Effect of nonparallel alternating fields on the mobility of DNA in the biased reptation model of gel electrophoresis
- 1 January 1989
- journal article
- research article
- Published by Wiley in Electrophoresis
- Vol. 10 (5-6), 413-428
- https://doi.org/10.1002/elps.1150100520
Abstract
Chromosome-size DNA molecules can now be separated using a variety of pulsd field gel electrophoresis techniques. In this article, we study the predictions of the biased reptation model concerning the effect of two pulsed fields, making an arbicray angle, on the power of separation of gel electrophoresis. Separation is predicted to be largely enhanced for obtuse angles, in agreement with experiments. Interestingly very large molecules, which are not separated by pulsed fields, are predicted not to migrate along the gel diagonal for fairly long periods of time. Finally, we discuss the optimization of these techniques using the results of the theory, and the limitations of the latter when fluctuations and intramolecular modes probably dominate the system.Keywords
This publication has 50 references indexed in Scilit:
- High-resolution separation and accurate size determination in pulsed-field gel electrophoresis of DNA. 1. DNA size standards and the effect of agarose and temperatureBiochemistry, 1988
- Anomalous Dispersion in Gel Electrophoresis: A Solvable Biased Reptation ModelEurophysics Letters, 1988
- Orientation of DNA during gel electrophoresis studied with linear dichroism spectroscopyBiopolymers, 1988
- Quantitative analysis of the three regimes of DNA electrophoresis in agarose gelsBiopolymers, 1988
- Molecular mechanism of field-inversion electrophoresisPhysical Review Letters, 1988
- Self-trapping and anomalous dispersion of DNA in electrophoresisPhysical Review Letters, 1987
- On the stretching of DNA in the reptation theories of gel electrophoresisBiopolymers, 1987
- Gel electrophoresis with discontinuous rotation of the gel: An alternative to gel electrophoresis with changing direction of the electrical fieldElectrophoresis, 1987
- Prediction of chain elongation in the reptation theory of DNA gel electrophoresisBiopolymers, 1985
- Separation of yeast chromosome-sized DNAs by pulsed field gradient gel electrophoresisCell, 1984