Literature DB >> 25350312

The significant role of the intermolecular CH⋯O/N hydrogen bonds in governing the biologically important pairs of the DNA and RNA modified bases: a comprehensive theoretical investigation.

Ol'ha O Brovarets'1, Yevgen P Yurenko, Dmytro M Hovorun.   

Abstract

This paper is a logical continuation of the theoretical survey of the CH⋯O/N specific contacts in the nucleobase pairs using a wide arsenal of the modern methods, which was initiated in our previous study [J. Biomol. Struct. & Dynam., 2014, 32, 993-1022]. It was established that 34 CH⋯O and 7 CH⋯N interactions, that were detected by quantum-chemical calculations in the 39 biologically important pairs involving modified nucleobases, completely satisfy all geometrical, vibrational, electron-topological, in particular Bader's and "two-molecule" Koch and Popelier's, Grunenberg's compliance constants theory and natural bond orbital criteria indicating that they can be identified as true H-bonds. The geometrical criteria of the H-bond formation are fulfilled for all considered CH⋯O/N H-bonds without any exception. It was shown that the classical rule of the stretching vibration shifts does not work in the ~95% cases of the CH⋯O/N H-bonds. Furthermore, significant increase in the frequency of the out-of-plane deformation modes γ(CH) under the formation of CH⋯O/N H-bonds and corresponding changes of their intensities can be also considered as reliable indicators of the H-bonding. We revealed high linear mutual correlations between the electron density, Laplacian of the electron density, H-bond energy at the (3, -1) bond critical points of the CH⋯O/N H-bonds, and different physico-chemical parameters of the CH⋯O/N H-bonds. We suggested that the electron density ρ and the interaction energy E((2)) of the lone orbital pairs are the most reliable descriptors of the H-bonding. The linear dependence of the H-bond energy ECH⋯O/N on the electron density ρ was established: ECH⋯O = 250.263∙ρ - .380/258.255∙ρ - .396 and ECH⋯N = 196.800∙ρ - .172/268.559∙ρ - .703 obtained at the density functional theory (DFT)/Møller-Plesset (MP2) levels of theory, respectively. The studies of the interaction energies show that the contribution of the CH⋯O and CH⋯N H-bonds into the base pairs stability varies from 3.0/4.2 to 35.1/31.2% and from 3.0/4.3 to 44.4/46.5% at the DFT/MP2 levels of theory, accordingly. Energy decomposition analysis performed for all base pairs involving canonical and modified nucleobases defines the electrostatic attraction and Pauli repulsion as dominant stabilizing forces in all complexes. This observation was additionally confirmed by the results of the QTAIM delocalization indexes analysis. The studies reported here advance our understanding of the biological role of the weak CH⋯O/N H-bonds, that dictates the requirements for the structural and dynamical similarity of the canonical and mismatched pairs with Watson-Crick (WC) geometry, which facilitates their enzymatic incorporation into the DNA double helix during DNA replication. Thus, these H-bonds in the base pairs with WC geometry may be also considered as "the last drop" at the transmission of the electronic signal that launches the chemical incorporation of the incoming nucleoside triphosphate into DNA.

Entities:  

Keywords:  Bader’s criteria; CH⋯O/N H-bonds; Grunenberg’s compliance constants; QTAIM and NBO analyses; QTAIM delocalization indexes; energy decomposition analysis; pairs of nucleobases; quantum-chemical methods; “two-molecule” Koch and Popelier’s criteria

Mesh:

Substances:

Year:  2014        PMID: 25350312     DOI: 10.1080/07391102.2014.968623

Source DB:  PubMed          Journal:  J Biomol Struct Dyn        ISSN: 0739-1102


  8 in total

1.  Structure and Dynamics of DNA and RNA Double Helices of CAG and GAC Trinucleotide Repeats.

Authors:  Feng Pan; Viet Hoang Man; Christopher Roland; Celeste Sagui
Journal:  Biophys J       Date:  2017-07-11       Impact factor: 4.033

2.  Insights into the spontaneity of hydrogen bond formation between formic acid and phthalimide derivatives.

Authors:  Rogério V A Júnior; Gustavo L C Moura; Nathalia B D Lima
Journal:  J Mol Model       Date:  2016-10-04       Impact factor: 1.810

3.  The A·T(rWC)/A·T(H)/A·T(rH) ↔ A·T*(rwWC)/A·T*(wH)/A·T*(rwH) mutagenic tautomerization via sequential proton transfer: a QM/QTAIM study.

Authors:  Ol'ha O Brovarets'; Kostiantyn S Tsiupa; Dmytro M Hovorun
Journal:  RSC Adv       Date:  2018-04-10       Impact factor: 4.036

4.  Theoretical study of enzymatically catalyzed tautomerization of carbon acids in aqueous solution: quantum calculations and steered molecular dynamics simulations.

Authors:  Santiago Tolosa; Antonio Hidalgo; Jorge A Sansón
Journal:  J Mol Model       Date:  2016-01-27       Impact factor: 1.810

5.  Surprising Conformers of the Biologically Important A·T DNA Base Pairs: QM/QTAIM Proofs.

Authors:  Ol'ha O Brovarets'; Kostiantyn S Tsiupa; Dmytro M Hovorun
Journal:  Front Chem       Date:  2018-02-27       Impact factor: 5.221

6.  Novel pathway for mutagenic tautomerization of classical А∙Т DNA base pairs via sequential proton transfer through quasi-orthogonal transition states: A QM/QTAIM investigation.

Authors:  Ol'ha O Brovarets'; Kostiantyn S Tsiupa; Dmytro M Hovorun
Journal:  PLoS One       Date:  2018-06-27       Impact factor: 3.240

7.  Estimating Strengths of Individual Hydrogen Bonds in RNA Base Pairs: Toward a Consensus between Different Computational Approaches.

Authors:  Antarip Halder; Dhruv Data; Preethi P Seelam; Dhananjay Bhattacharyya; Abhijit Mitra
Journal:  ACS Omega       Date:  2019-04-23

8.  Intramolecular tautomerization of the quercetin molecule due to the proton transfer: QM computational study.

Authors:  Ol'ha O Brovarets'; Dmytro M Hovorun
Journal:  PLoS One       Date:  2019-11-21       Impact factor: 3.240

  8 in total

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