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Easy Express Extraction (Triple)-A Universal, Electricity-Free Nucleic Acid Extraction System for the Lab and the Pen

Overview
Journal Microorganisms
Specialty Microbiology
Date 2022 May 28
PMID 35630515
Authors
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Abstract

The complexity of the current nucleic acid isolation methods limits their use outside of the modern laboratory environment. Here, we describe a fast and affordable method (easy express extraction, called Triple) as a centrifugation-free and electricity-free nucleic acid isolation method. The procedure is based on the well-established magnetic-bead extraction technology using an in-house self-made magnetic 8-channel and a rod cover. With this extraction system, nucleic acids can be isolated with two simple and universal protocols. One method was designed for the extraction of the nucleic acid in resource-limited "easy labs", and the other method can be used for RNA/DNA extraction in the field for so-called molecular "pen-side tests". In both scenarios, users can extract up to 8 samples in 6 to 10 min, without the need for any electricity, centrifuges or robotic systems. In order to evaluate and compare both methods, clinical samples from various viruses (African swine fever virus; lumpy skin disease virus; peste des petits ruminants virus; bluetongue virus), matrices and animals were tested and compared with standard magnetic-bead nucleic acid extraction technology based on the KingFisher platform. Hence, validation data were generated by evaluating two DNA viruses as well as one single-stranded and one double-stranded RNA virus. The results showed that the fast, easy, portable and electricity-free extraction protocols allowed rapid and reliable nucleic acid extraction for a variety of viruses and most likely also for other pathogens, without a substantial loss of sensitivity compared to standard procedures. The speed and simplicity of the methods make them ideally suited for molecular applications, both within and outside the laboratory, including limited-resource settings.

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References
1.
Belak S . Molecular diagnosis of viral diseases, present trends and future aspects A view from the OIE Collaborating Centre for the Application of Polymerase Chain Reaction Methods for Diagnosis of Viral Diseases in Veterinary Medicine. Vaccine. 2007; 25(30):5444-52. PMC: 7115665. DOI: 10.1016/j.vaccine.2006.11.068. View

2.
Haines F, Hofmann M, King D, Drew T, Crooke H . Development and validation of a multiplex, real-time RT PCR assay for the simultaneous detection of classical and African swine fever viruses. PLoS One. 2013; 8(7):e71019. PMC: 3724773. DOI: 10.1371/journal.pone.0071019. View

3.
Wang T, Sun Y, Qiu H . African swine fever: an unprecedented disaster and challenge to China. Infect Dis Poverty. 2018; 7(1):111. PMC: 6203974. DOI: 10.1186/s40249-018-0495-3. View

4.
Kyriakis C, Billinis C, Papadopoulos E, Vasileiou N, Athanasiou L, Fthenakis G . Bluetongue in small ruminants: An opinionated review, with a brief appraisal of the 2014 outbreak of the disease in Greece and the south-east Europe. Vet Microbiol. 2015; 181(1-2):66-74. DOI: 10.1016/j.vetmic.2015.08.004. View

5.
Yoon T, Shin J, Choi H, Park K . Split T7 promoter-based isothermal transcription amplification for one-step fluorescence detection of SARS-CoV-2 and emerging variants. Biosens Bioelectron. 2022; 208:114221. PMC: 8968188. DOI: 10.1016/j.bios.2022.114221. View