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      Sequence and conformation effects on ionization potential and charge distribution of homo-nucleobase stacks using M06-2X hybrid density functional theory calculations

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          Abstract

          DNA is subject to oxidative damage due to radiation or by-products of cellular metabolism, thereby creating electron holes that migrate along the DNA stacks. A systematic computational analysis of the dependence of the electronic properties of nucleobase stacks on sequence and conformation was performed here, on the basis of single- and double-stranded homo-nucleobase stacks of 1–10 bases or 1–8 base pairs in standard A-, B-, and Z-conformation. First, several levels of theory were tested for calculating the vertical ionization potentials of individual nucleobases; the M06-2X/6-31G* hybrid density functional theory method was selected by comparison with experimental data. Next, the vertical ionization potential, and the Mulliken charge and spin density distributions were calculated and considered on all nucleobase stacks. We found that (1) the ionization potential decreases with the number of bases, the lowest being reached by Gua≡Cyt tracts; (2) the association of two single strands into a double-stranded tract lowers the ionization potential significantly (3) differences in ionization potential due to sequence variation are roughly three times larger than those due to conformational modifications. The charge and spin density distributions were found (1) to be located toward the 5′-end for single-stranded Gua-stacks and toward the 3′-end for Cyt-stacks and basically delocalized over all bases for Ade- and Thy-stacks; (2) the association into double-stranded tracts empties the Cyt- and Thy-strands of most of the charge and all the spin density and concentrates them on the Gua- and Ade-strands. The possible biological implications of these results for transcription are discussed.

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          Author and article information

          Journal
          J Biomol Struct Dyn
          J. Biomol. Struct. Dyn
          tbsd
          Journal of Biomolecular Structure & Dynamics
          Taylor & Francis
          0739-1102
          1538-0254
          13 April 2013
          April 2013
          : 32
          : 4
          : 532-545
          Affiliations
          [a ] BioModeling, BioInformatics and BioProcesses Department, CP 165/61 Université Libre de Bruxelles, 50 Roosevelt ave, 1050 Brussels, Belgium
          [b ] Laboratory of Biopolymers and Supramolecular Nanomaterials/Structural Biology Unit, CP 206/04, Université Libre de Bruxelles, 50 Roosevelt ave, 1050 Brussels, Belgium
          Author notes

          Communicated by Ramaswamy H. Sarma

          [* ] Corresponding author. Email: mrooman@ 123456ulb.ac.be
          Article
          10.1080/07391102.2013.783508
          3919198
          23582046
          25eabdb3-e2bb-4ce2-954a-38483e9b933c
          © 2013 The Author(s). Published by Taylor & Francis

          This is an open access article distributed under the Supplemental Terms and Conditions for iOpenAccess articles published in Taylor & Francis journals , which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.

          This is an Open Access article. Non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly attributed, cited, and is not altered, transformed, or built upon in any way, is permitted. The moral rights of the named author(s) have been asserted.

          History
          : 7 February 2013
          : 5 March 2013
          Categories
          Research Article

          quantum chemistry calculations,hybrid density functional theory,dna stacks,homo-nucleobase stacks,radical cations,electron holes,charge distribution,spin density distribution,vertical ionization potential,oxidative damage,charge transfer

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