English

Launching of Davydov solitons in protein $\alpha$-helix spines

Pattern Formation and Solitons 2020-07-02 v1 Biological Physics

Abstract

Biological order provided by α\alpha-helical secondary protein structures is an important resource exploitable by living organisms for increasing the efficiency of energy transport. In particular, self-trapping of amide I energy quanta by the induced phonon deformation of the hydrogen-bonded lattice of peptide groups is capable of generating either pinned or moving solitary waves following the Davydov quasiparticle/soliton model. The effect of applied in-phase Gaussian pulses of amide I energy, however, was found to be strongly dependent on the site of application. Moving solitons were only launched when the amide I energy was applied at one of the α\alpha-helix ends, whereas pinned solitons were produced in the α\alpha-helix interior. In this paper, we describe a general mechanism that launches moving solitons in the interior of the α\alpha-helix through phase-modulated Gaussian pulses of amide I energy. We also compare the predicted soliton velocity based on effective soliton mass and the observed soliton velocity in computer simulations for different parameter values of the isotropy of the exciton-phonon interaction. The presented results demonstrate the capacity for explicit control of soliton velocity in protein α\alpha-helices, and further support the plausibility of gradual optimization of quantum dynamics for achieving specialized protein functions through natural selection.

Keywords

Cite

@article{arxiv.2006.16798,
  title  = {Launching of Davydov solitons in protein $\alpha$-helix spines},
  author = {Danko D. Georgiev and James F. Glazebrook},
  journal= {arXiv preprint arXiv:2006.16798},
  year   = {2020}
}

Comments

19 pages, 11 figures, 4 videos