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Relationship between calorimetric profiles and differential melting curves for natural DNAs. | LitMetric

Relationship between calorimetric profiles and differential melting curves for natural DNAs.

Int J Biol Macromol

Institute of Physics, Academia Sinica, Nankang, Taipei 11529, Taiwan; Institute of Bioorganic Chemistry, National Academy of Sciences of Belarus, 220141 Minsk, Belarus. Electronic address:

Published: September 2017

AI Article Synopsis

  • Higher GC-content in DNA leads to higher melting temperatures and greater heat absorption compared to regions with lower GC-content.
  • * Calorimetric melting profiles (cDMCs) and differential melting curves (DMCs) do not provide equivalent data, prompting the development of expressions to convert between them for DNA sequences.
  • * This new method allows for the determination of the thermodynamic melting temperature of natural DNAs using optical DMCs, eliminating the need for calorimetric experiments.

Article Abstract

Many experiments demonstrate that regions with higher GC-content in natural DNAs unwind at higher temperatures adsorbing more heat than equivalently sized regions with lower GC-content. This simple observation implies that normalized calorimetric melting profiles (calorimetric cDMCs) will not be equivalent differential melting curves (DMCs). We propose simple expressions for long natural and random DNA sequences to reciprocally convert DMCs and corresponding calorimetric cDMCs. The expressions are confirmed by the Poland-Fixman-Freire method and an approach based upon mixtures of homopolymeric duplexes. Using these expressions and experimental calorimetric data, we demonstrate that the average relative deviation between DMC and cDMC is proportional to the temperature melting range of the helix-coil transition ΔT. Corresponding difference between melting temperatures is proportional to ΔT. In general, sequence and ionic conditions influence the deviation through their effect on ΔT. On the basis of the developed approach, we propose a method to determine the thermodynamic melting temperature (ratio of calorimetric enthalpy and entropy of the helix-coil transition) for natural DNAs from optical DMCs without calorimetric experiments.

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Source
http://dx.doi.org/10.1016/j.ijbiomac.2017.04.048DOI Listing

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