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PubMed · 15576673

A multi-enzyme model for Pyrosequencing.

Abstract

Pyrosequencing is a DNA sequencing technique based on sequencing-by-synthesis enabling rapid real-time sequence determination. This technique employs four enzymatic reactions in a single tube to monitor DNA synthesis. Nucleotides are added iteratively to the reaction and in case of incorporation, pyrophosphate (PPi) is released. PPi triggers a series of reactions resulting in production of light, which is proportional to the amount of DNA and number of incorporated nucleotides. Generated light is detected and recorded by a detector system in the form of a peak signal, which reflects the activity of all four enzymes in the reaction. We have developed simulations to model the kinetics of the enzymes. These simulations provide a full model for the Pyrosequencing four-enzyme system, based on which the peak height and shape can be predicted depending on the concentrations of enzymes and substrates. Simulation results are shown to be compatible with experimental data. Based on these simulations, the rate-limiting steps in the chain can be determined, and K(M) and kcat of all four enzymes in Pyrosequencing can be calculated.

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Ali Agah, Mariam Aghajan, Foad Mashayekhi, Sasan Amini, Ronald W Davis, James D Plummer, Mostafa Ronaghi, Peter B Griffin. 2004-12-02. A multi-enzyme model for Pyrosequencing.. https://doi.org/10.1093/nar%2Fgnh159

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The history of pyrosequencing.

One late afternoon in the beginning of January 1986, bicycling from the lab over the hill to the small village of Fullbourn, the idea for an alternative DNA sequencing technique came to my mind. The basic concept was to follow the activity of DNA polymerase during nucleotide incorporation into a DNA strand by analyzing the pyrophosphate released during the process. Today, the technique is used in multidisciplinary fields in academic, clinical, and industrial settings all over the word. The technique can be used for both single-base sequencing and whole-genome sequencing, depending on the format used. In this chapter I will give my personal account of the development of Pyrosequencing--beginning on a winter day in 1986, when I first envisioned the method--until today, nearly 20 yr later. I will conclude with future prospects for the method.

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