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Low-Resource Nucleic Acid Extraction Method Enabled by High-Gradient Magnetic Separation

[Image: see text] Nucleic acid-based diagnostic tests often require isolation and concentration of nucleic acids from biological samples. Commercial purification kits are difficult to use in low-resource settings because of their cost and insufficient laboratory infrastructure. Several recent approa...

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Autores principales: Pearlman, Stephanie I., Leelawong, Mindy, Richardson, Kelly A., Adams, Nicholas M., Russ, Patricia K., Pask, Megan E., Wolfe, Anna E., Wessely, Cassandra, Haselton, Frederick R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7082792/
https://www.ncbi.nlm.nih.gov/pubmed/32039572
http://dx.doi.org/10.1021/acsami.9b21564
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author Pearlman, Stephanie I.
Leelawong, Mindy
Richardson, Kelly A.
Adams, Nicholas M.
Russ, Patricia K.
Pask, Megan E.
Wolfe, Anna E.
Wessely, Cassandra
Haselton, Frederick R.
author_facet Pearlman, Stephanie I.
Leelawong, Mindy
Richardson, Kelly A.
Adams, Nicholas M.
Russ, Patricia K.
Pask, Megan E.
Wolfe, Anna E.
Wessely, Cassandra
Haselton, Frederick R.
author_sort Pearlman, Stephanie I.
collection PubMed
description [Image: see text] Nucleic acid-based diagnostic tests often require isolation and concentration of nucleic acids from biological samples. Commercial purification kits are difficult to use in low-resource settings because of their cost and insufficient laboratory infrastructure. Several recent approaches based on the use of magnetic beads offer a potential solution but remain limited to small volume samples. We have developed a simple and low-cost nucleic acid extraction method suitable for isolation and concentration of nucleic acids from small or large sample volumes. The method uses magnetic beads, a transfer pipette, steel wool, and an external magnet to implement high-gradient magnetic separation (HGMS) to retain nucleic acid-magnetic bead complexes within the device’s steel wool matrix for subsequent processing steps. We demonstrate the method’s utility by extracting tuberculosis DNA from both sputum and urine, two typical large volume sample matrices (5–200 mL), using guanidine-based extraction chemistry. Our HGMS-enabled extraction method is statistically indistinguishable from commercial extraction kits when detecting a spiked 123-base DNA sequence. For our HGMS-enabled extraction method, we obtained extraction efficiencies for sputum and urine of approximately 10 and 90%, whereas commercial kits obtained 10–17 and 70–96%, respectively. We also used this method previously in a blinded sample preparation comparison study published by Beall et al., 2019. Our manual extraction method is insensitive to high flow rates and sample viscosity, with capture of ∼100% for flow rates up to 45 mL/min and viscosities up to 55 cP, possibly making it suitable for a wide variety of sample volumes and types and point-of-care users. This HGMS-enabled extraction method provides a robust instrument-free method for magnetic bead-based nucleic acid extraction, potentially suitable for field implementation of nucleic acid testing.
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spelling pubmed-70827922020-03-23 Low-Resource Nucleic Acid Extraction Method Enabled by High-Gradient Magnetic Separation Pearlman, Stephanie I. Leelawong, Mindy Richardson, Kelly A. Adams, Nicholas M. Russ, Patricia K. Pask, Megan E. Wolfe, Anna E. Wessely, Cassandra Haselton, Frederick R. ACS Appl Mater Interfaces [Image: see text] Nucleic acid-based diagnostic tests often require isolation and concentration of nucleic acids from biological samples. Commercial purification kits are difficult to use in low-resource settings because of their cost and insufficient laboratory infrastructure. Several recent approaches based on the use of magnetic beads offer a potential solution but remain limited to small volume samples. We have developed a simple and low-cost nucleic acid extraction method suitable for isolation and concentration of nucleic acids from small or large sample volumes. The method uses magnetic beads, a transfer pipette, steel wool, and an external magnet to implement high-gradient magnetic separation (HGMS) to retain nucleic acid-magnetic bead complexes within the device’s steel wool matrix for subsequent processing steps. We demonstrate the method’s utility by extracting tuberculosis DNA from both sputum and urine, two typical large volume sample matrices (5–200 mL), using guanidine-based extraction chemistry. Our HGMS-enabled extraction method is statistically indistinguishable from commercial extraction kits when detecting a spiked 123-base DNA sequence. For our HGMS-enabled extraction method, we obtained extraction efficiencies for sputum and urine of approximately 10 and 90%, whereas commercial kits obtained 10–17 and 70–96%, respectively. We also used this method previously in a blinded sample preparation comparison study published by Beall et al., 2019. Our manual extraction method is insensitive to high flow rates and sample viscosity, with capture of ∼100% for flow rates up to 45 mL/min and viscosities up to 55 cP, possibly making it suitable for a wide variety of sample volumes and types and point-of-care users. This HGMS-enabled extraction method provides a robust instrument-free method for magnetic bead-based nucleic acid extraction, potentially suitable for field implementation of nucleic acid testing. American Chemical Society 2020-02-10 2020-03-18 /pmc/articles/PMC7082792/ /pubmed/32039572 http://dx.doi.org/10.1021/acsami.9b21564 Text en Copyright © 2020 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Pearlman, Stephanie I.
Leelawong, Mindy
Richardson, Kelly A.
Adams, Nicholas M.
Russ, Patricia K.
Pask, Megan E.
Wolfe, Anna E.
Wessely, Cassandra
Haselton, Frederick R.
Low-Resource Nucleic Acid Extraction Method Enabled by High-Gradient Magnetic Separation
title Low-Resource Nucleic Acid Extraction Method Enabled by High-Gradient Magnetic Separation
title_full Low-Resource Nucleic Acid Extraction Method Enabled by High-Gradient Magnetic Separation
title_fullStr Low-Resource Nucleic Acid Extraction Method Enabled by High-Gradient Magnetic Separation
title_full_unstemmed Low-Resource Nucleic Acid Extraction Method Enabled by High-Gradient Magnetic Separation
title_short Low-Resource Nucleic Acid Extraction Method Enabled by High-Gradient Magnetic Separation
title_sort low-resource nucleic acid extraction method enabled by high-gradient magnetic separation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7082792/
https://www.ncbi.nlm.nih.gov/pubmed/32039572
http://dx.doi.org/10.1021/acsami.9b21564
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