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June 1, 2013BioTechniques1,280 citationsOpen Access

Continuous Fluorescence Monitoring of Rapid Cycle DNA Amplification

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CWCarl T. WittwerMHMark G. HerrmannAMAlan A. Moss

Key Points

  • The aim is to explore continuous fluorescence monitoring techniques for rapid cycle DNA amplification and their impact on specific quantification.
  • Monitored fluorescence using SYBR Green I and hydrolysis probes during rapid cycle amplification.
  • Evaluated the specificity of detection between SYBR Green I and dual-labeled probes.
  • Studied temperature-dependent fluorescence behavior during amplification cycles.
  • Continuous monitoring allowed rapid optimization of amplification conditions.
  • Increased specificity was achieved using exonuclease hydrolysis and hybridization probes.
  • Substantial product annealing was noted during later cycles, contributing to the plateau effect.

Abstract

Rapid cycle DNA amplification was continuously monitored by three different fluorescence techniques. Fluorescence was monitored by (i) the double-strand-specific dye SYBR Green I, (ii) a decrease in fluorescein quenching by rhodamine after exonuclease cleavage of a dual-labeled hydrolysis probe and (iii) resonance energy transfer of fluorescein to Cy5 by adjacent hybridization probes. Fluorescence data acquired once per cycle provides rapid absolute quantification of initial template copy number. The sensitivity of SYBR Green I detection is limited by nonspecific product formation. Use of a single exonuclease hydrolysis probe or two adjacent hybridization probes offers increasing levels of specificity. In contrast to fluorescence measurement once per cycle, continuous monitoring throughout each cycle monitors the temperature dependence of fluorescence. The cumulative, irreversible signal of hydrolysis probes can be distinguished easily from the temperature-dependent, reversible signal of hybridization probes. By using SYBR Green I, product denaturation, annealing and extension can be followed within each cycle. Substantial product-to-product annealing occurs during later amplification cycles, suggesting that product annealing is a major cause of the plateau effect. Continuous within-cycle monitoring allows rapid optimization of amplification conditions and should be particularly useful in developing new, standardized clinical assays.

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Cite This Study

Wittwer et al. (2013) studied this question.

synapsesocial.com/papers/6a121eeebb918b6e5b66b226https://doi.org/10.2144/000114043
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