Literature DB >> 14611235

Free-energy calculations of protein-ligand cation-pi and amino-pi interactions: from vacuum to proteinlike environments.

Christophe Biot1, Eric Buisine, Marianne Rooman.   

Abstract

To probe the role of cation-pi and amino-pi interactions in the context of protein-ligand interactions, the stability of 55 X-ray cation/amino-pi motifs involving the Ade moieties of cofactor molecules and Arg, Lys, Asn, or Gln side chains of their host protein was evaluated using quantum chemistry calculations. The conjunction of vacuum interaction energies, vibrational entropy, and solvation contributions led to identify Arg-Ade as the most favorable cation/amino-pi complex in the solvents considered, followed by Asn/Gln-Ade and Lys-Ade: their minimum interaction free energies are approximately equal to -7, -4, and -2 kcal/mol, respectively, in the solvents of dielectric constant similar to that estimated for proteins (i.e., acetone, THF, and CCl(4)). Remarkably, these free-energy values of cation/amino-pi interactions correlate well with their frequency of occurrences in protein-ligand structures, which corroborates our approach in the absence of experimental data.

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Year:  2003        PMID: 14611235     DOI: 10.1021/ja035223e

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  10 in total

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3.  Improved Modeling of Cation-π and Anion-Ring Interactions Using the Drude Polarizable Empirical Force Field for Proteins.

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7.  Absolute binding-free energies between standard RNA/DNA nucleobases and amino-acid sidechain analogs in different environments.

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Review 8.  RNA-protein interactions in an unstructured context.

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10.  Cation-π interactions in protein-ligand binding: theory and data-mining reveal different roles for lysine and arginine.

Authors:  Kiran Kumar; Shin M Woo; Thomas Siu; Wilian A Cortopassi; Fernanda Duarte; Robert S Paton
Journal:  Chem Sci       Date:  2018-01-31       Impact factor: 9.825

  10 in total

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