The adeninate anion (Ade) is a useful nucleophile used in the synthesis of many prodrugs (including those for HIV AIDS treatment). It exists as a contact ion-pair (CIP) with Na and K (M) but the site of coordination is not obvious from spectroscopic data. Herein, a molecular-wide and electron density-based (MOWED) computational approach implemented in the implicit solvation model showed a strong preference for bidentate ion coordination at the N3 and N9 atoms. The N3N9-CIP has (i) the strongest inter-ionic interaction, by -30 kcal mol, with a significant (10-15%) covalent contribution, (ii) the most stabilized bonding framework for Ade, and (iii) displays the largest ion-induced polarization of Ade, rendering the N3 and N9 the most negative and, hence, most nucleophilic atoms. Alkylation of the adeninate anion at these two positions can therefore be readily explained when the metal coordinated complex is considered as the nucleophile. The addition of explicit DMSO solvent molecules did not change the trend in most nucleophilic N-atoms of Ade for the in-plane M-Ade complexes in M-Ade-(DMSO) molecular systems. MOWED-based studies of the strength and nature of interactions between DMSO solvent molecules and counter ions and Ade revealed an interesting and unexpected chemistry of intermolecular chemical bonding.
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http://dx.doi.org/10.3390/molecules27186111 | DOI Listing |
J Comput Chem
December 2024
Faculty of Natural and Agricultural Sciences, Department of Chemistry, University of Pretoria, Hatfield, South Africa.
We strongly advocate distinguishing cooperativity from cooperativity-induced effects. From the MOWeD-based approach, the origin of all-body cooperativity is synonymous with physics- and quantum-based processes of electron (e) delocalization throughout water clusters. To this effect, over 10 atom-pairs contribute to the total e-density at a BCP(H,O) between water molecules in a tetramer.
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September 2022
Department of Chemistry, University of Pretoria, Pretoria 0002, South Africa.
The adeninate anion (Ade) is a useful nucleophile used in the synthesis of many prodrugs (including those for HIV AIDS treatment). It exists as a contact ion-pair (CIP) with Na and K (M) but the site of coordination is not obvious from spectroscopic data. Herein, a molecular-wide and electron density-based (MOWED) computational approach implemented in the implicit solvation model showed a strong preference for bidentate ion coordination at the N3 and N9 atoms.
View Article and Find Full Text PDFMolecules
January 2022
Department of Chemistry, Faculty of Natural and Agricultural Sciences, University of Pretoria, Lynnwood Road, Pretoria 0002, South Africa.
Modelling of the proline () catalyzed aldol reaction (with acetone ) in the presence of an explicit molecule of dimethyl sulfoxide (DMSO) () has showed that is a major player in the aldol reaction as it plays a double role. Through strong interactions with and acetone , it leads to a significant increase of energy barriers at transition states (TS) for the lowest energy conformer of proline. Just the opposite holds for the higher energy conformer .
View Article and Find Full Text PDFJ Comput Chem
April 2021
Department of Chemistry, Faculty of Natural and Agricultural Sciences, University of Pretoria, Pretoria, South Africa.
In this study we aim to determine the origin of the electron density describing a CH···HC interaction in planar and twisted conformers of biphenyl. In order to achieve this, the fragment, atomic, localized, delocalized, intra- and inter-atomic (FALDI) decomposition scheme was utilized to decompose the density in the inter-nuclear region between the ortho-hydrogens in both conformers. Importantly, the structural integrity, hence also topological properties, were fully preserved as no 'artificial' partitioning of molecules was implemented.
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