Characterizing the Impact of Primer-Template Mismatches on Recombinase Polymerase Amplification.

J Mol Diagn

Faculty of Infectious and Tropical Diseases, London School of Hygiene and Tropical Medicine, London, United Kingdom; Faculty of Epidemiology and Population Health, London School of Hygiene and Tropical Medicine, London, United Kingdom. Electronic address:

Published: November 2022

AI Article Synopsis

  • Recombinase polymerase amplification (RPA) is a technique used to detect infectious agents by amplifying nucleic acids, but it relies heavily on the match between primers and templates in the reaction.* -
  • Mismatches in this primer-template complex can slow down the reaction, affect the accuracy of results, and lead to false negatives, yet their effects in RPA are less understood compared to other methods like PCR.* -
  • The study revealed that specific mismatches, especially in the 3'-anchor region of the primer, significantly impact RPA performance, with some combinations completely stopping the reaction, thereby helping researchers optimize RPA for better diagnostic use.*

Article Abstract

Recombinase polymerase amplification (RPA) is an isothermal amplification assay that has been ubiquitously utilized in the detection of infectious agents. Like any nucleic acid amplification technology, primer-template complementarity is critical to RPA reaction success. Mismatches arising in the primer-template complex are known to impact reaction kinetics, invalidate downstream analysis, such as nucleic acid quantification, and result in false negatives if used in a diagnostic capacity. Although the impact of specific primer-template mismatches has been well characterized for techniques such as PCR, characterization remains limited for RPA. Through our study, we systematically characterize the impact of mismatches on the RPA reaction, when located in the 3'-anchor region of the primer-template complex. Our investigation identified that the nucleotides involved, as well as position of each mismatch, influence the size of the impact, with terminal cytosine-thymine and guanine-adenine mismatches being the most detrimental. The presence of some mismatch combinations, such as a penultimate cytosine-cytosine and a terminal cytosine-adenine mismatch pairing, led to complete RPA reaction inhibition. Through the successful characterization of 315 mismatch combinations, researchers can optimize their RPA assay accordingly and seek to implement RPA technology for rapid, in-field genotyping.

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Source
http://dx.doi.org/10.1016/j.jmoldx.2022.08.005DOI Listing

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