Literature DB >> 32914809

An intraresidue H-bonding motif in selenocysteine and cysteine, revealed by gas phase laser spectroscopy and quantum chemistry calculations.

Gildas Goldsztejn1, Venkateswara Rao Mundlapati1, Jérémy Donon1, Benjamin Tardivel1, Eric Gloaguen1, Valérie Brenner1, Michel Mons1.   

Abstract

Models of protein chains containing a seleno-cysteine (Sec) residue have been investigated by gas phase laser spectroscopy in order to document the effect of the H-bonding properties of the SeH group in the folding of the Sec side chain, by comparison with recent data on Ser- and Cys-containing sequences. Experimental data, complemented by quantum chemistry calculations and natural bonding orbital (NBO) analyses, are interpreted in terms of the formation of a so-called 5γ intra-residue motif, which bridges the acceptor chalcogen atom of the side chain to the NH bond of the same residue. This local structure, in which the O/S/Se atom is close to the plane of the N-terminal side amide, is constrained by local backbone-side chain hyperconjugation effects involving the S and Se atoms. Theoretical investigations of the Cys/Sec side chain show that (i) this 5γ motif is an intrinsic feature of these residues, (ii) the corresponding H-bond is strongly non-linear and intrinsically weak, (iii) but enhanced by γ- and β-turn secondary structures, which promote a more favorable 5γ H-bonding approach and distance. The resulting H-bonds are slightly stronger in selenocysteine than in cysteine, but nearly inexistent in serine, whose side chain in contrast behaves as a H-bonding donor. The modest spectral shifts of the Cys/Sec NH stretches measured experimentally reflect the moderate strength of the 5γ H-bonding, in agreement with the correlation obtained with a NBO-based H-bond strength indicator. The evolution along the Ser, Cys and Sec series emphasizes the compromise between the several factors that control the H-bonding in a hyperconjugation-constrained geometry, among them the chalcogen van der Waals and covalent radii. It also illustrates the 5γ H-bond enhancements with the Sec and Cys residues favoured by the constraints imposed by the γ- and β-turn structures of the peptide chain.

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Year:  2020        PMID: 32914809     DOI: 10.1039/d0cp02825h

Source DB:  PubMed          Journal:  Phys Chem Chem Phys        ISSN: 1463-9076            Impact factor:   3.676


  2 in total

1.  A theoretical and experimental case study of the hydrogen bonding predilection of S-methylcysteine.

Authors:  Venkateswara Rao Mundlapati; Zeynab Imani; Gildas Goldsztejn; Eric Gloaguen; Valérie Brenner; Katia Le Barbu-Debus; Anne Zehnacker-Rentien; Jean-Pierre Baltaze; Sylvie Robin; Michel Mons; David J Aitken
Journal:  Amino Acids       Date:  2021-03-20       Impact factor: 3.520

2.  Selenium in Proteins: Conformational Changes Induced by Se Substitution on Methionine, as Studied in Isolated Model Peptides by Optical Spectroscopy and Quantum Chemistry.

Authors:  Gildas Goldsztejn; Venkateswara Rao Mundlapati; Valérie Brenner; Eric Gloaguen; Michel Mons
Journal:  Molecules       Date:  2022-05-15       Impact factor: 4.927

  2 in total

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