Literature DB >> 22188565

Modeling nonaqueous proton wires built from helical peptides: biased proton transfer driven by helical dipoles.

Gustavo E López1, Inara Colón-Díaz, Anthony Cruz, Sumana Ghosh, Samantha B Nicholls, Usha Viswanathan, Jeanne A Hardy, Scott M Auerbach.   

Abstract

We report gas-phase electronic structure calculations on helical peptides that act as scaffolds for imidazole-based hydrogen-bonding networks (proton wires). We have modeled various 21-residue polyalanine peptides substituted at regular intervals with histidines (imidazole-bearing amino acids), using a hybrid approach with a semiempirical method (AM1) for peptide scaffolds and density functional theory (B3LYP) for proton wires. We have computed energy landscapes including barriers for Grotthuss-shuttling-type proton motions though wires supported on 3(10)-, α- and π-helical structures, showing the 3(10)- and α-helices to be attractive targets in terms of high proton affinities, low Grotthuss shuttling barriers, and high stabilities. Moreover, bias forces provided by the helical dipole moments were found to promote unidirectional proton translocation.

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Year:  2012        PMID: 22188565     DOI: 10.1021/jp210208m

Source DB:  PubMed          Journal:  J Phys Chem A        ISSN: 1089-5639            Impact factor:   2.781


  1 in total

1.  Understanding Proton Transfer in Non-aqueous Biopolymers based on Helical Peptides: A Quantum Mechanical Study.

Authors:  Jiang Bian; Anthony Cruz; Gabriel López-Morales; Anton Kyrylenko; Donna McGregor; Gustavo E López
Journal:  Int J Quantum Chem       Date:  2022-06-21       Impact factor: 2.437

  1 in total

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