SciELO - Scientific Electronic Library Online

 
vol.17 issue3Effects of donor plant age and explants on in vitro culture of Cedrela montana Moritz ex TurczVirulence, production and dispersal of entomo-pathogenic nematodes to larvae of the guava weevil Conotrachelus psidii Marshall: (Coleoptera: Curculionidae) in the laboratory author indexsubject indexarticles search
Home Pagealphabetic serial listing  

Services on Demand

Journal

Article

Indicators

Related links

  • On index processCited by Google
  • Have no similar articlesSimilars in SciELO
  • On index processSimilars in Google

Share


Universitas Scientiarum

Print version ISSN 0122-7483

Abstract

PABON, German  and  AMZEL, L. Mario. Unfolding Ubiquitin by force: water mediated H־bond destabilization. Univ. Sci. [online]. 2012, vol.17, n.3, pp.273-281. ISSN 0122-7483.

Using the "pull and wait" (PNW) simulation protocol at 300 K, we studied the unfolding of a ubiquitin molecule by force. PNW was implemented in the CHARMM program using an integration time step of 1 fs and a uniform dielectric constant of 1. The ubiquitin molecule, initially solvated, was put under mechanical stress, exerting forces from different directions. The rupture of five hydrogen bonds between parallel strands β1 and β5 takes place during the extension from 13 to 15 Å, defines a mechanical barrier for unfolding and dominates the point of maximum unfolding force. The simulations described here show that given adequate time, a small applied force can destabilize those five H-bonds relative to the bonds that can be created to water molecules; allowing the formation of stable H-bonds between a single water molecule and the donor and acceptor groups of the interstrand H-bonds. Thus, simulations run with PNW show that the force is not responsible for "ripping apart" the backbone H-bonds; it merely destabilizes them making them less stable than the H-bonds they can make with water. Additional simulations show that the force necessary to destabilize the H-bonds and allow them to be replaced by H-bonds to water molecules depends strongly on the pulling direction. By using a simulation protocol that allows equilibration at each extension we have been able to observe the details of the events leading to the unfolding of ubiquitin by mechanical force.

Keywords : H-bond; molecular dynamics; PNW; mechanical unfolding.

        · abstract in Spanish | Portuguese     · text in English     · English ( pdf )