The Role of Unconventional Hydrogen Bonds in Determining BII Propensities in B-DNA

Publication date

2017-02-01T15:51:31Z

2017-12-07T23:01:23Z

2016-12-07

2017-01-20T09:45:51Z

Abstract

An accurate understanding of DNA backbone transitions is likely to be the key for elucidating the puzzle of the intricate sequence-dependent mechanical properties that govern most of the biologically relevant functions of the double helix. One factor believed to be important in indirect recognition within protein–DNA complexes is the combined effect of two DNA backbone torsions (ε and ζ) which give rise to the well-known BI/BII conformational equilibrium. In this work we explain the sequence-dependent BII propensity observed in RpY steps (R = purine; Y = pyrimidine) at the tetranucleotide level with the help of a previously undetected C–H···O contact between atoms belonging to adjacent bases. Our results are supported by extensive multimicrosecond molecular dynamics simulations from the Ascona B-DNA Consortium, high-level quantum mechanical calculations, and data mining of the experimental structures deposited in the Protein Data Bank.

Document Type

Article


Accepted version

Language

English

Subjects and keywords

ADN; Dinàmica molecular; DNA; Molecular dynamics

Publisher

ACS Publications

Related items

Versió postprint del document publicat a: http://dx.doi.org/10.1021/acs.jpclett.6b02451

Journal of Physical Chemistry Letters, 2017

http://dx.doi.org/10.1021/acs.jpclett.6b02451

info:eu-repo/grantAgreement/EC/H2020/676556/EU//MuG

Recommended citation

This citation was generated automatically.

Rights

(c) American Chemical Society, 2016

This item appears in the following Collection(s)