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Published on: October 25, 2017
Effect of inert tails on the thermodynamics of DNA hybridization
Lorenzo Di Michele1, Bortolo M Mognetti, Taiki Yanagishima
1Cavendish Laboratory, Department of Physics, University of Cambridge , J.J. Thomson Avenue, CB3 0HE Cambridge, United Kingdom.
Abstract:
The selective hybridization of DNA is of key importance for many practical applications such as gene detection and DNA-mediated self-assembly. These applications require a quantitative prediction of the hybridization free energy. Existing methods ignore the effects of non-complementary ssDNA tails beyond the first unpaired base. We use experiments and simulations to show that the binding strength of complementary ssDNA oligomers is altered by these sequences of non-complementary nucleotides. Even a small number of non-binding bases are enough to raise the hybridization free energy by approximately 1 kcal/mol at physiological salt concentrations. We propose a simple analytical expression that accounts quantitatively for this variation as a function of tail length and salt concentration.
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