Abstract
ABSTRACTMultiplexing and absolute quantification of nucleic acids, both have, in their own right, significant and extensive use in biomedical related fields, especially in point-of-care applications. Currently, the ability to detect several nucleic acid targets in a single-reaction scales linearly with the number of targets; an expensive and time-consuming feat. Here, we propose a new methodology based on multidimensional standard curves that extends the use of real-time PCR data obtained by common qPCR instruments. By applying this novel methodology, we achieve simultaneous single-channel multiplexing and enhanced quantification of multiple targets using only real-time amplification data. This is obtained without the need of fluorescent probes, agarose gels, melting curves or sequencing analysis. Given the importance and demand for tackling challenges in antimicrobial resistance, the proposed method is applied to the four most prominent carbapenem-resistant genes: blaOXA-48, blaNDM, blaVIM and blaKPC, which account for 97% of the UK’s reported carbapenemase-producing Enterobacteriaceae.
Publisher
Cold Spring Harbor Laboratory
Reference18 articles.
1. Moniri, A. , Rodriguez-Manzano, J. , Georgiou, P. (2018) A framework for the analysis of real-time nucleic acid amplification data using novel multidimensional standard curves. Preprint at bioRxiv. https://doi.org/10.1101/379180
2. GOV. UK. (2018). Carbapenemase-producing Enterobacteriaceae: laboratory confirmed cases. [online] Available at: https://www.gov.uk/government/publications/carbapenemase-producing- enterobacteriaceae-laboratory-confirmed-cases [Accessed 1 May 2018].
3. A Scalable ISFET Sensing and Memory Array With Sensor Auto-Calibration for On-Chip Real-Time DNA Detection;IEEE transactions on biomedical circuits and systems,2018
4. Moser, N. , Rodriguez-Manzano, J. , Yu, L.S. , Kalofonou, M. , Mateo, S.d. , Li, X. , Lande, T.S. , Toumazou, C. and Georgiou, P. (2017) Live demonstration: A CMOS-based ISFET array for rapid diagnosis of the Zika virus, 2017 IEEE International Symposium on Circuits and Systems (ISCAS), pp. 1–1.
5. The global epidemiology of carbapenemase-producing Enterobacteriaceae