, Saudi Arabia
关键词
COVID-19; DNA contamination; recombinant yeast Taq polymerase; reverse transcription-polymerase chain reaction sensitivity; reverse transcription-polymerase chain reaction specificity; SARS-CoV-2; Taq polymerase; SARS-COV-2; INFECTIONS; GENOME EVOLUTION; DNA-POLYMERASE; BACTERIAL-DNA; ORGANIZATION; PCR;
D O I
10.4103/atm.atm_180_23
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
BACKGROUND: Despite the decline of the COVID-19 pandemic, there continues to be a persistent requirement for reliable testing methods that can be adapted to future outbreaks and areas with limited resources. While the standard approach of using reverse transcription-polymerase chain reaction (RT-PCR) with Taq polymerase is effective, it faces challenges such as limited access to high-quality enzymes and the presence of bacterial DNA contamination in commercial kits, which can impact the accuracy of test results. METHODS: This study investigates the production of recombinant Taq polymerase in yeast cells and assesses its crude lysate in a multiplex RT-PCR assay for detecting the SARS-CoV-2 RNA-dependent RNA polymerase (RdRP) and N genes, with human Ribonuclease P serving as an internal control. RESULTS: The unpurified yeast Taq polymerase demonstrates sensitivity comparable to commercially purified bacterial Taq polymerase and unpurified bacterial counterparts in detecting the RdRP and N genes. It exhibits the highest specificity, with 100% accuracy, for the N gene. The specificity for the RdRP gene closely aligns with that of commercially purified bacterial Taq polymerase and unpurified bacterial Taq polymerase. CONCLUSIONS: The use of unpurified recombinant yeast Taq polymerase shows promise as a cost-effective approach for conducting in-house COVID-19 RT-PCR testing. By eliminating the need for chromatography purification steps, the production of RT-PCR kits can be streamlined, potentially improving accessibility and scalability, especially in resource-limited settings and future pandemics.
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页码:165 / +
页数:9
相关论文
共 39 条
[1]   Development and Validation of ScriptTaq COVID PCR: An In-House Multiplex rRT-PCR for Low-Cost Detection [J].
AbuObead, Dana Abdalghani ;
Alhomsi, Tasnim Khalid ;
Zhra, Mahmoud ;
Alosaimi, Bandar ;
Hamza, Muaawia ;
Awadalla, Maaweya ;
Abdelhadi, Osama Ezzeldin ;
Alsharif, Joud Abdullah ;
Okdah, Liliane ;
AlKattan, Khaled ;
Turki, Saeed Al ;
Fakhoury, Hana M. A. ;
Aljada, Ahmad .
CURRENT ISSUES IN MOLECULAR BIOLOGY, 2022, 44 (12) :6117-6131
[2]   Comparison of SARS-CoV-2 detection from combined nasopharyngeal/oropharyngeal swab samples by a laboratory-developed real-time RT-PCR test and the Roche SARS-CoV-2 assay on a cobas 8800 instrument [J].
Boutin, Catherine-Audrey ;
Grandjean-Lapierre, Simon ;
Gagnon, Simon ;
Labbe, Annie-Claude ;
Charest, Hugues ;
Roger, Michel ;
Coutlee, Francois .
JOURNAL OF CLINICAL VIROLOGY, 2020, 132
[3]  
CDC, 2019, NOVEL CORONAVIRUS 20
[4]  
Chalov S., 2004, Dokl Biochem Biophys, V382, P53
[5]   Detection of 2019 novel coronavirus (2019-nCoV) by real-time RT-PCR (Publication with Expression of Concern) [J].
