4.7 Review

Recent Uses of Paper Microfluidics in Isothermal Nucleic Acid Amplification Tests

Journal

BIOSENSORS-BASEL
Volume 13, Issue 9, Pages -

Publisher

MDPI
DOI: 10.3390/bios13090885

Keywords

recombinase polymerase amplification; loop-mediated isothermal amplification; rolling circle amplification; lateral flow immunochromatographic assay; microfluidic paper-based analytic device

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Isothermal nucleic acid amplification tests, which only require a constant temperature and simplify the amplification process, have gained popularity over PCR. Paper microfluidics have been extensively used for automated nucleic acid extraction, amplification, and detection in these isothermal amplification tests.
Isothermal nucleic acid amplification tests have recently gained popularity over polymerase chain reaction (PCR), as they only require a constant temperature and significantly simplify nucleic acid amplification. Recently, numerous attempts have been made to incorporate paper microfluidics into these isothermal amplification tests. Paper microfluidics (including lateral flow strips) have been used to extract nucleic acids, amplify the target gene, and detect amplified products, all toward automating the process. We investigated the literature from 2020 to the present, i.e., since the onset of the COVID-19 pandemic, during which a significant surge in isothermal amplification tests has been observed. Paper microfluidic detection has been used extensively for recombinase polymerase amplification (RPA) and its related methods, along with loop-mediated isothermal amplification (LAMP) and rolling circle amplification (RCA). Detection was conducted primarily with colorimetric and fluorometric methods, although a few publications demonstrated flow distance- and surface-enhanced Raman spectroscopic (SERS)-based detection. A good number of publications could be found that demonstrated both amplification and detection on paper microfluidic platforms. A small number of publications could be found that showed extraction or all three procedures (i.e., fully integrated systems) on paper microfluidic platforms, necessitating the need for future work.

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