Critical assessment of digital PCR for the detection and quantification of genetically modified organisms

Anal Bioanal Chem. 2018 Jul;410(17):4039-4050. doi: 10.1007/s00216-018-1010-1. Epub 2018 Mar 24.

Abstract

The number of genetically modified organisms (GMOs) on the market is steadily increasing. Because of regulation of cultivation and trade of GMOs in several countries, there is pressure for their accurate detection and quantification. Today, DNA-based approaches are more popular for this purpose than protein-based methods, and real-time quantitative PCR (qPCR) is still the gold standard in GMO analytics. However, digital PCR (dPCR) offers several advantages over qPCR, making this new technique appealing also for GMO analysis. This critical review focuses on the use of dPCR for the purpose of GMO quantification and addresses parameters which are important for achieving accurate and reliable results, such as the quality and purity of DNA and reaction optimization. Three critical factors are explored and discussed in more depth: correct classification of partitions as positive, correctly determined partition volume, and dilution factor. This review could serve as a guide for all laboratories implementing dPCR. Most of the parameters discussed are applicable to fields other than purely GMO testing. Graphical abstract There are generally three different options for absolute quantification of genetically modified organisms (GMOs) using digital PCR: droplet- or chamber-based and droplets in chambers. All have in common the distribution of reaction mixture into several partitions, which are all subjected to PCR and scored at the end-point as positive or negative. Based on these results GMO content can be calculated.

Keywords: Chip-based digital PCR; Digital PCR; Droplet digital PCR; Genetically modified organisms; Quantification.

Publication types

  • Review

MeSH terms

  • Computers
  • DNA / genetics
  • DNA Copy Number Variations
  • Organisms, Genetically Modified* / genetics
  • Real-Time Polymerase Chain Reaction / methods*

Substances

  • DNA