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DNA thermal denaturation by polymer field theory approach: effects of the environment

Authors :
Holovatch, Yu.
von Ferber, C.
Honchar, Yu.
Source :
Condensed Matter Physics, 2021, Vol.24, No.3, 33603: 1-10
Publication Year :
2021

Abstract

We analyse the effects of the environment (solvent quality, presence of extended structures - crowded environment) that may have impact on the order of the transition between denaturated and bounded DNA states and lead to changes in the scaling laws that govern conformational properties of DNA strands. We find that the effects studied significantly influence the strength of the first order transition. To this end, we re-consider the Poland-Scheraga model and apply a polymer field theory to calculate entropic exponents associated with the denaturated loop distribution. For the $d = 3$ case, the corresponding diverging $\epsilon = 4-d$ expansions are evaluated by restoring their convergence via the resummation technique. For the space dimension $d = 2$, the exponents are deduced from mapping the polymer model onto a two-dimensional random lattice, i.e., in the presence of quantum gravity. We also show that the first order transition is further strengthened by the presence of extended impenetrable regions in a solvent that restrict the number of the macromolecule configurations.<br />Comment: Submitted to Condensed Matter Physics Journal

Details

Database :
arXiv
Journal :
Condensed Matter Physics, 2021, Vol.24, No.3, 33603: 1-10
Publication Type :
Report
Accession number :
edsarx.2107.11812
Document Type :
Working Paper
Full Text :
https://doi.org/10.5488/CMP.24.33603