Picoliter Well Array Chip-Based Digital Recombinase Polymerase Amplification for Absolute Quantification of Nucleic Acids
Overview
Affiliations
Absolute, precise quantification methods expand the scope of nucleic acids research and have many practical applications. Digital polymerase chain reaction (dPCR) is a powerful method for nucleic acid detection and absolute quantification. However, it requires thermal cycling and accurate temperature control, which are difficult in resource-limited conditions. Accordingly, isothermal methods, such as recombinase polymerase amplification (RPA), are more attractive. We developed a picoliter well array (PWA) chip with 27,000 consistently sized picoliter reactions (314 pL) for isothermal DNA quantification using digital RPA (dRPA) at 39°C. Sample loading using a scraping liquid blade was simple, fast, and required small reagent volumes (i.e., <20 μL). Passivating the chip surface using a methoxy-PEG-silane agent effectively eliminated cross-contamination during dRPA. Our creative optical design enabled wide-field fluorescence imaging in situ and both end-point and real-time analyses of picoliter wells in a 6-cm(2) area. It was not necessary to use scan shooting and stitch serial small images together. Using this method, we quantified serial dilutions of a Listeria monocytogenes gDNA stock solution from 9 × 10(-1) to 4 × 10(-3) copies per well with an average error of less than 11% (N = 15). Overall dRPA-on-chip processing required less than 30 min, which was a 4-fold decrease compared to dPCR, requiring approximately 2 h. dRPA on the PWA chip provides a simple and highly sensitive method to quantify nucleic acids without thermal cycling or precise micropump/microvalve control. It has applications in fast field analysis and critical clinical diagnostics under resource-limited settings.
Quantitative analysis of respiratory viruses based on lab-on-a-chip platform.
Zhang N, Yue C, Zhan X, Cheng Z, Li C, Du Y Anal Bioanal Chem. 2023; 415(26):6561-6571.
PMID: 37682312 DOI: 10.1007/s00216-023-04935-w.
Sullivan B, Chou Y, Bender A, Martin C, Kaputa Z, March H Lab Chip. 2022; 22(12):2352-2363.
PMID: 35548880 PMC: 9202034. DOI: 10.1039/d2lc00007e.
One step DNA amplification of mammalian cells in picoliter microwell arrays.
Liu W, Li Z, Liu Y, Wei Q, Liu Y, Ren L RSC Adv. 2022; 9(5):2865-2869.
PMID: 35520517 PMC: 9059946. DOI: 10.1039/c8ra06717a.
Droplet and Particle Generation on Centrifugal Microfluidic Platforms: A Review.
Azimi-Boulali J, Madadelahi M, Madou M, Martinez-Chapa S Micromachines (Basel). 2020; 11(6).
PMID: 32580516 PMC: 7344714. DOI: 10.3390/mi11060603.
Gao X, Li J, Li C, Zhang Z, Zhang W, Yao J Biomicrofluidics. 2020; 14(3):034109.
PMID: 32509051 PMC: 7266645. DOI: 10.1063/5.0006374.