AI Article Synopsis

  • This study builds on previous research to analyze how hydrogen bonds and charge transfer interactions impact the chemical properties of oxygen in various MraY-inhibitor complexes using advanced computational methods.
  • The findings reveal that the nuclear shielding of carboxylate and carbonyl oxygens increases with shorter hydrogen bond lengths and higher p-character in charge transfer interactions, while hydroxyl oxygens experience a deshielding effect under similar conditions.
  • The calculated parameters align well with experimental data, providing insights into the relationship between NMR spectroscopy and hydrogen bonding in protein-ligand interactions.

Article Abstract

This study builds upon our prior researches and seeks to investigate and clarify the influences of various characteristics of hydrogen bonds (H-bonds) and charge transfer (CT) interactions, which were detected within the inhibitor binding pockets (labeled as the QM models I-IV) of MraY-capuramycin, MraY-carbacaprazamycin, MraY-3'-hydroxymureidomycin A, and MraY-muraymycin D2 complexes by QTAIM and NBO analyses from DFT QM/MM MD calculations, on the O chemical shielding (CS) and electric field gradient (EFG) tensors of carboxylate (Oδ), carbonyl (C═O), and hydroxyl (O-H) oxygens in these models. The O CS and EFG tensors of these three types of oxygens in QM models I-IV were calculated at the M06-2X/6-31G** level by including the solvent effects using the polarizable continuum model. From the computed O CS and EFG tensors in these models, it was found that the nuclear shielding, σ, for carboxylate or carbonyl oxygen increases (shielding effect) as the H-bond length decreases and the percentage p-character of n/n lone pair partner in the CT interaction enhances. In contrast, the σ (O-H) decreases (deshielding effect) with a reduction in the H-bond length as well as with an enhancement in percentage s-character of the n lone pair/σ* antibond. By reducing the H-bond length or by increasing p-character of the n/n lone pair, the Oδ/O═C quadrupole coupling constant smoothly decreases, while the Oδ/O═C asymmetry parameter smoothly increases. Moreover, these calculated parameters are in a good agreement with the experimental values. The information garnered here is valuable particularly for further understanding of empirical correlations between O NMR spectroscopic and H-bonding characteristics in the protein-ligand complexes.

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Source
http://dx.doi.org/10.1016/j.ssnmr.2024.101960DOI Listing

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