Corman, Victor M. ;
Landt, Olfert ;
Kaiser, Marco ;
Molenkamp, Richard ;
Meijer, Adam ;
Chu, Daniel K. W. ;
Bleicker, Tobias ;
Bruenink, Sebastian ;
Schneider, Julia ;
Schmidt, Marie Luisa ;
Mulders, Daphne G. J. C. ;
Haagmans, Bart L. ;
van der Veer, Bas ;
van den Brink, Sharon ;
Wijsman, Lisa ;
Goderski, Gabriel ;
Romette, Jean-Louis ;
Ellis, Joanna ;
Zambon, Maria ;
Peiris, Malik ;
Goossens, Herman ;
Reusken, Chantal ;
Koopmans, Marion P. G. ;
Drosten, Christian .
EUROSURVEILLANCE, 2020, 25 (03) :23-30
[6]   Laboratory Testing Methods for Novel Severe Acute Respiratory Syndrome-Coronavirus-2 (SARS-CoV-2) [J].
D'Cruz, Roshan J. ;
Currier, Arthur W. ;
Sampson, Valerie B. .
FRONTIERS IN CELL AND DEVELOPMENTAL BIOLOGY, 2020, 8
[7]   Implementation of a Pooled Surveillance Testing Program for Asymptomatic SARS-CoV-2 Infections on a College Campus - Duke University, Durham, North Carolina, August 2-October 11, 2020 [J].
Denny, Thomas N. ;
Andrews, Laura ;
Bonsignori, Mattia ;
Cavanaugh, Kyle ;
Datto, Michael B. ;
Deckard, Anastasia ;
DeMarco, C. Todd ;
DeNaeyer, Nicole ;
Epling, Carol A. ;
Gurley, Thaddeus ;
Haase, Steven B. ;
Hallberg, Chloe ;
Harer, John ;
Kneifel, Charles L. ;
Lee, Mark J. ;
Louzao, Raul ;
Moody, M. Anthony ;
Moore, Zack ;
Polage, Christopher R. ;
Puglin, Jamie ;
Spotts, P. Hunter ;
Vaughn, John A. ;
Wolfe, Cameron R. .
MMWR-MORBIDITY AND MORTALITY WEEKLY REPORT, 2020, 69 (46) :1743-1747
[8]   A three-dimensional model of the yeast genome [J].
Duan, Zhijun ;
Andronescu, Mirela ;
Schutz, Kevin ;
McIlwain, Sean ;
Kim, Yoo Jung ;
Lee, Choli ;
Shendure, Jay ;
Fields, Stanley ;
Blau, C. Anthony ;
Noble, William S. .
NATURE, 2010, 465 (7296) :363-367
[9]   Genome evolution in yeasts [J].
Dujon, B ;
Sherman, D ;
Fischer, G ;
Durrens, P ;
Casaregola, S ;
Lafontaine, I ;
de Montigny, J ;
Marck, C ;
Neuvéglise, C ;
Talla, E ;
Goffard, N ;
Frangeul, L ;
Aigle, M ;
Anthouard, V ;
Babour, A ;
Barbe, V ;
Barnay, S ;
Blanchin, S ;
Beckerich, JM ;
Beyne, E ;
Bleykasten, C ;
Boisramé, A ;
Boyer, J ;
Cattolico, L ;
Confanioleri, F ;
de Daruvar, A ;
Despons, L ;
Fabre, E ;
Fairhead, C ;
Ferry-Dumazet, H ;
Groppi, A ;
Hantraye, F ;
Hennequin, C ;
Jauniaux, N ;
Joyet, P ;
Kachouri, R ;
Kerrest, A ;
Koszul, R ;
Lemaire, M ;
Lesur, I ;
Ma, L ;
Muller, H ;
Nicaud, JM ;
Nikolski, M ;
Oztas, S ;
Ozier-Kalogeropoulos, O ;
Pellenz, S ;
Potier, S ;
Richard, GF ;
Straub, ML .
NATURE, 2004, 430 (6995) :35-44
[10]   Yeasts illustrate the molecular mechanisms of eukaryotic genome evolution [J].
Dujon, Bernard .
TRENDS IN GENETICS, 2006, 22 (07) :375-387