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May 29, 2026Canadian Journal of Chemistry0 citations

Backbone torsion angle analysis of DNA

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SBStéphanie BédardNSNathan SirianniRSRazvan Simionescu

Key Points

  • This work investigates how torsion angles in the DNA backbone correlate with different conformations of DNA and RNA.
  • Examined torsion angles α, β, γ, δ, ε, and ζ between adjacent phosphate pairs in various DNA forms.
  • Calculated cosine of backbone and glycosidic torsion angles to visualize similarities among dsDNA and other forms.
  • Generated cos(δ)–cos(ζ) plots to identify clustering patterns in A-, B-, and Z-DNA.
  • Found that the total torsion angles in A- and B-DNA along with dsRNA add up to three turns, unlike Z-DNA.
  • Demonstrated strong quadrant-specific clustering in plots for A-, B-, and Z-DNA, indicating distinct conformations.
  • Cosine calculations allow for the estimation of relative similarities between double-stranded DNA structures.

Abstract

This work examined DNA conformations based on torsion angles. The sugar–phosphate backbone torsion angles α, β, γ, δ, ε, and ζ between pairs of adjacent phosphates were found to add up to three turns in A- and B-DNA as well as dsRNA, but not in Z-DNA and aptamers. The number of turns ( T p ) therefore is indicative of nucleotides in repeating double stranded regions. Furthermore, plotting cosine of backbone and glycosidic torsion angles gives a direct visual view of the likeness of dsDNA to A- and B-DNA. The cosine of these torsion angles also allows the calculation of relative Manhattan distance tensors that reflect the likeness to A- and B-DNA. Finally, the cos(δ)–cos(ζ) plot gives strong quadrant-specific clustering of A-, B-, and Z-DNA, allowing for easy identification of dsDNA conformations.

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Cite This Study

Bédard et al. (2026) studied this question.

synapsesocial.com/papers/6a192ea9fab5b468c4417c9fhttps://doi.org/10.1139/cjc-2026-0031
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