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B-DNA to zip-DNA: simulating a DNA transition to a novel structure with enhanced charge-transport characteristics.

Publication ,  Journal Article
Balaeff, A; Craig, SL; Beratan, DN
Published in: The journal of physical chemistry. A
September 2011

The forced extension of a DNA segment is studied in a series of steered molecular dynamics simulations, employing a broad range of pulling forces. Throughout the entire force range, the formation of a zipper-like (zip-) DNA structure is observed. In that structure, first predicted by Lohikoski et al., the bases of the DNA strands interdigitate with each other and form a single-base aromatic stack. Similar motifs, albeit only a few base pairs in extent, have been observed in experimental crystal structures. Analysis of the dynamics of structural changes in pulled DNA shows that S-form DNA, thought to be adopted by DNA under applied force, serves as an intermediate between B-DNA and zip-DNA. Therefore, the phase transition plateau observed in force-extension curves of DNA is suggested to reflect the B-DNA to zip-DNA structural transition. Electronic structure analysis of purine bases in zip-DNA indicates a several-fold to order of magnitude increase in the π-π electronic coupling among nearest-neighbor nucleobases, compared to B-DNA. We further observe that zip-DNA does not require base pair complementarity between DNA strands, and we predict that the increased electronic coupling in zip-DNA will result in a much higher rate of charge transfer through an all-purine zip-DNA compared to B-DNA of equal length.

Duke Scholars

Published In

The journal of physical chemistry. A

DOI

EISSN

1520-5215

ISSN

1089-5639

Publication Date

September 2011

Volume

115

Issue

34

Start / End Page

9377 / 9391

Related Subject Headings

  • Thermodynamics
  • Static Electricity
  • Purines
  • Nucleic Acid Conformation
  • Molecular Sequence Data
  • Molecular Dynamics Simulation
  • DNA, B-Form
  • Crystallization
  • Chemistry, Physical
  • Base Sequence
 

Citation

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Balaeff, A., Craig, S. L., & Beratan, D. N. (2011). B-DNA to zip-DNA: simulating a DNA transition to a novel structure with enhanced charge-transport characteristics. The Journal of Physical Chemistry. A, 115(34), 9377–9391. https://doi.org/10.1021/jp110871g
Balaeff, Alexander, Stephen L. Craig, and David N. Beratan. “B-DNA to zip-DNA: simulating a DNA transition to a novel structure with enhanced charge-transport characteristics.The Journal of Physical Chemistry. A 115, no. 34 (September 2011): 9377–91. https://doi.org/10.1021/jp110871g.
Balaeff A, Craig SL, Beratan DN. B-DNA to zip-DNA: simulating a DNA transition to a novel structure with enhanced charge-transport characteristics. The journal of physical chemistry A. 2011 Sep;115(34):9377–91.
Balaeff, Alexander, et al. “B-DNA to zip-DNA: simulating a DNA transition to a novel structure with enhanced charge-transport characteristics.The Journal of Physical Chemistry. A, vol. 115, no. 34, Sept. 2011, pp. 9377–91. Epmc, doi:10.1021/jp110871g.
Balaeff A, Craig SL, Beratan DN. B-DNA to zip-DNA: simulating a DNA transition to a novel structure with enhanced charge-transport characteristics. The journal of physical chemistry A. 2011 Sep;115(34):9377–9391.
Journal cover image

Published In

The journal of physical chemistry. A

DOI

EISSN

1520-5215

ISSN

1089-5639

Publication Date

September 2011

Volume

115

Issue

34

Start / End Page

9377 / 9391

Related Subject Headings

  • Thermodynamics
  • Static Electricity
  • Purines
  • Nucleic Acid Conformation
  • Molecular Sequence Data
  • Molecular Dynamics Simulation
  • DNA, B-Form
  • Crystallization
  • Chemistry, Physical
  • Base Sequence